Pharmacology & Therapeutics
October 20, 2018
Michael Bloomfield, Chandni Hindocha, Sebastian F Green et al.
236 citations
Cannabis and its primary psychoactive component, THC, acutely alter executive, emotional, reward, and memory processing by directly interacting with the endocannabinoid system and indirectly affecting glutamatergic, GABAergic, and dopaminergic systems. Cannabidiol, a non-intoxicating cannabinoid, may offset some of these acute effects. Heavy repeated cannabis use, especially during adolescence, is associated with adverse effects that increase the risk of mental illnesses such as addiction and psychosis. This review synthesizes human neuroimaging research on the acute and chronic neuropsychopharmacology of cannabis, covering effects during development, implications for psychosis and cannabis use disorder, and methodological considerations.
Addiction
February 8, 2023
Will Lawn, Katie Trinci, Claire Mokrysz et al.
36 citations
Adolescent cannabis users are neither more resilient nor more vulnerable than adult cannabis users to the acute psychotomimetic, verbal memory-impairing, or subjective effects of cannabis. In a randomized, double-blind, placebo-controlled crossover experiment with 24 adolescents (16-17 years old) and 24 adults (26-29 years old) who used cannabis 0.5-3 days per week, vaporized THC (8 mg for a 75 kg person) and THC plus CBD (24 mg) both significantly increased subjective drug effect, impaired verbal episodic memory, and increased psychotomimetic effects compared to placebo. There was no evidence that adolescents differed from adults in their responses, and CBD did not modulate the acute effects of THC.
Neuropsychopharmacology
May 28, 2024
Natalie Ertl, Tom P. Freeman, Claire Mokrysz et al.
19 citations
Cannabis use disrupts resting-state functional connectivity in key brain networks—default mode, executive control, salience, hippocampal, and limbic striatal—similarly in adolescents (16–17 years) and young adults (26–29 years). Cannabidiol (CBD) did not counteract the effects of delta-9-tetrahydrocannabinol (THC) and, in some cases, further reduced connectivity both within networks and across the whole brain. These findings challenge the assumption that CBD makes cannabis safer and indicate that the adolescent brain is not more vulnerable to cannabis-induced connectivity disruptions than the adult brain.
Journal of Psychopharmacology
July 29, 2023
Natalie Ertl, Will Lawn, Claire Mokrysz et al.
17 citations
Regular cannabis use is associated with localized increases in connectivity of the executive control network (ECN), which may reflect adaptive or compensatory changes in response to regular intoxication. Adolescents generally showed weaker connectivity than adults across multiple brain networks, consistent with normal developmental effects. However, there were no significant interactions between age group and cannabis user group, meaning the connectivity changes linked to cannabis use did not differ between adolescents and adults. No associations were found between cannabis use frequency and any connectivity measures.
Psychopharmacology
February 28, 2024
Daniel L. Hall, Will Lawn, Shelan Ofori et al.
5 citations
Acute intoxication with vaporized THC eliminated attentional bias away from cannabis-related cues in both adolescents and adults who used cannabis 0.5–3 days per week. In a randomized, double-blind, placebo-controlled crossover study with 48 participants (24 adolescents aged 16–17 and 24 adults aged 26–29), a weight-adjusted dose of 8 mg THC eliminated the bias, while adding 24 mg CBD did not alter this effect. There was no significant difference in response between age groups. The findings suggest that acute THC intoxication shifts attentional processing of cannabis cues, but CBD does not moderate this effect.
bioRxiv (Cold Spring Harbor Laboratory)
June 5, 2025
Ekaterina Shatalina, Natalie Ertl, Kat Petrilli et al.
1 citation
preprint
Inhaling cannabis with THC alone or THC plus CBD reduces resting-state functional connectivity in brain networks that are rich in CB1 and CB2 cannabinoid receptors. Co-administering CBD with THC produced more widespread reductions than THC alone, affecting regions involved in cognition and emotion such as the prefrontal cortex, cingulate cortex, insula, hippocampus, amygdala, and putamen. Higher THC levels in the blood were linked to greater connectivity decreases when CBD was also present. Subjective drug effects correlated with connectivity changes in a region-specific way. The findings suggest that CBD may enhance rather than dampen THC's effects on brain connectivity, contrary to some earlier expectations.
The International Journal of Neuropsychopharmacology
February 1, 2025
Martine Skumlien, Tom P. Freeman, Daniel L. Hall et al.
In weekly cannabis users, cannabis suppresses the brain's anticipatory reward response to money, and cannabidiol (CBD) does not moderate this effect. The adolescent reward circuitry is not differentially sensitive to the acute effects of cannabis on reward anticipation. This double-blind, placebo-controlled, crossover study with 23 adults (26-29 years) and 24 adolescents (16-17 years) used functional magnetic resonance imaging (fMRI) to measure brain activity during a monetary reward anticipation task after inhaling cannabis with tetrahydrocannabinol (THC), THC plus CBD, or placebo. THC acutely reduced reward anticipation activity in the ventral striatum and right insula compared with placebo. THC plus CBD also reduced activity in these regions. The effects were the same in adolescents and adults.