Reversible DNA condensation drives natural transformation

J Joshua I. Santiago I Ishtiyaq Ahmed J Jeanette Hahn (Public Health Research Institute and Department of Microbiology, Biochemistry and Molecular Genetics, New Jersey Medical School, Rutgers University) A Abigail Rubino H Heonhwa Choi G Guy Adami D David Dubnau (Public Health Research Institute and Department of Microbiology, Biochemistry and Molecular Genetics, New Jersey Medical School, Rutgers University) M Matthew B. Neiditch K Keith J. Mickolajczyk

Abstract

Abstract Natural transformation drives the spread of antibiotic resistance among bacteria. The DNA receptor ComEA is essential for transporting external transforming DNA into the periplasm by an unknown mechanism. Here, single-molecule optical tweezers and electron microscopy approaches show that Geobacillus stearothermophilus ComEA forms dynamic oligomers on DNA that can switch between two conformations depending on local concentration. When ComEA sparsely decorates DNA, it forms bridging oligomers that condense the DNA to generate sub-pN pulling forces. When ComEA more fully decorates DNA, it forms non-bridging oligomers that decondense DNA and cannot generate force. Mutating ComEA to favor either bridging or non-bridging conformations causes transformation deficiency in Bacillus subtilis , meaning condensation and decondensation each play mechanistic roles. Our results show that ComEA reversibly condenses DNA during natural transformation, first producing force to pull DNA into the periplasm and then abating force production to promote transport into the cytoplasm.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 19, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

J

Joshua I. Santiago

I

Ishtiyaq Ahmed

J

Jeanette Hahn

Public Health Research Institute and Department of Microbiology, Biochemistry and Molecular Genetics, New Jersey Medical School, Rutgers University

A

Abigail Rubino

H

Heonhwa Choi

G

Guy Adami

D

David Dubnau

Public Health Research Institute and Department of Microbiology, Biochemistry and Molecular Genetics, New Jersey Medical School, Rutgers University

M

Matthew B. Neiditch

K

Keith J. Mickolajczyk