Jasmonic acid (JA), one of the most pivotal plant hormones, has emerged as a central focus in plant biology research due to its extensive and diverse biological functions. This review synthesizes the significant advancements made over the past decade in understanding JA's role in regulating plant development and mediating responses to environmental stresses, areas that lacked systematic review in previous years. We provide a concise overview of JA's biosynthetic and signal transduction pathways, with particular emphasis on the key regulatory complex comprising CORONATINE INSENSITIVE 1 (COI1), jasmonate ZIM-domain proteins (JAZs), and MYC transcription factors (MYCs). The COI1-JAZs-MYCs complex serves as a master regulator of various developmental processes, including seed germination, root elongation, and leaf senescence. Although early research primarily highlighted JA's role in enhancing plant resistance to insects and pathogens through JAZ-mediated modulation of secondary metabolites, reactive oxygen species, and defense-related gene expression, recent evidence underscores its pivotal coordination with other plant hormones, regulatory genes, and metabolites in mediating responses to abiotic stresses such as drought, salinity, and temperature extremes. Furthermore, this article offers a forward-looking perspective on the future directions of JA research, emphasizing its potential applications in improving crop resilience and productivity.
Rui Wang, Teja Manda, A. Movahedi et al.· Functional Plant Biology· 0 citations
CRISPR-Cas platforms have transformed plant functional genomics, yet nucleases such as Cas9 and Cas12a remain constrained by two seemingly distinct limitations: imperfect target discrimination and inefficient intracellular delivery. Here, this review proposes that these constraints are functionally coupled through the intracellular abundance, nuclear access, and chromatin residence time of active Cas-gRNA complexes. Off-target activity arises from guide-target mismatch tolerance during R-loop formation, whereas rigid plant cell walls constrain the delivery of RNP and DNA cargo. These processes can become coupled when delivery limitations alter the concentration or duration of active Cas-gRNA exposure. When inefficient delivery is addressed through sustained or elevated nuclease expression, it can increase cumulative active Cas-gRNA exposure and may consequently increase off-target risk. Evidence from maize, rice, wheat, and carrot systems is synthesized and convergent biochemical solutions, including transgene-free RNP delivery, are outlined spanning herbaceous and woody species.
A. Movahedi· Plant Innovation Journal· 0 citations