Department of Technology, Savitribai Phule Pune University, Pune 411007, MH, India.
Department of Chemical and Product Safety, German Federal Institute for Risk Assessment (BfR), Max-Dohrn-Strasse, 10589 Berlin, Germany.
Sci Total Environ. 2024 Nov 15;951:175118. doi: 10.1016/j.scitotenv.2024.175118. Epub 2024 Aug 2.
Abiotic and biotic stresses during seed germination are typically managed with conventional agrochemicals, known to harm the environment and reduce crop yields. Seeking sustainable alternatives, nanotechnology-based agrochemicals leverage unique physical and chemical properties to boost seed health and alleviate stress during germination. Nanoprimers in seed priming treatment are advanced nanoscale materials designed to enhance seed germination, growth, and stress tolerance by delivering bioactive compounds and nutrients directly to seeds. Present review aims to explores the revolutionary potential of nanoprimers in sustainable seed treatment, focusing on their ability to enhance crop productivity by improving tolerance to abiotic and biotic stresses. Key objectives include understanding the mechanisms by which nanoprimers confer resistance to stresses such as drought, salinity, pests, and diseases, and assessing their impact on plant physiological and biochemical pathways. Key findings reveal that nanoprimers significantly enhance seedling vigor and stress resilience, leading to improved crop yields. These advancements are attributed to the precise delivery of nanomaterials that optimize plant growth conditions and activate stress tolerance mechanisms. However, the study also highlights the importance of comprehensive toxicity and risk assessments. Current review presents a novel contribution, highlighting both the advantages and potential risks of nanoprimers by offering a comprehensive overview of advancements in seed priming with metal and metal oxide nanomaterials, addressing a significant gap in the existing literature. By delivering advanced molecular insights, the study underscores the transformative potential of nanoprimers in fostering sustainable agricultural practices and responsibly meeting global food demands.
在种子萌发过程中,非生物和生物胁迫通常可以用传统的农用化学品来处理,但这些化学品已知会对环境造成危害并降低作物产量。为了寻求可持续的替代方案,基于纳米技术的农用化学品利用独特的物理和化学性质来促进种子健康并减轻萌发过程中的压力。纳米引发剂在种子引发处理中是先进的纳米级材料,旨在通过将生物活性化合物和养分直接输送到种子中来增强种子的萌发、生长和抗逆性。本综述旨在探讨纳米引发剂在可持续种子处理中的革命性潜力,重点研究其通过提高对非生物和生物胁迫的耐受性来提高作物生产力的能力。主要目标包括了解纳米引发剂赋予对干旱、盐度、害虫和疾病等胁迫的抗性的机制,并评估它们对植物生理和生化途径的影响。主要发现表明,纳米引发剂可显著增强幼苗活力和抗逆性,从而提高作物产量。这些进展归因于纳米材料的精确传递,这些纳米材料优化了植物生长条件并激活了抗逆性机制。然而,该研究还强调了全面的毒性和风险评估的重要性。本综述提出了一个新颖的贡献,通过提供金属和金属氧化物纳米材料在种子引发方面的最新进展的全面概述,强调了纳米引发剂的优点和潜在风险,解决了现有文献中的一个重大差距。通过提供先进的分子见解,该研究强调了纳米引发剂在促进可持续农业实践和负责任地满足全球粮食需求方面的变革潜力。