Back to Search Start Over

Structural and Genomic Evolution of RRNPPA Systems and Their Pheromone Signaling

Authors :
Felipe-Ruiz, Alonso
Marina, Alberto
Rocha, Eduardo
Ministerio de Economía y Competitividad (España)
Ministerio de Ciencia e Innovación (España)
Generalitat Valenciana
Fondation pour la Recherche Médicale
Agence Nationale de la Recherche (France)
Ministerio de Universidades (España)
Marina, Alberto
Instituto de biomedicina [Valencia] (IBV)
Consejo Superior de Investigaciones Científicas [Madrid] (CSIC)
CIBER de Enfermedades Raras (CIBERER)
Génomique évolutive des Microbes / Microbial Evolutionary Genomics
Institut Pasteur [Paris] (IP)-Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité)
This work was supported by grants BIO2016-78571-P and PID2019-108541GB-I00 from the Spanish Government (Ministerio de Economía y Competitividad y Ministerio de Ciencia e Innovación) and PROMETEO/2020/012 from the Valencian Government to A.M. and grants EQU201903007835 (Equipe FRM (Fondation pour la Recherche Médicale)), Laboratoire d′Excellence IBEID Integrative Biology of Emerging Infectious Diseases (ANR-10-LABX-62-IBEID) and PIA/ANR-16-CONV-0005 (Inception project from Agence Nationale pour la Recherche) to E.P.C.R. A.F.-R. received an FPU predoctoral fellowship from the Spanish Ministry of Universities with identifier FPU19/00433.
We thank Elena Cabello Yeves for her help performing the Kruskal-Wallis analysis on peptide length and Eugen Pfeifer for data on Phage-plasmids.
ANR-10-LABX-0062,IBEID,Integrative Biology of Emerging Infectious Diseases(2010)
ANR-16-CONV-0005,INCEPTION,Institut Convergences pour l'étude de l'Emergence des Pathologies au Travers des Individus et des populatiONs(2016)
Source :
mBio, mBio, 2022, 13 (6), pp.e0251422. ⟨10.1128/mbio.02514-22⟩
Publication Year :
2022

Abstract

18 páginas, 6 figuras, 4 tablas.<br />In Firmicutes, important processes such as competence development, sporulation, virulence, and biofilm formation are regulated by cytoplasmic quorum sensing (QS) receptors of the RRNPPA family using peptide-based communication. Although these systems regulate important processes in a variety of bacteria, their origin and diversification are poorly understood. Here, we integrate structural, genomic, and phylogenetic evidence to shed light on RRNPPA protein origin and diversification. The family is constituted by seven different subfamilies with different domain architectures and functions. Among these, three were found in Lactobacillales (Rgg, ComR, and PrgX) and four in Bacillales (AimR, NprR, PlcR, and Rap). The patterns of presence and the phylogeny of these proteins show that subfamilies diversified a long time ago, resulting in key structural and functional differences. The concordance between the distribution of subfamilies and the bacterial phylogeny was somewhat unexpected, since many of the subfamilies are very abundant in mobile genetic elements, such as phages, plasmids, and phage-plasmids. The existence of diverse propeptide architectures raises intriguing questions about their export and maturation. It also suggests the existence of diverse roles for the RRNPPA systems. Some systems encode multiple pheromones on the same propeptide or multiple similar propeptides, suggesting that they act as "chatterers." Many others lack pheromone genes and may be "eavesdroppers." Interestingly, AimR systems without associated propeptide genes were particularly abundant in chromosomal regions not classed as prophages, suggesting that either the bacterium or other mobile elements are eavesdropping on phage activity. IMPORTANCE Quorum sensing (QS) is a mechanism of bacterial communication, coordinating important decisions depending on bacterial population. QS regulates important processes not only in bacterial behavior but also in genetic mobile elements and host-guest interactions. In Firmicutes, the most important family of QS receptors is the RRNPPA family. Despite the importance of such systems in microbiology, we know little about RRNPPA origin and diversification. In this work, the combination of sequence analysis and structural biology allowed us to identify a very large number of novel systems but also to class of them in functional families and thereby study of their origin and functional diversification. Moreover, peptide pheromone analysis revealed new and intriguing mechanisms of communication, such as "eavesdropper" systems which only listen for the pheromone and "chatterers" that take control of the communication in their microenvironment.<br />This work was supported by grants BIO2016-78571-P and PID2019-108541GB-I00 from the Spanish Government (Ministerio de Economía y Competitividad y Ministerio de Ciencia e Innovación) and PROMETEO/2020/012 from the Valencian Government to A.M. and grants EQU201903007835 (Equipe FRM (Fondation pour la Recherche Médicale)), Laboratoire d9Excellence IBEID Integrative Biology of Emerging Infectious Diseases (ANR-10-LABX-62-IBEID) and PIA/ANR-16-CONV-0005 (Inception project from Agence Nationale pour la Recherche) to E.P.C.R. A.F.-R. received an FPU predoctoral fellowship from the Spanish Ministry of Universities with identifier FPU19/00433.

Details

ISSN :
21507511, 20167857, and 21612129
Database :
OpenAIRE
Journal :
mBio
Accession number :
edsair.pmid.dedup....f82ede6cf631ab20d4ce7b7eff2c918f