How Cannabis Plants Change Their Sex: A Genetic Breakthrough

Sex-specific ethylene responses drive floral sexual plasticity in Cannabis sativa.

The Plant journal : for cell and molecular biology • • Relevant
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AI Summary

In a groundbreaking study of Cannabis sativa, researchers have uncovered the intricate molecular mechanisms behind sexual plasticity in cannabis plants. More than 80% of plants can change their sexual characteristics in response to specific chemical treatments, revealing a remarkable ability to switch between male and female reproductive traits.

The research delved deep into the genetic underpinnings of this sex change phenomenon, analyzing over 130 RNA-seq libraries and identifying 14 high-confidence candidate genes that play crucial roles in this process. Ethylene, a plant hormone, emerges as a key driver of sexual transformation, with distinct genetic pathways activated differently in XX and XY plants. Genetic changes begin within 18 hours of treatment, occurring even before visible floral tissue development.

This scientific breakthrough has significant implications for cannabis cultivation and breeding. By understanding the molecular mechanisms of sex reversal, researchers can potentially develop more stable and predictable cannabis cultivars. The study provides unprecedented insight into the genetic flexibility of cannabis plants, opening new avenues for agricultural innovation and genetic research in dioecious plant species.

💡 Key Findings

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Over 80% of cannabis plants can undergo sexual phenotype reversal through ethylene-related treatments
High
90%
2
14 key genes identified controlling sexual plasticity in cannabis plants
High
85%
3
Genetic changes begin within 18 hours of sex-change treatments, before visible floral development
High
80%

📄 Original Abstract

Cannabis sativa L. exhibits pronounced sexual plasticity in which both XX and XY plants can undergo floral phenotypic sex reversal in response to ethylene modulation, yet the underlying molecular mechanisms remain poorly defined. Here, we present the most extensive multi-omic analysis of ethylene-induced sex change in C. sativa to date, integrating over 130 RNA-seq libraries, ethylene pathway metabolite quantification, and whole-genome sequencing across three XX and XY genotypes. Treatments with silver thiosulfate and ethephon induced more than 80% phenotypic conversion, but transcriptomic responses diverged sharply between XX and XY plants. Profiling 47 ERGs revealed 14 high-confidence candidates, including CsACS1, CsACO5, CsERF1, and CsMTN, with sex-specific and temporal expression patterns that show dynamic ethylene mediation of plasticity. Early transcriptional activation occurred prior to the emergence of flowers, within 18 h of sex-change treatments and the photoperiod-induced transition to flowering. As opposite-sex floral tissues emerged, ethylene-related gene expression shifted accordingly within developing floral organs, with distinct sets of genes stabilizing the opposite-sex phenotype in XX and XY plants. Several candidates were located in non-recombining regions of the X chromosome or were absent from the Y chromosome, and most exhibited low nucleotide diversity, consistent with functional constraint. These results provide a high-resolution view of ethylene-responsive sexual plasticity in cannabis and show that the shared capacity for sex reversal in XX and XY plants is implemented through distinct regulatory trajectories that produce opposite-sex floral phenotypes. This work expands the mechanistic understanding of sex expression in dioecious species and identifies candidate genes relevant to the development of sex-stable cultivars.

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