AI Article Synopsis

  • Climate change is seriously impacting agriculture by causing shifts in cropping patterns and introducing abiotic stresses like extreme temperatures, drought, and salinity, which threaten global food security.
  • Plant hormones, particularly salicylic acid (SA), play a key role in helping plants cope with these harsh conditions, and this review delves into the genetics and molecular mechanisms of how SA works to mitigate damage from abiotic stresses.
  • The review also discusses potential advancements in genetic engineering, like CRISPR technology, to enhance plant resilience to climate change, emphasizing the importance of SA in promoting sustainable agriculture in challenging environments.

Article Abstract

Climate change, driven by human activities and natural processes, has led to critical alterations in varying patterns during cropping seasons and is a vital threat to global food security. The climate change impose several abiotic stresses on crop production systems. These abiotic stresses include extreme temperatures, drought, and salinity, which expose agricultural fields to more vulnerable conditions and lead to substantial crop yield and quality losses. Plant hormones, especially salicylic acid (SA), has crucial roles for plant resiliency under unfavorable environments. This review explores the genetics and molecular mechanisms underlying SA's role in mitigating abiotic stress-induced damage in plants. It also explores the SA biosynthesis pathways, and highlights the regulation of their products under several abiotic stresses. Various roles and possible modes of action of SA in mitigating abiotic stresses are discussed, along with unraveling the genetic mechanisms and genes involved in responses under stress conditions. Additionally, this review investigates molecular pathways and mechanisms through which SA exerts its protective effects, such as redox signaling, cross-talks with other plant hormones, and mitogen-activated protein kinase pathways. Moreover, the review discusses potentials of using genetic engineering approaches, such as CRISPR technology, for deciphering the roles of SA in enhancing plant resilience to climate change related abiotic stresses. This comprehensive analysis bridges the gap between genetics of SA role in response to climate change related stressors. Overall goal is to highlight SA's significance in safeguarding plants and by offering insights of SA hormone for sustainable agriculture under challenging environmental conditions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11180647PMC
http://dx.doi.org/10.1007/s44154-024-00160-2DOI Listing

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