Structural modification of the Pseudomonas aeruginosa alkylquinoline cell–cell communication signal, HHQ, leads to benzofuranoquinolines with anti-virulence behaviour in ESKAPE pathogens

Author:

Rossetto Veronica12,Moore-Machacek Ay'sha1,Woods David F.1,Galvão Helena M.2,Shanahan Rachel M.3,Hickey Aobha3,O’Leary Niall1,O’Gara Fergal451,McGlacken Gerard P.63,Reen F. Jerry61ORCID

Affiliation:

1. School of Microbiology, University College Cork, Cork, Ireland

2. Faculty of Science and Technology, Universidade do Algarve, Algarve, Portugal

3. School of Chemistry and Analytical and Biological Chemistry Research Facility, University College Cork, Cork, Ireland

4. Wal-yan Respiratory Research Centre, Telethon Kids Institute, Perth, WA, Australia

5. Biomerit Research Centre, School of Microbiology, University College Cork, Cork, Ireland

6. Synthesis and Solid State Pharmaceutical Centre, University College Cork, Cork, Ireland

Abstract

Microbial populations have evolved intricate networks of negotiation and communication through which they can coexist in natural and host ecosystems. The nature of these systems can be complex and they are, for the most part, poorly understood at the polymicrobial level. The Pseudomonas Quinolone Signal (PQS) and its precursor 4-hydroxy-2-heptylquinoline (HHQ) are signal molecules produced by the important nosocomial pathogen Pseudomonas aeruginosa . They are known to modulate the behaviour of co-colonizing bacterial and fungal pathogens such as Bacillus atropheaus, Candida albicans and Aspergillus fumigatus. While the structural basis for alkyl-quinolone signalling within P. aeruginosa has been studied extensively, less is known about how structural derivatives of these molecules can influence multicellular behaviour and population-level decision-making in other co-colonizing organisms. In this study, we investigated a suite of small molecules derived initially from the HHQ framework, for anti-virulence activity against ESKAPE pathogens, at the species and strain levels. Somewhat surprisingly, with appropriate substitution, loss of the alkyl chain (present in HHQ and PQS) did not result in a loss of activity, presenting a more easily accessible synthetic framework for investigation. Virulence profiling uncovered significant levels of inter-strain variation among the responses of clinical and environmental isolates to small-molecule challenge. While several lead compounds were identified in this study, further work is needed to appreciate the extent of strain-level tolerance to small-molecule anti-infectives among pathogenic organisms.

Funder

Science Foundation Ireland

Health Research Board

Higher Education Authority

Cystic Fibrosis Foundation

National Health and Medical Research Council

Publisher

Microbiology Society

Subject

Microbiology

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