Alcohol-Endocannabinoid Interactions: Implications for Addiction-Related Behavioral Processes
Instituto de Investigación Biomédica de Málaga (IBIMA), Málaga, Spain
Unidad de Gestión Clínica de Salud Mental, Hospital Regional Universitario de Málaga, Málaga, Spain
College of Pharmacy, Division of Pharmacology and Toxicology, University of Texas at Austin, Austin, Texas, USA
Abstract
PURPOSE
The endogenous cannabinoid system is involved in several physiological functions in the central nervous system including the modulation of brain reward circuitry and emotional homeostasis. Substantial evidence implicates brain endocannabinoid signaling in the processing of drug-induced reward states, wherein repeated exposure besets pathological changes in activity that contribute to the progression of alcohol use disorder. This review provides a narrative summary of recent studies exploring the interaction between alcohol exposure and changes in endocannabinoid signaling that may underlie the development of alcohol use disorder.
SEARCH METHODS
The authors began with an initial search for review articles to assist in the identification of relevant literature. This was followed by separate searches for primary literature and recent studies. The search terms “alcohol/ethanol” and “endocannabinoids” were applied, along with terms that covered specific objectives in reinforcement and addiction behavior. The content was further refined by excluding articles containing a broad focus on psychiatric disorders, polysubstance abuse, non-cannabinoid signaling lipids, and other criteria.
SEARCH RESULTS
The initial search yielded a total of 49 review articles on PubMed, 13 on ScienceDirect, and 17 on Wiley Online, from which the authors garnered information from a total of 16 reviews. In addition to independent searches, this review provides information from a collection of 212 publications, including reviews and original research articles.
DISCUSSION AND CONCLUSIONS
The review discusses the effects of alcohol consumption on brain endocannabinoid signaling, including alcohol-based perturbations in endocannabinoid-mediated synaptic transmission, the modulation of alcohol-related behaviors by manipulating signaling elements of the endocannabinoid system, and the influence of dysregulated endocannabinoid function in promoting withdrawal-induced anxiety-like behavior. Notable emphasis is placed on studies exploring the possible therapeutic relevance of bolstering brain endocannabinoid tone at different stages of alcohol use disorder.
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Keywords: alcohol, dependence, cannabinoids, anxiety, reinforcing, anandamide, 2-arachidonoylglycerol, effects on the brain
Article notes
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Collection date 2022.
Endogenous cannabinoids, or endocannabinoids (eCBs), are bioactive lipid molecules that modulate signaling activity of several physiological processes involved in pain, appetite, energy balance, stress/anxiety, immune signaling, and learning and memory. Although understanding of the eCB system has grown in complexity since its discovery by Raphael Mechoulam, it is now widely known that eCB systems play an important role in the regulation of brain reward and emotional homeostasis. Given the relevance of these physiological responses in motivated behavior, the hypothesis of the involvement of eCB systems in addiction has been widely investigated.1–3 Generally, these findings support a role for eCB signaling in mediating the positive reinforcing effects of substances with abuse potential, while repeated drug exposure elicits long-lasting changes aligned with the emergence of negative affective states during abstinence. While these changes ostensibly apply to more than one type of substance with abuse potential, the field has come to understand the strong relation between negative affective states and increased alcohol consumption that facilitates the development of alcohol use disorder (AUD).4 Extensive efforts have been made to study the role of eCB systems in alcohol-induced pathologies.5,6 Highlighted here is recent work exploring the basis of alcohol-eCB interactions in the development of AUD. A brief overview of the molecular constituents involved in eCB synthesis and degradation is followed by a foray of the literature exploring the effect of alcohol consumption on brain eCB signaling. Emphasis is placed on cutting-edge research utilizing genetic and pharmacological approaches to discretely manipulate elements of eCB signaling. This review discusses these findings in terms of the purported roles of the eCBs in synaptic plasticity, stress, and anxiety, and further elucidates the therapeutic relevance of bolstering brain eCB tone in the possible treatment of AUD.
Search Methods and Results
Searches of the existing literature were primarily conducted on PubMed/PubMed Central. The authors first conducted a broad search of review articles to assist in the identification of primary literature. The terms “alcohol” or “ethanol” and “endocannabinoid” were searched, restricted to the “title/abstract” setting under the “Advanced Search Builder” function. The authors then activated search filters for “Reviews” published within 10 years of June 2021. This search strategy led to the identification of 49 review articles. Similar search strategies in ScienceDirect and Wiley Online Library generated fewer citations (13 and 17, respectively), the majority of which were redundant. To narrow the search more specifically to the goals of the current work, the authors excluded reviews with a broad focus on psychiatric disorders or polysubstance use, fetal drug exposure, non-cannabinoid signaling lipids, phytocannabinoids and other metabolites, as well as eCB/cannabinoid responses outside of the central nervous system. Thus, the authors conducted a thorough reading of 16 reviews.
Separate searches were then conducted to identify primary literature and recent studies using the terms “alcohol/ethanol” and “endocannabinoid” along with general terms covered in each section of the review (e.g., “reward,” “consumption,” “withdrawal/abstinence,” “dependence,” “anxiety,” “FAAH inhibitors,” “MAGL inhibitors”). In some cases, this article refers to reviews and primary literature from major contributors in the field or from the respective laboratories of the authors of this review. All searches were restricted to the English language and generally reflect published work from 1990 to the present, with a few exceptions for foundational work on lipid-alcohol interactions. Most of the studies presented here concern data collected in rodent models. For information on clinical trial testing, the clinicaltrials.gov website was used. This review cites information from a total of 212 publications.
The eCB System
The eCB system comprises two G-protein coupled receptors, their endogenous lipid ligands, and the enzymes that mediate synthesis and clearance of these molecules. Currently, there are two major types of cannabinoid receptors that are well characterized and cloned: cannabinoid receptor type 1 (CB1) and cannabinoid receptor type 2 (CB2). CB1 receptors are mainly found on presynaptic terminals of neurons in the brain,7,8 whereas CB2 receptors are mostly expressed in immune cells of peripheral tissues,9 but are also found in the central nervous system.10–13 Both receptors are coupled to Gi/o protein second messenger systems regulating the amount of cyclic adenosine monophosphate levels in the cell and, by extension, the concentration of intracellular calcium and potassium ions that facilitate synaptic transmission. The relative importance of CB1 versus CB2 signaling is still under investigation; however, CB1 receptors are abundantly found in mesocorticolimbic areas that are important for reward and motivation.2,14
Currently, the best-studied endogenous ligands of cannabinoid receptors are two arachidonic acid derivatives, N-arachidonylethanolamine (anandamide or AEA) and 2-arachidonylglycerol (2-AG). Several other endogenous compounds possess cannabinoid-like properties, although much regarding their pharmacological activity, synthesis, and metabolism remains to be characterized.15 AEA and 2-AG activate cannabinoid receptors with a high degree of specificity (see Figure 1A). AEA is a partial agonist of both cannabinoid receptors, with slightly higher affinity for CB1 than CB2 receptors. On the other hand, 2-AG is a full agonist of both receptors, exhibiting low to moderate affinity for each subtype, and with greater overall potency and efficacy than AEA.15,16 AEA and 2-AG demonstrate some promiscuity to other receptor systems, including peroxisome proliferator-activated receptors (PPARs) and the orphan G-protein coupled receptors 55 (GPR55) and 119 (GPR119).17–20 AEA is also known for exerting potent agonist effects on transient receptor potential vanilloid type 1.21
Unlike classical neurotransmitters, eCBs are not stored in intracellular compartments but instead are produced “on demand” from membrane lipid precursors in the postsynaptic membrane (see Figure 1B). AEA is produced from the phospholipid precursor N-arachidonoyl-phosphatidylethanolamine (NAPE) by a NAPE-specific phospholipase D (NAPE-PLD).22 Interestingly, knockdown of NAPE-PLD only moderately depletes AEA signaling pools, suggesting that AEA contains several redundancies in its biosynthesis.23 On the other hand, 2-AG is tightly coupled to the production of diacylglycerol from the hydrolysis of an inositol phospholipid by a phospholipase C, which is rapidly converted to 2-AG by two sn-1-specific diacylglycerol lipase (DAGL) isoforms (DAGL-alpha and DAGL-beta).24,25 Emerging research suggests that 2-AG, although widely regarded as the primary synthase, also may be influenced by alternative biosynthetic pathways. One pathway involves the hydrolysis of phosphatidylinositol by a phospholipase A to form a lysophosphatidylinositol, which is hydrolyzed to 2-AG by phospholipase C.26 Another alternative pathway is by the dephosphorylation of arachidonic acid-containing lysophosphatidic acid by a phosphatase.27
Once released into the synaptic cleft, AEA and 2-AG exert their effects through the retrograde activation of CB1 receptors located on presynaptic terminals, followed by rapid termination of signaling via multiple degrading enzymes. In this regard, AEA is primarily degraded by fatty acid amide hydrolase (FAAH) into free arachidonic acid and ethanolamine,28 whereas monoacylglycerol lipase (MAGL) is the main enzyme involved in the hydrolysis of 2-AG to produce arachidonic acid and glycerol.29 Interestingly, these clearance enzymes are located in different cellular compartments. FAAH is mainly localized to the postsynaptic cell, suggesting a key role for this enzyme in monitoring interstitial AEA concentrations. By contrast, MAGL is mainly found in the presynaptic terminal and contributes to the inactivation of 2-AG near its site of action.30 This configuration would suggest that AEA and 2-AG assume different roles in eCB signaling despite the signaling redundancy to cannabinoid receptors. The enzymatic clearance of 2-AG is mostly driven by MAGL,31 although other enzymes such as alpha/beta-hydrolase domains 6 and 12 (ABHD6/12)31,32 and FAAH33 have been shown to metabolize 2-AG under certain conditions. AEA and 2-AG also may be oxidized by cyclo-oxygenase 2 and several lipoxygenases34,35 contributing to the pool of liberated arachidonic acid moieties that can be targeted for eicosanoid production. Overall, these metabolic enzymes play a key role in the production and maintenance of AEA and 2-AG signaling, which portend downstream effects on the regulation of the chemical synapse.
Neurochemical Role of eCBs in Synaptic Plasticity
The role of the eCB system in synaptic plasticity largely stems from the findings that stimulation of cannabinoid receptors modulates the release of neurotransmitters at excitatory and inhibitory synapses. Further research has characterized the importance of eCB signaling in providing inhibitory control of fast-acting transmitters such as glutamate and gamma-aminobutyric acid (GABA), as well as in modulating activity of other small molecules, such as mesolimbic dopamine.36 More generally, eCBs contribute to the shaping of synaptic activity in mesocorticolimbic areas of the brain, which—depending on the strength, frequency, and duration of transmission—can have both immediate and long-lasting consequences on synaptic function.37–42
Triggering eCB-CB1 receptor signaling results in short-term adjustments in neurotransmitter release that modulate activity of the postsynaptic cell via depolarization-induced suppression of excitation or inhibition.43–45 These transient forms of plasticity typically last a minute or less and are more strongly associated with 2-AG than AEA signaling, although both lipids have been implicated in such responses.42 Activation of eCB-CB1 receptor signaling can also facilitate more persistent forms of synaptic plasticity, such as long-term depression (LTD). These events vary with the nature of synaptic stimulation but generally persist anywhere from hours to weeks.42 The eCB system has long been observed to mediate plasticity in brain regions involved in the etiology of addiction, including the ventral tegmental area, nucleus accumbens (NAc), prefrontal cortex (PFC), hippocampus, amygdala, and dorsal striatum.1,42,46 In this regard, several conceptualizations of addiction theory propose that drug and alcohol exposure result in the disruption of plasticity mechanisms involved in learning and memory, which may contribute further to maladaptations in brain reward circuitry.47–49
Acute and chronic alcohol exposure disrupts eCB-mediated synaptic plasticity. In this regard, low- to moderate-frequency stimulation of the dorsolateral striatum results in the elevation of eCB levels, which is thought to shift the balance of excitatory and inhibitory regulation of striatal neurons toward long-lasting disinhibition of synaptic output.50 Interestingly, acute alcohol exposure impairs this eCB-mediated process and further reduces LTD of medium spiny neurons at inhibitory relative to excitatory synapses.51,52 The disruption in eCB function is significant given that neural circuits in the dorsal striatum mediate behavioral processes related to reward-guided learning and habitual responding.53 In this regard, mice undergoing chronic intermittent alcohol vapor exposure exhibit impaired CB1-dependent LTD in the dorsolateral striatum that corresponded with increases in dorsolateral striatal activation and enhanced stimulus-reward learning.54 More recently, intermittent alcohol exposure during adolescence conferred long-lasting impairments in CB1-dependent LTD in the hippocampus that were associated with disruptions in recognition memory.55 These findings suggest that alcohol dysregulates eCB signaling in a manner that fundamentally changes the regulation of the chemical synapse. Impairments in eCB-mediated plasticity likely reflect the loss of an important source of inhibitory constraint of neuronal synapses, leading to pathology in reward-based learning and the modulation of rewarded behavior that influences the progression of AUD.
Alcohol-Induced Alterations in Brain eCB Levels
One of the more compelling cases for alcohol-eCB interactions regards a series of neuroimaging studies that used positron emission topography to examine CB1 receptor binding in humans who smoke cannabis, and then separately in people with AUD.56–58 Chronic cannabis use produced a striking pattern of CB1 receptor downregulation in several (but not all) corticolimbic regions. The results were not surprising given that the psychotropic effects of cannabis are largely mediated by CB1 receptor stimulation. Interestingly, patients with AUD showed a similar pattern of dysregulation, though were noted to exhibit decreased binding in all brain regions that were analyzed.59,60 Moreover, the effects produced by chronic cannabis use returned to normal function after a protracted abstinence period, whereas the disruptions in patients with AUD persisted after 4 weeks of withdrawal from alcohol use. These findings suggest that CB1 receptor downregulation is a common neuroadaptation to chronic substance use, although seemingly more extensive under alcohol exposure than with substances that directly interact with CB1 receptors. This may suggest that alcohol has potent effects on the mechanisms of CB1 receptor expression and function (e.g., signaling transduction, epigenetic changes). Alcohol is also a notable activator of neuroinflammation, which over the course of repeated use may temper the anti-inflammatory responses of exogenous/endogenous cannabinoid signaling.61 Moreover, it is possible that alcohol may play a role in altering endogenous mediators of cannabinoid signaling (e.g., eCBs), from which lapses in the recovery of these signaling ligands influence the long-lasting deficits in CB1 receptor signaling.
Substantial literature indicates that brain eCB content is altered by substances with abuse potential. In this regard, alcohol alters AEA and 2-AG content in the brain, and chronic alcohol exposure generally leads to impairments in eCB signaling mechanisms. Early in vitro studies demonstrated that chronic alcohol exposure increases both AEA and 2-AG formation in human neuroblastoma cells and primary cultures of rodent cerebellar granule neurons.62–64 Subsequent studies have evaluated the effects of alcohol exposure on brain eCB levels and reported differential effects.65 Currently, it is difficult to draw a firm consensus of these data given the plethora of responses induced by alcohol administration, which may include—in addition to sample preparation, brain-region specificity, and methodological differences—the differential mobilization of AEA and 2-AG. Highlighted below are some of these findings, summarized in Table 1.
| Type of Study (cell/species) | Alcohol Exposure | Effects | Brain Region |
|---|---|---|---|
| In vitro (human neuroblastoma cells) | Chronic alcohol | ▲AEA | N/A |
| In vitro (rodent cerebellar granule neurons) | Chronic alcohol | ▲AEA ▲2-AG | N/A |
| Ex vivo tissue content (male Swiss Webster mice) | Chronic vapor inhalation | ▲AEA | Cortex |
| Acute withdrawal | ▼AEA | Cortex | |
| Ex vivo tissue content (male Wistar rats) | Chronic liquid diet | ▼AEA ▼2-AG | Midbrain |
| ▲AEA | Limbic forebrain | ||
| Acute withdrawal | ▼AEA | Limbic forebrain | |
| Ex vivo tissue content (male Sprague-Dawley rats) | Acute withdrawal | ►AEA ▲2-AG | Hippocampus |
| Long-term withdrawal | ▲AEA ▲2-AG | ||
| Short-term alcohol exposure (liquid diet for 24h) | ▼AEA | Hypothalamus Amygdala Caudate putamen | |
| ▼2-AG | PFC | ||
| Ex vivo tissue content (female and male alcohol-preferring AA rats) | Long-term alcohol consumption in female: Before drinking session | ▲AEA | PFC NAc CPu |
| ▲2-AG | CPu Amygdala Hippocampus | ||
| After drinking session | ▼AEA ▲2-AG | PFC CPu Amygdala Hippocampus PFC | |
| Long-term alcohol consumption in male: Before drinking session | ►AEA ►2-AG | PFC NAc CPu Amygdala Hippocampus | |
| After drinking session | ▲AEA | NAc CPu | |
| Ex vivo tissue content (male sP rats) | Long-term voluntary alcohol consumption | ▲2-AG | Striatum |
| Ex vivo tissue content (male and female Wistar rats) | Acute withdrawal male | ▼AEA ▼2-AG | BLA vmPFC |
| Acute withdrawal female | ▼AEA | vmPFC | |
| In vivo microdialysis (male Wistar rats) | Alcohol self-administration | ▲2-AG ►AEA ►2-AG | NAc mPFC |
| In vivo microdialysis (male Wistar rats) | Acute alcohol administration in naïve rats (low doses) Acute alcohol administration in naïve rats (high doses) | ▲2-AG ▼AEA ▲AEA | NAc |
| Acute alcohol administration in alcohol-dependent rats | ▲▲2-AG ► AEA | NAc | |
| In vivo microdialysis (male Wistar rats) | Chronic alcohol exposure | ▼2-AG ► AEA | CeA CeA / NAc |
Chronic alcohol exposure has been shown to increase AEA content in the limbic forebrain of rodents, whereas withdrawal decreased AEA in these brain regions.66–69 This increase in AEA is consistent with the reduction in FAAH activity following chronic alcohol exposure.66 By contrast, protracted (but not acute) withdrawal increased AEA content in the rat hippocampus.70 Short-term alcohol exposure also has been reported to decrease AEA content in several brain regions including the amygdala, hypothalamus, and caudate putamen.71 Regarding 2-AG, several studies describe both increases and decreases in striatal 2-AG content after chronic alcohol exposure.67,68,72 Moreover, acute and protracted withdrawal from chronic intermittent alcohol exposure was observed to increase 2-AG content in the rat hippocampus.70 In the PFC, acute alcohol exposure was associated with decreases in 2-AG content,71 whereas voluntary consumption in genetically selected rats that were bred for high alcohol preference was shown to increase 2-AG in this region.69 Drinking behavior in Sardinian alcohol-preferring (sP) rats also was associated with increases in striatal 2-AG content that were most evident during the acquisition and maintenance phases.72 These varied responses between studies are likely influenced by methodological differences in the procedure employed to quantify eCB tissue content,73 as well as by other experimental factors including the selection of rodent model, rat strain, duration and amount of alcohol exposure, and timepoints of withdrawal assessment. Emerging research also suggests the possibility of sex differences in alcohol-eCB interactions that may be specific to ovarian hormones.69,74
As opposed to bulk eCB tissue levels, some laboratories have utilized in vivo microdialysis approaches to estimate changes in eCB levels in flux.73 These studies likewise have reported region-specific effects in alcohol administration, as well as the influence of several factors involved in the administration, dose, contingency, and prior history of alcohol exposure.75,76 Seminal work from Larry Parsons’ laboratory demonstrated that operant alcohol self-administration increased interstitial levels of 2-AG in the NAc without altering dialysate levels in the medial PFC.77,78 Systemic administration of moderate doses of alcohol also increased 2-AG levels in a similar manner in alcohol-naïve rats, and this effect was potentiated in alcohol dependence.76 More recently, the authors observed that alcohol dependence resulted in the reduction of baseline 2-AG levels in the central nucleus of the amygdala (CeA), conferring a blunting of alcohol’s mobilizing responses in this region.79 Regarding AEA, alcohol self-administration did not differentially alter interstitial levels of AEA across several brain regions.76,77,79 Interestingly, noncontingent alcohol administration reduced AEA in the NAc, whereas higher doses produced a milder increase in dialysate levels.75,76,80 Alcohol dependence also did not appear to drastically alter baseline AEA levels in the CeA.79
Overall, it is clear that alcohol administration alters eCB responsivity, albeit in a manner that is dependent on several factors of exposure. What is less clear, however, is the manner in which alcohol may be mobilizing these responses, let alone with any given specificity to eCB signaling. Previous studies have shown that alcohol possesses cell membrane-disrupting properties that build tolerance over the course of repeated exposure. This resistance is conferred through the alteration of lipid membrane composition that includes changes in important glycerophospholipids such as phosphatidylinositol, cardiolipin, and several classes of amino glycerophospholipids (e.g., phosphatidylcholine, phosphatidylserine, phosphatidylethanolamine).81,82 The changes in phospholipid content vary with the nature of alcohol-induced perturbation, demonstrating higher depletion effects under intermittent versus continuous exposure conditions.83 Acute withdrawal also has membrane-disordering consequences in different cellular compartments that were previously acclimated to the presence of alcohol.81 Collectively, these findings suggest that alcohol exposure and withdrawal perturb the integrity of the cellular lipid bilayer, which may be important for determining the source of glycerophospholipid content available for eCB synthesis. In this regard, depletions in inositol phospholipid content would seemingly have profound implications in the ability to mobilize 2-AG synthesis relative to AEA systems that contain biosynthetic redundancies for recuperating losses.
Conclusion and Future Directions
Despite some inconsistencies in the literature, a preponderance of evidence suggests that alcohol exposure alters brain eCB signaling. Findings from the Parsons’ laboratory demonstrated that acute alcohol self-administration elicits increases in eCB release that are tempered over repeated exposure;76,79 however, readers are referred to the Alcohol-Induced Alterations in Brain eCB Levels section of this review for noteworthy distinctions. In addition, the method of alcohol exposure plays a marked role in the subsequent analysis of abstinence-related effects.201,202 That stated, chronic alcohol exposure is generally associated with the disruption of eCB clearance mechanisms, impaired eCB-mediated forms of synaptic plasticity, and the downregulation of cannabinoid receptor function. The dysregulation of eCB signaling may be relevant given that eCBs play a prominent role in the maintenance of affective states and the constraint of stress responses, both of which serve as provocateurs of continued use and relapse. The remediation of eCB signaling remains an important goal for the possible treatment of AUD; however, this is unlikely to be achieved through the exogenous manipulation of CB1 receptors that are fraught with concerns.202–205 Accordingly, eCB clearance therapeutics may present an alternative pathway for restoring dysfunctional signaling elements, although further research is needed to better understand the consequence of eCB augmentation in dependence states across other relevant variables, including sex, brain regions, environment, emotional valence, pre-existing conditions, and neurohormones.206
Understanding of eCB signaling has greatly evolved since the discovery of eCBs nearly 30 years ago. This was fueled by technological advancements in the isolation, detection, and sequencing of the two primary eCBs, as well as the crystallization of biosynthetic enzymes and receptor systems that enable them. Cutting-edge technology continues to be an important driver in the field for the identification of novel molecular species and distinctions in eCB function. For example, mass spectrometry analysis can be broadly applied to investigate the brain lipidome, from which metabolic products of eCB degradation are utilized by downstream signaling pathways (e.g., eicosanoids) to mediate neuroinflammation.207 This is coupled closely to the advancements of novel pharmacological tools such as DO34 and the NAPE-PLD inhibitor LEI-401208 that will allow us to manipulate AEA and 2-AG signaling with great precision and selectivity. Moreover, the spatiotemporal resolution of such changes is fundamental to the understanding of eCB function and may provide insight on the purpose of having multiple endogenous ligands of cannabinoid receptors. Although traditionally studied with in vivo microdialysis, the recent development of G-protein coupled receptor activation-based eCB sensors offers subsecond resolution kinetics and robust fluorescence-based detection in awake-behaving rodents.209 Finally, the development of novel positron-emission topography tracers such as [11C]MK-3168210 and [18F]T-401211 will allow the direct assessment of FAAH and MAGL activity under a number of planned clinical studies, including in people with AUD. Taken all together, emerging research appears to be on the precipice of divulging new information about the eCB system. The combination of selective pharmacology and in vivo capture methods remains an important endeavor in this research for answering fundamental questions of eCB function, its relation to stress and anxiety, and its higher-order influence in complex psychopathologies such as AUD and addiction.
Acknowledgments
This article was supported by Instituto de Salud Carlos III (ISCIII) and European Regional Development Funds–European Union (ERDF-EU), Ministerio de Economía y Competitividad (grants PI17/02026 and PI20/01399); Ministerio de Sanidad and Delegacion del Gobierno para el Plan Nacional sobre Drogas (grant PND2017/043); and a “Miguel Servet” research contract (CPII19/00031) funded by ISCIII and ERDF-EU.
This work was supported by National Institute on Alcohol Abuse and Alcoholism grant K99/R00AA025393.
The authors are ever grateful for the guiding hand of our dearly departed mentor and friend, Larry Parsons. His legacy in the endocannabinoid field continues to move us forward in our careers with much awe and inspiration for his achievements. Dr. Natividad would also like to dedicate this work in loving memory of his father, Pedro Natividad for his unconditional love and support.
Footnotes
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References
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