核相关蛋白:微生物适应的分子机制。

IF 4.2 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Harsh V Purohit
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引用次数: 0

摘要

核相关蛋白(nap)是细菌染色体组织和基因表达的重要调节因子,使微生物能够适应环境波动。细菌在氧化应激、温度变化、渗透波动和营养限制等方面的压力越来越大,所有这些都是气候变化的后果。主要的nap包括H-NS、Fis、HU、IHF、Lrp和Dps,它们通过调节应对压力和重塑染色体结构的基因,对微生物的恢复力有重要贡献。承受极端环境的能力取决于这些蛋白质,它们介导基因沉默、转录激活和DNA保护。除了它们在适应压力方面的基本功能外,nap在生物技术发展方面也有巨大的前景。它们在环境刺激下调节基因表达的能力可以用来创造更能抵抗压力的微生物菌株,这将在生物修复、农业和工业发酵等领域有用。它们对休眠调节和水平基因转移的影响为更好的微生物工程技术和对抗抗生素耐药性打开了大门。在合成生物学中,通过对NAP活性的微调,可以增强外源基因的表达,优化代谢途径,设计生物传感器以响应不断变化的环境条件。嗜极微生物的NAP变异、它们与全球调节因子的关系以及它们在开发能够抵御气候变化的微生物系统中的可能效用是新的研究主题。深入了解这些蛋白质的分子水平可能为维持动态生态系统中微生物驱动的活动提供新的方法。科学家可以通过将生物技术与环境微生物学和nap驱动的调控机制相结合,创造更有弹性的微生物系统来适应不断变化的条件,从而帮助实现全球可持续性倡议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nucleoid-associated proteins: molecular mechanisms in microbial adaptation.

Nucleoid-associated proteins (NAPs) are essential regulators of bacterial chromosomal organization and gene expression, enabling microbes to adapt to environmental fluctuations. Bacteria are under increasing pressure from oxidative stress, temperature changes, osmotic fluctuations, and nutritional constraints, all of which are consequences of climate change. Major NAPs including H-NS, Fis, HU, IHF, Lrp, and Dps contribute significantly to microbial resilience by regulating genes that respond to stress and reshape chromosomal architecture. The ability to withstand extreme environments depends on these proteins, which mediate gene silencing, transcriptional activation, and DNA protection. In addition to their essential function in stress adaption, NAPs have tremendous promise for biotechnological developments. Their ability to regulate gene expression in reaction to stimuli in the environment can be used to create microbial strains that are more resistant to stress, which would be useful in fields such as bioremediation, farming, and industrial fermentation. Their impact on dormancy regulation and horizontal gene transfer opens doors for better microbial engineering techniques and the fight against antibiotic resistance. Enhancing heterologous gene expression, optimizing metabolic pathways, and designing biosensors responsive to changing environmental conditions are all possible through fine-tuning NAP activity in synthetic biology. Extremophilic NAP variations, their relationships with global regulators, and their possible utility in developing microbial systems that can withstand climate change are the topics of new research. An in-depth molecular-level understanding of these proteins may provide novel approaches to maintaining microbial-driven activities in dynamic ecosystems. Researchers can help with worldwide sustainability initiatives by creating more resilient microbial systems that can adapt to changing conditions by combining biotechnology with environmental microbiology and NAP-driven regulatory mechanisms.

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来源期刊
World journal of microbiology & biotechnology
World journal of microbiology & biotechnology 工程技术-生物工程与应用微生物
CiteScore
6.30
自引率
2.40%
发文量
257
审稿时长
2.5 months
期刊介绍: World Journal of Microbiology and Biotechnology publishes research papers and review articles on all aspects of Microbiology and Microbial Biotechnology. Since its foundation, the Journal has provided a forum for research work directed toward finding microbiological and biotechnological solutions to global problems. As many of these problems, including crop productivity, public health and waste management, have major impacts in the developing world, the Journal especially reports on advances for and from developing regions. Some topics are not within the scope of the Journal. Please do not submit your manuscript if it falls into one of the following categories: · Virology · Simple isolation of microbes from local sources · Simple descriptions of an environment or reports on a procedure · Veterinary, agricultural and clinical topics in which the main focus is not on a microorganism · Data reporting on host response to microbes · Optimization of a procedure · Description of the biological effects of not fully identified compounds or undefined extracts of natural origin · Data on not fully purified enzymes or procedures in which they are applied All articles published in the Journal are independently refereed.
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