Exploring chitin: novel pathways and structures as promising targets for biopesticides.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Malkiet Kaur, Manju Nagpal, Gitika Arora Dhingra, Ankit Rathee
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引用次数: 0

Abstract

Chitin, the most prevalent polymer in nature, a significant structural polysaccharide that comes in second only to cellulose. Chitin is a crucial component of fungal cell walls and also present in many other creatures, such as viruses, plants, animals, insect exoskeletons, and crustacean shells. Chitin presents itself as a promising target for the development of biopesticides. It focuses on unraveling the unique structures and biochemical pathways associated with chitin, aiming to identify vulnerabilities that can be strategically leveraged for effective and environmentally sustainable pest control. It involves a comprehensive analysis of chitinase enzymes, chitin biosynthesis, and chitin-related processes across diverse organisms. By elucidating the molecular intricacies involved in chitin metabolism, this review seeks to unveil potential points of intervention that can disrupt essential biological processes in target pests without harming non-target species. This holistic approach to understanding chitin-related pathways aims to inform the design and optimization of biopesticides with enhanced specificity and reduced ecological impact. The outcomes of this study hold great promise for advancing innovative and eco-friendly pest management strategies. By targeting chitin structures and pathways, biopesticides developed based on these findings may offer a sustainable and selective alternative to conventional chemical pesticides, contributing to the ongoing efforts towards more environmentally conscious and effective pest control solutions.

探索甲壳素:作为生物杀虫剂有前途的目标的新途径和结构。
甲壳素是自然界中最常见的聚合物,是仅次于纤维素的重要结构多糖。甲壳素是真菌细胞壁的重要组成部分,也存在于病毒、植物、动物、昆虫外骨骼和甲壳类动物外壳等许多其他生物中。甲壳素是开发生物杀虫剂的一个前景广阔的目标。该研究侧重于揭示与甲壳素相关的独特结构和生化途径,旨在找出可被战略性利用的薄弱环节,以实现有效和环境可持续的害虫控制。该研究涉及对不同生物体内的几丁质酶、几丁质生物合成和几丁质相关过程的全面分析。通过阐明甲壳素代谢过程中的分子复杂性,本综述试图揭示潜在的干预点,从而在不伤害非目标物种的情况下破坏目标害虫的基本生物过程。这种全面了解甲壳素相关途径的方法旨在为设计和优化生物农药提供信息,从而提高特异性并减少对生态的影响。这项研究的成果为推进创新和生态友好型害虫管理策略带来了巨大希望。通过针对甲壳素结构和途径的研究,基于这些发现开发的生物农药可能会成为传统化学农药的一种可持续和选择性的替代品,从而为实现更环保、更有效的害虫控制解决方案做出贡献。
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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来源期刊
CiteScore
4.10
自引率
5.00%
发文量
55
期刊介绍: A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) is an international scientific journal and a community resource for the emerging field of natural and natural-like products. The journal publishes original research on the isolation (including structure elucidation), bio-chemical synthesis and bioactivities of natural products, their biochemistry, pharmacology, biotechnology, and their biological activity and innovative developed computational methods for predicting the structure and/or function of natural products. A Journal of Biosciences: Zeitschrift für Naturforschung C (ZNC) welcomes research papers in fields on the chemistry-biology boundary which address scientific ideas and approaches to generate and understand natural compounds on a molecular level and/or use them to stimulate and manipulate biological processes.
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