The EPS-I exopolysaccharide transforms <i>Ralstonia</i> wilt pathogen biofilms into viscoelastic fluids for rapid dissemination in planta

M Matthew L. Cope-Arguello (Department of Plant Pathology, University of California) J Jiayu Li Z Zachary Konkel (Department of Plant Pathology, The Ohio State University) N Nathalie Aoun (Department of Plant Pathology, University of California) T Tabitha Cowell (Department of Plant Pathology, University of California) N Nicholas Wagner (Department of Biology, University of South Alabama) A A. Li Han Chan (Department of Microbiology, University of Massachusetts) L Lan Thanh Chu (Department of Biology, University of Dayton) S Samantha Wang (Department of Chemical Engineering, University of California) M Mariama D. Carter (Department of Plant Pathology, University of Wisconsin-Madison) C Caitilyn Allen (Department of Plant Pathology, University of Wisconsin-Madison) L Lindsay J. Caverly (Department of Pediatrics, University of Michigan Medical School) L Loan Bui (Department of Biology, University of Dayton) K Kristen M. DeAngelis (Department of Microbiology, University of Massachusetts) M Matthew J. Wargo (Department of Microbiology and Molecular Genetics, University of Vermont Larner College of Medicine) T Tuan M. Tran (Department of Biology, University of South Alabama) J Jonathan M. Jacobs (Department of Plant Pathology, The Ohio State University) H Harishankar Manikantan (Department of Chemical Engineering, University of California) T Tiffany M. Lowe-Power (Department of Plant Pathology, University of California)

Abstract

Ralstonia solanacearum species complex (RSSC) pathogens cause destructive plant wilt diseases of a wide variety of crops, leading to significant agricultural losses worldwide. These bacteria rapidly spread through the water-transporting xylem where they grow prolifically and produce abundant biofilm that clogs xylem vessels. To understand RSSC biofilm behavior in planta, we examined their complex fluid mechanics. Rheological analyses revealed that unlike all previously analyzed microbial biofilms, RSSC biofilms are shear-thinning, viscoelastic fluids at physiologically relevant shear forces. To determine which factors confer these unique mechanics, we analyzed biofilms of bacterial mutants with altered biofilm components. Genetic analysis demonstrated that development of the viscous-dominant biofilms required production of EPS-I, an amphiphilic exopolysaccharide that is a major virulence factor for all RSSC pathogens. We show that EPS-I confers “biofilm mobility”, which allows wild-type RSSC colonies to passively expand when deformed. Despite its high metabolic cost, bioassays demonstrated that EPS-I production conferred a net fitness benefit where biofilm mobility allowed the pathogen to spread and access more nutrients in complex environments like xylem vessels. The RSSC are a monophyletic lineage of aggressive plant wilt pathogens, and our evolutionary hypothesis testing suggests the origin of the eps biosynthetic gene cluster coincides with the emergence of wilt pathogenesis in the RSSC ancestor. Furthermore, comparative physiological assays demonstrated that biofilm mobility is unique to the RSSC within the genus Ralstonia . In summary, EPS-I production is a key evolutionary innovation that enables RSSC dispersal and virulence by conferring unique biofilm mechanics.

Article Details

Volume / Issue Vol. 123, Issue 4
Published January 27, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (19)

M

Matthew L. Cope-Arguello

Department of Plant Pathology, University of California

J

Jiayu Li

Z

Zachary Konkel

Department of Plant Pathology, The Ohio State University

N

Nathalie Aoun

Department of Plant Pathology, University of California

T

Tabitha Cowell

Department of Plant Pathology, University of California

N

Nicholas Wagner

Department of Biology, University of South Alabama

A

A. Li Han Chan

Department of Microbiology, University of Massachusetts

L

Lan Thanh Chu

Department of Biology, University of Dayton

S

Samantha Wang

Department of Chemical Engineering, University of California

M

Mariama D. Carter

Department of Plant Pathology, University of Wisconsin-Madison

C

Caitilyn Allen

Department of Plant Pathology, University of Wisconsin-Madison

L

Lindsay J. Caverly

Department of Pediatrics, University of Michigan Medical School

L

Loan Bui

Department of Biology, University of Dayton

K

Kristen M. DeAngelis

Department of Microbiology, University of Massachusetts

M

Matthew J. Wargo

Department of Microbiology and Molecular Genetics, University of Vermont Larner College of Medicine

T

Tuan M. Tran

Department of Biology, University of South Alabama

J

Jonathan M. Jacobs

Department of Plant Pathology, The Ohio State University

H

Harishankar Manikantan

Department of Chemical Engineering, University of California

T

Tiffany M. Lowe-Power

Department of Plant Pathology, University of California