Positive Tetrahydrocurcumin-Associated Brain-Related Metabolomic Implications
Faculty of Natural Sciences and Mathematics, Institute of Biology, Ss. Cyril and Methodius University, 1000 Skopje, North Macedonia
Department of Physiology, Pirogov Russian National Research Medical University, Ostrovityanova Street, 1, 117997 Moscow, Russia
Friedman Diabetes Institute, Lenox Hill Hospital, Northwell Health, 110 E 59th Street, New York, NY 10022, USA
Abstract
Tetrahydrocurcumin (THC) is a metabolite of curcumin (CUR). It shares many of CUR’s beneficial biological activities in addition to being more water-soluble, chemically stable, and bioavailable compared to CUR. However, its mechanisms of action have not been fully elucidated. This paper addresses the preventive role of THC on various brain dysfunctions as well as its effects on brain redox processes, traumatic brain injury, ischemia-reperfusion injury, Alzheimer’s disease, and Parkinson’s disease in various animal or cell culture models. In addition to its strong antioxidant properties, the effects of THC on the reduction of amyloid β aggregates are also well documented. The therapeutic potential of THC to treat patterns of mitochondrial brain dysmorphic dysfunction is also addressed and thoroughly reviewed, as is evidence from experimental studies about the mechanism of mitochondrial failure during cerebral ischemia/reperfusion injury. THC treatment also results in a dose-dependent decrease in ERK-mediated phosphorylation of GRASP65, which prevents further compartmentalization of the Golgi apparatus. The PI3K/AKT signaling pathway is possibly the most involved mechanism in the anti-apoptotic effect of THC. Overall, studies in various animal models of different brain disorders suggest that THC can be used as a dietary supplement to protect against traumatic brain injury and even improve brain function in Alzheimer’s and Parkinson’s diseases. We suggest further preclinical studies be conducted to demonstrate the brain-protective, anti-amyloid, and anti-Parkinson effects of THC. Application of the methods used in the currently reviewed studies would be useful and should help define doses and methods of THC administration in different disease conditions.
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Keywords: tetrahydrocurcumin, curcumin, brain injury, Alzheimer’s disease, Parkinson’s disease, mitochondria, reactive oxygen species, antioxidants
Article notes
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Received 2023 Feb 10; Revised 2023 Mar 22; Accepted 2023 Apr 21; Collection date 2023 May.
1. Background
Chemoprevention, generally defined as the use of natural food chemicals and/or synthetic substances to slow, inhibit, block, or even reverse the progression of human diseases, is a relatively new technique for preventing degenerative diseases in humans. Tetrahydrocurcumin (THC), as a significant metabolite of curcumin (CUR) (derived from the roots of Curcuma longa Linn.), has been shown to possess antioxidant, anti-inflammatory, neuroprotective, and anti-cancer properties. In this review, we analyze the existing data and the underlying molecular mechanisms of the neuroprotective properties of THC, as well as its potential implications for the prevention of different brain-related diseases.
2. The Structural Feature of THC Associated with Its Antioxidant Properties
THC includes phenol and β−diketone functional groups, which are common structural characteristics of antioxidant compounds. (Figure 1). In this direction, by exposing it to peroxyl radicals, Sugiyama et al. [1] found that THC produced four oxidation products derived from the β−diketone. Moreover, Wu et al. [2] described the breaking of the C–C bond in the β−diketone that occurs during redox reactions, which means that the structure of the β−diketone plays a key role in the antioxidant properties of THC [1].
In vivo, studies show that THC has a stronger antioxidant effect than CUR. THC lowered the levels of lipid peroxidation markers in the blood, liver, and kidney of cholesterol-fed rabbits [3]. THC’s antioxidant activity was also beneficial in reducing chloroquine-mediated damage in the rat kidneys by augmenting the endogenous non-enzymatic and enzymatic antioxidants and inhibiting lipid peroxidation [4,5,6]. In the same direction, Nakmareong et al. [7] showed that administration of a THC-containing diet in a rat model of N(omega)-Nitro-L-Arginine Methyl Ester (L-NAME)-induced oxidative stress leads to a significantly reduced production of superoxide (O2·) and malondialdehyde (MDA), followed by increased endogenous synthesis of glutathione (GSH) [8]. Similarly, THC significantly reduced L-NAME-induced aortic wall thickness and stiffness [9]. Ma et al. [10], investigating the relationship between the antioxidative brain potential of brain tissue and cognitive impairment in a C57BL/6 mouse model induced by acute hypobaric hypoxia, discovered that THC improved cognitive impairment, accompanied by reduced oxidative stress and increased glucose transporter 1 (GLUT1) protein levels. In addition, one crucial brain-related THC-affected mechanism is the synthesis of the deacetylase, sirtuin 1 (Sirt1) [11]. Sirt1’s activity is associated with improved cellular physiological function and is considered to have an anti-aging effect. Sirt1 promotes the production of brain-derived neurotrophic factors, which is one of the most significant brain-related effects. [12]. For these reasons, practical measures that might boost Sirt1 activity are of considerable interest. Among the few already-proven nutraceuticals that have potential in this regard, THC is one of the most prominent. THC was found to increase Sirt1’s mRNA as well as the levels of the protein, but the details about how THC accomplishes this remain obscure [13,14].
Several human diseases, including aging, diabetes, neurodegeneration, and cancer, have been linked to oxidative stress as one of their most prominent causes [15,16]. THC may have the ability to prevent oxidation-related human diseases due to its significant antioxidant activity, which has already been demonstrated in many in vitro and in vivo settings [17]. On the other hand, from a pharmacokinetic point of view, THC, compared to hexahydrocurcumin, for instance, has lower pharmacokinetic properties and lower bioavailability in various relevant models [18]. Based on its kinetic solubility, metabolic stability, gastrointestinal (GI) and blood–brain barrier (BBB) penetration properties, and lipophilic-ligand efficiency, THC is not at the top in comparison to some other curcuminoids [18]. Nevertheless, taking into account its advantages, such as in the case of the promotion and activation of Sirt1, considerable emphasis in this systemic review will be given to the impact of THC on neurodegenerative onset. However, its protective role in all previously mentioned diseases cannot be excluded due to the systemic relationships between them.
6. Anti-Amyloid Activity of THC
The use of CUR to treat Alzheimer’s disease (AD) has sparked considerable interest due to its powerful anti-amyloid and anti-inflammatory characteristics, since this polyphenol is less toxic and less costly than most other therapies [94,95,96,97,98]. Most studies emphasize the anti-amyloid activities of CUR in turmeric extract; however, it also includes a high concentration of other polyphenols, including BDMC and DMC [97]. In addition, these compounds are metabolized in the liver and produce significant amounts of a relatively stable, water-soluble metabolite, namely THC. To determine the anti-amyloid properties of THC, Maiti et al. [99] compared the binding and aggregation inhibition efficiency of CUR, BDMC, DMC, and THC (Figure 7) in relation to Alzheimer’s Aβ42 and Aβ40 peptides.
The authors found that DBMC, DMC, and THC had a stronger interaction with Aβ40 and Aβ42. The same scientists reported that the majority of the chemicals favored binding in the N-terminal sequence of Aβ’s core hydrophobic region, indicating that this binding is responsible for inhibition of Aβ aggregation. Maiti et al. [99] observed that keto-CUR (KCUR) has the lowest binding energy for CUR derivatives and Aβ40 and Aβ42, suggesting that KCUR has a greater binding affinity to both Aβ40 and Aβ42 than other CUR derivatives, followed by enol-CUR (ECUR), BDMC, DMC, and THC (Figure 7) [99]. As a result, they demonstrated that in the presence of CUR derivatives, the two Aβ molecules dissociate from clumping together.
The higher affinity of KCUR for Aβ is due to its lipophilicity, which allows it to penetrate the hydrophobic core of Aβ aggregates, preventing further aggregation. THC, on the other hand, is projected to form weaker contacts with the hydrophobic residues of Aβ owing to its greater hydrophilicity; nonetheless, due to its high stability, it inhibits Aβ aggregation to a comparable extent as KCUR or other CUR derivatives [99].
Considering that CUR can form H-bonds with a variety of Aβ-amino acid residues, primarily N-terminal or occasionally C-terminal amino acids [100], Maiti et al. [99] examined the binding energy between Aβ’s binding pocket and various amino acids and discovered a favorable interaction between a greater number of Aβ’s amino acids and ECUR or THC [101]. The same researchers examined the number of CUR-derivative molecules required to induce certain effects during Aβ aggregation and concluded that a minimum of 12–18 CUR molecules are required to significantly reduce aggregation, while in the case of THC, the minimal number of molecules is between 5–6, indicating that THC has a more significant Aβ42 inhibitory effect than CUR.
To further investigate the neuroprotective effects of CUR and THC, Maiti et al. [99] measured protein kinase B (Akt) and caspase-3 levels in Aβ42-treated SH-SY5Y neuroblastoma cell cultures and observed that both CUR and THC (1 mmol/L) significantly reduced caspase-3 levels and caused an increase in the level of Akt, suggesting that both compounds may prevent apoptotic death (Figure 5). Further investigation of the effects of THC on the induction of molecular chaperones such as heat shock proteins (HSPs) showed that different concentrations of THC induced HSP90 and HSP70 levels in SH-SY5Y cells, similar to CUR treatment, suggesting that THC plays a significant role in protein quality control and inhibition of Aβ aggregation [102], which has also been observed in the case of other CUR derivatives. The molecular mechanisms of HSP induction by CUR derivatives and/or by THC are not clear yet, although Maiti et al. [99] confirmed that THC could induce a CUR-like HSP response.
8. CUR- and THC-Associated Effects on Parkinson’s Disease Progression
Rajeswari et al. [20] investigated the effects of CUR and THC on the progression of Parkinson’s disease (PD). According to their results, CUR and THC normalized the depletion of dopamine (DA) and 3,4-dihydroxyphenylacetic acid (DOPAC) caused by 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) and also had a considerable impact on the activity of monoamine oxidase (MAO) B (MAO-B) in the striatum. MPTP’s activity mainly affects the nigrostriatal system [115]. Upon its administration, MPTP quickly crosses the BBB and is converted to the 1-methyl-4-phenyl pyridinium ion (MPP+) via the action of MAO in the brain. In turn, dopamine transporters are responsible for the selective transport of MPP+ into dopaminergic neurons [115]. Its subsequent accumulation in the mitochondria [116,117,118] leads to increased ROS production, which is toxic to neurons [119,120]. The inhibition of MAO-B by CUR and THC resulted in an increase in DA and DOPAC levels [20]. CUR was also found to increase DA levels in the frontal cortex and striatum and inhibit brain MAO-B activity in the 6-OHDA animal model of PD [121]. All these findings emphasize the neuroprotective effects of CUR and THC treatment in the direction of MAO-B inhibition and preservation of DA and DOPAC levels. Thus, according to Rajeswari et al. [20], CUR’s and THC’s inhibitory effects on MAO-B could offer significant benefits in slowing the progression of PD.
9. Conclusions
Numerous recently published in vitro and in vivo studies show that the application of THC can prevent the occurrence of various diseases related to oxidative disorders, primarily due to its strong antioxidant activity. Research shows that THC reduces the biochemical, neurophysiological, and histological changes caused by vincristine treatment in rats. The obtained results indicated that the benefits of THC in such processes might be related to different mechanisms, including antinociceptive, anti-inflammatory, Ca2+-accumulation-inhibitive, TNF-α-suppressive, neuroprotective, and antioxidant activities. THC therapy also has a neuroprotective effect on TBI-induced apoptosis, potentially through autophagy and induction of the PI3K/AKT pathway. As a result of these findings, THC may be a beneficial therapeutic agent for TBI therapy.
Furthermore, if HHcy is proven to cause neurodegenerative disorders (stroke), THC may be an effective prophylactic agent in preventing Hcy-induced oxidative stress. THC also shows a protective effect against damage caused by cerebral I/R, which is probably mediated by inhibition of the ERK signaling pathway and subsequent reduction of GRASP65 phosphorylation. Based on this, THC may be a useful therapeutic agent to prevent brain I/R-induced damage.
Both in silico and in vitro data suggest that THC has anti-amyloid and neuroprotective properties similar to those of CUR. THC, being a more stable metabolite of CUR, has the potential to more effectively inhibit Aβ aggregation than other CUR derivatives. Nonetheless, further investigation is needed, particularly using various animal models of AD, to verify these results and optimize them for future therapeutic use. The identification of THC’s influence on amyloid plaque development in a mouse model of AD, which has a vital role in restoring cell cycle homeostasis, as well as THC’s inhibitory effects on microglia apoptosis via the Ras/ERK signaling pathway, provide fresh insights on the potential of THC in slowing the progression of AD.
However, as with other natural compounds, based on its limited pharmacokinetic properties, the applicability of THC as a lead compound could depend on an appropriate formulation bypassing the first-pass metabolism. Further improvement of the bioavailability of THC in vivo is a key direction for future research. Combinatorial therapies that target multiple processes. such as reducing oxidative stress and enhancing anti-inflammatory effects. may offer greater opportunities for clinically meaningful prevention. In addition, with the study of Pari and Murugan (2006) [6] in mind, besides its application in combination with other compounds for better effects, special attention should be given to its doses.
Acknowledgments
The authors are grateful to Hristo Gagov (St. Kliment of Ohrid University, Faculty of Biology, Department of Physiology) for providing helpful suggestions during the manuscript preparation.
Abbreviations
| Aβ | Amyloid-β |
| AD | Alzheimer’s disease |
| APP/PS1 mice | Double-transgenic mice expressing a chimeric mouse/human amyloid precursor protein and a mutant human presenilin 1 |
| Bag1 | Bcl-2-associated athanogene 1 |
| BBB | Blood–brain barrier |
| Bcl-2 | B-cell lymphoma 2 |
| BDMC | Bisdemethoxycurcumin |
| BV-2 | Immortalized by v-raf/v-myc carrying J2 retrovirus cells |
| [Ca2+]I | Intracellular Ca2+ |
| CDK1 | Cyclin-dependent kinase 1 |
| CDKN1A | Cyclin-dependent kinase inhibitor 1A |
| COX-2 | Cyclooxygenase 2 |
| DA | Dopamine |
| CUR | Curcumin |
| DOPAC | 3,4-di-hydroxy phenylacetic acid |
| JNK | c-Jun N-terminal kinase |
| DMC | Demethoxycurcumin |
| DOPAC | 3,4Dihydroxyphenylacetic acid |
| DPPH | 2,2-Diphenyl-1-picrylhydrazyl |
| ECUR | Enol-curcumin |
| ERK | Extracellular signal-regulated kinase |
| GAB2 | Grb-associated binder 2 |
| GI | Gastrointestinal |
| GSH | Glutathione |
| GPx | Glutathione peroxidase |
| GLUT1 | Glucose transporter 1 |
| GRASP65 | Golgi reassembly-stacking protein of 65 kDa |
| Hcy | Homocysteine |
| HHcy | Hyperhomocysteinemia |
| HSP | Heat-shock protein |
| iNOS | Inducible nitric oxide synthase |
| I/R | Cerebral ischemia/reperfusion |
| KCUR | Keto-curcumin |
| L-NAME | (ω)-nitro-L-arginine methyl ester |
| MAPK | Mitogen-activated protein kinase |
| MDA | Malondialdehyde |
| MMP | Matrix metalloproteinase |
| MPP+ | 1-methyl-4-phenyl pyridinium ion |
| MPTP | 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine |
| MAO | Monoamine oxidase |
| NF-κB | Nuclear factor kappa light chain enhancer of activated B cells |
| O2 | Superoxide |
| PARP1 | poly [ADP-ribose] polymerase 1 |
| PD | Parkinson’s disease |
| PI3K | Phosphatidylinositol 3’-kinase |
| PLK1 | Polo-like kinase 1 |
| ROS | Reactive oxygen species |
| Sirt1 | Sirtuin 1 |
| SOD | Superoxide dismutase |
| TBI | Traumatic brain injury |
| TGF-β1 | Transforming growth factor β1 |
| THC | Tetrahydrocurcumin |
| TNF-α | Tumor necrosis factor α |
| TPA | 12-O-Tetradecanoylphorbol-13-acetate. |
| PI3K | Phosphatidylinositide 3-kinases |
Institutional Review Board Statement
Not applicable.
Informed Consent Statement
Not applicable.
Data Availability Statement
Not applicable.
Conflicts of Interest
The authors declare that they have no competing financial interest.
Funding Statement
This research received no external funding.
Footnotes
Footnote Group
References
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References
- 1.Sugiyama Y., Kawakishi S., Osawa T. Involvement of the beta-diketone moiety in the antioxidative mechanism of tetrahydrocurcumin. Biochem. Pharmacol. 1996;52:519–525. doi: 10.1016/0006-2952(96)00302-4.
- 2.Wu J.-C., Tsai M.-L., Lai C.-S., Wang Y.-J., Ho C.-T., Pan M.-H. Chemopreventative effects of tetrahydrocurcumin on human diseases. Food Funct. 2014;5:12–17. doi: 10.1039/C3FO60370A.
- 3.Naito M., Wu X., Nomura H., Kodama M., Kato Y., Kato Y., Osawa T. The Protective Effects of Tetrahydrocurcumin on Oxidative Stress in Cholesterol-fed Rabbits. J. Atheroscler. Thromb. 2002;9:243–250. doi: 10.5551/jat.9.243.
- 4.Magwere T., Naik Y.S., Hasler J.A. Effects of Chloroquine Treatment on Antioxidant Enzymes in Rat Liver and Kidney. Free. Radic. Biol. Med. 1997;22:321–327. doi: 10.1016/S0891-5849(96)00285-7.
- 5.Murugavel P., Pari L. Attenuation of Chloroquine-Induced Renal Damage by α-Lipoic Acid: Possible Antioxidant Mechanism. Ren. Fail. 2004;26:517–524. doi: 10.1081/JDI-200031761.
- 6.Pari L., Murugan P. Tetrahydrocurcumin: Effect on Chloroquine-Mediated Oxidative Damage in Rat Kidney. Basic Clin. Pharmacol. Toxicol. 2006;99:329–334. doi: 10.1111/j.1742-7843.2006.pto_503.x.
- 7.Nakmareong S., Kukongviriyapan U., Pakdeechote P., Donpunha W., Kukongviriyapan V., Kongyingyoes B., Sompamit K., Phisalaphong C. Antioxidant and vascular protective effects of curcumin and tetrahydrocurcumin in rats with l-NAME-induced hypertension. Naunyn-Schmiedeberg’s Arch. Pharmacol. 2011;383:519–529. doi: 10.1007/s00210-011-0624-z.
- 8.Priviero F.B., Teixeira C.E., Claudino M.A., De Nucci G., Zanesco A., Antunes E. Vascular effects of long-term propranolol administration after chronic nitric oxide blockade. Eur. J. Pharmacol. 2007;571:189–196. doi: 10.1016/j.ejphar.2007.05.060.
- 9.Zhang L., Li C., Wang S., Avtanski D., Hadzi-Petrushev N., Mitrokhin V., Mladenov M., Wang F. Tetrahydrocurcumin-Related Vascular Protection: An Overview of the Findings from Animal Disease Models. Molecules. 2022;27:5100. doi: 10.3390/molecules27165100.
- 10.Ma X., Pan Y., Xue Y., Li Y., Zhang Y., Zhao Y., Xiong X., Wang J., Yang Z. Tetrahydrocurcumin Ameliorates Acute Hypobaric Hypoxia-Induced Cognitive Impairment in Mice. High Alt. Med. Biol. 2022;23:264–272. doi: 10.1089/ham.2021.0061.
- 11.DiNicolantonio J.J., McCarty M.F., O’Keefe J.H. Nutraceutical activation of Sirt1: A review. Open Heart. 2022;9:e002171. doi: 10.1136/openhrt-2022-002171.
- 12.El Hayek L., Khalifeh M., Zibara V., Assaad R.A., Emmanuel N., Karnib N., El-Ghandour R., Nasrallah P., Bilen M., Ibrahim P., et al. Lactate mediates the effects of exercise on learning and memory through SIRT1—Dependent activation of hippocampal brain—derived neurotrophic factor (BDNF) J. Neurosci. 2019;39:2369–2382. doi: 10.1523/JNEUROSCI.1661-18.2019.
- 13.Li K., Zhai M., Jiang L., Song F., Zhang B., Li J., Li H., Li B., Xia L., Xu L., et al. Tetrahydrocurcumin Ameliorates Diabetic Cardiomyopathy by Attenuating High Glucose-Induced Oxidative Stress and Fibrosis via Activating the SIRT1 Pathway. Oxidative Med. Cell. Longev. 2019;2019:1–15. doi: 10.1155/2019/6746907.
- 14.Li L., Liu X., Li S., Wang Q., Wang H., Xu M., An Y. Tetrahydrocurcumin protects against sepsis-induced acute kidney injury via the SIRT1 pathway. Ren. Fail. 2021;43:1028–1040. doi: 10.1080/0886022X.2021.1942915.
- 15.Ferrari C.K.B. Functional foods, herbs and nutraceuticals: Towards biochemical mechanisms of healthy aging. Biogerontology. 2004;5:275–290. doi: 10.1007/s10522-004-2566-z.
- 16.Angelovski M., Hadzi-Petrushev N., Atanasov D., Nikodinovski A., Mitrokhin V., Avtanski D.B., Mladenov M. Protective Effects of L-2-Oxothiazolidine-4-Carboxylate during Isoproterenol-Induced Myocardial Infarction in Rats: In Vivo Study. Life. 2022;12:1466. doi: 10.3390/life12101466.
- 17.Atanasova-Panchevska N., Stojchevski R., Hadzi-Petrushev N., Mitrokhin V., Avtanski D., Mladenov M. Antibacterial and Antiviral Properties of Tetrahydrocurcumin-Based Formulations: An Overview of Their Metabolism in Different Microbi-otic Compartments. Life. 2022;12:1708. doi: 10.3390/life12111708.
- 18.Girst G., Ötvös S.B., Fülöp F., Balogh G.T., Hunyadi A. Pharmacokinetics-Driven Evaluation of the Antioxidant Activity of Curcuminoids and Their Major Reduced Metabolites—A Medicinal Chemistry Approach. Molecules. 2021;26:3542. doi: 10.3390/molecules26123542.
- 19.Gao Y., Zhuang Z., Gao S., Li X., Zhang Z., Ye Z., Li L., Tang C., Zhou M., Han X., et al. Tetrahydrocurcumin reduces oxidative stress-induced apoptosis via the mitochondrial apoptotic pathway by modulating autophagy in rats after traumatic brain injury. Am. J. Transl. Res. 2017;9:887–899.
- 20.Rajeswari A., Sabesan M. Inhibition of monoamine oxidase-B by the polyphenolic compound, curcumin and its metabolite tetrahydrocurcumin, in a model of Parkinson’s disease induced by MPTP neurodegeneration in mice. Inflammopharmacology. 2008;16:96–99. doi: 10.1007/s10787-007-1614-0.
- 21.Park C.-H., Song J.H., Kim S.-N., Lee J.H., Lee H.-J., Kang K., Lim H.-H. Neuroprotective Effects of Tetrahydrocurcumin against Glutamate-Induced Oxidative Stress in Hippocampal HT22 Cells. Molecules. 2019;25:144. doi: 10.3390/molecules25010144.
- 22.Murphy T.H., Miyamoto M., Sastre A., Schnaar R.L., Coyle J.T. Glutamate toxicity in a neuronal cell line involves inhibition of cystine transport leading to oxidative stress. Neuron. 1989;2:1547–1558. doi: 10.1016/0896-6273(89)90043-3.
- 23.Atlante A., Calissano P., Bobba A., Giannattasio S., Marra E., Passarella S. Glutamate neurotoxicity, oxidative stress and mitochondria. FEBS Lett. 2001;497:1–5. doi: 10.1016/S0014-5793(01)02437-1.
- 24.Starkov A.A., Chinopoulos C., Fiskum G. Mitochondrial calcium and oxidative stress as mediators of ischemic brain injury. Cell Calcium. 2004;36:257–264. doi: 10.1016/j.ceca.2004.02.012.
- 25.Fukui M., Song J.-H., Choi J., Choi H.J., Zhu B.T. Mechanism of glutamate-induced neurotoxicity in HT22 mouse hip-pocampal cells. Eur. J. Pharmacol. 2009;617:1–11. doi: 10.1016/j.ejphar.2009.06.059.
- 26.Tan S., Wood M., Maher P. Oxidative Stress Induces a Form of Programmed Cell Death with Characteristics of Both Apoptosis and Necrosis in Neuronal Cells. J. Neurochem. 1998;71:95–105. doi: 10.1046/j.1471-4159.1998.71010095.x.
- 27.Bonde C., Noraberg J., Zimmer J. Nuclear shrinkage and other markers of neuronal cell death after oxygen–glucose deprivation in rat hippocampal slice cultures. Neurosci. Lett. 2002;327:49–52. doi: 10.1016/S0304-3940(02)00382-8.
- 28.Son Y., Cheong Y.-K., Kim N.-H., Chung H.-T., Kang D.G., Pae H.-O. Mitogen-Activated Protein Kinases and Reactive Oxygen Species: How Can ROS Activate MAPK Pathways? J. Signal Transduct. 2011;2011:792639. doi: 10.1155/2011/792639.
- 29.Ruffels J., Griffin M., Dickenson J.M. Activation of ERK1/2, JNK and PKB by hydrogen peroxide in human SH-SY5Y neuroblastoma cells: Role of ERK1/2 in H2O2-induced cell death. Eur. J. Pharmacol. 2004;483:163–173. doi: 10.1016/j.ejphar.2003.10.032.
- 30.Hansen N., Üçeyler N., Palm F., Zelenka M., Biko L., Lesch K.-P., Gerlach M., Sommer C. Serotonin transporter deficiency protects mice from mechanical allodynia and heat hyperalgesia in vincristine neuropathy. Neurosci. Lett. 2011;495:93–97. doi: 10.1016/j.neulet.2011.03.035.
- 31.Saika F., Kiguchi N., Kobayashi Y., Fukazawa Y., Maeda T., Ozaki M., Kishioka S. Suppressive Effect of Imipramine on Vincristine-Induced Mechanical Allodynia in Mice. Biol. Pharm. Bull. 2009;32:1231–1234. doi: 10.1248/bpb.32.1231.
- 32.Greeshma N., Prasanth K.G., Balaji B. Tetrahydrocurcumin exerts protective effect on vincristine induced neuropathy: Behavioral, biochemical, neurophysiological and histological evidence. Chem. Biol. Interact. 2015;238:118–128. doi: 10.1016/j.cbi.2015.06.025.
- 33.Geis C., Beyreuther B.K., Stöhr T., Sommer C. Lacosamide has protective disease modifying properties in experimental vincristine neuropathy. Neuropharmacology. 2011;61:600–607. doi: 10.1016/j.neuropharm.2011.05.001.
- 34.Mika J., Zychowska M., Popiolek-Barczyk K., Rojewska E., Przewlocka B. Importance of glial activation in neuropathic pain. Eur. J. Pharmacol. 2013;716:106–119. doi: 10.1016/j.ejphar.2013.01.072.
- 35.Sisignano M., Baron R., Scholich K., Geisslinger G. Mechanism-based treatment for chemotherapy-induced peripheral neuropathic pain. Nat. Rev. Neurol. 2014;10:694–707. doi: 10.1038/nrneurol.2014.211.
- 36.Carozzi V.A., Canta A., Chiorazzi A. Chemotherapy-induced peripheral neuropathy: What do we know about mech-anisms? Neurosci. Lett. 2015;596:90–107. doi: 10.1016/j.neulet.2014.10.014.
- 37.Aggarwal B.B., Deb L., Prasad S. Curcumin differs from tetrahydrocurcumin for molecular targets, signaling pathways and cellular responses. Molecules. 2014;20:185–205. doi: 10.3390/molecules20010185.
- 38.Ranjithkumar R., Balaji S.P., Balaji B., Ramesh R.V., Ramanathan M. Standardized Aqueous Tribulus terristris (Nerunjil) Extract Attenuates Hyperalgesia in Experimentally Induced Diabetic Neuropathic Pain Model: Role of Oxidative Stress and Inflammatory Mediators. Phytotherapy Res. 2013;27:1646–1657. doi: 10.1002/ptr.4915.
- 39.Pop-Busui R., Marinescu V., Van Huysen C., Li F., Sullivan K., Greene D.A., Larkin D., Stevens M.J. Dissection of metabolic, vascular, and nerve conduction interrelationships in experimental diabetic neuropathy by cyclooxygenase inhibition and acetyl-L-carnitine administration. Diabetes. 2002;51:2619–2628. doi: 10.2337/diabetes.51.8.2619.
- 40.Siau C., Bennett G.J. Dysregulation of cellular calcium homeostasis in chemotherapy-evoked painful peripheral neuropathy. Anesth. Analg. 2006;102:1485–1490. doi: 10.1213/01.ane.0000204318.35194.ed.
- 41.Gao Y., Li J., Wu L., Zhou C., Wang Q., Li X., Zhou M., Wang H. Tetrahydrocurcumin provides neuroprotection in rats after traumatic brain injury: Autophagy and the PI3K/AKT pathways as a potential mechanism. J. Surg. Res. 2016;206:67–76. doi: 10.1016/j.jss.2016.07.014.
- 42.Sangartit W., Pakdeechote P., Kukongviriyapan V., Donpunha W., Shibahara S., Kukongviriyapan U. Tetrahydrocurcumin in combination with deferiprone attenuates hypertension, vascular dysfunction, baroreflex dysfunction, and oxidative stress in iron-overloaded mice. Vascul. Pharmacol. 2016;87:199–208. doi: 10.1016/j.vph.2016.10.001.
- 43.Xiang L., Nakamura Y., Lim Y.-M., Yamasaki Y., Kurokawa-Nose Y., Maruyama W., Osawa T., Matsuura A., Motoyama N., Tsuda L. Tetrahydrocurcumin extends life span and inhibits the oxidative stress response by regulating the FOXO forkhead transcription factor. Aging. 2011;3:1098–1109. doi: 10.18632/aging.100396.
- 44.Wei W., Wang H., Wu Y., Ding K., Li T., Cong Z., Xu J., Zhou M., Huang L., Ding H., et al. Alpha lipoic acid inhibits neural apoptosis via a mitochondrial pathway in rats following traumatic brain injury. Neurochem. Int. 2015;87:85–91. doi: 10.1016/j.neuint.2015.06.003.
- 45.Hagberg H., Mallard C., Rousset C.I., Thornton C. Mitochondria: Hub of injury responses in the developing brain. Lancet Neurol. 2014;13:217–232. doi: 10.1016/S1474-4422(13)70261-8.
- 46.Sobeh M., Mahmoud M.F., Abdelfattah M.A., El-Beshbishy H.A., El-Shazly A.M., Wink M. Hepatoprotective and hypoglycemic effects of a tannin rich extract from Ximenia americana var. caffra root. Phytomedicine. 2017;33:36–42. doi: 10.1016/j.phymed.2017.07.003.
- 47.Wei G., Chen B., Lin Q., Li Y., Luo L., He H., Fu H. Tetrahydrocurcumin Provides Neuroprotection in Experimental Traumatic Brain Injury and the Nrf2 Signaling Pathway as a Potential Mechanism. Neuroimmunomodulation. 2017;24:348–355. doi: 10.1159/000487998.
- 48.Gupta V., Jatav P.K., Verma R., Kothari S.L., Kachhwaha S. Nickel accumulation and its effect on growth, physiological and biochemical parameters in millets and oats. Environ. Sci. Pollut. Res. 2017;24:23915–23925. doi: 10.1007/s11356-017-0057-4.
- 49.Jia J.-X., Zhang Y., Wang Z.-L., Yan X.-S., Jin M., Huo D.-S., Wang H., Yang Z.-J. The inhibitory effects of Dracocephalum moldavica L. (DML) on rat cerebral ischemia reperfusion injury. J. Toxicol. Environ. Health. A. 2017;80:1206–1211. doi: 10.1080/15287394.2017.1367139.
- 50.Dong N., Diao Y., Ding M., Cao B., Jiang D. The effects of 7-nitroindazole on serum neuron-specific enolase and astroglia-derived protein (S100β) levels after traumatic brain injury. Exp. Ther. Med. 2017;13:3183–3188. doi: 10.3892/etm.2017.4411.
- 51.Xu X., Lv H., Xia Z., Fan R., Zhang C., Wang Y., Wang D. Rhein exhibits antioxidative effects similar to Rhubarb in a rat model of traumatic brain injury. BMC Complement. Altern. Med. 2017;17:1–9. doi: 10.1186/s12906-017-1655-x.
- 52.Hadzi-Petrushev N., Bogdanov J., Krajoska J., Ilievska J., Bogdanova-Popov B., Gjorgievska E., Mitrokhin V., Sopi R., Gagov H., Kamkin A., et al. Comparative study of the antioxidant properties of monocarbonyl curcumin analogues C66 and B2BrBC in isoproteranol induced cardiac damage. Life Sci. 2018;197:10–18. doi: 10.1016/j.lfs.2018.01.028.
- 53.Stamenkovska M., Thaçi Q., Hadzi-Petrushev N., Angelovski M., Bogdanov J., Reçica S., Kryeziu I., Gagov H., Mitrokhin V., Kamkin A., et al. Curcumin analogs (B2BrBC and C66) supplementation attenuates airway hyperreactivity and promote airway relaxation in neonatal rats exposed to hyperoxia. Physiol. Rep. 2020;8:e14555. doi: 10.14814/phy2.14555.
- 54.Hadzi-Petrushev N., Angelovski M., Rebok K., Mitrokhin V., Kamkin A., Mladenov M. Antioxidant and antiinflammatory effects of the monocarbonyl curcumin analogs B2BRBC and C66 in monocrotaline-induced right ventricular hypertrophy. J. Biochem. Mol. Toxicol. 2019;33:e22353. doi: 10.1002/jbt.22353.
- 55.Sheng R., Zhang L.-S., Han R., Liu X.-Q., Gao B., Qin Z.-H. Autophagy activation is associated with neuroprotection in a rat model of focal cerebral ischemic preconditioning. Autophagy. 2010;6:482–494. doi: 10.4161/auto.6.4.11737.
- 56.Mizushima N. Autophagy: Process and function. Genes Dev. 2007;21:2861–2873. doi: 10.1101/gad.1599207.
- 57.Lee J.-Y., He Y., Sagher O., Keep R., Hua Y., Xi G. Activated autophagy pathway in experimental subarachnoid hemorrhage. Brain Res. 2009;1287:126–135. doi: 10.1016/j.brainres.2009.06.028.
- 58.Liu C.L., Chen S., Dietrich D., Hu B.R. Changes in Autophagy after Traumatic Brain Injury. J. Cereb. Blood Flow Metab. 2008;28:674–683. doi: 10.1038/sj.jcbfm.9600587.
- 59.Rami A., Langhagen A., Steiger S. Focal cerebral ischemia induces upregulation of Beclin 1 and autophagy-like cell death. Neurobiol. Dis. 2008;29:132–141. doi: 10.1016/j.nbd.2007.08.005.
- 60.Carloni S., Girelli S., Scopa C., Buonocore G., Longini M., Balduini W. Activation of autophagy and Akt/CREB signaling play an equivalent role in the neuroprotective effect of rapamycin in neonatal hypoxia-ischemia. Autophagy. 2010;6:366–377. doi: 10.4161/auto.6.3.11261.
- 61.Shintani T., Klionsky D.J. Autophagy in Health and Disease: A Double-Edged Sword. Science. 2004;306:990–995. doi: 10.1126/science.1099993.
- 62.Madathil S.K., Evans H.N., Saatman K.E. Temporal and regional changes in IGF-1/IGF-1R signaling in the mouse brain after traumatic brain injury. J. Neurotrauma. 2010;27:95–107. doi: 10.1089/neu.2009.1002.
- 63.Bao Y.-J., Li L.-Z., Li X.-G., Wang Y.-J. 17Beta-estradiol differentially protects cortical pericontusional zone from pro-grammed cell death after traumatic cerebral contusion at distinct stages via non-genomic and genomic pathways. Mol. Cell. Neurosci. 2011;48:185–194. doi: 10.1016/j.mcn.2011.07.004.
- 64.Wu H., Lu D., Jiang H., Xiong Y., Qu C., Li B., Mahmood A., Zhou D., Chopp M. Simvastatin-Mediated Upregulation of VEGF and BDNF, Activation of the PI3K/Akt Pathway, and Increase of Neurogenesis Are Associated with Therapeutic Improvement after Traumatic Brain Injury. J. Neurotrauma. 2008;25:130–139. doi: 10.1089/neu.2007.0369.
- 65.Rubinsztein D.C., DiFiglia M., Heintz N., Nixon R.A., Qin Z.-H., Ravikumar B., Stefanis L., Tolkovsky A. Autophagy and its possible roles in nervous system diseases, damage and repair. Autophagy. 2005;1:11–22. doi: 10.4161/auto.1.1.1513.
- 66.Qin Z.-H., Wang Y., Kegel K.B., Kazantsev A., Apostol B.L., Thompson L.M., Yoder J., Aronin N., DiFiglia M. Autophagy regulates the processing of amino terminal huntingtin fragments. Hum. Mol. Genet. 2003;12:3231–3244. doi: 10.1093/hmg/ddg346.
- 67.Cuervo A.M., Stefanis L., Fredenburg R., Lansbury P.T., Sulzer D. Impaired Degradation of Mutant α-Synuclein by Chaperone-Mediated Autophagy. Science. 2004;305:1292–1295. doi: 10.1126/science.1101738.
- 68.Adhami F., Liao G., Morozov Y.M., Schloemer A., Schmithorst V.J., Lorenz J.N., Dunn R.S., Vorhees C.V., Wills-Karp M., Degen J.L., et al. Cerebral Ischemia-Hypoxia Induces Intravascular Coagulation and Autophagy. Am. J. Pathol. 2006;169:566–583. doi: 10.2353/ajpath.2006.051066.
- 69.Koike M., Shibata M., Tadakoshi M., Gotoh K., Komatsu M., Waguri S., Kawahara N., Kuida K., Nagata S., Kominami E., et al. Inhibition of Autophagy Prevents Hippocampal Pyramidal Neuron Death after Hypoxic-Ischemic Injury. Am. J. Pathol. 2008;172:454–469. doi: 10.2353/ajpath.2008.070876.
- 70.Balduini W., Carloni S., Buonocore G. Autophagy in hypoxia-ischemia induced brain injury: Evidences and speculations. Autophagy. 2009;5:221–223. doi: 10.4161/auto.5.2.7363.
- 71.Clark R.S., Bayir H., Chu C.T., Alber S.M., Kochanek P.M., Watkins S.C. Autophagy is increased in mice after traumatic brain injury and is detectable in human brain after trauma and critical illness. Autophagy. 2008;4:88–90. doi: 10.4161/auto.5173.
- 72.Jiang J., Wang W., Sun Y.J., Hu M., Li F., Zhu D.Y. Neuroprotective effect of curcumin on focal cerebral ischemic rats by preventing blood–brain barrier damage. Eur. J. Pharmacol. 2007;561:54–62. doi: 10.1016/j.ejphar.2006.12.028.
- 73.Tyagi N., Qipshidze N., Munjal C., Vacek J.C., Metreveli N., Givvimani S., Tyagi S.C. Tetrahydrocurcumin Ameliorates Homocysteinylated Cytochrome-c Mediated Autophagy in Hyperhomocysteinemia Mice after Cerebral Ischemia. J. Mol. Neurosci. 2012;47:128–138. doi: 10.1007/s12031-011-9695-z.
- 74.Utepbergenov D., Mertsch K., Sporbert A., Tenz K., Paul M., Haseloff R.F., Blasig I.E. Nitric oxide protects blood-brain barrier in vitro from hypoxia/reoxygenation-mediated injury. FEBS Lett. 1998;424:197–201. doi: 10.1016/S0014-5793(98)00173-2.
- 75.Jakubowski H. The pathophysiological hypothesis of homocysteine thiolactone-mediated vascular disease. J. Physiol. Pharmacol. Off. J. Pol. Physiol. Soc. 2008;59:155–167.
- 76.Romanic A.M., White R.F., Arleth A.J., Ohlstein E.H., Barone F.C. Matrix metalloproteinase expression increases after cerebral focal ischemia in rats: Inhibition of matrix metalloproteinase-9 reduces infarct size. Stroke. 1998;29:1020–1030. doi: 10.1161/01.STR.29.5.1020.
- 77.Rosenberg G.A., Estrada E.Y., Dencoff J.E. Matrix Metalloproteinases and TIMPs Are Associated with Blood-Brain Barrier Opening After Reperfusion in Rat Brain. Stroke. 1998;29:2189–2195. doi: 10.1161/01.STR.29.10.2189.
- 78.Lominadze D., Roberts A.M., Tyagi N., Moshal K.S., Tyagi S.C. Homocysteine causes cerebrovascular leakage in mice. Am. J. Physiol. Circ. Physiol. 2006;290:H1206–H1213. doi: 10.1152/ajpheart.00376.2005.
- 79.Uyama O., Okamura N., Yanase M., Narita M., Kawabata K., Sugita M. Quantitative Evaluation of Vascular Permeability in the Gerbil Brain after Transient Ischemia Using Evans Blue Fluorescence. J. Cereb. Blood Flow Metab. 1988;8:282–284. doi: 10.1038/jcbfm.1988.59.
- 80.Sen U., Herrmann M., Herrmann W., Tyagi S.C. Synergism between AT1 receptor and hyperhomocysteinemia during vascular remodeling. Clin. Chem. Lab. Med. 2007;45:1771–1776. doi: 10.1515/CCLM.2007.354.
- 81.Tyagi N., Ovechkin A.V., Lominadze D., Moshal K.S., Tyagi S.C. Mitochondrial mechanism of microvascular endothelial cells apoptosis in hyperhomocysteinemia. J. Cell. Biochem. 2006;98:1150–1162. doi: 10.1002/jcb.20837.
- 82.Tyagi N., Sedoris K.C., Steed M., Ovechkin A.V., Moshal K.S., Tyagi S.C. Mechanisms of homocysteine-induced oxidative stress. Am. J. Physiol. Heart Circ. Physiol. 2005;289:H2649–H2656. doi: 10.1152/ajpheart.00548.2005.
- 83.Adhami F., Schloemer A., Kuan C.-Y. The Roles of Autophagy in Cerebral Ischemia. Autophagy. 2007;3:42–44. doi: 10.4161/auto.3412.
- 84.Ventruti A., Cuervo A.M. Autophagy and neurodegeneration. Curr. Neurol. Neurosci. Rep. 2007;7:443–451. doi: 10.1007/s11910-007-0068-5.
- 85.Zhan L., Li D., Liang D., Wu B., Zhu P., Wang Y., Sun W., Xu E. Activation of Akt/FoxO and inactivation of MEK/ERK pathways contribute to induction of neuroprotection against transient global cerebral ischemia by delayed hypoxic postconditioning in adult rats. Neuropharmacology. 2012;63:873–882. doi: 10.1016/j.neuropharm.2012.06.035.
- 86.Wang S., Wei H., Cai M., Lu Y., Hou W., Yang Q., Dong H., Xiong L. Genistein Attenuates Brain Damage induced by Transient Cerebral Ischemia Through Up-regulation of ERK Activity in Ovariectomized Mice. Int. J. Biol. Sci. 2014;10:457–465. doi: 10.7150/ijbs.7562.
- 87.Lin B., Yu H., Lin Y., Cai C., Lu H., Zhu X. Suppression of GRASP65 phosphorylation by tetrahydrocurcumin protects against cerebral ischemia/reperfusion injury via ERK signaling. Mol. Med. Rep. 2016;14:4775–4780. doi: 10.3892/mmr.2016.5816.
- 88.Veenendaal T., Jarvela T., Grieve A.G., van Es J.H., Linstedt A.D., Rabouille C. GRASP65 controls the cis Golgi integrity in vivo. Biol. Open. 2014;3:431–443. doi: 10.1242/bio.20147757.
- 89.Ji G., Ji H., Mo X., Li T., Yu Y., Hu Z. The role of GRASPs in morphological alterations of Golgi apparatus: Mechanisms and effects. Rev. Neurosci. 2013;24:485–497. doi: 10.1515/revneuro-2013-0020.
- 90.Lane J., Lucocq J., Pryde J., Barr F., Woodman P.G., Allan V., Lowe M. Caspase-mediated cleavage of the stacking protein GRASP65 is required for Golgi fragmentation during apoptosis. J. Cell Biol. 2002;156:495–509. doi: 10.1083/jcb.200110007.
- 91.Wang Y., Seemann J., Pypaert M., Shorter J., Warren G. A direct role for GRASP65 as a mitotically regulated Golgi stacking factor. EMBO J. 2003;22:3279–3290. doi: 10.1093/emboj/cdg317.
- 92.Wang Y., Satoh A., Warren G. Mapping the Functional Domains of the Golgi Stacking Factor GRASP65. J. Biol. Chem. 2005;280:4921–4928. doi: 10.1074/jbc.M412407200.
- 93.Yoshimura S.-I., Yoshioka K., Barr F., Lowe M., Nakayama K., Ohkuma S., Nakamura N. Convergence of Cell Cycle Regulation and Growth Factor Signals on GRASP65. J. Biol. Chem. 2005;280:23048–23056. doi: 10.1074/jbc.M502442200.
- 94.Yang F., Lim G.P., Begum A.N., Ubeda O.J., Simmons M.R., Ambegaokar S.S., Chen P.P., Kayed R., Glabe C.G., Frautschy S.A. Curcumin inhibits formation of amyloid beta oligomers and fibrils, binds plaques, and reduces amyloid in vivo. J. Biol. Chem. 2005;280:5892–5901. doi: 10.1074/jbc.M404751200.
- 95.Maiti P., Hall T.C., Paladugu L., Kolli N., Learman C., Rossignol J., Dunbar G.L. A comparative study of dietary curcumin, nanocurcumin, and other classical amyloid-binding dyes for labeling and imaging of amyloid plaques in brain tissue of 5×-familial Alzheimer’s disease mice. Histochem. Cell Biol. 2016;146:609–625. doi: 10.1007/s00418-016-1464-1.
- 96.Ngo S.T., Li M.S. Curcumin binds to Aβ1-40 peptides and fibrils stronger than ibuprofen and naproxen. J. Phys. Chem. B. 2012;116:10165–10175. doi: 10.1021/jp302506a.
- 97.Anand P., Thomas S.G., Kunnumakkara A.B., Sundaram C., Harikumar K.B., Sung B., Tharakan S.T., Misra K., Priyadarsini I.K., Rajasekharan K.N., et al. Biological activities of curcumin and its analogues (Congeners) made by man and Mother Nature. Biochem. Pharmacol. 2008;76:1590–1611. doi: 10.1016/j.bcp.2008.08.008.
- 98.Cole G.M., Teter B., Frautschy S.A. The Molecular Targets and Therapeutic Uses of Curcumin in Health and Disease. Springer; Berlin/Heidelberg, Germany: 2007. Neuroprotective effects of curcumin; pp. 197–212.
- 99.Maiti P., Manna J., Thammathong J., Evans B., Dubey K.D., Banerjee S., Dunbar G.L. Tetrahydrocurcumin Has Similar Anti-Amyloid Properties as Curcumin: In Vitro Comparative Structure-Activity Studies. Antioxidants. 2021;10:1592. doi: 10.3390/antiox10101592.
- 100.Jakubowski J.M., Orr A., Le D.A., Tamamis P. Interactions between Curcumin Derivatives and Amyloid-β Fibrils: Insights from Molecular Dynamics Simulations. J. Chem. Inf. Model. 2020;60:289–305. doi: 10.1021/acs.jcim.9b00561.
- 101.Rao P.P.N., Mohamed T., Teckwani K., Tin G. Curcumin Binding to Beta Amyloid: A Computational Study. Chem. Biol. Drug Des. 2015;86:813–820. doi: 10.1111/cbdd.12552.
- 102.Maiti P., Dunbar G.L. Comparative Neuroprotective Effects of Dietary Curcumin and Solid Lipid Curcumin Particles in Cultured Mouse Neuroblastoma Cells after Exposure to Aβ42. Int. J. Alzheimer’s Dis. 2017;2017:4164872. doi: 10.1155/2017/4164872.
- 103.Xiao Y., Dai Y., Li L., Geng F., Xu Y., Wang J., Wang S., Zhao J. Tetrahydrocurcumin ameliorates Alzheimer’s pathological phenotypes by inhibition of microglial cell cycle arrest and apoptosis via Ras/ERK signaling. Biomed. Pharmacother. 2021;139:111651. doi: 10.1016/j.biopha.2021.111651.
- 104.Hunter T. Signaling—2000 and beyond. Cell. 2000;100:113–127. doi: 10.1016/S0092-8674(00)81688-8.
- 105.Stacey D.W., Kung H.-F. Transformation of NIH 3T3 cells by microinjection of Ha-ras p21 protein. Nature. 1984;310:508–511. doi: 10.1038/310508a0.
- 106.Filmus J., Robles A., Shi W., Wong M.J., Colombo L.L., Conti C.J. Induction of cyclin D1 overexpression by activated ras. Oncogene. 1994;9:3627–3633.
- 107.Meyerson M., Harlow E. Identification of G1 kinase activity for cdk6, a novel cyclin D partner. Mol. Cell. Biol. 1994;14:2077–2086. doi: 10.1128/mcb.14.3.2077.
- 108.Gong J., Li J., Wang Y., Liu C., Jia H., Jiang C., Wang Y., Luo M., Zhao H., Dong L., et al. Characterization of microRNA-29 family expression and investigation of their mechanistic roles in gastric cancer. Carcinog. 2013;35:497–506. doi: 10.1093/carcin/bgt337.
- 109.Tusell J.M., Saura J., Serratosa J. Absence of the cell cycle inhibitor p21Cip1 reduces LPS-induced NO release and acti-vation of the transcription factor NF-kappaB in mixed glial cultures. Glia. 2005;49:52–58. doi: 10.1002/glia.20095.
- 110.Bayrakdar E.T., Uyanikgil Y., Kanit L., Koylu E., Yalcin A. Nicotinamide treatment reduces the levels of oxidative stress, apoptosis, and PARP-1 activity in Aβ(1-42)-induced rat model of Alzheimer’s disease. Free Radic. Res. 2014;48:146–158. doi: 10.3109/10715762.2013.857018.
- 111.Virág L., Szabó C. The therapeutic potential of poly(ADP-ribose) polymerase inhibitors. Pharmacol. Rev. 2002;54:375–429. doi: 10.1124/pr.54.3.375.
- 112.Song J., Takeda M., Morimoto R.I. Bag1-Hsp70 mediates a physiological stress signalling pathway that regulates Raf-1/ERK and cell growth. Nat. Cell Biol. 2001;3:276–282. doi: 10.1038/35060068.
- 113.Wang H.G., Takayama S., Rapp U.R., Reed J.C. Bcl-2 interacting protein, BAG-1, binds to and activates the kinase Raf-1. Proc. Natl. Acad. Sci. USA. 1996;93:7063–7068. doi: 10.1073/pnas.93.14.7063.
- 114.Takayama S., Sato T., Krajewski S., Kochel K., Irie S., Milian J.A., Reed J.C. Cloning and functional analysis of BAG-1: A novel Bcl-2-binding protein with anti-cell death activity. Cell. 1995;80:279–284. doi: 10.1016/0092-8674(95)90410-7.
- 115.Mandel S.A., Sagi Y., Amit T. Rasagiline Promotes Regeneration of Substantia Nigra Dopaminergic Neurons in Post-MPTP-induced Parkinsonism via Activation of Tyrosine Kinase Receptor Signaling Pathway. Neurochem. Res. 2007;32:1694–1699. doi: 10.1007/s11064-007-9351-8.
- 116.Chiba K., Trevor A.J., Castagnoli N. Active uptake of MPP+, a metabolite of MPTP, by brain synaptosomes. Biochem. Biophys. Res. Commun. 1985;128:1228–1232. doi: 10.1016/0006-291X(85)91071-X.
- 117.Riachi N.J., LaManna J., Harik S. Entry of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine into the rat brain. Experiment. 1989;249:744–748.
- 118.Bajpai P., Sangar M.C., Singh S., Tang W., Bansal S., Chowdhury G., Cheng Q., Fang J.-K., Martin M.V., Guengerich F.P., et al. Metabolism of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine by mitochondrion-targeted cytochrome P450 2D6: Implications in Parkinson disease. J. Biol. Chem. 2013;288:4436–4451. doi: 10.1074/jbc.M112.402123.
- 119.Schapira A.H.V. Mitochondrial dysfunction in Parkinson’s disease. Cell Death Differ. 2007;14:1261–1266. doi: 10.1038/sj.cdd.4402160.
- 120.Mizuno Y., Sone N., Saitoh T. Effects of 1-Methyl-4-Phenyl-1,2,3,6-Tetrahydropyridine and 1-Methyl-4-Phenylpyridinium Ion on Activities of the Enzymes in the Electron Transport System in Mouse Brain. J. Neurochem. 1987;48:1787–1793. doi: 10.1111/j.1471-4159.1987.tb05737.x.
- 121.Zbarsky V., Datla K.P., Parkar S., Rai D.K., Aruoma O.I., Dexter D.T. Neuroprotective properties of the natural phenolic antioxidants curcumin and naringenin but not quercetin and fisetin in a 6-OHDA model of Parkinson’s disease. Free. Radic. Res. 2005;39:1119–1125. doi: 10.1080/10715760500233113.
Associated Data
Data Availability Statement
Not applicable.