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脂肪酸合成敲低促进枯草芽孢杆菌生物膜起皱并抑制孢子形成。

Fatty Acid Synthesis Knockdown Promotes Biofilm Wrinkling and Inhibits Sporulation in Bacillus subtilis.

机构信息

Department of Bioengineering, Stanford Universitygrid.168010.e School of Medicine, Stanford, California, USA.

Department of Molecular and Cellular Physiology, Stanford Universitygrid.168010.e School of Medicine, Stanford, California, USA.

出版信息

mBio. 2022 Oct 26;13(5):e0138822. doi: 10.1128/mbio.01388-22. Epub 2022 Sep 7.

Abstract

Many bacterial species typically live in complex three-dimensional biofilms, yet much remains unknown about differences in essential processes between nonbiofilm and biofilm lifestyles. Here, we created a CRISPR interference (CRISPRi) library of knockdown strains covering all known essential genes in the biofilm-forming Bacillus subtilis strain NCIB 3610 and investigated growth, biofilm colony wrinkling, and sporulation phenotypes of the knockdown library. First, we showed that gene essentiality is largely conserved between liquid and surface growth and between two media. Second, we quantified biofilm colony wrinkling using a custom image analysis algorithm and found that fatty acid synthesis and DNA gyrase knockdown strains exhibited increased wrinkling independent of biofilm matrix gene expression. Third, we designed a high-throughput screen to quantify sporulation efficiency after essential gene knockdown; we found that partial knockdowns of essential genes remained competent for sporulation in a sporulation-inducing medium, but knockdown of essential genes involved in fatty acid synthesis exhibited reduced sporulation efficiency in LB, a medium with generally lower levels of sporulation. We conclude that a subset of essential genes are particularly important for biofilm structure and sporulation/germination and suggest a previously unappreciated and multifaceted role for fatty acid synthesis in bacterial lifestyles and developmental processes. For many bacteria, life typically involves growth in dense, three-dimensional communities called biofilms that contain cells with differentiated roles held together by extracellular matrix. To examine how essential gene function varies between vegetative growth and the developmental states of biofilm formation and sporulation, we created and screened a comprehensive library of strains using CRISPRi to knockdown expression of each essential gene in the biofilm-capable Bacillus subtilis strain 3610. High-throughput assays and computational algorithms identified a subset of essential genes involved in biofilm wrinkling and sporulation and indicated that fatty acid synthesis plays important and multifaceted roles in bacterial development.

摘要

许多细菌通常生活在复杂的三维生物膜中,但对于非生物膜和生物膜生活方式之间的基本过程差异,仍有许多未知。在这里,我们创建了一个 CRISPR 干扰(CRISPRi)敲低菌株库,涵盖了生物膜形成的枯草芽孢杆菌菌株 NCIB 3610 中所有已知的必需基因,并研究了敲低文库的生长、生物膜菌落皱缩和孢子形成表型。首先,我们表明基因的必需性在液体和表面生长以及两种培养基之间基本保持一致。其次,我们使用自定义的图像分析算法量化了生物膜菌落皱缩,并发现脂肪酸合成和 DNA 回旋酶敲低菌株表现出了独立于生物膜基质基因表达的增加皱缩。第三,我们设计了一个高通量筛选来量化必需基因敲低后的孢子形成效率;我们发现,必需基因的部分敲低仍然能够在诱导孢子形成的培养基中进行孢子形成,但涉及脂肪酸合成的必需基因的敲低在 LB 中表现出降低的孢子形成效率,LB 是一种通常较低水平孢子形成的培养基。我们得出的结论是,一组必需基因对于生物膜结构和孢子形成/萌发特别重要,并表明脂肪酸合成在细菌生活方式和发育过程中具有以前未被认识到的多方面作用。对于许多细菌来说,生活通常涉及到在称为生物膜的密集的三维群落中生长,生物膜包含具有不同作用的细胞,这些细胞由细胞外基质连接在一起。为了研究必需基因功能在营养生长和生物膜形成和孢子形成的发育状态之间如何变化,我们使用 CRISPRi 创建并筛选了一个全面的菌株文库,以敲低能够形成生物膜的枯草芽孢杆菌菌株 3610 中的每个必需基因的表达。高通量测定和计算算法确定了参与生物膜皱缩和孢子形成的必需基因的子集,并表明脂肪酸合成在细菌发育中起着重要的多方面作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6fff/9600695/017c6da646f8/mbio.01388-22-f001.jpg

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