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Miguel-Ruano, V.

Publications and source records attributed to Miguel-Ruano, V..

2 recordsLinked to original sources

A distinctive family of L,D-transpeptidases catalyzing L-Ala-mDAP crosslinks in Alpha and Betaproteobacteria

Most bacteria are surrounded by an essential protective mesh-like structure called peptidoglycan, made of glycan chains crosslinked through short peptides by enzymes known as transpeptidases. Of these, penicillin-binding DD-transpeptidases connect adjacent peptide stems between their 4th and 3rd amino acids (4,3-type), D-alanine and a meso-diaminopimelic acid (mDAP) in Gram negatives, whereas LD-transpeptidases make the 3,3-type between mDAP3 residues. While these two processes explain the formation of crosslinks in most bacteria, recent investigations involving non-model species have brought to light novel crosslinking mechanisms that point to the existence of less-explored groups of peptidoglycan crosslinking enzymes. Here, we present the identification and characterization of a novel LD-transpeptidase found in the acetic acid bacterial Gluconobacter oxydans, named LDTGo, which performs 1,3-type crosslinks between L-Ala1 and mDAP3. LDTGo-like proteins are conserved among Alpha and Betaproteobacteria species that do not encode LD3,3-transpeptidases. Using a highly active ortholog, we demonstrated in vitro that this enzyme can work with non-terminal peptide bonds in the crosslinking process. This property is different from the strict specificity of typical LD- and DD-transpeptidases, which only deal with terminal peptide bonds. The high-resolution crystal structure of LDTGo revealed significant distinctions when compared to 3,3-type LD-transpeptidases. These include a proline-rich region near the N-terminus that restricts substrate access to the active site, and an unprecedented cavity designed to accommodate both the glycan chain and the peptide stem from donor muropeptides, a feature that exhibits broad conservation among LD1,3-transpeptidases. Finally, we demonstrated the involvement of DD-crosslinking turnover in supplying the necessary substrate for LD1,3-transpeptidation. This phenomenon underscores the interplay between structurally distinct crosslinking mechanisms in maintaining cell wall integrity in G. oxydans.

microbiology↗

DipM controls multiple autolysins and mediates two regulatory feedback loops promoting cell constriction in C. crescentus

Proteins containing a catalytically inactive LytM-type endopeptidase domain have emerged as important regulators of cell wall-degrading enzymes in bacteria. Although these so-called LytM factors are wide-spread among species, the range of functions they fulfill and their precise modes of action are still incompletely understood. In this work, we study the LytM factor DipM, a protein required for proper cell division in the model species C. crescentus. We show that the LytM domain of DipM interacts directly with multiple autolysins, including the lytic transglycosylases SdpA and SdpB, the amidase AmiC and the putative carboxypeptidase CrbA, and stimulates the activities of SdpA and AmiC. The crystal structure of the LytM domain of DipM reveals conserved features, including a distinctive groove. Modeling studies suggest that this groove could represent the docking site of AmiC. The architecture of the binding interface in the DipM-AmiC complex is very similar to that observed for the LytM domain of EnvC in complex with its autoinhibitory restraining arm, suggesting a conserved role of the groove in the interaction of LytM factors with their (auto-)regulatory targets. In line with this hypothesis, a mutation in the groove abolishes DipM function. Interestingly, single-molecule tracking studies reveal that the recruitment of DipM and its regulatory targets SdpA and SdpB to the division site is mutually interdependent, with DipM establishing a self-reinforcing cycle that gradually increases lytic transglycosylase activity at the cell center as division progresses. At the same time, the DipM-dependent activation of AmiC leads to the production of denuded peptidoglycan, generating a spatial cue that attracts FtsN to the division site and thus, in turn, again promotes the recruitment of DipM. Collectively, these findings show that DipM is a central regulator that acts at the intersection of different peptidoglycan remodeling pathways and coordinates the activities of various classes of autolysins to promote cell constriction and daughter cell separation.

microbiology↗