Kumari Ankita, Gupta Ashish Kumar, Sharma Shivika, Jadon Vikash S, Sharma Vikas, Chun Se Chul, Sivanesan Iyyakkannu
Molecular Biology and Genetic Engineering Domain, School of Bioengineering and Bioscience, Lovely Professional University, Phagwara-Jalandhar 144411, Punjab, India.
ICAR-National Institute for Plant Biotechnology, Pusa Campus, New Delhi 110012, India.
Plants (Basel). 2024 May 31;13(11):1528. doi: 10.3390/plants13111528.
Plants, being sessile, are continuously exposed to varietal environmental stressors, which consequently induce various bio-physiological changes in plants that hinder their growth and development. Oxidative stress is one of the undesirable consequences in plants triggered due to imbalance in their antioxidant defense system. Biochemical studies suggest that nanoparticles are known to affect the antioxidant system, photosynthesis, and DNA expression in plants. In addition, they are known to boost the capacity of antioxidant systems, thereby contributing to the tolerance of plants to oxidative stress. This review study attempts to present the overview of the role of nanoparticles in plant growth and development, especially emphasizing their role as antioxidants. Furthermore, the review delves into the intricate connections between nanoparticles and plant signaling pathways, highlighting their influence on gene expression and stress-responsive mechanisms. Finally, the implications of nanoparticle-assisted antioxidant strategies in sustainable agriculture, considering their potential to enhance crop yield, stress tolerance, and overall plant resilience, are discussed.
植物由于固着生长,不断受到各种环境胁迫,从而在植物体内引发各种生物生理变化,阻碍其生长发育。氧化应激是植物抗氧化防御系统失衡引发的不良后果之一。生化研究表明,纳米颗粒已知会影响植物的抗氧化系统、光合作用和DNA表达。此外,已知它们能增强抗氧化系统的能力,从而有助于植物对氧化应激的耐受性。本综述研究试图概述纳米颗粒在植物生长发育中的作用,尤其强调它们作为抗氧化剂的作用。此外,该综述深入探讨了纳米颗粒与植物信号通路之间的复杂联系,突出了它们对基因表达和应激反应机制的影响。最后,讨论了纳米颗粒辅助抗氧化策略在可持续农业中的意义,考虑到它们在提高作物产量、胁迫耐受性和整体植物恢复力方面的潜力。