壳聚糖纳米共轭物:面对气候变化,提高作物抗旱能力和可持续产量的可行解决方案

Nalini Arun Shinde , Prashant Govindrao Kawar , Sunil Govind Dalvi
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引用次数: 0

摘要

气候变化给农业带来了重大挑战,通过各种途径影响作物生产,如干旱加剧、气温升高、降雨模式改变、极端天气事件和虫害动态变化。这些变化对全球粮食安全和生计构成威胁,原因是产量减少、作物质量下降以及更容易受到病虫害的影响。为了保护农作物和提高抗灾能力,应对气候变化和采用可持续农业做法对于实现可持续生产力至关重要。本综述强调了壳聚糖纳米共轭物作为革新农业实践的工具的潜力,有助于应对气候变化对作物生产和粮食安全带来的挑战。环境胁迫会引发植物的一系列反应,包括生长速度、生产力、细胞代谢和基因表达改变。缺水胁迫是气候变化对植物的主要影响之一,它会破坏水分关系、导致新陈代谢紊乱、产生活性氧并导致作物受损。为了消除这些不利影响,壳聚糖这种天然聚合物成为农业领域一种前景广阔的生物刺激剂和诱导剂。壳聚糖无毒、可生物降解、生物相容性好,因此非常适合各种应用。壳聚糖能增强植物的生理反应,并通过激活胁迫转导途径来减轻非生物胁迫的负面影响。壳聚糖纳米共轭物是将壳聚糖与金属纳米颗粒结合在一起形成的,具有改良的结构和功能特性,使其能够更有效地减轻植物中与胁迫相关的影响。它们智能而缓慢的输送机制使其在可持续地促进植物生长和发育方面取得了成功。此外,将金属或元素封装在壳聚糖中可降低毒性,实现缓释特性,并确保效果持久。纳米共轭物已被成功用于农作物和园艺作物的预处理,以增强其对非生物胁迫的耐受性,促进可持续增产。鉴于其良好的效果,使用纳米共轭物为农作物打底和促进可持续增产值得在农业纳米技术领域继续探索和发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chitosan-based nanoconjugates: A promising solution for enhancing crops drought-stress resilience and sustainable yield in the face of climate change

Climate change poses significant challenges to agriculture, impacting crop production through various means such as rising drought, temperatures, altered rainfall patterns, extreme weather events, and changing pest dynamics. These changes pose a threat to global food security and livelihoods due to reduced yields, lower crop quality, and increased vulnerability to pests and diseases. To safeguard crops and build resilience, addressing climate change and adopting sustainable agricultural practices is crucial for sustainable productivity. The review highlights the chitosan based nanoconjugates potential as a tool to revolutionize agricultural practices and help to address the challenges posed by climate change on crop production and food security. Environmental stresses trigger a range of responses in plants, including changes to growth rate, productivity, cellular metabolism, and gene expression alterations. One of the paramount impacts of climate change on plants is water deficit stress, which disrupts water relations, causes metabolic disturbances, generates reactive oxygen species, and leads to crop damage. To counteract these adverse effects, chitosan, a naturally occurring polymer emerged as a promising biostimulator and elicitor in agriculture. Its non-toxic, biodegradable, and biocompatible properties make it well-suited for various applications. Chitosan enhances physiological responses in plants and helps to mitigate the negative impacts of abiotic stresses by activating stress transduction pathways. Chitosan nanoconjugates, formed by integrating chitosan with metallic nanoparticles, exhibit modified structural and functional properties, making them more effective in mitigating stress-related effects in plants. Their intelligent and slow delivery mechanisms contribute to their success in enhancing plant growth and development sustainably. Additionally, the encapsulation of metals or elements in chitosan reduces toxicity, enables slow-release properties, and ensures long-lasting effects. Nanoconjugates have been successfully utilized for priming agricultural and horticultural crops to enhance their tolerance to abiotic stress and promote sustainable yield improvement. Given their promising results, the use of nanoconjugates for priming agricultural crops and promoting sustainable yield improvement warrants continued exploration and development in the field of agricultural nanotechnology.

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