Human Metabolites of Cannabidiol: A Review on Their Formation, Biological Activity, and Relevance in Therapy
iKem BT, Budapest, Hungary.
Institute for Drug Research, Hebrew University Medical Faculty, Jerusalem, Israel.
*Address correspondence to: István Ujváry, PhD, iKem BT, Búza utca 32, 1033 Budapest, Hungary, E-mail: ujvary@iif.huAbstract
Cannabidiol (CBD), the main nonpsychoactive constituent of Cannabis sativa, has shown a wide range of therapeutically promising pharmacological effects either as a sole drug or in combination with other drugs in adjunctive therapy. However, the targets involved in the therapeutic effects of CBD appear to be elusive. Furthermore, scarce information is available on the biological activity of its human metabolites which, when formed in pharmacologically relevant concentration, might contribute to or even account for the observed therapeutic effects. The present overview summarizes our current knowledge on the pharmacokinetics and metabolic fate of CBD in humans, reviews studies on the biological activity of CBD metabolites either in vitro or in vivo, and discusses relevant drug–drug interactions. To facilitate further research in the area, the reported syntheses of CBD metabolites are also catalogued.
Introduction
Cannabidiol (CBD; Fig. 1) is one of the chemically and phytogenetically related phenolic terpenes derived from hemp (Cannabis sativa L). It was first obtained in pure form in 1940 simultaneously from fiber-type American hemp1 and from psychotropic Egyptian hashish.2 The chemical structure of CBD was determined by Mechoulam and Shvo in 1963.3 CBD is one of the 142 phytocannabinoids that have been isolated so far from hemp.4 Strictly speaking, however, CBD is an artifact: the genuine natural product is cannabidiolic acid (CBDA; Fig. 1), which under the influence of heat is decarboxylated into CBD in the plant material. Likewise, another major phenolic terpene of hemp, Δ9-tetrahydrocannabinol (THC)5 is formed from the corresponding carboxylic acid (THCA; Fig. 1).
Although CBD was isolated and characterized first, THC has been investigated more thoroughly: THC is responsible for the unique psychoactivity of marijuana, or cannabis, which is an internationally controlled substance, nevertheless widely used for recreational purposes or, more recently, for self-medication.6 Synthetic THC has been available for three decades as a medicine, and pharmaceutical-grade herbal cannabis, as well as formulations of cannabis extracts containing THC and CBD in well-defined ratios, has also been registered as medicines in several countries (see chapters of Part 3 of Pertwee6). Due to its unique psychoactivity and therapeutic potential, both associated with the activation of cannabinoid (CB) receptors, as well as for forensic reasons, the pharmacokinetics and pharmacodynamics of THC is much better understood than those of the nonpsychoactive CBD, which for decades has been a neglected phytocannabinoid.
The chemistry and pharmacology of CBD, as well as the various molecular targets, including CB receptors and other components of the endocannabinoid system it interacts with, have adequately been reviewed,7–11 while the pharmacology of CBD analogs, with emphasis on anti-inflammatory effects, was the subject of a recent overview.12
In the recent decade, preclinical studies, human case reports, and a plethora of anecdotal accounts, recognizing the relative safety of CBD, have prompted the exploration of the therapeutic potential of CBD against a range of diseases.13–18 In particular, the promise of CBD in treating cancer and drug-resistant epilepsy in children has recently brought this natural product into the focus of the scientific community, clinicians, the media, as well as politicians and regulatory agencies.19–24 Consequently, the US Food and Drug Administration and the European Medicines Agency have granted CBD preparations the “Orphan Drug” designation for use in the treatment of epilepsy in children (Dravet and Lennox-Gastaut syndromes) and neonatal asphyxia, and clinical trials sponsored by GW Pharma Ltd. have been started in these indication areas.25,25a,25b
While some information on the pharmacokinetics of CBD in experimental animals and humans is available,26–29 the biological activity of CBD metabolites has received scant attention.30 The purpose of this review is to summarize our current knowledge of the human pharmacokinetics of CBD with particular emphasis on the biological properties of established or putative human metabolites of CBD. We also indicate several gaps in our knowledge on CBD metabolites, which should be filled by further research that aims to expand the therapeutic use of CBD-based medications. Forensic studies reporting on CB levels as detected in the urine, blood, or saliva of smokers of cannabis cigarettes or of users of various medicinal cannabis preparations have been excluded (for recent reviews, see Huestis28 and Huestis and Smith29). To facilitate further research in the area, the synthetic routes reported for CBD metabolites and their close structural analogs are also catalogued.
Human Pharmacokinetics of CBD Upon Various Administration Routes
Extensive studies in animals, including rodents and the dog, indicate that a large portion of the administered CBD is excreted intact or as its glucuronide.26,27 Due to extensive Phase I metabolism, the pharmacokinetics of CBD is complex and the bioavailability of oral CBD is low across species.26–29 In general, the most abundant metabolites are hydroxylated 7-COOH derivatives of CBD (Fig. 2) that are excreted either intact or as glucuronide conjugates. The route of administration affects the pharmacokinetics of CBD and high intra- and intersubject variability is common in humans as the following paragraphs demonstrate.
In five individuals each smoking a single cigarette containing ∼19 mg [2H]CBD, the average peak blood plasma level of CBD was 110 ng/mL (range: 42–191 ng/mL) recorded at 3 min postdose; the mean half-life was 31±4 h and the average systemic availability was 31% (range: 11–45%).31
In an early study with healthy volunteers who were given 20 mg [3H]CBD by intravenous (i.v.) injection, 7-COOH-CBD was the most abundant metabolite in the plasma, while 7-OH-CBD was only a minor biotransformation product (in the original publication, the compounds are referred to as 11-carboxy-CBD and 11-hydroxy-CBD, respectively).32 In the urine, unchanged CBD and, to a lesser extent, conjugated CBD were the main excretion products and about 16% of the total radioactivity was eliminated in 72 h by this route of excretion. It was also observed that 33% of the total radioactivity, again mostly unchanged CBD accompanied by several oxygenated metabolites, including mono- and dihydroxylated and monocarboxylic derivatives of CBD, was excreted in the feces within 72 h. In a subsequent and more detailed investigation, five young marijuana smokers were given 20 mg [2H]CBD by i.v. injection.31 At 3 min following drug administration, the CBD plasma levels peaked at 686 ng/mL (range: 356–962 ng/mL), which rapidly dropped to 48 ng/mL (range: 37–61 ng/mL) after 1 h; the mean half-life was 24±6 h.
In 12 subjects, oral administration of chocolate cookies spiked with a blend of 40 mg CBD+20 mg THC resulted in low peak plasma levels of ∼5 ng/mL for each drug at 1.5–3 h.33 Similar low peak plasma levels with a mean of 0.93 ng/mL (range: 0.3–2.6 ng/mL) were noted in 24 volunteers 1 h after oral ingestion of gelatin capsules with cannabis extract containing 5.4 mg CBD+10 mg THC.34 Interesting results were obtained from experiments in which capsules filled with either unheated or heated cannabis extracts containing 10 mg THCtotal (THC+THCA) and 10–15 mg CBDtotal (CBD+CBDA) estimated when fresh: pharmacokinetic analysis of the blood of patients ingesting two such capsules showed mean peak plasma CBD concentrations four times higher in the unheated extract than in the heat-treated extract (1.24 ng/mL at 1.17 h vs. 0.30 ng/mL at 0.83 h, respectively).35 The results suggest that the use of unheated cannabis extract rich in acidic phytocannabinoids may beneficially affect the uptake and metabolism of CBD or other phytocannabinoids.
In another investigation, repeated oral administration of daily doses of 700 mg of CBD to 14 Huntington's disease patients did not result in elevated mean blood concentrations; in a 6-week trial, plasma levels of the drug remained in a relatively constant but low range of 5.9–11.2 ng/mL throughout the trial, averaged 1.5 ng/mL 1 week after CBD administration was discontinued and virtually undetectable by gas chromatography coupled with mass spectrometry (GC-MS) thereafter; the elimination half-life of CBD ranged from 2 to 5 days.36,37 In this study, CBD was found to be neither symptomatically beneficial nor toxic. During a functional magnetic resonance imaging investigation of the effects of THC and CBD on regional brain function in 15 healthy volunteers, respective mean blood concentrations of 4.7±7 and 17±29 ng/mL of CBD were recorded at 1 and 2 h following a single oral dose of 600 mg CBD.38
A recent study examined the safety and pharmacokinetics of 400 and 800 mg of CBD coadministered with various doses of the potent opioid analgesic fentanyl to 17 healthy individuals.39 In a representative session, 3 h after the oral administration of 800 mg of CBD and 2 h after fentanyl injection (0.5 μg/kg i.v.), the highest plasma concentration of CBD was 221±36 ng/mL; the mean peak urinary CBD concentration was recorded at 4 h after CBD intake and estimated to be 3.7 ng/mL.
As a part of a series of trials with “Cannabis Based Medicine Extracts” such as Sativex®, the pharmacokinetics of a total dose of 20 mg CBD in sublingual drops was studied in six healthy subjects.40 In a representative experiment, the mean of the peak plasma concentration of CBD was 2 ng/mL at 130 min postdose. Similar values were obtained for a mixture of 20 mg THC+20 mg CBD applied either in sublingual drops or as aerosol; when applied through a nebulizer (10 mg THC+10 mg CBD), however, the peak plasma level was 9.5 ng/mL at 36 min after administration and the half-life of CBD in plasma was 66 min.
In a separate study with nine cannabis smokers, oromucosal application of low (5.4 mg THC+5.0 mg CBD) and high (16.2 mg THC+15.0 mg CBD) Sativex doses resulted in median peak plasma CBD concentrations of 1.2 ng/mL (range: 0.6–3.9 ng/mL) at 3.6 h (range: 1.0–5.5 h) postdose and 3.7 ng/mL (range: 2.0–20.5 ng/mL) at 4.5 h (range: 1.2–5.6 h) postdose, respectively41 (see also Stott et al.42).
The human skin permeation of CBD solutions was investigated in vitro and CBD concentrations as high as 6.1 mg per gram skin preparation could be achieved under certain experimental conditions.43 Various CBD formulations for transdermal and intranasal delivery have also been studied in rodent models.44,45
While first-pass metabolism could be avoided by rectal administration of suppository formulation of CBs, as it has been demonstrated for THC,46,47 relevant studies with CBD appear to be lacking.
Finally, an analysis of in vivo distribution of CBs in five postmortem cases indicated relatively high CBD concentrations in bile (up to 63 ng/mL) and muscle (up to 32 ng/g) tissues, and it was noted that the CBD content of the brain was unexpectedly high (up to 6.7 ng/g)48 (see also Fabritius et al.49). In these cases, however, factors influencing CB pharmacokinetics were unknown.
No information is available for tissue distribution of CBD or its metabolites in living humans and relevant animal studies are scarce. In rats, analysis of blood and brain 21.5 h after intragastric administration of 23.4 mg/kg of [3H]CBD in olive oil solution showed respective tissue concentrations of unchanged [3H]CBD of 20.2 ng/mL and 6.4 ng/g; the hepatic concentration of the drug was higher throughout the experiment and 20.8 ng/g was recorded even 84 h after treatment.50 In another test series also with rats, analysis of brain parts 5 min after administration of [3H]CBD (1 mg/kg i.v.) revealed an even distribution of the radiolabel (CBD+its unspecified metabolites) at about 1 ng/mg as initial peak concentrations throughout all brain regions examined.51
A recent study compared plasma and brain levels of CBD after oral or intraperitoneal (i.p.) administrations of the drug in Cremophor at 120 mg/kg to rats and mice.52 Following i.p. administration, mice had a higher CBD plasma level than rats (14.3 and 2.6 μg/mL, respectively), whereas oral dosing resulted in a similar peak plasma concentration in both species (∼2 μg/mL). Oral administration offered six times higher brain peak CBD concentrations in rats than in mice (8.6 vs. 1.3 μg/g). It was also noted that oral administration of CBD (120 mg/kg) dissolved in the micelle-forming Solutol resulted in enhanced absorption of the drug compared to the solution based on the emulsion-forming surfactant Cremophor as evidenced by higher peak concentrations and prolonged exposures in blood (3.2 μg/mL at 6 h and 2 μg/mL at 2 h, respectively) and brain (12.6 μg/mL at 4 h and 8.6 μg/mL at 4 h, respectively). The effects of cosolvents and excipients on pharmacokinetics, involving cytochrome P450 (CYP450) oxidases and P-glycoprotein efflux transporters, of lipophilic substances in general have been extensively investigated.53,54
It must be noted that none of the above studies reported on the metabolic fate of CBD and no information is available on the human pharmacokinetics of the metabolites. (For an early mouse study indicating slow elimination of unidentified polar metabolites, see Karler et al.55).
Summary
Several drugs used in therapy are metabolically converted into active metabolites and interindividual variations in the generation and pharmacokinetics of such active species may cause variability in the response to treatment by different individuals.126 The use of relatively high daily doses of CBD in human clinical trials as well as in self-medicating patients is not uncommon. For example, in a 30-day CBD monotherapy study, an escalating oral dose reaching 1280 mg/day was administered.127 Although information is lacking, the metabolites formed from CBD are assumed to be present in the body at pharmacologically relevant concentrations. Pharmacological studies with such metabolites are scarce yet suggest interesting biological activities, which are unrelated or not directly related to CB receptors. Thus, intriguing questions arise:
Could any of the pharmacological effects observed for CBD be attributed to its metabolites?
Are there any drug–drug interactions that affect the outcome of the therapeutic effects of other, non-CB medicines used concomitantly with CBD?
Could any of the metabolites be used as templates for the development of novel therapeutic agents?
The pharmacological characterization of CBD metabolites both in vitro and in vivo is timely and necessary to shed light on the multifaceted, perplexing, or sometimes even contradictory biological properties observed for the parent CB. The understanding of the clinical significance of these abundant metabolites in the proven therapeutic effects of CBD-containing preparations warrants further studies.
Supplementary Material
Acknowledgment
Michael Evans-Brown is gratefully acknowledged for linguistic advice.
Author Disclosure Statement
No competing financial interest.
Abbreviations Used
- CB
- cannabinoid
- CBD
- cannabidiol
- CBDA
- cannabidiolic acid
- i.p.
- intraperitoneal
- i.v.
- intravenous
- THC
- tetrahydrocannabinol
- TNF-α
- tumor necrosis factor alpha