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Stability of Cannabinoids in Cannabis: Plant Material, Extracts, Oil Formulations, and Isolates (CBD and Δ9-THC)
Chandrani G Majumdar1, Mohamed M Radwan1,2, Suman Chandra1,2
1National Center for Natural Products Research, School of Pharmacy, University of Mississippi, University, Mississippi, USA.
Background:
The chemical stability of cannabinoids in Cannabis sativa plant material and formulated products is a critical factor for quality control, therapeutic efficacy, and regulatory compliance. Cannabinoids such as THC are prone to degradation over time, which is heavily influenced by storage conditions and the product matrix. Despite its importance, comprehensive long-term stability data comparing different plant chemovars (high THC, high cannabidiol [CBD], and intermediate) alongside processed products like extracts and isolates remains limited. This study aims to evaluate the stability of cannabinoids in plant material, extracts, oil formulations, and isolates (CBD and -THC) under distinct environmental temperatures to optimize storage guidelines.
Methods:
Cannabis plant material representing three distinct chemovars-high THC, high CBD, and intermediate (balanced THC/CBD), extracts, pure isolates (THC and CBD) and CBD extract as oil formulation were subjected to extended stability testing over a prolonged period under three controlled temperature environments: room temperature, refrigeration, and freezing. Quantitative analysis of cannabinoid content was performed at regular intervals using gas chromatography (GC/FID) to track degradation and potency over time.
Results:
The stability profiles varied depending on the cannabinoid profile, temperature, and matrix type. For the majority of cannabis-derived products, exposure to room temperature accelerated the degradation of THC into cannabinol (CBN), whereas storage at -20°C preserved cannabinoid integrity over the extended timeline. Notably, a distinct divergence was observed between the compounds: CBD-only products demonstrated robust long-term stability even when maintained at room temperature. Conversely, THC-rich matrices were highly susceptible to ambient degradation but exhibited the highest stability when formulated as ethanolic solutions and stored in the freezer (-20°C).
Conclusion:
To maximize cannabinoid shelf-life and prevent degradation, storage temperatures must match product composition. While CBD-dominant products can tolerate room-temperature storage, THC-rich products require cold chain management, ideally stored in a freezer at -20°C for optimal long-term potency.
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