内共生体作为三方相互作用病理系统的隐藏参与者和可持续病毒性疾病管理的潜在候选者。

IF 8.1 2区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Muhammad Dilshad Hussain, Tahir Farooq, Ali Kamran, Abdul Basit, Yong Wang, Guy Smagghe, Xiangru Chen
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引用次数: 0

摘要

植物、病毒和承载细菌内共生体的节肢动物载体之间错综复杂的关系是有害植物病毒性疾病传播的关键。内共生体在控制宿主反应、影响昆虫对农药的抗性、塑造昆虫进化和促进病毒获取、保留和传播方面发挥关键作用。这种相互作用为制定管理植物病害的可持续战略提供了一种创新方法。通过基因修饰、生物技术进步和RNA干扰靶向特定内共生体的最新进展显示出抑制病毒传播和疾病进展的潜力。此外,利用CRISPR/Cas9等合成生物学技术来设计内共生生物并破坏病毒在节肢动物载体中传播所必需的关键相互作用,有望采取有效的控制措施。在这篇综述中,这些专性和兼性细菌的关键已经讨论了详细的机制参与调节和/或抑制相互作用的三方途径。此外,我们还深入了解了内共生体在昆虫生物学、植物免疫和病毒获取和传播方面的协同和拮抗作用。最后,我们指出了利用基因工程共生体影响植物-病毒-载体相互作用以实现病害可持续管理的未来研究问题和研究方向。通过解决现有的知识差距和绘制未来的研究路径,更深入地理解内共生体在植物-病毒-载体相互作用中的作用,可以为创新和成功的疾病管理策略铺平道路。利用工程化的内共生体探索抗病毒疗法、异源性和病原体阻断策略,为减轻植物病毒性疾病和绿色害虫管理的影响提供了开创性的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Endosymbionts as hidden players in tripartite pathosystem of interactions and potential candidates for sustainable viral disease management.

The convoluted relationships between plants, viruses, and arthropod vectors housing bacterial endosymbionts are pivotal in the spread of harmful plant viral diseases. Endosymbionts play key roles in: manipulating host responses, influencing insect resistance to pesticides, shaping insect evolution, and bolstering virus acquisition, retention, and transmission. This interplay presents an innovative approach for developing sustainable strategies to manage plant diseases. Recent progress in targeting specific endosymbionts through genetic modifications, biotechnological advancements, and RNA interference shows potential for curbing viral spread and disease progression. Additionally, employing synthetic biology techniques like CRISPR/Cas9 to engineer endosymbionts and disrupt crucial interactions necessary for viral transmission in arthropod vectors holds promise for effective control measures. In this review, these obligate and facultative bacterial cruxes have been discussed to elaborate on their mechanistic involvement in the regulation and/or inhibition of tripartite pathways of interactions. Furthermore, we provide an in-depth understanding of endosymbionts' synergistic and antagonistic effects on: insect biology, plant immunity, and virus acquisition and transmission. Finally, we point out open questions for future research and provide research directions concerning the deployment of genetically engineered symbionts to affect plant-virus-vector interactions for sustainable disease management. By addressing existing knowledge gaps and charting future research paths, a deeper comprehension of the role of endosymbionts in plant-virus-vector interactions can pave the way for innovative and successful disease management strategies. The exploration of antiviral therapies, paratransgenesis, and pathogen-blocking tactics using engineered endosymbionts introduces pioneering solutions for lessening the impact of plant viral diseases and green pest management.

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来源期刊
Critical Reviews in Biotechnology
Critical Reviews in Biotechnology 工程技术-生物工程与应用微生物
CiteScore
20.80
自引率
1.10%
发文量
71
审稿时长
4.8 months
期刊介绍: Biotechnological techniques, from fermentation to genetic manipulation, have become increasingly relevant to the food and beverage, fuel production, chemical and pharmaceutical, and waste management industries. Consequently, academic as well as industrial institutions need to keep abreast of the concepts, data, and methodologies evolved by continuing research. This journal provides a forum of critical evaluation of recent and current publications and, periodically, for state-of-the-art reports from various geographic areas around the world. Contributing authors are recognized experts in their fields, and each article is reviewed by an objective expert to ensure accuracy and objectivity of the presentation.
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