解尿产败芽孢杆菌QCSJ3的基因组和功能鉴定及其在自愈胶凝复合材料中的应用

IF 4.2 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Graciela Mânica, Caroline Schmitz, José Matías Irazoqui, Ariel Fernando Amadio, Melanie Acevedo, Rafael Mascolo, Hinoel Zamis Ehrenbring, Claucia Fernanda Volken de Souza
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引用次数: 0

摘要

开发可持续、耐用的建筑材料对于减少民用基础设施的环境足迹和应对全球气候挑战至关重要。本研究提出了一种基于微生物的胶凝复合材料裂缝修复策略,旨在延长结构耐久性并减少对碳密集型修复的需求。从巴西南部富含碳酸盐的土壤中分离到一株本地溶尿菌,经全基因组测序鉴定为芽孢杆菌(Bacillus bombysepticus QCSJ3)。功能注释显示,B. bombysepticus QCSJ3具有通过尿溶途径沉淀碳酸钙所需的遗传机制及其相关遗传成分。该菌株在自由和封装形式的胶凝标本的混合和成型过程中被纳入,有或没有尿素补充。70天后,包封的B. bombysepticus QCSJ3在尿素中处理后,400 μm以下的裂纹完全愈合(100%),抗拉强度增加19%。自由形式的应用也显示了大量的裂缝关闭(高达86%)。这些结果证明了将微生物生物技术与建筑材料相结合,开发自修复复合材料的可行性,这种复合材料可以减少维修频率,延长使用寿命,促进基础设施的气候适应性。这项研究提供了基因组和功能证据,支持将封装的解尿微生物作为一种可扩展的、生态高效的解决方案,符合可持续发展目标13 (SDG13)——气候行动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genomic and functional characterization of ureolytic Bacillus bombysepticus QCSJ3 and its application in self-healing cementitious composites through encapsulation.

Developing sustainable, long-lasting building materials is essential for reducing the environmental footprint of civil infrastructure and addressing global climate challenges. This study presents a microbial-based strategy for healing cracks in cementitious composites, aiming to extend structural durability and reduce the need for carbon-intensive repairs. An autochthonous ureolytic strain was isolated from carbonate-rich soils in southern Brazil and identified as Bacillus bombysepticus QCSJ3 through whole-genome sequencing. Functional annotation revealed that B. bombysepticus QCSJ3 possesses the genetic machinery required for calcium carbonate precipitation through the ureolytic pathway and its associated genetic components. The strain was incorporated during the mixing and molding of cementitious specimens in both free and encapsulated forms, with or without urea Supplementation. After 70 days, specimens treated with encapsulated B. bombysepticus QCSJ3 in the presence of urea exhibited complete (100%) healing of cracks up to 400 μm, as well as a 19% increase in tensile strength. Free-form application also demonstrated substantial crack closure (up to 86%). These results demonstrate the feasibility of integrating microbial biotechnology with building materials to develop self-healing composites that reduce repair frequency, extend service life, and promote climate-resilient infrastructure. This study provides both genomic and functional evidence Supporting the use of encapsulated ureolytic microorganisms as a scalable and eco-efficient solution aligned with the Sustainable Development Goal 13 (SDG13) - Climate Action.

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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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