Divergent molecular strategies drive evolutionary adaptation to competitive fitness in biofilm formation

Author:

Tang Mingxing12,Yang Ruixue3,Zhuang Zilin45,Han Shuhong45,Sun Yunke45,Li Peiyu67,Fan Kewei67,Cai Zhao8,Yang Qiong12,Yu Zhijian67,Yang Liang45,Li Shuo129

Affiliation:

1. Department of Otorhinolaryngology , Shenzhen , Shenzhen 518052 , China

2. Nanshan People’s Hospital , Shenzhen , Shenzhen 518052 , China

3. Community Health Service Center of Southern University of Science and Technology, Nanshan Medical Group Headquarters , Shenzhen 518055 , China

4. Department of Pharmacology , School of Medicine, , Shenzhen 518055 , China

5. Southern University of Science and Technology , School of Medicine, , Shenzhen 518055 , China

6. Department of Infectious Diseases , Shenzhen , Shenzhen 518052 , China

7. Nanshan People’s Hospital, Shenzhen University School of Medicine , Shenzhen , Shenzhen 518052 , China

8. Department of Research and Development, Shenzhen Mindray Bio-Medical Electronics Co, Ltd , Shenzhen 518057 , China

9. Allergy Prevention and Control Center, Nanshan People’s Hospital , Shenzhen 518052 , China

Abstract

Abstract Biofilm is a group of heterogeneously structured and densely packed bacteria with limited access to nutrients and oxygen. These intrinsic features can allow a mono-species biofilm to diversify into polymorphic subpopulations, determining the overall community’s adaptive capability to changing ecological niches. However, the specific biological functions underlying biofilm diversification and fitness adaptation are poorly demonstrated. Here, we launched and monitored the experimental evolution of Pseudomonas aeruginosa biofilms, finding that two divergent molecular trajectories were adopted for adaptation to higher competitive fitness in biofilm formation: one involved hijacking bacteriophage superinfection to aggressively inhibit kin competitors, whereas the other induced a subtle change in cyclic dimeric guanosine monophosphate signaling to gain a positional advantage via enhanced early biofilm adhesion. Bioinformatics analyses implicated that similar evolutionary strategies were prevalent among clinical P. aeruginosa strains, indicative of parallelism between natural and experimental evolution. Divergence in the molecular bases illustrated the adaptive values of genomic plasticity for gaining competitive fitness in biofilm formation. Finally, we demonstrated that these fitness-adaptive mutations reduced bacterial virulence. Our findings revealed how the mutations intrinsically generated from the biofilm environment influence the evolution of P. aeruginosa.

Funder

Medical Research Foundation of GuangDong Province

Outstanding Young Researcher Program

Science and Technology Key Research Program in Nanshan District Health Care System

Shenzhen Science and Technology Innovation Commission for Research and Development Projects

GuangDong Basic and Applied Basic Research Foundation

National Natural Science Foundation

Shenzhen Overseas High-level Talent Team

Publisher

Oxford University Press (OUP)

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