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Biology subjects

Niazian, M.

Publications and source records attributed to Niazian, M..

2 recordsLinked to original sources

A pistillate-biased epidermal regulatory program underlies glandular trichome development in Cannabis sativa

Glandular trichomes are specialized epidermal structures on Cannabis sativa L. inflorescences that synthesize and store cannabinoids and terpenoids, making them central to the species economic and medicinal value. Although trichome development is a multistage genetic process, its regulatory basis in C. sativa remains poorly understood, particularly with respect to sexual dimorphism and sex plasticity. Here, we combined orthologybased gene discovery with transcriptomic profiling to investigate trichome development across four floral phenotypes: female flowers (FF), male flowers (MF), induced male flowers on XX plants (IMF), and induced female flowers on XY plants (IFF). Using trichome development-related genes from Arabidopsis thaliana, a model for unicellular non-glandular trichome development, and Solanum lycopersicum, a model for multicellular glandular trichomes, we identified and mapped 53 candidate C. sativa trichome development regulator genes (CsTDRGs). The CsTDRG set did not support a simple Arabidopsis- or tomato-like model, but instead included Arabidopsis-like epidermal fate components, including MBW-related regulators and GL2, alongside tomato-like multicellular trichome regulators, including MIXTA-like, HD-ZIP IV, WOX, MTR, GRAS, and hormone-associated candidates. RNA-seq analysis showed that CsTDRG expression was more strongly associated with floral phenotype than chromosomal sex. Genes with preferential expression in pistillate tissues were CsTT8, CsMYC1/GL3, CsGL2, CsYABBY4 and CsMIXTA-like1/MYB106, whereas CsMTR1, CsGRAS9, and CsCKX3 were upregulated in male (MF and IMF) flower. These findings suggest that sexually dimorphic trichome development in C. sativa reflects differential regulation of a shared developmental toolkit that combines conserved epidermal fate components with multicellular and glandular trichome regulatory modules.

developmental biology↗

Optimizing ex-vitro one-step RUBY-equipped hairy root transformation in drug- and hemp-type Cannabis

Using synthetic biology techniques to engineer secondary metabolic pathways through hairy root transformation is one of the most advanced approaches used in research. In this study, we optimized an ex-vitro one-step hairy root transformation of the RUBY system in both drug- and hemp-type cannabis, shedding light on its potential applications in secondary metabolite production. Three different strains of A. rhizogenes including (A4, ARqual, and K599) were used. Significant variation in HR induction and transformation efficiency (TE) was observed based on A. rhizogenes strains and seed types. Drug-type seedlings exhibited the highest hairy root induction, increasing by 58.8% compared to hemp-type seedlings. Also, the A4 strain consistently demonstrated the highest transformation efficiency (75%) irrespective of genotype, while the ARqual strain yielded the lowest one (8.33%). In conclusion, our study is the first to present an ex-vitro one-step transformation of both hemp- and drug-type cannabis. In comparison to the in vitro method, our ex-vitro method is simpler, faster, and has a lower risk of contamination, making it an excellent choice for the efficient production of secondary metabolites in cannabis using the CRISPR/Cas system.

plant biology↗