Uploaded August 2026 | Updated September 2026, 2 weeks ago
Luke Hodson presents "Transforming Cannabidiol: Rational Design of Next-Generation CBD Analogues for Epilepsy" at CannMed 2026, covering CBD analogues, epilepsy treatment, and drug discovery.
This work set out to develop a next-generation CBD analogue platform through rational scaffold engineering and targeted derivatization. The structural changes were designed to reduce CBD's major liabilities of CYP inhibition, poor solubility, rapid metabolism, and hepatic concerns, while preserving the key molecular interactions responsible for its antiseizure activity. A central design principle was to achieve higher and more sustained therapeutic brain concentrations, enabling predictable pharmacokinetics and once-daily oral dosing.
More than 50 CBD analogues were generated using a scaffold-engineering strategy guided by known metabolic hotspots and physicochemical liabilities of cannabidiol. Structural modifications were selected to improve solubility, metabolic stability, CYP interaction profiles, and off-target safety. Analogues were evaluated in vitro for solubility, microsomal stability, CYP inhibition, hepatocyte viability, and receptor-level safety screens. Lead candidates underwent in vivo plasma and brain pharmacokinetic studies in mice. Antiseizure efficacy was assessed following oral administration across three validated preclinical seizure models. Exploratory hepatic and tolerability assessments supported translational evaluation.
In vitro profiling showed that scaffold-engineered CBD analogues achieved substantial improvements in solubility, enhanced metabolic stability, and markedly reduced CYP inhibition across major isoforms, indicating a significantly lower drug-drug interaction risk. Exploratory safety assays demonstrated higher hepatocyte viability, cleaner hepatic biomarker profiles, and reduced off-target activity at cardiovascular, opioid, and cholinergic receptors, supporting a more favorable safety margin.
These in vitro gains translated into major in vivo pharmacokinetic advantages. Lead analogues produced multi-fold increases in CNS exposure, up to six-fold higher brain concentrations than CBD, and improved brain-to-plasma ratios, resulting in more sustained and therapeutically relevant brain levels. PK profiles showed markedly lower inter-animal variability, yielding predictable exposure kinetics compatible with once-daily dosing.
Improved exposure and preserved mechanistic interactions produced greater antiseizure potency and efficacy across three validated preclinical seizure models, including the MES assay. The optimized analogues achieved robust oral efficacy at lower doses due to higher and longer-lasting therapeutic brain concentrations. Together, these improvements support a broader therapeutic index and validate the scaffold-engineering strategy as a viable route for creating drug-like cannabidiol analogues.
Rational synthetic derivatization and medicinal chemistry enabled the creation of next-generation CBD analogues that overcome major drug-like liabilities of cannabidiol while preserving the molecular features required for antiseizure activity. The resulting compounds show improved solubility, reduced CYP interactions, enhanced hepatic and off-target safety, and multi-fold increases in brain exposure with more predictable, once-daily pharmacokinetics. These advances produced superior oral antiseizure efficacy at lower doses and support this platform as a promising route for developing clinically viable cannabidiol-based therapeutics for refractory epilepsy.
Learning Objectives:
⦿ Understand how scaffold-engineered CBD analogues improve solubility, metabolism, CYP and safety profiles, achieve higher and longer-lasting therapeutic brain levels, and support predictable once-daily oral dosing with strong anti-seizure efficacy
Luke Hodson, PhD, is a medicinal chemist and translational drug discovery leader specializing in cannabinoid therapeutics for refractory epilepsy and neurosteroid therapeutics for traumatic brain injury. His work focuses on engineering next-generation small molecules that overcome poor solubility, rapid metabolism, CYP-mediated drug interactions, and hepatic liability to enable safer, more effective CNS treatments. At Sensa Neurosciences, Dr. Hodson serves as a Senior Scientist in Drug Discovery, contributing to medicinal chemistry strategy, structure-property optimization, and preclinical planning for next-generation cannabinoid therapeutics.
This presentation was given at the CannMed 2026 Innovation & Collaboration Summit, held June 15-18 at the Hyatt Regency Lake Tahoe Resort. Visit cannmedevents.com to learn more.
Luke Hodson presents "Transforming Cannabidiol: Rational Design of Next-Generation CBD Analogues for Epilepsy" at CannMed 2026, covering CBD analogues, epilepsy treatment, and drug discovery.
This work set out to develop a next-generation CBD analogue platform through rational scaffold engineering and targeted derivatization. The structural changes were designed to reduce CBD's major liabilities of CYP inhibition, poor solubility, rapid metabolism, and hepatic concerns, while preserving the key molecular interactions responsible for its antiseizure activity. A central design principle was to achieve higher and more sustained therapeutic brain concentrations, enabling predictable pharmacokinetics and once-daily oral dosing.
More than 50 CBD analogues were generated using a scaffold-engineering strategy guided by known metabolic hotspots and physicochemical liabilities of cannabidiol. Structural modifications were selected to improve solubility, metabolic stability, CYP interaction profiles, and off-target safety. Analogues were evaluated in vitro for solubility, microsomal stability, CYP inhibition, hepatocyte viability, and receptor-level safety screens. Lead candidates underwent in vivo plasma and brain pharmacokinetic studies in mice. Antiseizure efficacy was assessed following oral administration across three validated preclinical seizure models. Exploratory hepatic and tolerability assessments supported translational evaluation.
In vitro profiling showed that scaffold-engineered CBD analogues achieved substantial improvements in solubility, enhanced metabolic stability, and markedly reduced CYP inhibition across major isoforms, indicating a significantly lower drug-drug interaction risk. Exploratory safety assays demonstrated higher hepatocyte viability, cleaner hepatic biomarker profiles, and reduced off-target activity at cardiovascular, opioid, and cholinergic receptors, supporting a more favorable safety margin.
These in vitro gains translated into major in vivo pharmacokinetic advantages. Lead analogues produced multi-fold increases in CNS exposure, up to six-fold higher brain concentrations than CBD, and improved brain-to-plasma ratios, resulting in more sustained and therapeutically relevant brain levels. PK profiles showed markedly lower inter-animal variability, yielding predictable exposure kinetics compatible with once-daily dosing.
Improved exposure and preserved mechanistic interactions produced greater antiseizure potency and efficacy across three validated preclinical seizure models, including the MES assay. The optimized analogues achieved robust oral efficacy at lower doses due to higher and longer-lasting therapeutic brain concentrations. Together, these improvements support a broader therapeutic index and validate the scaffold-engineering strategy as a viable route for creating drug-like cannabidiol analogues.
Rational synthetic derivatization and medicinal chemistry enabled the creation of next-generation CBD analogues that overcome major drug-like liabilities of cannabidiol while preserving the molecular features required for antiseizure activity. The resulting compounds show improved solubility, reduced CYP interactions, enhanced hepatic and off-target safety, and multi-fold increases in brain exposure with more predictable, once-daily pharmacokinetics. These advances produced superior oral antiseizure efficacy at lower doses and support this platform as a promising route for developing clinically viable cannabidiol-based therapeutics for refractory epilepsy.
Learning Objectives:
⦿ Understand how scaffold-engineered CBD analogues improve solubility, metabolism, CYP and safety profiles, achieve higher and longer-lasting therapeutic brain levels, and support predictable once-daily oral dosing with strong anti-seizure efficacy
Luke Hodson, PhD, is a medicinal chemist and translational drug discovery leader specializing in cannabinoid therapeutics for refractory epilepsy and neurosteroid therapeutics for traumatic brain injury. His work focuses on engineering next-generation small molecules that overcome poor solubility, rapid metabolism, CYP-mediated drug interactions, and hepatic liability to enable safer, more effective CNS treatments. At Sensa Neurosciences, Dr. Hodson serves as a Senior Scientist in Drug Discovery, contributing to medicinal chemistry strategy, structure-property optimization, and preclinical planning for next-generation cannabinoid therapeutics.
This presentation was given at the CannMed 2026 Innovation & Collaboration Summit, held June 15-18 at the Hyatt Regency Lake Tahoe Resort. Visit cannmedevents.com to learn more.



![Recruitment Challenges for Cannabis Clinical Trials - Emily Lindley, PhD & Rachael Rzasa Lynn, MD
Dr. Emily Lindley is Assistant Professor of Orthopedics and Director of the Colorado Cannabis Research Consortium. Her team’s research aims to identify non-opioid alternatives for the treatment of chronic musculoskeletal pain. One such alternative that has gained increased recognition in recent years is medical cannabis, and her lab is currently studying the health effects of cannabis and cannabinoids for chronic musculoskeletal pain.
Dr. Rachael Rzasa Lynn is a board certified in pain medicine physician and is an Associate Professor in the Department of Anesthesiology at the University of Colorado, where she is the Associate Program Director for the Pain Medicine Fellowship. Her research includes investigations in opioid pharmacology and the use of cannabis for chronic pain.
Rachel and Emily co-authored a poster presented at the most recent ICRS conference titled, Recruitment Challenges in Clinical Studies of Cannabis
During our conversation, we discussed:
* How recruitment for cannabis clinical trials differs from traditional clinical trials
* Why prior experience with cannabis is considered a negative for patient recruitment
* How legal concerns and stigma can deter cannabis-naive patients from enrolling
* Why the participant drop out rate is higher in cannabis trials
* How rescheduling may affect patient recruitment for future trials
Thanks to This Episodes Sponsor: The Society of Cannabis Clinicians
The Society of Cannabis Clinicians’ Med Cann conference offers a rare opportunity for clinicians to dive deep into the clinical realities and therapeutic potential of medical cannabis and psychedelics. Designed with healthcare providers in mind, their sessions focus on case-based learning, emerging protocols, and real-world challenges—offering practical insights that can be immediately applied in your practice.
Learn more at cannabisclinicians.org and use code CP15 to receive 15% Off Your Registration
Additional Resources
* Recruitment Challenges in Clinical Studies of Cannabis [Poster] - https://cannmedevents.com/wp-content/uploads/2025/08/P2-21-Recruitment-Challenges-Poster-ICRS-2025.pdf
* Lindley Lab at the University of Colorado - https://medschool.cuanschutz.edu/orthopedics/research/labs/lindley-lab/our-research Recruitment Challenges for Cannabis Clinical Trials - Emily Lindley, PhD & Rachael Rzasa Lynn, MD](https://i.ytimg.com/vi/TV5x6dQ6AMs/mqdefault.jpg)
![Preventing Opioid Overdose with Cannabinoids - Beth Weise, PhD
Dr. Beth Weise is the Research and Overdose Prevention Coordinator for The Sidewalk Project, a non-profit organization that aids unhoused, drug-using, survivor & sex worker populations by providing direct services including crisis response, system advocacy, wound care, job placement, medication-assisted treatment (MAT), and creative community resources for mental health. Her work aims to influence future drug policy with novel evidence-based research that also advocates and empowers people who use drugs to feel safe and prevent fatal overdose
At CannMed 26, Beth will present Cannabidiol to Mitigate Opioid Induced Respiratory Depression. During our conversation, we discuss:
- What causes Opioid Induced Respiratory Depression and how cannabinoids play a role
- How CBD can be used in combination with Naloxone to reduce withdrawal-related side effects
- How Beth’s research can be applied in real-world scenarios
Thanks to This Episode’s Sponsor: Humanity Heroes
Humanity Heroes provides compassionate support to the unhoused community by delivering essential supplies and resources directly to those in need. Humanity Heroes partners with other nonprofits by empowering them to extend their reach and impact within their own communities. Together, they strive to create a world where every person has access to the resources and support they need to thrive.
Learn more at JoinHumanityHeroes.org
Additional Resources:
- THRRIV.org
- [Webinar] Bridging the Gap: Tech-Supported Peer Connections to Reduce - - Overdose Fatalities - https://www.youtube.com/watch?v=tralDTJlhqs
Register for CannMed 26 - cannmedevents.com Preventing Opioid Overdose with Cannabinoids - Beth Weise, PhD](https://i.ytimg.com/vi/TjuYiQNN7K0/mqdefault.jpg)





![How Would Rescheduling THC to Schedule III Impact Clinical Trials?
Dr. Emily Lindley is Assistant Professor of Orthopedics and Director of the Colorado Cannabis Research Consortium. Her team’s research aims to identify non-opioid alternatives for the treatment of chronic musculoskeletal pain. One such alternative that has gained increased recognition in recent years is medical cannabis, and her lab is currently studying the health effects of cannabis and cannabinoids for chronic musculoskeletal pain.
Dr. Rachael Rzasa Lynn is a board certified in pain medicine physician and is an Associate Professor in the Department of Anesthesiology at the University of Colorado, where she is the Associate Program Director for the Pain Medicine Fellowship. Her research includes investigations in opioid pharmacology and the use of cannabis for chronic pain.
Rachel and Emily co-authored a poster presented at the most recent ICRS conference titled, Recruitment Challenges in Clinical Studies of Cannabis
During our conversation, we discussed:
* How recruitment for cannabis clinical trials differs from traditional clinical trials
* Why prior experience with cannabis is considered a negative for patient recruitment
* How legal concerns and stigma can deter cannabis-naive patients from enrolling
* Why the participant drop out rate is higher in cannabis trials
* How rescheduling may affect patient recruitment for future trials
Thanks to This Episodes Sponsor: The Society of Cannabis Clinicians
The Society of Cannabis Clinicians’ Med Cann conference offers a rare opportunity for clinicians to dive deep into the clinical realities and therapeutic potential of medical cannabis and psychedelics. Designed with healthcare providers in mind, their sessions focus on case-based learning, emerging protocols, and real-world challenges—offering practical insights that can be immediately applied in your practice.
Learn more at cannabisclinicians.org and use code CP15 to receive 15% Off Your Registration
Additional Resources
* Recruitment Challenges in Clinical Studies of Cannabis [Poster] - https://cannmedevents.com/wp-content/uploads/2025/08/P2-21-Recruitment-Challenges-Poster-ICRS-2025.pdf
* Lindley Lab at the University of Colorado - https://medschool.cuanschutz.edu/orthopedics/research/labs/lindley-lab/our-research How Would Rescheduling THC to Schedule III Impact Clinical Trials?](https://i.ytimg.com/vi/UgSaRtD9l7w/mqdefault.jpg)