A promiscuous Bcd amino acid dehydrogenase promotes biofilm development in Bacillus subtilis.

IF 7.8 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
David Ranava, Stephen M Lander, Szu-Yu Kuan, Jonathan D Winkelman, Arthur Prindle, Mee-Ngan F Yap
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Abstract

Glutamate dehydrogenase (GDH) resides at the crossroads of nitrogen and carbon metabolism, catalyzing the reversible conversion of L-glutamate to α-ketoglutarate and ammonium. GDH paralogs are ubiquitous across most species, presumably enabling functional specialization and genetic compensation in response to diverse conditions. Staphylococcus aureus harbors a single housekeeping GDH (GudB), whereas Bacillus subtilis encodes both a major and a minor GDH, GudB and RocG, respectively. In an unsuccessful attempt to identify an alternative GDH in S. aureus, we serendipitously discovered previously unrecognized GDH activity in two metabolic enzymes of B. subtilis. The hexameric Val/Leu/Ile dehydrogenase Bcd (formerly YqiT) catabolizes branched-chain amino acids and to a lesser extent glutamate using NAD+ as a cofactor. Removal of gudB and rocG unmasks the dual NAD(P)+-dependent GDH activity of RocA, which otherwise functions as a 3-hydroxy-1-pyrroline-5-carboxylate dehydrogenase. Bcd homologs are prevalent in free-living and obligate bacteria but are absent in most, if not all, staphylococci. Despite low sequence homology, Bcd structurally resembles the GudB/RocG family and can functionally compensate for the loss of GudB in S. aureus. Bcd is essential for the full maturation of biofilms. B. subtilis lacking GDHs exhibits severe impairments in rugose architecture and colony expansion of biofilms. This study underscores the importance of metabolic redundancy and highlights the critical role of substrate promiscuity in GDHs during biofilm development.

混杂的Bcd氨基酸脱氢酶促进枯草芽孢杆菌生物膜的发育。
谷氨酸脱氢酶(Glutamate dehydrogenase, GDH)位于氮和碳代谢的十字路口,催化l -谷氨酸可逆转化为α-酮戊二酸和铵。GDH的类似物在大多数物种中普遍存在,可能使功能专业化和遗传补偿能够应对不同的条件。金黄色葡萄球菌拥有一个单一的管家GDH (GudB),而枯草芽孢杆菌分别编码一个主GDH和一个小GDH, GudB和RocG。在一次不成功的尝试中鉴定金黄色葡萄球菌中的替代GDH,我们偶然发现了以前未被识别的枯草芽孢杆菌的两种代谢酶中的GDH活性。六聚体Val/Leu/Ile脱氢酶Bcd(以前称为YqiT)使用NAD+作为辅助因子分解支链氨基酸和在较小程度上分解谷氨酸。去除gudB和rocG揭示了RocA的双重NAD(P)+依赖性GDH活性,否则其功能是3-羟基-1-吡咯烷-5-羧酸脱氢酶。Bcd同源物在自由生活和专性细菌中普遍存在,但在大多数(如果不是全部)葡萄球菌中不存在。尽管序列同源性较低,但Bcd在结构上与GudB/RocG家族相似,可以在功能上弥补金黄色葡萄球菌中GudB的缺失。Bcd对生物膜的完全成熟至关重要。缺乏GDHs的枯草芽孢杆菌在皱褶结构和生物膜的菌落扩张方面表现出严重的损伤。这项研究强调了代谢冗余的重要性,并强调了生物膜发育过程中底物混杂在GDHs中的关键作用。
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来源期刊
npj Biofilms and Microbiomes
npj Biofilms and Microbiomes Immunology and Microbiology-Microbiology
CiteScore
12.10
自引率
3.30%
发文量
91
审稿时长
9 weeks
期刊介绍: npj Biofilms and Microbiomes is a comprehensive platform that promotes research on biofilms and microbiomes across various scientific disciplines. The journal facilitates cross-disciplinary discussions to enhance our understanding of the biology, ecology, and communal functions of biofilms, populations, and communities. It also focuses on applications in the medical, environmental, and engineering domains. The scope of the journal encompasses all aspects of the field, ranging from cell-cell communication and single cell interactions to the microbiomes of humans, animals, plants, and natural and built environments. The journal also welcomes research on the virome, phageome, mycome, and fungome. It publishes both applied science and theoretical work. As an open access and interdisciplinary journal, its primary goal is to publish significant scientific advancements in microbial biofilms and microbiomes. The journal enables discussions that span multiple disciplines and contributes to our understanding of the social behavior of microbial biofilm populations and communities, and their impact on life, human health, and the environment.
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