Progressive Agriculture
  • Year: 2024
  • Volume: 24
  • Issue: 2

Physiological, Biochemical, and Molecular Basis of Plant Responses to Drought Stress

Genetics and Plant breeding, College of Agriculture, Sardar Vallabhbhai Patel University of Agriculture and Technology, MeerutUttar Pradesh, India

Abstract

The survival of plants in arid environments relies on their intricate responses to drought stress, encompassing physiological, biochemical, and molecular mechanisms. In the face of limited water availability, plants exhibit remarkable adaptations to minimize water loss and sustain vital functions. Physiologically, stomatal closure reduces transpirational water loss, while growth reduction and wilting help conserve water. Root growth alterations enable exploration of deeper soil layers for water acquisition. Biochemically, osmotic adjustment through accumulation of compatible solutes maintains cellular turgor pressure. Antioxidant production counteracts reactive oxygen species (ROS) induced by water stress. Notably, abscisic acid (ABA) accumulates, orchestrating stress responses including stomatal closure and gene regulation. Molecularly, gene expression changes underlie the activation of stress-responsive genes. Transcription factors like DREB and bZIP modulate gene expression, while ABA-dependent and ABA-independent pathways govern signaling. LEA proteins and chaperones shield cellular structures, and microRNAs fine-tune post-transcriptional regulation. This comprehensive framework underscores the remarkable capacity of plants to adapt to drought stress through an integrated network of physiological, biochemical, and molecular strategies. Understanding these responses holds promise for enhancing crop resilience and agricultural sustainability in water-scarce environments.