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Velando, F.

Publications and source records attributed to Velando, F..

2 recordsLinked to original sources

Bacterial sensor evolved by decreasing complexity

Bacterial receptors feed into multiple signal transduction pathways that regulate a variety of cellular processes including gene expression, second messenger levels and motility. Receptors are typically activated by signal binding to ligand binding domains (LBD). Cache domains are omnipresent LBDs found in bacteria, archaea, and eukaryotes, including humans. They form the predominant family of extracytosolic bacterial LBDs and were identified in all major receptor types. Cache domains are composed of either a single (sCache) or a double (dCache) structural module. The functional relevance of bimodular LBDs remains poorly understood. Here, we identify the PacF chemoreceptor in the phytopathogen Pectobacterium atrosepticum that recognizes formate at the membrane distal module of its dCache domain, triggering chemoattraction. We further demonstrate that a family of formate-specific sCache domains has evolved from a dCache domain, exemplified by PacF, by losing the membrane proximal module. By solving high-resolution structures of two family members in complex with formate, we show that the molecular basis for formate binding at sCache and dCache domains is highly similar, despite their low sequence identity. The apparent loss of the membrane proximal module may be related to the observation that dCache domains bind ligands typically at the membrane distal module, whereas the membrane proximal module is not involved in signal sensing. This work advances our understanding of signal sensing in bacterial receptors and suggests that evolution by reducing complexity may be a common trend shaping their diversity. SignificanceMany bacterial receptors contain multi-modular sensing domains indicative of complex sensory processes. The presence of more than one sensing module likely permits the integration of multiple signals, although, the molecular detail and functional relevance for these complex sensors remain poorly understood. Bimodular sensory domains are likely to have arisen from the fusion or duplication of monomodular domains. Evolution by increasing complexity is generally believed to be a dominant force. Here we reveal the opposite - how a monomodular sensing domain has evolved from a bimodular one. Our findings will thus motivate research to establish whether evolution by decreasing complexity is typical of other sensory domains.

microbiology↗

Differential CheR affinity for chemoreceptor C-terminal pentapeptides biases chemotactic responses

The capacity of chemotaxis pathways to respond to signal gradients relies on adaptation mediated by the coordinated action of CheR methyltransferases and CheB methylesterases. Many chemoreceptors contain a C-terminal pentapeptide at the end of a linker. In Escherichia coli, this pentapeptide forms a high-affinity binding site for CheR and phosphorylated CheB, and its removal interferes with adaptation. The analysis of all available chemoreceptor sequences showed that pentapeptide sequences vary greatly, and bacteria often possess multiple chemoreceptors that differ in their pentapeptide sequences. Using the phytopathogen Pectobacterium atrosepticum SCRI1043, we assessed whether this sequence variation alters CheR affinity and chemotaxis. SCRI1043 has 36 chemoreceptors, of which 19 possess a C-terminal pentapeptide. Using isothermal titration calorimetry, we show that the affinity of CheR for the different pentapeptides varies up to 11-fold (KD of 90 nM to 1 {micro}M). The pentapeptides with the highest and lowest affinities differed only in a single amino acid. Deletion of the cheR gene abolishes chemotaxis. PacC is the sole chemoreceptor for L-Asp in SCRI1043, and the replacement of its pentapeptide with those having the highest and lowest affinities significantly interfered with L-Asp chemotaxis. Variable pentapeptide sequences thus provide a mechanism to bias the responses mediated by chemoreceptors.

microbiology↗