Surfing in the storm: how Paraburkholderia xenovorans thrives under stress during biodegradation of toxic aromatic compounds and other stressors.

IF 10.1 2区 生物学 Q1 MICROBIOLOGY
Valentina Méndez, Mario Sepúlveda, Katherin Izquierdo-Fiallo, Constanza C Macaya, Teresa Esparza, Ximena Báez-Matus, Roberto E Durán, Gloria Levicán, Michael Seeger
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引用次数: 0

Abstract

The adaptive mechanisms of Burkholderiales during the catabolism of aromatic compounds and abiotic stress are crucial for their fitness and performance. The aims of this report are to review the bacterial adaptation mechanisms to aromatic compounds, oxidative stress, and environmental stressful conditions, focusing on the model aromatic-degrading Paraburkholderia xenovorans LB400, other Burkholderiales, and relevant degrading bacteria. These mechanisms include (i) the stress response during aromatic degradation, (ii) the oxidative stress response to aromatic compounds, (iii) the metabolic adaptation to oxidative stress, (iv) the osmoadaptation to saline stress, (v) the synthesis of siderophore during iron limitation, (vi) the proteostasis network, which plays a crucial role in cellular function maintenance, and (vii) the modification of cellular membranes, morphology, and bacterial lifestyle. Remarkably, we include, for the first time, novel genomic analyses on proteostasis networks, carbon metabolism modulation, and the synthesis of stress-related molecules in P. xenovorans. We analyzed these metabolic features in silico to gain insights into the adaptive strategies of P. xenovorans to challenging environmental conditions. Understanding how to enhance bacterial stress responses can lead to the selection of more robust strains capable of thriving in polluted environments, which is critical for improving biodegradation and bioremediation strategies.

在风暴中冲浪:在有毒芳香化合物和其他压力源的生物降解过程中,异种拟aburkholderia xenovans如何在压力下茁壮成长。
在芳香化合物分解代谢和非生物胁迫过程中,伯克氏菌的适应机制对其适应性和生产性能至关重要。本文综述了细菌对芳香族化合物、氧化应激和环境应激条件的适应机制,重点介绍了模型芳香降解副伯克霍尔德氏菌(Paraburkholderia xenovorans LB400)、其他伯克霍尔德氏菌及相关降解细菌。这些机制包括(i)芳香降解过程中的应激反应,(ii)对芳香化合物的氧化应激反应,(iii)对氧化应激的代谢适应,(iv)对盐胁迫的渗透适应,(v)铁限制过程中铁载体的合成,(vi)在细胞功能维持中起关键作用的蛋白质平衡网络,以及(vii)细胞膜、形态和细菌生活方式的修饰。值得注意的是,我们首次对异源拟南芥的蛋白质平衡网络、碳代谢调节和应激相关分子的合成进行了新的基因组分析。我们在计算机上分析了这些代谢特征,以深入了解P. xenovorans对挑战性环境条件的适应策略。了解如何增强细菌的应激反应可以导致选择能够在污染环境中茁壮成长的更健壮的菌株,这对于改善生物降解和生物修复策略至关重要。
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
FEMS microbiology reviews
FEMS microbiology reviews 生物-微生物学
CiteScore
17.50
自引率
0.90%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Title: FEMS Microbiology Reviews Journal Focus: Publishes reviews covering all aspects of microbiology not recently surveyed Reviews topics of current interest Provides comprehensive, critical, and authoritative coverage Offers new perspectives and critical, detailed discussions of significant trends May contain speculative and selective elements Aimed at both specialists and general readers Reviews should be framed within the context of general microbiology and biology Submission Criteria: Manuscripts should not be unevaluated compilations of literature Lectures delivered at symposia must review the related field to be acceptable
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