Narayanan Mathiyazhagan, Ma Ying
Division of Research and Innovation, Department of Biotechnology, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Science, Chennai, Tamil Nadu, India.
College of Resources and Environment, Southwest University, Chongqing, 400716, China.
Environ Res. 2023 Apr 1;222:115413. doi: 10.1016/j.envres.2023.115413. Epub 2023 Feb 1.
The heavy metal contamination, which causes toxic effects on plants, has evolved into a significant constraint to plant quality and yield. This scenario has been exacerbated by booming population expansion and intrinsic food insecurity. Numerous studies have found that counteracting heavy metal tolerance and accumulation necessitates complex mechanisms at the biochemical, molecular, tissue, cellular and whole plant levels, which may demonstrate increased crop yields. Essential and non-essential elements have similar harmful impacts on plants including reduced biomass production, growth and photosynthesis inhibition, chlorosis, altered fluid balance and nutrient absorption, as well as senescence, all of which led to plant death. Notable biotechnological strategies for effective remediation require knowledge of metal stress and tolerance mechanisms in plants. Assimilation, cooperation and integration, of biotechnological improvements, are required for adequate environmental rehabilitation in the emerging area of bioremediation. This review emphasizes a deeper understanding of metal toxicity, stress, and potential tolerance mechanisms in plants exposed to metal stress. The microbe-mediated metal toxic effects and stress mitigation knowledge can be used to create a new strategic plan as feasible, sustainable, and environmentally friendly bioremediation techniques.
重金属污染对植物产生毒性作用,已成为制约植物品质和产量的重要因素。人口膨胀和内在的粮食不安全状况加剧了这种情况。众多研究发现,对抗重金属耐受性和积累需要在生化、分子、组织、细胞和整株植物水平上具备复杂机制,这可能会提高作物产量。必需元素和非必需元素对植物有类似的有害影响,包括生物量生产减少、生长和光合作用受抑制、黄化、流体平衡和养分吸收改变以及衰老,所有这些都会导致植物死亡。有效的修复所需的显著生物技术策略需要了解植物中的金属胁迫和耐受机制。在生物修复这一新兴领域,为实现充分的环境修复,需要生物技术改进的同化、协作和整合。本综述强调更深入地了解金属胁迫下植物中的金属毒性、胁迫及潜在耐受机制。微生物介导的金属毒性作用和胁迫缓解知识可用于制定一项可行、可持续且环境友好的生物修复技术新战略计划。