Title:
Molecular Mechanisms and Applications of N-Acyl Homoserine Lactone-Mediated Quorum Sensing in Bacteria

dc.contributor.authorLokender Kumar
dc.contributor.authorSanjay Kumar Singh Patel
dc.contributor.authorKusum Kharga
dc.contributor.authorRajnish Kumar
dc.contributor.authorPradeep Kumar
dc.contributor.authorJessica Pandohee
dc.contributor.authorSourabh Kulshresha
dc.contributor.authorKusum Harjai
dc.contributor.authorSanjay Chhibber
dc.date.accessioned2026-02-07T10:57:59Z
dc.date.issued2022
dc.description.abstractMicrobial biodiversity includes biotic and abiotic components that support all life forms by adapting to environmental conditions. Climate change, pollution, human activity, and natural calamities affect microbial biodiversity. Microbes have diverse growth conditions, physiology, and metabolism. Bacteria use signaling systems such as quorum sensing (QS) to regulate cellular interactions via small chemical signaling molecules which also help with adaptation under undesirable survival conditions. Proteobacteria use acyl-homoserine lactone (AHL) molecules as autoinducers to sense population density and modulate gene expression. The LuxI-type enzymes synthesize AHL molecules, while the LuxR-type proteins (AHL transcriptional regulators) bind to AHLs to regulate QS-dependent gene expression. Diverse AHLs have been identified, and the diversity extends to AHL synthases and AHL receptors. This review comprehensively explains the molecular diversity of AHL signaling components of Pseudomonas aeruginosa, Chromobacterium violaceum, Agrobacterium tumefaciens, and Escherichia coli. The regulatory mechanism of AHL signaling is also highlighted in this review, which adds to the current understanding of AHL signaling in Gram-negative bacteria. We summarize molecular diversity among well-studied QS systems and recent advances in the role of QS proteins in bacterial cellular signaling pathways. This review describes AHL-dependent QS details in bacteria that can be employed to understand their features, improve environmental adaptation, and develop broad biomolecule-based biotechnological applications. © 2022 by the authors.
dc.identifier.doi10.3390/molecules27217584
dc.identifier.issn14203049
dc.identifier.urihttps://doi.org/10.3390/molecules27217584
dc.identifier.urihttps://dl.bhu.ac.in/bhuir/handle/123456789/40501
dc.publisherMDPI
dc.subjectacyl-homoserine lactone
dc.subjectbacteria adaptation
dc.subjectbiofouling
dc.subjectbiomolecules
dc.subjectbioremediation
dc.subjectbiosensor
dc.subjectcancer
dc.subjecthuman health
dc.subjectplant disease
dc.subjectquorum sensing
dc.titleMolecular Mechanisms and Applications of N-Acyl Homoserine Lactone-Mediated Quorum Sensing in Bacteria
dc.typePublication
dspace.entity.typeReview

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