Harnessing the Power of Zinc-Solubilizing Bacteria: A Catalyst for a Sustainable Agrosystem

Bacteria Pub Date : 2024-02-24 DOI:10.3390/bacteria3010002
Swapnil Singh, Rohit Chhabra, Ashish Sharma, Aditi Bisht
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Abstract

A variety of agrochemicals, especially fertilizers, are applied indiscriminately by farmers across trapezoidal landscapes to increase productivity and satisfy the rising food demand. Around one-third of the populace in developing nations is susceptible to zinc (Zn) deficiency as a result of their direct reliance on cereals as a source of calories. Zinc, an essential micronutrient for plants, performs several critical functions throughout the life cycle of a plant. Zinc is frequently disregarded, due to its indirect contribution to the enhancement of yield. Soil Zn deficiency is one of the most prevalent micronutrient deficiencies that reduces crop yield. A deficiency of Zn in both plants and soils results from the presence of Zn in fixed forms that are inaccessible to plants, which characterizes the majority of agricultural soils. As a result, alternative and environmentally sustainable methods are required to satisfy the demand for food. It appears that the application of zinc-solubilizing bacteria (ZSB) for sustainable agriculture is feasible. Inoculating plants with ZSB is likely a more efficacious strategy for augmenting Zn translocation in diverse edible plant components. ZSB possessing plant growth-promoting characteristics can serve as bio-elicitors to promote sustainable plant growth, through various methods that are vital to the health and productivity of plants. This review provides an analysis of the efficacy of ZSB, the functional characteristics of ZSB-mediated Zn localization, the mechanism underlying Zn solubilization, and the implementation of ZSB to increase crop yield.
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利用锌溶解细菌的力量:可持续农业系统的催化剂
为了提高生产率和满足日益增长的粮食需求,农民们在梯形的土地上滥用各种农用化学品,尤其是化肥。由于直接依赖谷物作为热量来源,发展中国家约有三分之一的人口容易缺锌。锌是植物必需的微量营养元素,在植物的整个生命周期中发挥着多种重要功能。由于锌对提高产量的间接作用,锌经常被忽视。土壤缺锌是导致作物减产的最普遍的微量营养元素缺乏症之一。植物和土壤缺锌的原因是锌以植物无法获取的固定形式存在,而这正是大多数农业土壤的特点。因此,需要采用环境可持续的替代方法来满足对粮食的需求。在可持续农业中应用锌溶解菌(ZSB)似乎是可行的。给植物接种锌溶解菌可能是一种更有效的策略,可增强锌在多种可食用植物成分中的转运。具有促进植物生长特性的 ZSB 可以作为生物诱导剂,通过各种对植物的健康和生产力至关重要的方法促进植物的可持续生长。本综述分析了 ZSB 的功效、ZSB 介导的锌定位的功能特点、锌增溶的内在机制,以及如何利用 ZSB 提高作物产量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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