Exploration of Chemical Diversity in Intercellular Quorum Sensing Signalling Systems in Prokaryotes

Author:

Jonkergouw Christopher1ORCID,Savola Pihla1,Osmekhina Ekaterina1ORCID,van Strien Joeri2ORCID,Batys Piotr3ORCID,Linder Markus B.1ORCID

Affiliation:

1. Aalto University School of Chemical Engineering Department of Bioproducts and Biosystems Kemistintie 1 02150 Espoo Finland

2. Medical BioSciences Department Radboud University Medical Center Geert Grooteplein 28 6525 GA Nijmegen The Netherlands

3. Jerzy Haber Institute of Catalysis and Surface Chemistry Polish Academy of Sciences Niezapominajek 8 30239 Krakow Poland

Abstract

AbstractQuorum sensing (QS) serves as a vital means of intercellular signalling in a variety of prokaryotes, which enables single cells to act in multicellular configurations. The potential to control community‐wide responses has also sparked numerous recent biotechnological innovations. However, our capacity to utilize intercellular communication is hindered due to a scarcity of complementary signalling systems and a restricted comprehension of interconnections between these systems caused by variations in their dynamic range. In this study, we utilize uniform manifold approximation and projection and extended‐connectivity fingerprints to explore the available chemical space of QS signalling molecules. We investigate and experimentally characterize a set of closely related QS signalling ligands, consisting of N‐acyl homoserine lactones and the aryl homoserine lactone p‐coumaroyl, as well as a set of more widely diverging QS ligands, consisting of photopyrones, dialkylresorcinols, 3,5‐dimethylpyrazin‐2‐ol and autoinducer‐2, and define their performance. We report on a set of six signal‐ and promoter‐orthogonal intercellular QS signalling systems, significantly expanding the toolkit for engineering community‐wide behaviour. Furthermore, we demonstrate that ligand diversity can serve as a statistically significant tool to predict much more complicated ligand‐receptor interactions. This approach highlights the potential of dimensionality reduction to explore chemical diversity in microbial dynamics.

Funder

Academy of Finland

Publisher

Wiley

Subject

General Chemistry,Catalysis

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