Department of Microbiology and Immunology, Carver College of Medicine, University of Iowa, Iowa City, IA 52242.
Department of Chemistry, University of Virginia, Charlottesville, VA 22904.
Proc Natl Acad Sci U S A. 2024 Aug 20;121(34):e2408540121. doi: 10.1073/pnas.2408540121. Epub 2024 Aug 16.
Most bacteria are surrounded by a cell wall that contains peptidoglycan (PG), a large polymer composed of glycan strands held together by short peptide cross-links. There are two major types of cross-links, termed 4-3 and 3-3 based on the amino acids involved. 4-3 cross-links are created by penicillin-binding proteins, while 3-3 cross-links are created by L,D-transpeptidases (LDTs). In most bacteria, the predominant mode of cross-linking is 4-3, and these cross-links are essential for viability, while 3-3 cross-links comprise only a minor fraction and are not essential. However, in the opportunistic intestinal pathogen about 70% of the cross-links are 3-3. We show here that 3-3 cross-links and LDTs are essential for viability in . We also show that has five LDTs, three with a YkuD catalytic domain as in all previously known LDTs and two with a VanW catalytic domain, whose function was until now unknown. The five LDTs exhibit extensive functional redundancy. VanW domain proteins are found in many gram-positive bacteria but scarce in other lineages. We tested seven non- VanW domain proteins and confirmed LDT activity in three cases. In summary, our findings uncover a previously unrecognized family of PG cross-linking enzymes, assign a catalytic function to VanW domains, and demonstrate that 3-3 cross-linking is essential for viability in , the first time this has been shown in any bacterial species. The essentiality of LDTs in makes them potential targets for antibiotics that kill selectively.
大多数细菌都被一层细胞壁所包围,该细胞壁含有肽聚糖 (PG),这是一种由糖链组成的大型聚合物,由短肽交联键连接在一起。交联键有两种主要类型,根据涉及的氨基酸分别称为 4-3 和 3-3。4-3 交联键是由青霉素结合蛋白形成的,而 3-3 交联键是由 L,D-转肽酶 (LDTs) 形成的。在大多数细菌中,主要的交联模式是 4-3,这些交联键对于生存是必不可少的,而 3-3 交联键只占很小的比例且不是必需的。然而,在机会性肠道病原体 中,约 70%的交联键是 3-3。我们在这里表明,3-3 交联键和 LDTs 对于 的生存是必不可少的。我们还表明, 有五个 LDTs,其中三个具有 YkuD 催化结构域,与所有先前已知的 LDTs 相同,另外两个具有 VanW 催化结构域,其功能至今未知。这五个 LDTs 表现出广泛的功能冗余。VanW 结构域蛋白存在于许多革兰氏阳性菌中,但在其他谱系中很少见。我们测试了七种非 VanW 结构域蛋白,并在三种情况下证实了 LDT 活性。总之,我们的发现揭示了一个以前未被识别的 PG 交联酶家族,赋予了 VanW 结构域催化功能,并证明了 3-3 交联键对于 的生存是必不可少的,这是在任何细菌物种中首次证明。在 中 LDTs 的必需性使其成为选择性杀死 的抗生素的潜在靶标。