Cannabis roots may hold untapped tools for stronger plants

Back to the roots: Cannabis sativa L. root metabolism, microbiomes, and biotechnological potential.

Applied microbiology and biotechnology • • Review • Highly Relevant
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AI Summary

This review argues that Cannabis sativa roots deserve far more attention. Although roots are less studied than flowers and leaves, they produce diverse bioactive compounds with antimicrobial, anti-inflammatory, antioxidant, and cytotoxic properties. The abstract does not report quantitative results, but it highlights roots as potentially valuable sources of compounds for biotechnology and sustainable cannabis production.

Roots also influence the wider plant through root exudates, associated microorganisms, and signalling molecules. These interactions can support nutrient uptake, stress tolerance, pathogen resistance, and whole-plant physiology, while potentially affecting phytochemical production in aboveground tissues. New tools—including metabolomics, transcriptomics, microfluidic rhizosphere systems, and root-specific genetic engineering—could help researchers optimize root cultures and better understand how belowground biology shapes cannabis quality and resilience.

💡 Key Findings

1
Cannabis sativa roots produce a diverse range of bioactive compounds with antimicrobial, anti-inflammatory, antioxidant, and cytotoxic properties, indicating substantial biotechnological potential.
High
80%
2
Root exudates and root-associated microbiomes can influence nutrient uptake, stress tolerance, pathogen resistance, and whole-plant physiology.
High
80%
3
Root-derived hormones and signalling molecules may coordinate biochemical activity between roots and aerial tissues, potentially affecting phytochemical profiles in leaves and flowers.
Good
65%
4
Root culture systems could provide a scalable platform for producing and manipulating bioactive compounds in cannabis, although the review reports no quantitative production results.
Good
70%

📄 Original Abstract

Cannabis sativa L. roots have been less studied than aboveground organs, despite their key role in plant physiology, metabolism, and interactions with biotic and abiotic factors. Metabolomic and phytochemical analyses reveal that roots synthesize a diverse array of bioactive compounds with antimicrobial, anti-inflammatory, antioxidant, and cytotoxic properties, highlighting their biotechnological potential. Root exudation patterns and interactions with endophytic microorganisms modulate rhizosphere microbial networks that support nutrient uptake, stress tolerance, pathogen resistance, and whole-plant physiology. Root-derived phytohormones and other signalling molecules may participate in coordinating biochemical pathways between belowground and aboveground tissues, with potential effects on secondary metabolism in aerial tissues. Recent advances in metabolomics, transcriptomics, microfluidic rhizosphere systems, and root-specific genetic engineering now enable detailed investigation of root metabolism in Cannabis sativa L. This review synthesises current knowledge on the metabolic roles of Cannabis sativa L. roots, their interactions with the rhizosphere microbiome, and root-derived systemic signalling. It emphasises aspects of root biology that are central to fundamental plant processes and to the development of sustainable strategies for optimising phytochemical yields. By placing roots at the forefront, this synthesis underscores the need to expand research beyond aerial tissues to fully understand and harness the biotechnological potential of Cannabis species. KEY POINTS: • Root metabolism and signalling regulate whole-plant-metabolic pathways • Root-associated microbiomes influence nutrient dynamics and phytochemical profiles • Root culture systems provide a scalable platform for biotechnological manipulation aimed at the production of bioactive compounds.

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