Harnessing the dual nature of W. coagulans for sustainable production of biomaterials and development of functional food

IF 5.7 2区 生物学 Microbial Biotechnology Pub Date : 2024-04-09 DOI:10.1111/1751-7915.14449
Emanuela Maresca, Martina Aulitto, Patrizia Contursi
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Abstract

Bacillus coagulans, recently renamed Weizmannia coagulans, is a spore-forming bacterium that has garnered significant interest across various research fields, ranging from health to industrial applications. The probiotic properties of W. coagulans enhance intestinal digestion, by releasing prebiotic molecules including enzymes that facilitate the breakdown of not-digestible carbohydrates. Notably, some enzymes from W. coagulans extend beyond digestive functions, serving as valuable biotechnological tools and contributing to more sustainable and efficient manufacturing processes. Furthermore, the homofermentative thermophilic nature of W. coagulans renders it an exceptional candidate for fermenting foods and lignocellulosic residues into L-(+)-lactic acid. In this review, we provide an overview of the dual nature of W. coagulans, in functional foods and for the development of bio-based materials.

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利用凝结球菌的双重特性促进生物材料的可持续生产和功能食品的开发
凝结芽孢杆菌(最近更名为魏茨曼氏凝结芽孢杆菌)是一种孢子形成菌,在从健康到工业应用的各个研究领域都引起了极大的兴趣。凝结球菌具有益生特性,可通过释放益生分子(包括促进分解不易消化的碳水化合物的酶)来促进肠道消化。值得注意的是,凝结禾本科植物中的一些酶超出了消化功能的范围,成为宝贵的生物技术工具,有助于提高生产过程的可持续性和效率。此外,凝结球菌的嗜热同源发酵特性使其成为将食物和木质纤维素残渣发酵成 L-(+)-乳酸的理想候选菌。在这篇综述中,我们将概述凝结桨菌在功能性食品和生物基材料开发中的双重特性。
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来源期刊
Microbial Biotechnology
Microbial Biotechnology Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
11.20
自引率
3.50%
发文量
162
审稿时长
1 months
期刊介绍: Microbial Biotechnology publishes papers of original research reporting significant advances in any aspect of microbial applications, including, but not limited to biotechnologies related to: Green chemistry; Primary metabolites; Food, beverages and supplements; Secondary metabolites and natural products; Pharmaceuticals; Diagnostics; Agriculture; Bioenergy; Biomining, including oil recovery and processing; Bioremediation; Biopolymers, biomaterials; Bionanotechnology; Biosurfactants and bioemulsifiers; Compatible solutes and bioprotectants; Biosensors, monitoring systems, quantitative microbial risk assessment; Technology development; Protein engineering; Functional genomics; Metabolic engineering; Metabolic design; Systems analysis, modelling; Process engineering; Biologically-based analytical methods; Microbially-based strategies in public health; Microbially-based strategies to influence global processes
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