From Cannabinoids and Neurosteroids to Statins and the Ketogenic Diet: New Therapeutic Avenues in Rett Syndrome?
Instituto de Farmacologia e Neurociências, Faculdade de Medicina, Universidade de Lisboa, Lisbon, Portugal
Instituto de Medicina Molecular João Lobo Antunes, Faculdade de Medicina, Universidade de Lisboa, Lisbon, Portugal
Abstract
Rett syndrome (RTT) is an X-linked neurodevelopmental disorder caused mainly by mutations in the MECP2 gene, being one of the leading causes of mental disability in females. Mutations in the MECP2 gene are responsible for 95% of the diagnosed RTT cases and the mechanisms through which these mutations relate with symptomatology are still elusive. Children with RTT present a period of apparent normal development followed by a rapid regression in speech and behavior and a progressive deterioration of motor abilities. Epilepsy is one of the most common symptoms in RTT, occurring in 60 to 80% of RTT cases, being associated with worsening of other symptoms. At this point, no cure for RTT is available and there is a pressing need for the discovery of new drug candidates to treat its severe symptoms. However, despite being a rare disease, in the last decade research in RTT has grown exponentially. New and exciting evidence has been gathered and the etiopathogenesis of this complex, severe and untreatable disease is slowly being unfolded. Advances in gene editing techniques have prompted cure-oriented research in RTT. Nonetheless, at this point, finding a cure is a distant reality, highlighting the importance of further investigating the basic pathological mechanisms of this disease. In this review, we focus our attention in some of the newest evidence on RTT clinical and preclinical research, evaluating their impact in RTT symptomatology control, and pinpointing possible directions for future research.
Untitled section
Keywords: Rett syndrome, GABAAR, epilepsy, cholesterol, ketogenic diet, cannabinoids, neurosteroids
Article notes
Untitled section
Received 2019 Apr 12; Accepted 2019 Jun 13; Collection date 2019.
Introduction
In 1966, the neuro pediatrician Andreas Rett described and published a report concerning a neurodevelopmental disorder affecting females (Rett, 1966; Percy, 2016). In this report, Dr. Rett described a disease characterized as having an early onset of developmental delay followed by a rapid regression, loss of communication ability and fine motor capabilities, as well as, the occurrence of stereotypic hand movements and periodic breathing during wakefulness (Percy, 2016). Today, this disease is known as Rett syndrome (RTT). RTT is a severe neurodevelopmental X-linked disorder affecting almost exclusively female patients, with prevalence of approximately 1:10000 live births (Segatto et al., 2014) and with a high rate of sporadic mutations (Patankar, 2014). Despite its rareness, RTT is still the second most common cause of severe mental retardation in females (De Felice et al., 2012). The majority of RTT cases are characterized by an archetypal clinical scenario, comprised by loss of acquired cognitive, social, and motor skills, in an usual four-stage neurologic regression, occurring simultaneously with the development of autistic behavior (Hagberg, 2002; Neul et al., 2010; De Felice et al., 2012; Braat and Kooy, 2015). According to Hagberg, stage I is named “early onset stagnation,” occurs 6 months to 1.5 years after birth and is characterized by delays on the developmental progress. Subsequently, stage II, or “developmental regression,” occurs from year 1 to 4, being characterized by rapid loss of acquired skills and communication and manifestation of mental deficiency. Stage III is termed “pseudostationary period,” being characterized by apparent preserved ambulatory ability and restitution of some communicative abilities, while a slow neuromotor regression occurs. Lastly, stage IV or “later motor deterioration,” onsets when the ambulation of stage III ceases and its characterized by complete wheelchair dependence, severe disability, wasting and distal distortion. RTT patients can also experience gastrointestinal problems, hypoplasia, early-onset osteoporosis, bruxism and screaming spells (Hagberg, 2002). Reductions in brain weight and cortical atrophy/microencephaly, resulting in a smaller head circumference, were early reported as a common feature occurring in children diagnosed with RTT (Jellinger et al., 1988). As thoroughly reviewed in Kyle et al. (2018), metabolic complications are also known as a common feature in RTT (Justice et al., 2013; Segatto et al., 2014). Also, as revised in Shulyakova et al. (2017), important anomalies in mitochondrial structure and function (altered electron transport chain complex function, increased oxidative stress and elevated levels of lactate and pyruvate in blood and cerebrospinal fluid) have been demonstrated in RTT. The clinical diagnosis of RTT is performed following a battery of co-existing and well-defined set of inclusion and exclusion criteria, which were recently revised (Neul et al., 2010; Kyle et al., 2018).
In Amir et al. (1999), using a systematic gene screening approach, identified mutations in the gene MECP2 as cause of some cases of RTT. Today, several mutations in the X-linked MECP2 gene are identified, being acknowledged as the cause of 95% of the classical RTT cases and of 40–50% of the atypical RTT cases (Neul et al., 2010; Zhang et al., 2017), resulting in a wide genetic and phenotypic heterogeneity of this disease (De Felice et al., 2012). MECP2 is a globally expressed pleiotropic factor, assuming a key role in maintaining homeostasis in different cells and systems (Shulyakova et al., 2017). As expected for a neurological condition (Neul and Zoghbi, 2004), in RTT the higher levels of MECP2 in the body are expressed in the brain (Shahbazian, 2002). Confirming the importance of MECP2 presence in the brain, the selective elimination of this gene from neurons (Guy et al., 2007) and oligodendrocytes (Nguyen et al., 2012) triggers RTT-like phenotype in mice (Shulyakova et al., 2017). In atypical RTT variants, mutations in other loci rather than the MECP2 have been identified (Neul et al., 2010).
A diversity of distinctive variant forms of RTT has been proposed, each of which presents different clinical features. Some of these variants have been identified and described in relatively small populations, which leads to difficulties in the definition of clear clinical characteristics (Neul et al., 2010). Nevertheless, according to Neul et al. (2010), there are three distinctive variants of RTT that have been amply identified and that are well characterized: (1) the preserved speech variant (Zappella, 1992), (2) the congenital variant (Rolando, 1985), and (3) the early seizure variant (Hanefeld, 1985). From these three atypical forms of RTT, the preserved speech variant, or Zappella variant, is the most common one. This variant has clearly defined clinical features and mutations on the MECP2 gene are identified in most of the diagnosed cases (Zappella, 1992; Renieri et al., 2009; Neul et al., 2010). On the contrary, in diagnosed cases belonging to the congenital and early seizure variants, mutations in the MECP2 gene are rarely found, while mutations in different genes are reported (Huppke et al., 2000; Archer et al., 2006; Neul et al., 2010; De Felice et al., 2012). Namely, mutations in the CDKL5 gene have been described in both males and females diagnosed with early-seizure-onset RTT variant (Mari et al., 2005; Scala et al., 2005; Zhao et al., 2014; Zhang et al., 2017). On the other hand, mutations in the FOXG1 gene have been identified in the congenital RTT variant (Zhang et al., 2017), first described by Rolando (1985). The congenital variant of RTT is clinically characterized by hypotonia and developmental delay occurring earlier than in classical RTT variant (Rolando, 1985; Jacob et al., 2009). Importantly, the majority of children diagnosed with the congenital variant of RTT do not present mutations in the MECP2 or CDKL5 mutations (Jacob et al., 2009).
The available treatment for RTT is mainly symptomatic. With appropriate social and familiar care, attention to orthopedic complications, physiotherapy to treat and ease muscle rigidity, control of epileptic episodes, and a balanced and healthy nutrition, women with RTT can survive until middle age and older age (Kyle et al., 2018). There is a sudden death rate of 26% in RTT and patients mainly perish due to cardiac complications, respiratory infection and respiratory failure (Kyle et al., 2018). Most of the preclinical and clinical studies in RTT aims at finding ways to prevent or control epileptic episodes, due to the importance that it has for the outcome of RTT prognosis (Krajnc, 2015; Clarke and Abdala Sheikh, 2018). Therefore, preclinical research in RTT is majorly focused on finding ways of correcting detrimental modifications in neurotransmission occurring in this disease, using Mecp2-null mouse models (Clarke and Abdala Sheikh, 2018). Recently, however, a paradigm shift has been proposed. Through gene therapy it was proven that it is possible to reverse RTT symptoms in diseased adult mice by re-activating Mecp2 expression (Guy et al., 2007). Also, a few years later, it was shown that switching-off the production of Mecp2 protein in adult mice leads to the development of symptoms equivalent to those of mice born with the mutation (McGraw et al., 2011; Clarke and Abdala Sheikh, 2018). Considering that, by rule, neurodevelopmental disorders tend to be non-reversible, such results were received with considerable enthusiasm (Clarke and Abdala Sheikh, 2018). Thus, these studies showed that gene therapy would have to necessarily deliver a working MECP2 gene throughout the patient life (it would not be sufficient to do it just on child development) and that treatment could be administered regardless of disease stage and/or age (Clarke and Abdala Sheikh, 2018). Although exciting, the above-mentioned discoveries have to be taken carefully. Indeed, in order to work, MECP2 gene therapy would have to deliver the precise amount of MECP2 protein in each cell of the body, as too much or too few MECP2 protein can trigger RTT-like symptoms (Clarke and Abdala Sheikh, 2018). As a particularly harsh example, in MECP2 duplication syndrome, an overproduction of MECP2 protein leads to mental disability and autistic-like behavior (Moretti and Zoghbi, 2006; Ramocki et al., 2009). Moreover, even small deviations from the necessary MECP2 protein levels are related with modifications in brain function, which can lead to cognitive and mental disability (Chao and Zoghbi, 2012). Therefore, as mentioned in Clarke and Abdala Sheikh (2018), gene therapy in RTT delivers two major challenges: (1) it potentially means that it would be necessary to deliver the exact right amount of MECP2 to every cell and (2) in females, it would be necessary to avoid delivering additional copies of the gene to the cells that already express a healthy copy; two pitfalls that are extremely difficult to overcome with the available technology.
At this point, although possible, finding a cure for RTT is a distant reality. In the meanwhile, it is more important than ever to find new treatments to alleviate symptoms, reduce pain and discomfort and increase the quality of life of both the patient and the caregiver. Therefore, in this review we will turn our attention to new discoveries which show potential in RTT preclinical investigation.
Conclusion and Final Remarks
The present review summarizes important recent evidence concerning metabolic, synaptic, functional and molecular dysfunctions occurring in RTT (see Table 1). Due to the ubiquitous role of MECP2 gene, it has been a tremendous challenge to comprehend and characterize the mechanisms through which MECP2 mutations lead to symptomatology in RTT. With the development and improvement of gene-editing technologies, research in RTT has drifted from “therapy-directed” to “cure-oriented” investigation. However, the path for a definitive cure is paved with many challenges and, most likely, this achievement in not around the corner. Meanwhile, it is paramount to better understand this disease and to improve the available treatment by exploring new therapeutic avenues. In this work, we reviewed promising evidence on different research lines that may have an important impact in the field. From modulators of GABAergic signaling, to cannabinoids and the KD, and cleverly exploiting the metabolic features of this disease, an ample bulk of evidence has been gathered, creating a plethora of research lines to be followed in the future. RTT is a devastating disease, both for the patient and for the caregivers, and clinical and preclinical research directed at finding new therapeutic approaches are more important than ever, now that we are beginning to understand some of the mechanisms of this disease.
| From cannabinoids and neurosteroids to statins and the ketogenic diet: new therapeutic avenues in Rett syndrome? | ||||
| GABAergic signaling | Cholesterol metabolism | Neurosteroids | Cannabinoids | Ketogenic diet |
| The GABAergic signaling system comprises a key pathway commonlydisturbed in neurodevelopmental diseases (Braat and Kooy, 2015). | Cholesterol metabolism is abnormal in brain and livers of Mecp2 mutant mice (Buchovecky et al., 2013). | Allopregnanolone (ALLO) is the most powerful endogenous allosteric modulator of the GABAAR (Hosie et al., 2006; Reddy, 2010). | The endocannabinoid system (ECBS) is involved in the regulation of several behavioral processes found to be compromised in RTT (Vigli et al., 2018). | The ketogenic diet (KD) has strong antiepileptic actions (Rogawski et al., 2016). The anticonvulsive actions of the KD can be mediated via GABAergic signaling mechanism (Rogawski et al., 2016), or be related with increases in adenosine and BDNF signaling (Masino et al., 2011). |
| In RTT, GABAAergic transmission is intimately related with symptoms and disease progression (Chao et al., 2010; El-Khoury et al., 2014). | A mutation in the Sqle gene was sufficient to restore function and longevity in Mecp2 mutant mice (Buchovecky et al., 2013). | Neurosteroids are being proposed as an alternative to benzodiazepines (Reddy and Estes, 2016) and also as antipsychotics (Cai et al., 2018). | Cannabis-based therapies are being proposed as anti-epileptic drugs (AED) even in cases of drug resistant epilepsy (Maa and Figi, 2014; O’Connell et al., 2017; Pamplona and Coan, 2017). | The use of the KD in RTT has shown promising results in controlling epilepsy (Haas et al., 1986; Liebhaber et al., 2003; Giampietro et al., 2006; Caraballo et al., 2011). |
| An incorrect balance between excitation and inhibition reflecting a dysfunction in GABAergic and glutamatergic signaling systems have been described in Mecp2-KO mice (Chao et al., 2007; Calfa et al., 2011). | Statins ameliorate the systemic imbalance of lipid profile, alleviated motor symptoms and conferred increased longevity in Mecp2 mutant mice (Buchovecky et al., 2013). | In MECP2 mutant mice, allopregnanolone increases the amplitude, frequency and decay time of GABAAR IPSCs (Jin et al., 2013b). | Nabiximols (Sativex), a combination of CBD and Δ9-THC, is approved to treat muscle spasticity in Multiple Sclerosis (Novotna et al., 2011), a comorbidity frequently reported in RTT (Kyle et al., 2018). | The KD has also shown positive results in refractory epilepsy and in intractable epilepsy (Neal et al., 2008; Rogawski et al., 2016). |
| The relationship between RTT phenotypical expression and GABAergic signaling is region, time and neuronal population dependent (Chao et al., 2010; El-Khoury et al., 2014). | In samples collected from RTT patients the total cholesterol level is altered (Sticozzi et al., 2013; Segatto et al., 2014). | Changes in subunit composition on the GABAAR might be responsible for different responses to allopregnanolone (Paoletti et al., 2006; Jin et al., 2013b). | Epidiolex (CBD) has been approved to treat epilepsy in Dravet syndrome (Devinsky et al., 2017), a disease that present refractory epilepsy and high mortality rates. The antiepileptic actions of CBD can be mediated via GABAergic signaling (Bakas et al., 2017). | In Mecp2 null mice models, the KD ameliorated anxiety and motor measurements, although clarification is required (Mantis et al., 2009). |
| MECP2 absence exclusively in GABAergic neurons has been found to trigger almost the full range of RTT symptomatology in mice (Chao et al., 2010). | Modifications in mitochondrial structure and function have been described (Shulyakova et al., 2017). Cholesterol influences the production of neurosteroids (Reddy, 2010). | Reductions in neurosteroids were found on status epilepticus (Meletti et al., 2017, 2018). | Administration of CBDV to Mecp2-null mice rescued sociability impairments, improved the general health status and increased the brain weight of these animals (Vigli et al., 2018). | In Autism and Huntington’s disease mice models, the KD has been shown to improve sociability, to reduce repetitive behavior and increase body weight (Todorova et al., 2000; Mantis et al., 2004; Meidenbauer et al., 2011; Ruskin et al., 2011, 2017; Castro et al., 2017; Kasprowska-Liśkiewicz et al., 2017). |
| The use of benzodiazepines, acting as agonists of the GABAAR, improve RTT symptoms in mice (Voituron and Hilaire, 2011). | In SLOS, an abnormal synthesis of neurosteroids occurs (Marcos et al., 2004; Lee and Tierney, 2011). Ganaxolone showed promising results in a clinical trial in Fragile X syndrome (Ligsay et al., 2017). | |||
| Íncreasing GABA availability by blocking its reuptake with Tiagabine, has been shown to reduce RTT symptoms. | ||||
| Future directions | ||||
| To better characterize the modifications occurring in GABAAR composition during RTT progression (Jin et al., 2013b). | To comprehend the cellular mechanisms behind the dysregulations in cholesterol metabolism (Buchovecky et al., 2013). | To directly evaluate the impact of neurosteroid treatment in Mecp2 mutant mice phenotype. | Study the ECBS in RTT mice models. | Reinstate the interest in the use of the KD in RTT, particularly considering its antiseizure actions, advancing with new studies, both in humans and in RTT-mice models. |
| To further evaluate the impact of strategies which, directly or indirectly, increase GABAergic signaling in RTT mice models. | To understand how modifications occurring in GABAAR composition during RTT progression affect neurosteroid actions (Jin et al., 2013b). | Understand the impact of CBD and THC in RTT symptoms in trials with humans and in preclinical studies using RTT mice models. | ||
Summarizing, in the future it would be interesting to: (1) better characterize the modifications occurring in GABAAR composition during RTT disease progression; (2) study how cholesterol imbalances impact on neurosteroid production in RTT and their potential therapeutic use in this disease; (3) disclose the cellular mechanisms behind the dysregulations in cholesterol metabolism; (4) directly study the immense potentiality of CBD and other cannabinoids on RTT mouse-models and in controlled clinical trials with humans; (5) reinstate the interest in the use of the KD in RTT, particularly considering its antiseizure actions, advancing with new studies, both in humans and in RTT-mouse models; (6) to design further studies on the therapeutic properties of statins in RTT, and (7) continue to research mitochondria dynamics in RTT and its role on the disease progression and symptomatology.
Conflict of Interest Statement
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Abbreviations
- 24S-OHC
- oxysterol 24(S)-hydroxycholesterol
- 3xTg-AD
- triple-transgenic mouse model of AD
- 3 α-HSD
- 3 α-hydroxysteroid dehydrogenase
- 3 β-HSD
- 3 β-hydroxysteroid dehydrogenase
- A1R
- adenosine A1 receptor
- A2AR
- adenosine A2A receptor
- AED
- anti-epileptic drugs
- ALLO
- allopregnanolone
- ATP
- adenosine triphosphate
- BBB
- blood brain barrier
- BDNF
- brain-derived neurotrophic factor
- BHB
- β-hydroxybutyrate
- BZD
- benzodiazepines
- CA1
- cornu ammonis 1
- cAMP
- cyclic adenosine monophosphate
- CB1R
- cannabinoid receptor 1
- CB2R
- cannabinoid receptor 2
- CBC
- cannabichromene
- CBD
- cannabidiol
- CBDV
- cannabidivarin
- CBG
- cannabigerol
- CBN
- cannabinol
- CBV
- cannabivarin
- CDKL5
- cyclin-dependent kinase-like 5
- CGIC
- seven-category caregiver global impression of change questionnaire
- CNS
- central nervous system
- CYP11A1
- cytochrome P450 cholesterol side-chain cleavage (P450scc) enzyme
- Cyp46a1
- cholesterol 24-hydroxylase
- ECBS
- endocannabinoid system
- FDA
- United States Food and Drug Administration
- FOXG1
- forkhead box protein G1
- GABA
- gamma-aminobutyric acid
- GABAAR
- GABAA receptor
- GABABR
- GABAB receptor
- GABR
- GABAA receptor subunit
- GLU
- glutamate
- GPR55
- G-protein coupled receptor 55
- HDL
- high density lipoprotein
- HMG-CoA
- 3-hydroxy-3-methylglutaryl-coA
- HMG-CoA-R
- 3-hydroxy-3-methylglutaryl-coA reductase
- IPSCs
- post-synaptic inhibitory potentials
- KD
- ketogenic diet
- LDL
- low density lipoprotein
- LPI
- l- α-lysophosphatidylinositol
- MCT
- medium chain triglycerides
- MECP2
- methyl-CpG-binding protein 2
- PKA
- protein kinase A
- RISE-SRS
- reduced intensity status epilepticus–spontaneous recurrent seizures
- RTT
- Rett syndrome
- SLOS
- Smith–Lemli–Opitz syndrome
- Sqle
- squalene monooxygenase
- SRB1
- scavenger protein B1
- STA
- statins
- StAR
- steroidogenic acute regulatory protein
- Tg
- transgenic
- THCV
- Δ 9-tetrahydrocannabivarin
- THIP
- GABAAR agonist gaboxadol
- TLE
- model of temporal lobe epilepsy
- TRPV1
- transient receptor potential cation channel subfamily V member 1
- Δ 8-THC
- Δ 8-tetrahydrocannabinol
- Δ 9-THC
- Δ 9-tetrahydrocannabino.
Footnotes
Footnote Group
References
Untitled section
References
- Abdala A. P., Toward M. A., Dutschmann M., Bissonnette J. M., Paton J. F. R. (2016). Deficiency of GABAergic synaptic inhibition in the kölliker-fuse area underlies respiratory dysrhythmia in a mouse model of Rett syndrome. J. Physiol. 594 223–237. 10.1113/JP270966
- Abdala A. P. L., Dutschmann M., Bissonnette J. M., Paton J. F. R. (2010). Correction of respiratory disorders in a mouse model of Rett syndrome. Proc. Natl. Acad. Sci. U.S.A. 107 18208–18213. 10.1073/pnas.1012104107
- Amir R. E., Van den Veyver I. B., Wan M., Tran C. Q., Francke U., Zoghbi H. Y. (1999). Rett syndrome is caused by mutations in X-linked MECP2, encoding methyl-CpG-binding protein 2. Nat. Genet. 23 185–188. 10.1038/13810
- Anavi-Goffer S., Baillie G., Irving A. J., Gertsch J., Greig I. R., Pertwee R. G., et al. (2012). Modulation of l-α-lysophosphatidylinositol/GPR55 mitogen-activated protein kinase (MAPK) signaling by Cannabinoids. J. Biol. Chem. 287 91–104. 10.1074/jbc.M111.296020
- Aneja A., Tierney E. (2008). Autism: the role of cholesterol in treatment. Int. Rev. Psychiatry 20 165–170. 10.1080/09540260801889062
- Archer H. L., Evans J., Edwards S., Colley J., Newbury-Ecob R., O’Callaghan F., et al. (2006). CDKL5 mutations cause infantile spasms, early onset seizures, and severe mental retardation in female patients. J. Med. Genet. 43 729–734. 10.1136/jmg.2006.041467
- Auron A., Brophy P. D. (2012). Hyperammonemia in review: pathophysiology, diagnosis, and treatment. Pediatr. Nephrol. 27 207–222. 10.1007/s00467-011-1838-5
- Badowski M. E., Perez S. E. (2016). Clinical utility of dronabinol in the treatment of weight loss associated with HIV and AIDS. HIV AIDS 8 37–45. 10.2147/HIV.S81420
- Badowski M. E., Yanful P. K. (2018). Dronabinol oral solution in the management of anorexia and weight loss in AIDS and cancer. Ther. Clin. Risk Manag. 14 643–651. 10.2147/TCRM.S126849
- Bakas T., van Nieuwenhuijzen P. S., Devenish S. O., McGregor I. S., Arnold J. C., Chebib M. (2017). The direct actions of cannabidiol and 2-arachidonoyl glycerol at GABA A receptors. Pharmacol. Res. 119 358–370. 10.1016/j.phrs.2017.02.022
- Basavarajappa B. S., Shivakumar M., Joshi V., Subbanna S. (2017). Endocannabinoid system in neurodegenerative disorders. J. Neurochem. 142 624–648. 10.1111/jnc.14098
- Belelli D., Casula A., Ling A., Lambert J. J. (2002). The influence of subunit composition on the interaction of neurosteroids with GABA(A) receptors. Neuropharmacology 43 651–661.
- Belelli D., Herd M. B. (2003). The contraceptive agent Provera enhances GABA(A) receptor-mediated inhibitory neurotransmission in the rat hippocampus: evidence for endogenous neurosteroids? J. Neurosci. 23 10013–10020.
- Bernardi F., Salvestroni C., Casarosa E., Nappi R. E., Lanzone A., Luisi S., et al. (1998). Aging is associated with changes in allopregnanolone concentrations in brain, endocrine glands and serum in male rats. Eur. J. Endocrinol. 138 316–321.
- Betjemann J. P., Lowenstein D. H. (2015). Status epilepticus in adults. Lancet Neurol. 14 615–624. 10.1016/S1474-4422(15)00042-3
- Bianchi M. T., Macdonald R. L. (2003). Neurosteroids shift partial agonist activation of GABA(A) receptor channels from low- to high-efficacy gating patterns. J. Neurosci. 23 10934–10943.
- Bjursell M., Ryberg E., Wu T., Greasley P. J., Bohlooly-Y M., Hjorth S. (2016). Deletion of Gpr55 results in subtle effects on energy metabolism, motor activity and thermal pain sensation. PLoS One 11:e0167965. 10.1371/journal.pone.0167965
- Blessing E. M., Steenkamp M. M., Manzanares J., Marmar C. R. (2015). Cannabidiol as a potential treatment for anxiety disorders. Neurotherapeutics 12 825–836. 10.1007/s13311-015-0387-1
- Blue M. E., Naidu S., Johnston M. V. (1999). Altered development of glutamate and GABA receptors in the basal ganglia of girls with Rett syndrome. Exp. Neurol. 156 345–352. 10.1006/exnr.1999.7030
- Boggio E. M., Lonetti G., Pizzorusso T., Giustetto M. (2010). Synaptic determinants of Rett syndrome. Front. Synapt. Neurosci. 2:28. 10.3389/fnsyn.2010.00028
- Braat S., Kooy R. F. (2015). The GABAA receptor as a therapeutic target for neurodevelopmental disorders. Neuron 86 1119–1130. 10.1016/j.neuron.2015.03.042
- Broomall E., Natale J. E., Grimason M., Goldstein J., Smith C. M., Chang C., et al. (2014). Pediatric super-refractory status epilepticus treated with allopregnanolone. Ann. Neurol. 76 911–915. 10.1002/ana.24295
- Brown N., Kerby J., Bonnert T. P., Whiting P. J., Wafford K. A. (2002). Pharmacological characterization of a novel cell line expressing human alpha(4)beta(3)delta GABA(A) receptors. Br. J. Pharmacol. 136 965–974. 10.1038/sj.bjp.0704795
- Buchovecky C. M., Turley S. D., Brown H. M., Kyle S. M., McDonald J. G., Liu B., et al. (2013). A suppressor screen in Mecp2 mutant mice implicates cholesterol metabolism in Rett syndrome. Nat. Genet. 45 1013–1020. 10.1038/ng.2714
- Busquets-Garcia A., Bains J., Marsicano G. (2018). CB1 receptor signaling in the brain: extracting specificity from ubiquity. Neuropsychopharmacology 43 4–20. 10.1038/npp.2017.206
- Cai H., Cao T., Zhou X., Yao J. K. (2018). Neurosteroids in schizophrenia: pathogenic and therapeutic implications. Front. Psychiatry 9:73. 10.3389/fpsyt.2018.00073
- Calfa G., Hablitz J. J., Pozzo-Miller L. (2011). Network hyperexcitability in hippocampal slices from Mecp2 mutant mice revealed by voltage-sensitive dye imaging. J. Neurophysiol. 105 1768–1784. 10.1152/jn.00800.2010
- Campos-Castelló J., Peral Guerra M., Riviere Gómez A., Oliete García F., Herranz Tanarro J., Toledano Barrero M., et al. (1988). [Rett’s syndrome: study of 15 cases]. An. Esp. Pediatr. 28 286–292.
- Caraballo R., Vaccarezza M., Cersósimo R., Rios V., Soraru A., Arroyo H., et al. (2011). Long-term follow-up of the ketogenic diet for refractory epilepsy: multicenter Argentinean experience in 216 pediatric patients. Seizure 20 640–645. 10.1016/j.seizure.2011.06.009
- Carter G. T., Javaher S. P., Nguyen M. H., Garret S., Carlini B. H. (2015). Re-branding cannabis: the next generation of chronic pain medicine? Pain Manag. 5 13–21. 10.2217/pmt.14.49
- Carunchio I., Mollinari C., Pieri M., Merlo D., Zona C. (2008). GABA A receptors present higher affinity and modified subunit composition in spinal motor neurons from a genetic model of amyotrophic lateral sclerosis. Eur. J. Neurosci. 28 1275–1285. 10.1111/j.1460-9568.2008.06436.x
- Carver C. M., Reddy D. S. (2016). Neurosteroid structure-activity relationships for functional activation of extrasynaptic δGABA(A) receptors. J. Pharmacol. Exp. Ther. 357 188–204. 10.1124/jpet.115.229302
- Cassano T., Calcagnini S., Pace L., De Marco F., Romano A., Gaetani S. (2017). Cannabinoid receptor 2 signaling in neurodegenerative disorders: from pathogenesis to a promising therapeutic target. Front. Neurosci. 11:30. 10.3389/fnins.2017.00030
- Castro K., Baronio D., Perry I. S., Riesgo R. D. S., Gottfried C. (2017). The effect of ketogenic diet in an animal model of autism induced by prenatal exposure to valproic acid. Nutr. Neurosci. 20 343–350. 10.1080/1028415X.2015.1133029
- Chao H.-T., Chen H., Samaco R. C., Xue M., Chahrour M., Yoo J., et al. (2010). Dysfunction in GABA signalling mediates autism-like stereotypies and Rett syndrome phenotypes. Nature 468 263–269. 10.1038/nature09582
- Chao H.-T., Zoghbi H. Y. (2012). MeCP2: only 100% will do. Nat. Neurosci. 15 176–177. 10.1038/nn.3027
- Chao H.-T., Zoghbi H. Y., Rosenmund C. (2007). MeCP2 controls excitatory synaptic strength by regulating glutamatergic synapse number. Neuron 56 58–65. 10.1016/j.neuron.2007.08.018
- Chapleau C. A., Lane J., Pozzo-Miller L., Percy A. K. (2013). Evaluation of current pharmacological treatment options in the management of Rett syndrome: from the present to future therapeutic alternatives. Curr. Clin. Pharmacol. 8 358–369.
- Charalampopoulos I., Remboutsika E., Margioris A. N., Gravanis A. (2008). Neurosteroids as modulators of neurogenesis and neuronal survival. Trends Endocrinol. Metab. 19 300–307. 10.1016/j.tem.2008.07.004
- Chebib M., Johnston G. A. R. (1999). The “ABC” of gaba receptors: a brief review. Clin. Exp. Pharmacol. Physiol. 26 937–940. 10.1046/j.1440-1681.1999.03151.x
- Chen C.-Y., Di Lucente J., Lin Y.-C., Lien C.-C., Rogawski M. A., Maezawa I., et al. (2018). Defective GABAergic neurotransmission in the nucleus tractus solitarius in Mecp2-null mice, a model of Rett syndrome. Neurobiol. Dis. 109 25–32. 10.1016/j.nbd.2017.09.006
- Chen S., Wang J. M., Irwin R. W., Yao J., Liu L., Brinton R. D. (2011). Allopregnanolone promotes regeneration and reduces β-amyloid burden in a preclinical model of Alzheimer’s disease. PLoS One 6:e24293. 10.1371/journal.pone.0024293
- Clarke A. J., Abdala Sheikh A. P. (2018). A perspective on “cure” for Rett syndrome. Orphanet J. Rare Dis. 13:44. 10.1186/s13023-018-0786-6
- Clarke R. S. (1973). Anaesthesia and carbohydrate metabolism. Br. J. Anaesth. 45 237–243.
- Colciago A., Magnaghi V. (2016). Neurosteroids involvement in the epigenetic control of memory formation and storage. Neural Plast. 2016:5985021. 10.1155/2016/5985021
- Concas A., Mostallino M. C., Porcu P., Follesa P., Barbaccia M. L., Trabucchi M., et al. (1998). Role of brain allopregnanolone in the plasticity of gamma-aminobutyric acid type A receptor in rat brain during pregnancy and after delivery. Proc. Natl. Acad. Sci. U.S.A. 95 13284–13289.
- Consroe P., Benedito M. A., Leite J. R., Carlini E. A., Mechoulam R. (1982). Effects of cannabidiol on behavioral seizures caused by convulsant drugs or current in mice. Eur. J. Pharmacol. 83 293–298.
- Cooper E. J., Johnston G. A., Edwards F. A. (1999). Effects of a naturally occurring neurosteroid on GABAA IPSCs during development in rat hippocampal or cerebellar slices. J. Physiol. 521(Pt 2), 437–449.
- Counts S. E., He B., Nadeem M., Wuu J., Scheff S. W., Mufson E. J. (2012). Hippocampal drebrin loss in mild cognitive impairment. Neurodegener. Dis. 10 216–219. 10.1159/000333122
- Dahlin M., Elfving A., Ungerstedt U., Amark P. (2005). The ketogenic diet influences the levels of excitatory and inhibitory amino acids in the CSF in children with refractory epilepsy. Epilepsy Res. 64 115–125. 10.1016/j.eplepsyres.2005.03.008
- Dani V. S., Chang Q., Maffei A., Turrigiano G. G., Jaenisch R., Nelson S. B. (2005). Reduced cortical activity due to a shift in the balance between excitation and inhibition in a mouse model of Rett syndrome. Proc. Natl. Acad. Sci. U.S.A. 102 12560–12565. 10.1073/pnas.0506071102
- Dani V. S., Nelson S. B. (2009). Intact long-term potentiation but reduced connectivity between neocortical layer 5 pyramidal neurons in a mouse model of Rett syndrome. J. Neurosci. 29 11263–11270. 10.1523/JNEUROSCI.1019-09.2009
- Datta D., Arion D., Lewis D. A. (2015). Developmental expression patterns of GABAA receptor subunits in layer 3 and 5 pyramidal cells of monkey prefrontal cortex. Cereb. Cortex 25 2295–2305. 10.1093/cercor/bhu040
- De Felice C., Signorini C., Leoncini S., Pecorelli A., Durand T., Valacchi G., et al. (2012). The role of oxidative stress in Rett syndrome: an overview: oxidative stress and Rett syndrome. Ann. N.Y. Acad. Sci. 1259 121–135. 10.1111/j.1749-6632.2012.06611.x
- de Mello Schier A. R., de Oliveira Ribeiro N. P., Coutinho D. S., Machado S., Arias-Carrión O., Crippa J. A., et al. (2014). Antidepressant-like and anxiolytic-like effects of cannabidiol: a chemical compound of Cannabis sativa. CNS Neurol Disord. Drug Targets 13 953–960.
- Devinsky O., Cross J. H., Laux L., Marsh E., Miller I., Nabbout R., et al. (2017). Trial of cannabidiol for drug-resistant seizures in the dravet syndrome. N. Engl. J. Med. 376 2011–2020. 10.1056/NEJMoa1611618
- Di Marzo V., Stella N., Zimmer A. (2015). Endocannabinoid signalling and the deteriorating brain. Nat. Rev. Neurosci. 16 30–42. 10.1038/nrn3876
- Diógenes M. J., Assaife-Lopes N., Pinto-Duarte A., Ribeiro J. A., Sebastião A. M. (2007). Influence of age on BDNF modulation of hippocampal synaptic transmission: interplay with adenosine A2A receptors. Hippocampus 17 577–585. 10.1002/hipo.20294
- Diógenes M. J., Fernandes C. C., Sebastião A. M., Ribeiro J. A. (2004). Activation of adenosine A2A receptor facilitates brain-derived neurotrophic factor modulation of synaptic transmission in hippocampal slices. J. Neurosci. 24 2905–2913. 10.1523/JNEUROSCI.4454-03.2004
- Drexel M., Kirchmair E., Sperk G. (2013). Changes in the expression of GABAA receptor subunit mRNAs in parahippocampal areas after kainic acid induced seizures. Front. Neural Circ. 7:142. 10.3389/fncir.2013.00142
- Duarte S. T., Armstrong J., Roche A., Ortez C., Pérez A., O’Callaghan M., et al. (2013). Abnormal expression of cerebrospinal fluid cation chloride cotransporters in patients with Rett syndrome. PLoS One 8:e068851. 10.1371/journal.pone.0068851
- Dubrovsky B. O. (2005). Steroids, neuroactive steroids and neurosteroids in psychopathology. Progr. Neuro Psychopharmacol. Biol. Psychiatry 29 169–192. 10.1016/j.pnpbp.2004.11.001
- Dunwiddie T. V., Masino S. A. (2001). The role and regulation of adenosine in the central nervous system. Annu. Rev. Neurosci. 24 31–55. 10.1146/annurev.neuro.24.1.31
- El Manira A., Kyriakatos A. (2010). The role of endocannabinoid signaling in motor control. Physiology 25 230–238. 10.1152/physiol.00007.2010
- El-Ansary A., Al-Ayadhi L. (2014). GABAergic/glutamatergic imbalance relative to excessive neuroinflammation in autism spectrum disorders. J. Neuroinflam. 11:189. 10.1186/s12974-014-0189-0
- El-Khoury R., Panayotis N., Matagne V., Ghata A., Villard L., Roux J.-C. (2014). GABA and glutamate pathways are spatially and developmentally affected in the brain of Mecp2-deficient mice. PLoS One 9:e92169. 10.1371/journal.pone.0092169
- Fagan S. G., Campbell V. A. (2014). The influence of cannabinoids on generic traits of neurodegeneration: cannabinoids and neurodegeneration. Br. J. Pharmacol. 171 1347–1360. 10.1111/bph.12492
- Fernandes C. C., Pinto-Duarte A., Ribeiro J. A., Sebastião A. M. (2008). Postsynaptic action of brain-derived neurotrophic factor attenuates alpha7 nicotinic acetylcholine receptor-mediated responses in hippocampal interneurons. J. Neurosci. 28 5611–5618. 10.1523/JNEUROSCI.5378-07.2008
- Fernández-Ruiz J., Moro M. A., Martínez-Orgado J. (2015). Cannabinoids in neurodegenerative disorders and stroke/brain trauma: from preclinical models to clinical applications. Neurotherapeutics 12 793–806. 10.1007/s13311-015-0381-7
- Fernández-Ruiz J., Sagredo O., Pazos M. R., García C., Pertwee R., Mechoulam R., et al. (2013). Cannabidiol for neurodegenerative disorders: important new clinical applications for this phytocannabinoid? Br. J. Clin. Pharmacol. 75 323–333. 10.1111/j.1365-2125.2012.04341.x
- Fitzpatrick J.-M. K., Downer E. J. (2017). Toll-like receptor signalling as a cannabinoid target in multiple sclerosis. Neuropharmacology 113 618–626. 10.1016/j.neuropharm.2016.04.009
- Follesa P., Porcu P., Sogliano C., Cinus M., Biggio F., Mancuso L., et al. (2002). Changes in GABAA receptor gamma 2 subunit gene expression induced by long-term administration of oral contraceptives in rats. Neuropharmacology 42 325–336.
- Fontinha B. M., Diógenes M. J., Ribeiro J. A., Sebastião A. M. (2008). Enhancement of long-term potentiation by brain-derived neurotrophic factor requires adenosine A2A receptor activation by endogenous adenosine. Neuropharmacology 54 924–933. 10.1016/j.neuropharm.2008.01.011
- Fredholm B. B., Bättig K., Holmén J., Nehlig A., Zvartau E. E. (1999). Actions of caffeine in the brain with special reference to factors that contribute to its widespread use. Pharmacol. Rev. 51 83–133.
- Freeman J. M., Kossoff E. H. (2010). Ketosis and the ketogenic diet, 2010: advances in treating epilepsy and other disorders. Adv. Pediatr. 57 315–329. 10.1016/j.yapd.2010.08.003
- French J. A. (2007). Refractory epilepsy: clinical overview. Epilepsia 48 3–7. 10.1111/j.1528-1167.2007.00992.x
- Genazzani A. R., Petraglia F., Bernardi F., Casarosa E., Salvestroni C., Tonetti A., et al. (1998). Circulating levels of allopregnanolone in humans: gender, age, and endocrine influences. J. Clin. Endocrinol. Metab. 83 2099–2103. 10.1210/jcem.83.6.4905
- Giampietro P. F., Schowalter D. B., Merchant S., Campbell L. R., Swink T., Roa B. B. (2006). Widened clinical spectrum of the Q128P MECP2 mutation in Rett syndrome. Childs Nerv. Syst. 22 320–324. 10.1007/s00381-005-1155-z
- Goodkin H. P., Joshi S., Mtchedlishvili Z., Brar J., Kapur J. (2008). Subunit-specific trafficking of GABA(A) receptors during status epilepticus. J. Neurosci. 28 2527–2538. 10.1523/JNEUROSCI.3426-07.2008
- Govindpani K., Calvo-Flores Guzmán B., Vinnakota C., Waldvogel H. J., Faull R. L., Kwakowsky A. (2017). Towards a better understanding of GABAergic remodeling in alzheimer’s disease. Int. J. Mol. Sci. 18:1813. 10.3390/ijms18081813
- Greenfield L. J. (2013). Molecular mechanisms of antiseizure drug activity at GABAA receptors. Seizure 22 589–600. 10.1016/j.seizure.2013.04.015
- Grobin A. C., Morrow A. L. (2001). 3Alpha-hydroxy-5alpha-pregnan-20-one levels and GABA(A) receptor-mediated 36Cl(-) flux across development in rat cerebral cortex. Brain Res. Dev. Brain Res. 131 31–39.
- Gulinello M., Gong Q. H., Li X., Smith S. S. (2001). Short-term exposure to a neuroactive steroid increases alpha4 GABA(A) receptor subunit levels in association with increased anxiety in the female rat. Brain Res. 910 55–66.
- Guy J., Gan J., Selfridge J., Cobb S., Bird A. (2007). Reversal of neurological defects in a mouse model of Rett syndrome. Science 315 1143–1147. 10.1126/science.1138389
- Haas R. H., Rice M. A., Trauner D. A., Merritt T. A., Opitz J. M., Reynolds J. F. (1986). Therapeutic effects of a ketogenic diet in Rett syndrome. Am. J. Med. Genet. 25 225–246. 10.1002/ajmg.1320250525
- Hagberg B. (2002). Clinical manifestations and stages of Rett syndrome. Ment. Retardat. Dev. Disabil. Res. Rev. 8 61–65. 10.1002/mrdd.10020
- Hampson A. J., Grimaldi M., Lolic M., Wink D., Rosenthal R., Axelrod J. (2000). Neuroprotective antioxidants from marijuana. Ann. N.Y. Acad. Sci. 899 274–282.
- Hanefeld F. (1985). The clinical pattern of the Rett syndrome. Brain Dev. 7 320–325.
- Harigaya Y., Shoji M., Shirao T., Hirai S. (1996). Disappearance of actin-binding protein, drebrin, from hippocampal synapses in Alzheimer’s disease. J. Neurosci. Res. 43 87–92. 10.1002/jnr.490430111
- Harrison N. L., Simmonds M. A. (1984). Modulation of the GABA receptor complex by a steroid anaesthetic. Brain Res. 323 287–292.
- Hartman A. L., Gasior M., Vining E. P. G., Rogawski M. A. (2007). The neuropharmacology of the ketogenic diet. Pediatr. Neurol. 36 281–292. 10.1016/j.pediatrneurol.2007.02.008
- Hassan A. M., Keene D. L., Whiting S. E., Jacob P. J., Champagne J. R., Humphreys P. (1999). Ketogenic diet in the treatment of refractory epilepsy in childhood. Pediatr. Neurol. 21 548–552.
- Hill T. D. M., Cascio M.-G., Romano B., Duncan M., Pertwee R. G., Williams C. M., et al. (2013). Cannabidivarin-rich cannabis extracts are anticonvulsant in mouse and rat via a CB1 receptor-independent mechanism. Br. J. Pharmacol. 170 679–692. 10.1111/bph.12321
- Hogart A., Nagarajan R. P., Patzel K. A., Yasui D. H., LaSalle J. M. (2007). 15q11-13 GABAA receptor genes are normally biallelically expressed in brain yet are subject to epigenetic dysregulation in autism-spectrum disorders. Hum. Mol. Genet. 16 691–703. 10.1093/hmg/ddm014
- Hosie A. M., Wilkins M. E., da Silva H. M. A., Smart T. G. (2006). Endogenous neurosteroids regulate GABAA receptors through two discrete transmembrane sites. Nature 444 486–489. 10.1038/nature05324
- Hu J., Zhang Z., Shen W.-J., Azhar S. (2010). Cellular cholesterol delivery, intracellular processing and utilization for biosynthesis of steroid hormones. Nutr. Metab. 7:47. 10.1186/1743-7075-7-47
- Huppke P., Laccone F., Krämer N., Engel W., Hanefeld F. (2000). Rett syndrome: analysis of MECP2 and clinical characterization of 31 patients. Hum. Mol. Genet. 9 1369–1375.
- Huttenlocher P. R. (1976). Ketonemia and seizures: metabolic and anticonvulsant effects of two ketogenic diets in childhood epilepsy. Pediatr. Res. 10 536–540. 10.1203/00006450-197605000-00006
- Iannotti F. A., Hill C. L., Leo A., Alhusaini A., Soubrane C., Mazzarella E., et al. (2014). Nonpsychotropic plant cannabinoids, cannabidivarin (CBDV) and cannabidiol (CBD), activate and desensitize transient receptor potential vanilloid 1 (TRPV1) channels in vitro: potential for the treatment of neuronal hyperexcitability. ACS Chem. Neurosci. 5 1131–1141. 10.1021/cn5000524
- Iseger T. A., Bossong M. G. (2015). A systematic review of the antipsychotic properties of cannabidiol in humans. Schizophr Res. 162 153–161. 10.1016/j.schres.2015.01.033
- Ito-Ishida A., Ure K., Chen H., Swann J. W., Zoghbi H. Y. (2015). Loss of MeCP2 in parvalbumin-and somatostatin-expressing neurons in mice leads to distinct Rett syndrome-like phenotypes. Neuron 88 651–658. 10.1016/j.neuron.2015.10.029
- Iuvone T., Esposito G., De Filippis D., Scuderi C., Steardo L. (2009). Cannabidiol: a promising drug for neurodegenerative disorders? CNS Neurosci. Ther. 15 65–75. 10.1111/j.1755-5949.2008.00065.x
- Jacob F. D., Ramaswamy V., Andersen J., Bolduc F. V. (2009). Atypical Rett syndrome with selective FOXG1 deletion detected by comparative genomic hybridization: case report and review of literature. Eur. J. Hum. Genet. 17 1577–1581. 10.1038/ejhg.2009.95
- Jellinger K., Armstrong D., Zoghbi H. Y., Percy A. K. (1988). Neuropathology of Rett syndrome. Acta Neuropathol. 76 142–158. 10.1007/BF00688098
- Jenniches I., Ternes S., Albayram O., Otte D. M., Bach K., Bindila L., et al. (2016). Anxiety, stress, and fear response in mice with reduced endocannabinoid levels. Biol. Psychiatry 79 858–868. 10.1016/j.biopsych.2015.03.033
- Jin X., Cui N., Zhong W., Jin X.-T., Jiang C. (2013a). GABAergic synaptic inputs of locus coeruleus neurons in wild-type and Mecp2-null mice. Am. J. Physiol. Cell Physiol. 304 C844–C857. 10.1152/ajpcell.00399.2012
- Jin X., Zhong W., Jiang C. (2013b). Time-dependent modulation of GABAA-ergic synaptic transmission by allopregnanolone in locus coeruleus neurons of Mecp2-null mice. Am. J. Physiol. Cell Physiol. 305 C1151–C1160. 10.1152/ajpcell.00195.2013
- Johansson I.-M., Birzniece V., Lindblad C., Olsson T., Bäckström T. (2002). Allopregnanolone inhibits learning in the morris water maze. Brain Res. 934 125–131. 10.1016/S0006-8993(02)02414-9
- Jones N. A., Glyn S. E., Akiyama S., Hill T. D. M., Hill A. J., Weston S. E., et al. (2012). Cannabidiol exerts anti-convulsant effects in animal models of temporal lobe and partial seizures. Seizure 21 344–352. 10.1016/j.seizure.2012.03.001
- Jones N. A., Hill A. J., Smith I., Bevan S. A., Williams C. M., Whalley B. J., et al. (2010). Cannabidiol displays antiepileptiform and antiseizure properties in vitro and in vivo. J. Pharmacol. Exp. Ther. 332 569–577. 10.1124/jpet.109.159145
- Juge N., Gray J. A., Omote H., Miyaji T., Inoue T., Hara C., et al. (2010). Metabolic control of vesicular glutamate transport and release. Neuron 68 99–112. 10.1016/j.neuron.2010.09.002
- Justice M. J., Buchovecky C. M., Kyle S. M., Djukic A. (2013). A role for metabolism in Rett syndrome pathogenesis: new clinical findings and potential treatment targets. Rare Dis. 1:e27265. 10.4161/rdis.27265
- Kaminski R. M., Livingood M. R., Rogawski M. A. (2004). Allopregnanolone analogs that positively modulate GABA receptors protect against partial seizures induced by 6-Hz electrical stimulation in mice. Epilepsia 45 864–867. 10.1111/j.0013-9580.2004.04504.x
- Kano M., Ohno-Shosaku T., Hashimotodani Y., Uchigashima M., Watanabe M. (2009). Endocannabinoid-mediated control of synaptic transmission. Physiol. Rev. 89 309–380. 10.1152/physrev.00019.2008
- Kaplan J. S., Stella N., Catterall W. A., Westenbroek R. E. (2017). Cannabidiol attenuates seizures and social deficits in a mouse model of dravet syndrome. PNAS 114 11229–11234. 10.1073/pnas.1711351114
- Kasprowska-Liśkiewicz D., Liśkiewicz A. D., Nowacka-Chmielewska M. M., Nowicka J., Małecki A., Barski J. J. (2017). The ketogenic diet affects the social behavior of young male rats. Physiol. Behav. 179 168–177. 10.1016/j.physbeh.2017.06.007
- Katz D. M. (2014). “Brain-Derived Neurotrophic Factor and Rett Syndrome,” in Neurotrophic Factors Handbook of Experimental Pharmacology, eds Lewin G. R., Carter B. D. (Heidelberg: Springer; ), 481–495.
- Kawamura M., Ruskin D. N., Masino S. A. (2010). Metabolic autocrine regulation of neurons involves cooperation among pannexin hemichannels, adenosine receptors, and KATP channels. J. Neurosci. 30 3886–3895. 10.1523/JNEUROSCI.0055-10.2010
- Kim D. Y., Simeone K. A., Simeone T. A., Pandya J. D., Wilke J. C., Ahn Y., et al. (2015). Ketone bodies mediate anti-seizure effects through mitochondrial permeability transition. Ann. Neurol. 78 77–87. 10.1002/ana.24424
- Kim Y. S., Yoon B.-E. (2017). Altered GABAergic signaling in brain disease at various stages of life. Exp. Neurobiol. 26:122. 10.5607/en.2017.26.3.122
- Krajnc N. (2015). Management of epilepsy in patients with Rett syndrome: perspectives and considerations. Therapeu. Clin. Risk Manag. 11 925–932. 10.2147/TCRM.S55896
- Kramar C., Loureiro M., Renard J., Laviolette S. R. (2017). Palmitoylethanolamide modulates GPR55 receptor signaling in the ventral hippocampus to regulate mesolimbic dopamine activity, social interaction, and memory processing. Cannabis Cannabinoid Res. 2 8–20. 10.1089/can.2016.0030
- Kwakowsky A., Calvo-Flores Guzmán B., Pandya M., Turner C., Waldvogel H. J., Faull R. L. (2018). GABAA receptor subunit expression changes in the human Alzheimer’s disease hippocampus, subiculum, entorhinal cortex and superior temporal gyrus. J. Neurochem. 145 374–392. 10.1111/jnc.14325
- Kyle S. M., Vashi N., Justice M. J. (2018). Rett syndrome: a neurological disorder with metabolic components. Open Biol. 8:170216. 10.1098/rsob.170216
- Laprairie R. B., Bagher A. M., Kelly M. E. M., Denovan-Wright E. M. (2015). Cannabidiol is a negative allosteric modulator of the cannabinoid CB 1 receptor: negative allosteric modulation of CB 1 by cannabidiol. Br. J. Pharmacol. 172 4790–4805. 10.1111/bph.13250
- Lauckner J. E., Jensen J. B., Chen H.-Y., Lu H.-C., Hille B., Mackie K. (2008). GPR55 is a cannabinoid receptor that increases intracellular calcium and inhibits M current. Proc. Natl. Acad. Sci. U.S.A. 105 2699–2704. 10.1073/pnas.0711278105
- Lee R. W. Y., Tierney E. (2011). Hypothesis: the role of sterols in autism spectrum disorder. Autism Res. Treat. 2011 1–7. 10.1155/2011/653570
- Li W., Pozzo-Miller L. (2014). BDNF deregulation in Rett syndrome. Neuropharmacology 76(Pt C), 737–746. 10.1016/j.neuropharm.2013.03.024
- Li Y., Sun H., Chen Z., Xu H., Bu G., Zheng H. (2016). Implications of GABAergic Neurotransmission in Alzheimer’s Disease. Front Aging Neurosci. 8:31 10.3389/fnagi.2016.00031
- Liebhaber G. M., Riemann E., Matthias Baumeister F. A. (2003). Ketogenic diet in Rett syndrome. J. Child Neurol. 18 74–75. 10.1177/08830738030180011801
- Ligsay A., Van Dijck A., Nguyen D. V., Lozano R., Chen Y., Bickel E. S., et al. (2017). A randomized double-blind, placebo-controlled trial of ganaxolone in children and adolescents with fragile X syndrome. J. Neurodev. Disord. 9:26. 10.1186/s11689-017-9207-8
- Liu Q., Wong-Riley M. T. T. (2010). Postnatal development of N-methyl-D-aspartate receptor subunits 2A, 2B, 2C, 2D, and 3B immunoreactivity in brain stem respiratory nuclei of the rat. Neuroscience 171 637–654. 10.1016/j.neuroscience.2010.09.055
- Loewe S. (1946). Studies on the pharmacology and acute toxicity of compounds with marihuana activity. J. Pharmacol. Exp. Ther. 88 154–161.
- Löscher W. (1989). Valproate enhances GABA turnover in the substantia nigra. Brain Res. 501 198–203.
- Lozovaya N., Eftekhari S., Cloarec R., Gouty-Colomer L. A., Dufour A., Riffault B., et al. (2018). GABAergic inhibition in dual-transmission cholinergic and GABAergic striatal interneurons is abolished in Parkinson disease. Nat. Commun. 9:1422. 10.1038/s41467-018-03802-y
- Lund E. G., Xie C., Kotti T., Turley S. D., Dietschy J. M., Russell D. W. (2003). Knockout of the cholesterol 24-hydroxylase gene in mice reveals a brain-specific mechanism of cholesterol turnover. J. Biol. Chem. 278 22980–22988. 10.1074/jbc.M303415200
- Maa E., Figi P. (2014). The case for medical marijuana in epilepsy. Epilepsia 55 783–786. 10.1111/epi.12610
- Macdonald R., Barker J. L. (1978). Benzodiazepines specifically modulate GABA-mediated postsynaptic inhibition in cultured mammalian neurones. Nature 271 563–564.
- Maitra R., Reynolds J. N. (1999). Subunit dependent modulation of GABAA receptor function by neuroactive steroids. Brain Res. 819 75–82.
- Majewska M. D., Harrison N. L., Schwartz R. D., Barker J. L., Paul S. M. (1986). Steroid hormone metabolites are barbiturate-like modulators of the GABA receptor. Science 232 1004–1007.
- Malfait A. M., Gallily R., Sumariwalla P. F., Malik A. S., Andreakos E., Mechoulam R., et al. (2000). The nonpsychoactive cannabis constituent cannabidiol is an oral anti-arthritic therapeutic in murine collagen-induced arthritis. PNAS 97 9561–9566. 10.1073/pnas.160105897
- Mantis J. G., Centeno N. A., Todorova M. T., McGowan R., Seyfried T. N. (2004). Management of multifactorial idiopathic epilepsy in EL mice with caloric restriction and the ketogenic diet: role of glucose and ketone bodies. Nutr. Metab. 1:11. 10.1186/1743-7075-1-11
- Mantis J. G., Fritz C. L., Marsh J., Heinrichs S. C., Seyfried T. N. (2009). Improvement in motor and exploratory behavior in Rett syndrome mice with restricted ketogenic and standard diets. Epilepsy Behav. 15 133–141. 10.1016/j.yebeh.2009.02.038
- Marcos J., Guo L.-W., Wilson W. K., Porter F. D., Shackleton C. (2004). The implications of 7-dehydrosterol-7-reductase deficiency (smith-lemli-opitz syndrome) to neurosteroid production. Steroids 69 51–60.
- Mari F., Azimonti S., Bertani I., Bolognese F., Colombo E., Caselli R., et al. (2005). CDKL5 belongs to the same molecular pathway of MeCP2 and it is responsible for the early-onset seizure variant of Rett syndrome. Hum. Mol. Genet. 14 1935–1946. 10.1093/hmg/ddi198
- Marichal-Cancino B. A., Fajardo-Valdez A., Ruiz-Contreras A. E., Méndez-Díaz M., Prospéro-García O. (2018). Possible role of hippocampal GPR55 in spatial learning and memory in rats. Acta Neurobiol. Exp. 78 41–50. 10.21307/ane-2018-001
- Marsicano G., Lafenêtre P. (2009). “Roles of the Endocannabinoid System in Learning and Memory,” in Behavioral Neurobiology of the Endocannabinoid System, eds Kendall D., Alexander S. (Berlin: Springer; ), 201–230.
- Marx C. E., Stevens R. D., Shampine L. J., Uzunova V., Trost W. T., Butterfield M. I., et al. (2006). Neuroactive steroids are altered in schizophrenia and bipolar disorder: relevance to pathophysiology and therapeutics. Neuropsychopharmacology 31 1249–1263. 10.1038/sj.npp.1300952
- Mascia M. P., Biggio F., Mancuso L., Cabras S., Cocco P. L., Gorini G., et al. (2002). Changes in GABA(A) receptor gene expression induced by withdrawal of, but not by long-term exposure to, ganaxolone in cultured rat cerebellar granule cells. J. Pharmacol. Exp. Ther. 303 1014–1020. 10.1124/jpet.102.040063
- Masino S. A., Kawamura M., Cote J. L., Williams R. B., Ruskin D. N. (2013). Adenosine and autism: a spectrum of opportunities. Neuropharmacology 68 116–121. 10.1016/j.neuropharm.2012.08.013
- Masino S. A., Li T., Theofilas P., Sandau U. S., Ruskin D. N., Fredholm B. B., et al. (2011). A ketogenic diet suppresses seizures in mice through adenosine A1 receptors. J. Clin. Invest. 121 2679–2683. 10.1172/JCI57813
- Matthews D. B., Morrow A. L., Tokunaga S., McDaniel J. R. (2002). Acute ethanol administration and acute allopregnanolone administration impair spatial memory in the Morris water task. Alcohol. Clin. Exp. Res. 26 1747–1751. 10.1097/01.ALC.0000037219.79257.17
- McGraw C. M., Samaco R. C., Zoghbi H. Y. (2011). Adult neural function requires MeCP2. Science 333 186–186. 10.1126/science.1206593
- Medrihan L., Tantalaki E., Aramuni G., Sargsyan V., Dudanova I., Missler M., et al. (2008). Early defects of GABAergic synapses in the brain stem of a MeCP2 mouse model of Rett syndrome. J. Neurophysiol. 99 112–121. 10.1152/jn.00826.2007
- Meera P., Wallner M., Otis T. S. (2011). Molecular basis for the high THIP/gaboxadol sensitivity of extrasynaptic GABA(A) receptors. J. Neurophysiol. 106 2057–2064. 10.1152/jn.00450.2011
- Meidenbauer J. J., Mantis J. G., Seyfried T. N. (2011). The EL mouse: a natural model of autism and epilepsy. Epilepsia 52 347–357. 10.1111/j.1528-1167.2010.02898.x
- Melcangi R. C., Garcia-Segura L. M., Mensah-Nyagan A. G. (2008). Neuroactive steroids: state of the art and new perspectives. Cell. Mol. Life Sci. 65 777–797. 10.1007/s00018-007-7403-5
- Melcangi R. C., Giatti S., Calabrese D., Pesaresi M., Cermenati G., Mitro N., et al. (2014). Levels and actions of progesterone and its metabolites in the nervous system during physiological and pathological conditions. Prog. Neurobiol. 113 56–69. 10.1016/j.pneurobio.2013.07.006
- Meletti S., Lucchi C., Monti G., Giovannini G., Bedin R., Trenti T., et al. (2017). Decreased allopregnanolone levels in cerebrospinal fluid obtained during status epilepticus. Epilepsia 58 e16–e20. 10.1111/epi.13625
- Meletti S., Lucchi C., Monti G., Giovannini G., Bedin R., Trenti T., et al. (2018). Low levels of progesterone and derivatives in cerebrospinal fluid of patients affected by status epilepticus. J. Neurochem. 147 275–284. 10.1111/jnc.14550
- Mellédo J.-M. L., Baker G. B. (2002). Neuroactive steroids and anxiety disorders. J. Psychiatry Neurosci. 27 161–165.
- Mellon S. H. (2007). Neurosteroid regulation of central nervous system development. Pharmacol. Ther. 116 107–124. 10.1016/j.pharmthera.2007.04.011
- Mersiades A. J., Tognela A., Haber P. S., Stockler M., Lintzeris N., Simes J., et al. (2018). Oral cannabinoid-rich THC/CBD cannabis extract for secondary prevention of chemotherapy-induced nausea and vomiting: a study protocol for a pilot and definitive randomised double-blind placebo-controlled trial (CannabisCINV). BMJ Open 8:e020745. 10.1136/bmjopen-2017-020745
- Misane I., Kruis A., Pieneman A. W., Ögren S. O., Stiedl O. (2013). GABA(A) receptor activation in the CA1 area of the dorsal hippocampus impairs consolidation of conditioned contextual fear in C57BL/6J mice. Behav. Brain Res. 238 160–169. 10.1016/j.bbr.2012.10.027
- Morales P., Hurst D. P., Reggio P. H. (2017). “Molecular Targets of the Phytocannabinoids: A Complex Picture,” in Phytocannabinoids, eds Kinghorn A. D., Falk H., Gibbons S., Kobayashi J. (Cham: Springer International Publishing; ), 103–131.
- Moretti P., Zoghbi H. Y. (2006). MeCP2 dysfunction in Rett syndrome and related disorders. Curr. Opin. Genet. Dev. 16 276–281. 10.1016/j.gde.2006.04.009
- Nagarkatti P., Pandey R., Rieder S. A., Hegde V. L., Nagarkatti M. (2009). Cannabinoids as novel anti-inflammatory drugs. Future Med. Chem. 1 1333–1349. 10.4155/fmc.09.93
- Nagy G., Ackerman S. L. (2013). Cholesterol metabolism and Rett syndrome pathogenesis. Nat. Genet. 45 965–967. 10.1038/ng.2738
- Navarro G., Borroto-Escuela D., Angelats E., Etayo Í., Reyes-Resina I., Pulido-Salgado M., et al. (2018). Receptor-heteromer mediated regulation of endocannabinoid signaling in activated microglia. role of CB1 and CB2 receptors and relevance for Alzheimer’s disease and levodopa-induced dyskinesia. Brain Behav. Immun. 67 139–151. 10.1016/j.bbi.2017.08.015
- Neal E. G., Chaffe H., Schwartz R. H., Lawson M. S., Edwards N., Fitzsimmons G., et al. (2008). The ketogenic diet for the treatment of childhood epilepsy: a randomised controlled trial. Lancet Neurol. 7 500–506. 10.1016/S1474-4422(08)70092-9
- Neul J. L., Kaufmann W. E., Glaze D. G., Christodoulou J., Clarke A. J., Bahi-Buisson N., et al. (2010). Rett syndrome: revised diagnostic criteria and nomenclature. Ann. Neurol. 68 944–950. 10.1002/ana.22124
- Neul J. L., Zoghbi H. Y. (2004). Rett syndrome: a prototypical neurodevelopmental disorder. Neuroscientist 10 118–128. 10.1177/1073858403260995
- Nguyen M. V. C., Du F., Felice C. A., Shan X., Nigam A., Mandel G., et al. (2012). MeCP2 is critical for maintaining mature neuronal networks and global brain anatomy during late stages of postnatal brain development and in the mature adult brain. J. Neurosci. 32 10021–10034. 10.1523/JNEUROSCI.1316-12.2012
- Novotna A., Mares J., Ratcliffe S., Novakova I., Vachova M., Zapletalova O., et al. (2011). A randomized, double-blind, placebo-controlled, parallel-group, enriched-design study of nabiximols* (sativex ), as add-on therapy, in subjects with refractory spasticity caused by multiple sclerosis: Sativex for refractory spasticity in MS. Eur. J. Neurol. 18 1122–1131. 10.1111/j.1468-1331.2010.03328.x
- O’Connell B. K., Gloss D., Devinsky O. (2017). Cannabinoids in treatment-resistant epilepsy: a review. Epilepsy Behav. 70 341–348. 10.1016/j.yebeh.2016.11.012
- Onaivi E. S., Ishiguro H., Gu S., Liu Q.-R. (2012). CNS effects of CB2 cannabinoid receptors: beyond neuro-immuno-cannabinoid activity. J. Psychopharmacol. 26 92–103. 10.1177/0269881111400652
- Pamplona F. A., Coan A. C. (2017). Potential clinical benefits of CBD-rich cannabis extracts over purified CBD in treatment-resistant epilepsy: observational data meta-analysis. bioRxiv 10.1101/212662
- Paoletti A. M., Romagnino S., Contu R., Orrù M. M., Marotto M. F., Zedda P., et al. (2006). Observational study on the stability of the psychological status during normal pregnancy and increased blood levels of neuroactive steroids with GABA-A receptor agonist activity. Psychoneuroendocrinology 31 485–492. 10.1016/j.psyneuen.2005.11.006
- Park H.-M., Choi I.-S., Nakamura M., Cho J.-H., Lee M.-G., Jang I.-S. (2011). Multiple effects of allopregnanolone on GABAergic responses in single hippocampal CA3 pyramidal neurons. Eur. J. Pharmacol. 652 46–54. 10.1016/j.ejphar.2010.10.097
- Parker L. A., Rock E. M., Limebeer C. L. (2011). Regulation of nausea and vomiting by cannabinoids. Br. J. Pharmacol. 163 1411–1422. 10.1111/j.1476-5381.2010.01176.x
- Pascual D., Sánchez-Robles E. M., García M. M., Goicoechea C. (2018). Chronic pain and cannabinoids. great expectations or a christmas carol. Biochem. Pharmacol. 157 33–42. 10.1016/j.bcp.2018.07.033
- Patankar J. V. (2014). Cholesterol metabolism is a potential therapeutic target for Rett syndrome. Clin. Genet. 85 229–230. 10.1111/cge.12284
- Patra P. H., Barker-Haliski M., White H. S., Whalley B. J., Glyn S., Sandhu H., et al. (2019). Cannabidiol reduces seizures and associated behavioral comorbidities in a range of animal seizure and epilepsy models. Epilepsia 60 303–314. 10.1111/epi.14629
- Percy A. K. (2016). Progress in Rett Syndrome: from discovery to clinical trials. Wien. Med. Wochensch. 166 325–332. 10.1007/s10354-016-0491-9
- Pertwee R. G. (2009). Cannabinoid pharmacology: the first 66 years: cannabinoid pharmacology. Br. J. Pharmacol. 147 S163–S171. 10.1038/sj.bjp.0706406
- Perucca E. (2017). Cannabinoids in the treatment of epilepsy: hard evidence at last? J Epilepsy Res. 7 61–76. 10.14581/jer.17012
- Peterman M. G. (1924). The ketogenic diet in the treatment of epilepsy: a preliminary report. Am. J. Dis. Child 28 28–33. 10.1001/archpedi.1924.04120190031004 19515520
- Petrosino S., Verde R., Vaia M., Allarà M., Iuvone T., Di Marzo V. (2018). Anti-inflammatory properties of cannabidiol, a nonpsychotropic cannabinoid, in experimental allergic contact dermatitis. J. Pharmacol. Exp. Ther. 365 652–663. 10.1124/jpet.117.244368
- Pfrieger F. W., Ungerer N. (2011). Cholesterol metabolism in neurons and astrocytes. Prog. Lipid Res. 50 357–371. 10.1016/j.plipres.2011.06.002
- Porter F. D. (2002). Malformation syndromes due to inborn errors of cholesterol synthesis. J. Clin. Invest. 110 715–724. 10.1172/JCI16386
- Puia G., Duciæ I., Vicini S., Costa E. (1993). Does neurosteroid modulatory efficacy depend on GABAA receptor subunit composition? Recept. Channels 1 135–142.
- Puia G., Mienville J.-M., Matsumoto K., Takahata H., Watanabe H., Costa E., et al. (2003). On the putative physiological role of allopregnanolone on GABA(A) receptor function. Neuropharmacology 44 49–55.
- Rabinowitz A., Cohen S. J., Finn D. A., Stackman R. W. (2014). The neurosteroid allopregnanolone impairs object memory and contextual fear memory in male C57BL/6J mice. Horm Behav. 66 238–246. 10.1016/j.yhbeh.2014.05.005
- Ramocki M. B., Peters S. U., Tavyev Y. J., Zhang F., Carvalho C. M. B., Schaaf C. P., et al. (2009). Autism and other neuropsychiatric symptoms are prevalent in individuals with MeCP2 duplication syndrome. Ann. Neurol. 66 771–782. 10.1002/ana.21715
- Reddy D. S. (2010). “Neurosteroids,” in Progress in Brain Research. Amsterdam: Elsevier.
- Reddy D. S. (2011). Role of anticonvulsant and antiepileptogenic neurosteroids in the pathophysiology and treatment of epilepsy. Front. Endocrinol. 2:38 10.3389/fendo.2011.00038
- Reddy D. S., Estes W. A. (2016). Clinical potential of neurosteroids for CNS disorders. Trends Pharmacol. Sci. 37 543–561. 10.1016/j.tips.2016.04.003
- Reddy D. S., Jian K. (2010). The testosterone-derived neurosteroid androstanediol is a positive allosteric modulator of GABAA receptors. J. Pharmacol. Exp. Ther. 334 1031–1041. 10.1124/jpet.110.169854
- Renieri A., Mari F., Mencarelli M. A., Scala E., Ariani F., Longo I., et al. (2009). Diagnostic criteria for the Zappella variant of Rett syndrome (the preserved speech variant). Brain Dev. 31 208–216. 10.1016/j.braindev.2008.04.007
- Rett A. (1966). [On a unusual brain atrophy syndrome in hyperammonemia in childhood]. Wien. Med. Wochenschr. 116 723–726.
- Rice J., Cameron M. (2018). Cannabinoids for treatment of MS symptoms: state of the evidence. Curr. Neurol. Neurosci. Rep. 18:50. 10.1007/s11910-018-0859-x
- Riss J., Cloyd J., Gates J., Collins S. (2008). Benzodiazepines in epilepsy: pharmacology and pharmacokinetics. Acta Neurol. Scand. 118 69–86. 10.1111/j.1600-0404.2008.01004.x
- Rissman R. A., Mobley W. C. (2011). Implications for treatment: GABAA receptors in aging, down syndrome and Alzheimer’s disease. J. Neurochem. 117 613–622. 10.1111/j.1471-4159.2011.07237.x
- Rock E. M., Parker L. A. (2016). Cannabinoids as potential treatment for chemotherapy-induced nausea and vomiting. Front. Pharmacol. 7:221. 10.3389/fphar.2016.00221
- Rogawski M. A., Löscher W., Rho J. M. (2016). Mechanisms of action of antiseizure drugs and the ketogenic diet. Cold Spring Harb. Perspect. Med. 6:a022780. 10.1101/cshperspect.a022780
- Rogawski M. A., Loya C. M., Reddy K., Zolkowska D., Lossin C. (2013). Neuroactive steroids for the treatment of status epilepticus. Epilepsia 54(Suppl. 6), 93–98. 10.1111/epi.12289
- Rolando S. (1985). Rett syndrome: report of eight cases. Brain Dev. 7 290–296.
- Rombo D. M., Ribeiro J. A., Sebastião A. M. (2016). Hippocampal GABAergic transmission: a new target for adenosine control of excitability. J. Neurochem. 139 1056–1070. 10.1111/jnc.13872
- Rosenthal E. S., Claassen J., Wainwright M. S., Husain A. M., Vaitkevicius H., Raines S., et al. (2017). Brexanolone as adjunctive therapy in super-refractory status epilepticus. Ann. Neurol. 82 342–352. 10.1002/ana.25008
- Rosenthaler S., Pöhn B., Kolmanz C., Huu C. N., Krewenka C., Huber A., et al. (2014). Differences in receptor binding affinity of several phytocannabinoids do not explain their effects on neural cell cultures. Neurotoxicol. Teratol. 46 49–56. 10.1016/j.ntt.2014.09.003
- Rossetti M. F., Varayoud J., Moreno-Piovano G. S., Luque E. H., Ramos J. G. (2015). Environmental enrichment attenuates the age-related decline in the mRNA expression of steroidogenic enzymes and reduces the methylation state of the steroid 5α-reductase type 1 gene in the rat hippocampus. Mol. Cell. Endocrinol. 412 330–338. 10.1016/j.mce.2015.05.024
- Ruskin D. N., Fortin J. A., Bisnauth S. N., Masino S. A. (2017). Ketogenic diets improve behaviors associated with autism spectrum disorder in a sex-specific manner in the EL mouse. Physiol. Behav. 168 138–145. 10.1016/j.physbeh.2016.10.023
- Ruskin D. N., Ross J. L., Kawamura M., Ruiz T. L., Geiger J. D., Masino S. A. (2011). A ketogenic diet delays weight loss and does not impair working memory or motor function in the R6/2 1J mouse model of huntington’s disease. Physiol. Behav. 103 501–507. 10.1016/j.physbeh.2011.04.001
- Russo E., Guy G. W. (2006). A tale of two cannabinoids: The therapeutic rationale for combining tetrahydrocannabinol and cannabidiol. Med. Hypoth. 66 234–246. 10.1016/j.mehy.2005.08.026
- Samaco R. C., Hogart A., LaSalle J. M. (2005). Epigenetic overlap in autism-spectrum neurodevelopmental disorders: MECP2 deficiency causes reduced expression of UBE3A and GABRB3. Hum. Mol. Genet. 14 483–492. 10.1093/hmg/ddi045
- Scala E., Ariani F., Mari F., Caselli R., Pescucci C., Longo I., et al. (2005). CDKL5/STK9 is mutated in Rett syndrome variant with infantile spasms. J. Med. Genet. 42 103–107. 10.1136/jmg.2004.026237
- Sebastião A. M., Ribeiro J. A. (2015). Neuromodulation and metamodulation by adenosine: impact and subtleties upon synaptic plasticity regulation. Brain Res. 1621 102–113. 10.1016/j.brainres.2014.11.008
- Segatto M., Trapani L., Di Tunno I., Sticozzi C., Valacchi G., Hayek J., et al. (2014). Cholesterol metabolism is altered in Rett syndrome: a study on plasma and primary cultured fibroblasts derived from patients. PLoS One 9:e104834. 10.1371/journal.pone.0104834
- Selye H. (1941). On the hormonal activity of a steroid compound. Science 94:94. 10.1126/science.94.2430.94
- Selye H., Masson G. (1942). Additional steroids with luteoid activity. Science 96:358. 10.1126/science.96.2494.358
- Shahbazian M. D. (2002). Insight into Rett syndrome: MeCP2 levels display tissue- and cell-specific differences and correlate with neuronal maturation. Hum. Mol. Genet. 11 115–124. 10.1093/hmg/11.2.115
- Shen H., Gong Q. H., Aoki C., Yuan M., Ruderman Y., Dattilo M., et al. (2007). Reversal of neurosteroid effects at alpha4beta2delta GABAA receptors triggers anxiety at puberty. Nat. Neurosci. 10 469–477. 10.1038/nn1868
- Shimizu H., Ishizuka Y., Yamazaki H., Shirao T. (2015). Allopregnanolone increases mature excitatory synapses along dendrites via protein kinase A signaling. Neuroscience 305 139–145. 10.1016/j.neuroscience.2015.07.079
- Shulyakova N., Andreazza A. C., Mills L. R., Eubanks J. H. (2017). Mitochondrial dysfunction in the pathogenesis of Rett syndrome: implications for mitochondria-targeted therapies. Front. Cell. Neurosci. 11:58. 10.3389/fncel.2017.00058
- Sieghart W. (2006). Structure, pharmacology, and function of GABAA receptor subtypes. Adv. Pharmacol. 54 231–263.
- Singh C., Liu L., Wang J. M., Irwin R. W., Yao J., Chen S., et al. (2012). Allopregnanolone restores hippocampal-dependent learning and memory and neural progenitor survival in aging 3xTgAD and nonTg mice. Neurobiol. Aging 33 1493–1506. 10.1016/j.neurobiolaging.2011.06.008
- Smith S. S. (2002). Withdrawal properties of a neuroactive steroid: implications for GABAA receptor gene regulation in the brain and anxiety behavior. Steroids 67 519–528. 10.1016/S0039-128X(01)00170-2
- Solymosi K., Kofalvi A. (2017). Cannabis: a treasure trove or pandora’s box? Mini Rev. Med. Chem. 17 1223–1291. 10.2174/1389557516666161004162133
- Stearns N. A., Schaevitz L. R., Bowling H., Nag N., Berger U. V., Berger-Sweeney J. (2007). Behavioral and anatomical abnormalities in Mecp2 mutant mice: a model for Rett syndrome. Neuroscience 146 907–921. 10.1016/j.neuroscience.2007.02.009
- Sticozzi C., Belmonte G., Pecorelli A., Cervellati F., Leoncini S., Signorini C., et al. (2013). Scavenger receptor B1 post-translational modifications in Rett syndrome. FEBS Lett. 587 2199–2204. 10.1016/j.febslet.2013.05.042
- Stoffel-Wagner B. (2003). Neurosteroid biosynthesis in the human brain and its clinical implications. Ann. N. Y. Acad. Sci. 1007 64–78.
- Talbot F. B., Metcalf K. M., Moriarty M. E. (1927). Epilepsy: chemical investigations of rational treatment by production of ketosis. Am. J. Dis. Child. 33 218–225. 10.1001/archpedi.1927.04130140038005
- Thomas A., Baillie G. L., Phillips A. M., Razdan R. K., Ross R. A., Pertwee R. G. (2009). Cannabidiol displays unexpectedly high potency as an antagonist of CB1 and CB2 receptor agonists in vitro: Cannabinoid antagonism by cannabidiol. Br. J. Pharmacol. 150 613–623. 10.1038/sj.bjp.0707133
- Tietz E. I., Zeng X. J., Chen S., Lilly S. M., Rosenberg H. C., Kometiani P. (1999). Antagonist-induced reversal of functional and structural measures of hippocampal benzodiazepine tolerance. J. Pharmacol. Exp. Ther. 291 932–942.
- Tint G. S., Irons M., Elias E. R., Batta A. K., Frieden R., Chen T. S., et al. (1994). Defective cholesterol biosynthesis associated with the Smith-Lemli-Opitz syndrome. N. Engl. J. Med. 330 107–113. 10.1056/NEJM199401133300205
- Todorova M. T., Tandon P., Madore R. A., Stafstrom C. E., Seyfried T. N. (2000). The ketogenic diet inhibits epileptogenesis in EL mice: a genetic model for idiopathic epilepsy. Epilepsia 41 933–940.
- Turkmen S., Lundgren P., Birzniece V., Zingmark E., Backstrom T., Johansson I.-M. (2004). 3β-20β-dihydroxy-5α-pregnane (UC1011) antagonism of the GABA potentiation and the learning impairment induced in rats by allopregnanolone. Eur. J. Neurosci. 20 1604–1612. 10.1111/j.1460-9568.2004.03610.x
- Uhlemann E. R., Neims A. H. (1972). Anticonvulsant properties of the ketogenic diet in mice. J. Pharmacol. Exp. Ther. 180 231–238.
- Ure K., Lu H., Wang W., Ito-Ishida A., Wu Z., He L., et al. (2016). Restoration of Mecp2 expression in GABAergic neurons is sufficient to rescue multiple disease features in a mouse model of Rett syndrome. eLife 5:e14198. 10.7554/eLife.14198
- Uusi-Oukari M., Korpi E. R. (2010). Regulation of GABAA receptor subunit expression by pharmacological agents. Pharmacol. Rev. 62 97–135. 10.1124/pr.109.002063
- Vaitkevicius H., Husain A. M., Rosenthal E. S., Rosand J., Bobb W., Reddy K., et al. (2017). First-in-man allopregnanolone use in super-refractory status epilepticus. Ann. Clin. Transl. Neurol. 4 411–414. 10.1002/acn3.408
- Vaz S. H., Lérias S. R., Parreira S., Diógenes M. J., Sebastião A. M. (2015). Adenosine A2A receptor activation is determinant for BDNF actions upon GABA and glutamate release from rat hippocampal synaptosomes. Purinerg. Signal 11 607–612. 10.1007/s11302-015-9476-1
- Vendel E., de Lange E. C. M. (2014). Functions of the CB1 and CB2 receptors in neuroprotection at the level of the blood–brain barrier. NeuroMol. Med. 16 620–642. 10.1007/s12017-014-8314-x
- Vigli D., Cosentino L., Raggi C., Laviola G., Woolley-Roberts M., De Filippis B. (2018). Chronic treatment with the phytocannabinoid cannabidivarin (CBDV) rescues behavioural alterations and brain atrophy in a mouse model of Rett syndrome. Neuropharmacology 140 121–129. 10.1016/j.neuropharm.2018.07.029
- Vining E. P., Freeman J. M., Ballaban-Gil K., Camfield C. S., Camfield P. R., Holmes G. L., et al. (1998). A multicenter study of the efficacy of the ketogenic diet. Arch. Neurol. 55 1433–1437.
- Voituron N., Hilaire G. (2011). The benzodiazepine Midazolam mitigates the breathing defects of Mecp2-deficient mice. Respir. Physiol. Neurobiol. 177 56–60. 10.1016/j.resp.2011.02.002
- Walton J. C., McNeill J. K., Oliver K. A., Albers H. E. (2017). Temporal regulation of GABAA receptor subunit expression: role in synaptic and extrasynaptic communication in the suprachiasmatic nucleus. eNeuro 4:ENEURO.0352-16.2017. 10.1523/ENEURO.0352-16.2017
- Wang J. M., Singh C., Liu L., Irwin R. W., Chen S., Chung E. J., et al. (2010). Allopregnanolone reverses neurogenic and cognitive deficits in mouse model of Alzheimer’s disease. Proc. Natl. Acad. Sci. U.S.A. 107 6498–6503. 10.1073/pnas.1001422107
- Wang M. (2011). Neurosteroids and GABA-A receptor function. Front. Endocrinol. 2:44. 10.3389/fendo.2011.00044
- Waterham H. R. (2006). Defects of cholesterol biosynthesis. FEBS Lett. 580 5442–5449. 10.1016/j.febslet.2006.07.027
- Wei D., Allsop S., Tye K., Piomelli D. (2017). Endocannabinoid signaling in the control of social behavior. Trends Neurosci. 40 385–396. 10.1016/j.tins.2017.04.005
- Yamashita Y., Matsuishi T., Ishibashi M., Kimura A., Onishi Y., Yonekura Y., et al. (1998). Decrease in benzodiazepine receptor binding in the brains of adult patients with Rett syndrome. J. Neurol. Sci. 154 146–150.
- Yudkoff M., Daikhin Y., Horyn O., Nissim I., Nissim I. (2008). Ketosis and brain handling of glutamate, glutamine, and GABA. Epilepsia 49(Suppl. 8), 73–75. 10.1111/j.1528-1167.2008.01841.x
- Zaheer S., Kumar D., Khan M. T., Giyanwani P. R., Kiran F. N. U. (2018). Epilepsy and cannabis: a literature review. Cureus 10:e3278. 10.7759/cureus.3278
- Zamberletti E., Gabaglio M., Piscitelli F., Brodie J. S., Woolley-Roberts M., Barbiero I., et al. (2019). Cannabidivarin completely rescues cognitive deficits and delays neurological and motor defects in male Mecp2 mutant mice. J. Psychopharmacol. 10.1177/0269881119844184 [Epub ahead of print].
- Zappella M. (1992). The Rett girls with preserved speech. Brain Dev. 14 98–101.
- Zhang L., He J., Jugloff D. G. M., Eubanks J. H. (2008). The MeCP2-null mouse hippocampus displays altered basal inhibitory rhythms and is prone to hyperexcitability. Hippocampus 18 294–309. 10.1002/hipo.20389
- Zhang Q., Wang J., Li J., Bao X., Zhao Y., Zhang X., et al. (2017). Novel FOXG1 mutations in Chinese patients with Rett syndrome or Rett-like mental retardation. BMC Med. Genet. 18:96. 10.1186/s12881-017-0455-y
- Zhang X., Cui N., Wu Z., Su J., Tadepalli J. S., Sekizar S., et al. (2010). Intrinsic membrane properties of locus coeruleus neurons in Mecp2-null mice. Am. J. Physiol. Cell Physiol. 298 C635–C646. 10.1152/ajpcell.00442.2009
- Zhang Z.-W., Zak J. D., Liu H. (2010). MeCP2 is required for normal development of GABAergic circuits in the thalamus. J. Neurophysiol. 103 2470–2481. 10.1152/jn.00601.2009
- Zhao Y., Zhang X., Bao X., Zhang Q., Zhang J., Cao G., et al. (2014). Clinical features and gene mutational spectrum of CDKL5-related diseases in a cohort of Chinese patients. BMC Med. Genet. 15:24. 10.1186/1471-2350-15-24
- Zhong W., Cui N., Jin X., Oginsky M. F., Wu Y., Zhang S., et al. (2015). Methyl CpG binding protein 2 gene disruption augments tonic currents of γ-aminobutyric acid receptors in locus coeruleus neurons: impact on neuronal excitability and breathing. J. Biol. Chem. 290 18400–18411. 10.1074/jbc.M115.650465
- Zhong W., Johnson C. M., Cui N., Oginsky M. F., Wu Y., Jiang C. (2017). Effects of early-life exposure to THIP on brainstem neuronal excitability in the Mecp2-null mouse model of Rett syndrome before and after drug withdrawal. Physiol. Rep. 5:e13110. 10.14814/phy2.13110
- Zuardi A. W., Antunes Rodrigues J., Cunha J. M. (1991). Effects of cannabidiol in animal models predictive of antipsychotic activity. Psychopharmacology 104 260–264. 10.1007/BF02244189
- Zuardi A. W., Crippa J. A. S., Hallak J. E. C., Bhattacharyya S., Atakan Z., Martin-Santos R., et al. (2012). A critical review of the antipsychotic effects of cannabidiol: 30 years of a translational investigation. Curr. Pharm. Des. 18 5131–5140.
- Zuardi A. W., de Souza Crippa J. A., Hallak J. E. C., Campos A. C., Guimarães F. S. (2017). “Chapter e13 - The Anxiolytic Effects of Cannabidiol (CBD),” in Handbook of Cannabis and Related Pathologies, ed. Preedy V. R. (San Diego: Academic Press; ), e131–e139.