Expanding Research on Cannabis-Based Medicines for Liver Steatosis: A Low-Risk High-Reward Way Out of the Present Deadlock?
BARRÉ ET AL.
CANNABIS AND LIVER STEATOSIS
Aix Marseille Univ, Inserm, IRD, SESSTIM, Sciences Economiques & Sociales de la Santé & Traitement de l'Information Médicale, ISSPAM, Marseille, France.
Istituto di Chimica Biomolecolare, CNR, Pozzuoli, Italy.
Endocannabinoid Research Group, Pozzuoli, Italy.
Canada Excellence Research Chair on the Microbiome-Endocannabinoidome Axis in Metabolic Health, CRIUCPQ and INAF-Centre NUTRISS, Faculties of Medicine and Agriculture and Food Sciences, Université Laval, Québec, Canada.
Department of Surgery, Oncology and Gastroenterology, Padua University Hospital, Padua Italy.
*Address correspondence to: Patrizia Carrieri, PhD, Aix Marseille Univ, Inserm, IRD, SESSTIM, Sciences Economiques & Sociales de la Santé & Traitement de l'Information Médicale, ISSPAM, Faculté de Médecine de la Timone, Aile Bleue, 35 Boulevard Jean Moulin, 13005 Marseille, France, pmcarrieri@aol.comAbstract
Obesity and nonalcoholic fatty liver disease (NAFLD) constitute global and growing epidemics that result in therapeutic dead ends. There is an urgent need for new and accessible treatments to improve and widen both preventive and curative approaches against NAFLD. The endocannabinoid system (ECS) is recognized as a complex signaling apparatus closely related to metabolic disorders and is a key target for treating NAFLD. Despite a lack of conclusive clinical trials, observational and pre-clinical studies highlight putative benefits of phytocannabinoids on liver steatosis through multiple pathways. Owing to both its safety profile and its diversity of active compounds acting primarily (although not exclusively) on the ECS—and its expanded version, the endocannabinoidome, the Cannabis plant should be considered a major prospect in the treatment of NAFLD. However, seizing this opportunity, and intensifying clinical research in this direction, will require overcoming both scientific and nonscientific barriers.
Introduction
Obesity prevalence in the upcoming years is expected to increase globally and at the European level.1,2 This rise is accompanied by a similar trend for associated metabolic disorders such as diabetes, nonalcoholic fatty liver disease (NAFLD), and nonalcoholic steatohepatitis (NASH),3,4 which is an inflammatory and fibrotic stage of NAFLD that can lead to cirrhosis, hepatocellular carcinoma, and end-stage liver disease. A quarter of the world's adult population currently suffers from NAFLD.3
Insulin resistance plays a key role in the pathogenesis of NAFLD, which however results also from the interplay between diet, gut microbiota dysbiosis, genetic factors, and de novo lipogenesis. Lifestyle changes toward healthier diets and increased physical activity continue to be prescribed as first-line treatments. Nevertheless, long-term adherence to healthier behavioral changes remains a great challenge for patients and their providers.5,6
Given the current trends, and the fact that new drugs are still under evaluation to control inflammation and progression toward advanced stages of liver fibrosis,7,8 there is an urgent need to offer novel and innovative treatment options to prevent and manage NAFLD. There are complex links relating the endocannabinoid system (ECS) and its extended version—the endocannabinoidome—to metabolic and hepatic disorders.
As cannabinoids can modify ECS functioning, in this perspective article, we argue in favor of intensifying research on full-spectrum cannabis and cannabinoids as promising therapeutic options for metabolic disorders and NAFLD.
The ECS, a Pro-Homeostatic System
The ECS is a signaling network composed of cannabinoid receptors (CB1 and CB2), their ligands (endocannabinoids), and ligand synthesizing and degrading enzymes. Its expanded version, which includes a plethora of lipid mediators with similar metabolic pathways but often different targets, constitutes the endocannabinoidome.9
The ECS and the endocannabinoidome, in particular, are complex systems, expressed through most organs, and involved in many physiological pathways. The ECS is widely involved in food intake and energy homeostasis, including hepatic glucose and lipid homeostasis and, therefore, is connected to metabolic disorders (Fig. 1).10 Both CB1 and CB2 are present in liver tissue and mediate a number of biological functions in different types of liver cells. Both receptors, as well as peroxisome proliferator-activated receptors (PPARs), impact lipid metabolism and apparently participate in NAFLD development and its progression to NASH.11,12 Specifically, CB1 (and to a lesser extent CB2) antagonism is a strategy to prevent or reduce hepatic steatosis in pre-clinical models.11
Importantly, gut dysbiosis, a peculiarity of people with metabolic and associated hepatic disorders, seems to be causally related to alterations of the ECS and the endocannabinoidome, which have been found to regulate gut permeability.9,13 Through both direct and indirect effects on the gut microbiome, the endocannabinoidome is also comprehensively involved in the mechanisms of inflammation and oxidative stress, which are key components of obesity and NASH.9
In people with obesity14 and metabolic disorders (including hepatic steatosis15,16), the ECS is overactive (featuring elevated endocannabinoid “tone”), which leads to disruption in homeostasis, contributing to metabolic disorder genesis and/or persistence, thus fuelling a vicious cycle that further disrupts ECS functioning (Fig. 1).10
The ECS has been named after the Cannabis sativa plant, which produces multiple phytocannabinoids (exogenous cannabinoids coming from plant material) and terpenes that also interact with the ECS and the endocannabinoidome functioning.
The ECS and the endocannabinoidome are sensitive to lifestyle modifications, in particular to the relative intake of n-3 and n-6 polyunsaturated fatty acids, pre- and/or probiotic consumption and physical activity.9 The effectiveness of lifestyle interventions on NAFLD/NASH is actually likely mediated in part by the improvement of ECS and endocannabinoidome functioning.
Cannabinoids from Cannabis (or “phytocannabinoids”) act on cannabinoid receptors, and several other endocannabinoidome receptors (i.e., PPARα and γ, thermosensitive transient receptor potential channels, and some orphan G-protein coupled receptors, such as GPR6, GPR18, and GPR55).17 They also are linked with an impact on gut microbiota composition,9 thereby potentially affecting all of the physiopathological conditions that are influenced by intestinal microorganisms.
Prospects for Future Research
The astounding plasticity of the Cannabis genome, as well as the identification of the enzymes for the production of the major phytocannabinoids, could soon enable the agricultural production of plants with high levels of desired compounds.55 Finding proper synergistic cocktails of active cannabis components is key, and characterization and chemical profiling of strains for a specific medical use should become an important step of the research process toward the development of cannabis-based treatments.
In the same way that fully standardized chemotypes of the Cannabis plant have been developed as nabiximols (Sativex®) for clinical use against spasticity in multiple sclerosis, it would be possible to develop chemotypes rich in CBD, THCV, and/or β-caryophyllene (a terpene with CB2 agonist action found also in other plants63) for the prevention or treatment of NAFLD. However, and importantly, the pharmacological and toxicological characteristics of understudied cannabis components will have to be investigated before they are quantitatively incorporated in such composite medications.
An advantage of full-spectrum (i.e., whole flower) cannabis material or extracts is that they can be produced according to frugal innovation principles (i.e., substantial cost reduction, concentration on core functionalities, and optimization of performance levels64). This would facilitate production in limited resource settings, although at the expense of the standardization and reproducibility (and perhaps even the safety) of these treatments.
Conclusions: Can Cannabis Provide the Real “Cure”?
Cannabis and cannabinoids must follow the same rigorous, vigilant, and objective evaluation processes as any other promising candidate treatment for hepatic steatosis. The current knowledge on the impact of nutrition and physical activity on the ECS9,70,71 encourages combining cannabis-based medicines and lifestyle changes into comprehensive patient-centered approaches to ensure improvements not only on clinical outcomes but also in quality of life in people at risk of advanced stages of liver disease.
Author Disclosure Statement
T.B., F.M., P.C., and P.B. have no competing financial interests related to this topic. V.D.M. is the recipient of research grants from GW Pharmaceuticals, United Kingdom. P.C. received research grants from MSD and Intercept for research unrelated to this topic.
Funding Information
T.B. work is funded by ANRS | Emergent Infectious Diseases.
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Cite this article as: Barré T, Di Marzo V, Marcellin F, Burra P, Carrieri P (2023) Expanding research on cannabis-based medicines for liver steatosis: a low-risk high-reward way out of the present deadlock? Cannabis and Cannabinoid Research 8:1, 5–11, DOI: 10.1089/can.2022.0014.
Abbreviations Used
- CBD
- cannabidiol
- ECS
- endocannabinoid system
- CBDA
- cannabidiolic acid
- NAFLD
- nonalcoholic fatty liver disease
- NASH
- nonalcoholic steatohepatitis
- PPARs
- peroxisome proliferator-activated receptors
- THCA
- tetrahydrocannabinolic acid
- THC
- Δ9-tetrahydrocannabinol
- THCV
- tetrahydrocannabivarin