Online monitoring reveals a rapidly changing landscape of new cannabinoids

Crawling into the Unknown: Unveiling Novel Psychoactive Substances (NPSs) in the Post Pandemic Era Utilizing the NPSfinder®.

International journal of toxicology • • Moderately Relevant
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AI Summary

This study used the NPSfinder® web crawler to monitor selected high-traffic psychonaut websites from January through September 2023. Researchers analyzed 368 molecules and identified 158 newly captured novel psychoactive substances (NPSs) suitable for addition to the database. The substances were grouped by chemical structure, pharmacological mechanism, possible therapeutic use, and abuse liability.

Cannabinoids were one of the largest groups identified, accounting for 23 substances (15%), alongside natural or herbal substances, prescription medications, synthetic opioids, and other drug classes. For cannabis users and health professionals, the findings highlight how quickly new psychoactive compounds can appear online—but they do not show how common these substances are, how people use them, or whether particular compounds cause specific health effects. The authors conclude that continuous web monitoring can complement established early-warning systems, while noting that English-language online sources may not represent global trends.

💡 Key Findings

1
The NPSfinder® crawler identified 158 newly captured NPSs among 368 analyzed molecules collected from monitored online sources.
Good
65%
2
Cannabinoids were among the most frequently identified substance classes, with 23 substances (15%) reported.
Good
65%
3
Continuous web crawling may provide a useful early-warning complement to established toxicology and public-health monitoring systems.
Good
72%
4
The results cannot establish substance prevalence, user behavior, or causal trends because the study relied on selected online sources and used a descriptive design.
High
85%

📄 Original Abstract

Novel Psychoactive Substances (NPSs) and other psychoactive or misuse-relevant compounds present a persistent global public health threat, underscoring the critical need for real-time crawling and monitoring tools to investigate and provide valuable information assisting in the management and preparedness against that dynamic and evolving threat. This study utilized the NPSfinder® web crawler to analyze NPS trends during the post-pandemic period, with data collected from selected highly trafficked psychonaut websites continuously monitored between January and September 2023. Following a comprehensive filtering process of screening, assessment, and evaluation, the dataset provided insights into the availability and characteristics of recently reported NPSs. Three hundred and sixty-eight molecules were analyzed, of which 158 were newly captured NPSs, suitable for inclusion in the NPSfinder® database. Those substances were classified based on their chemical structure, pharmacological mechanism of action, therapeutic indication, if any, and abuse liability. The main NPS classes identified were natural origin/herbal substances (25; 16%), cannabinoids (23; 15%), prescribed medications (23; 15%), synthetic opioids (20; 13%), phenethylamines (14; 9%), cathinones (11; 7%), and anabolic substances (8; 5%). The findings highlight ongoing diversification in substances identified across selected online sources during the post-pandemic period. The study benefits from a timely focus, a substantial and systematically curated dataset, and the application of a continuous web-crawling methodology enabling near real-time detection of emerging substances. The integration of pharmacological and chemical classification further enhances the interpretability and potential clinical relevance of the findings. However, results should be interpreted cautiously. The reliance on predominantly English-language, open-web sources may introduce selection bias and limit geographic generalizability, and the descriptive design does not allow inference regarding prevalence, user behavior, or causal trends. Within these constraints, web-crawling approaches may serve as valuable complementary tools to established early warning systems, supporting early signal detection and informing future toxicological and public health responses.

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