An Agrobacterium VirB10 Mutation Conferring a Type IV Secretion System Gating Defect

Author:

Banta Lois M.12,Kerr Jennifer E.3,Cascales Eric3,Giuliano Meghan E.1,Bailey Megan E.1,McKay Cedar2,Chandran Vidya4,Waksman Gabriel4,Christie Peter J.3

Affiliation:

1. Department of Biology, Williams College, Williamstown, Massachusetts 01267

2. Department of Biology, Haverford College, Haverford, Pennsylvania 19041

3. Department of Microbiology and Molecular Genetics, The University of Texas Medical School at Houston, Houston, Texas 77030

4. Institute of Structural and Molecular Biology, Birkbeck and University College London, London WC1E 7HX, United Kingdom

Abstract

ABSTRACT Agrobacterium VirB7, VirB9, and VirB10 form a “core complex” during biogenesis of the VirB/VirD4 type IV secretion system (T4SS). VirB10 spans the cell envelope and, in response to sensing of ATP energy consumption by the VirB/D4 ATPases, undergoes a conformational change required for DNA transfer across the outer membrane (OM). Here, we tested a model in which VirB10 regulates substrate passage by screening for mutations that allow for unregulated release of the VirE2 secretion substrate to the cell surface independently of target cell contact. One mutation, G272R, conferred VirE2 release and also rendered VirB10 conformationally insensitive to cellular ATP depletion. Strikingly, G272R did not affect substrate transfer to target cells (Tra + ) but did block pilus production (Pil ). The G272R mutant strain displayed enhanced sensitivity to vancomycin and SDS but did not nonspecifically release periplasmic proteins or VirE2 truncated of its secretion signal. G272 is highly conserved among VirB10 homologs, including pKM101 TraF, and in the TraF X-ray structure the corresponding Gly residue is positioned near an α-helical domain termed the antenna projection (AP), which is implicated in formation of the OM pore. A partial AP deletion mutation (ΔAP) also confers a Tra + Pil phenotype; however, this mutation did not allow VirE2 surface exposure but instead allowed the release of pilin monomers or short oligomers to the milieu. We propose that (i) G272R disrupts a gating mechanism in the core chamber that regulates substrate passage across the OM and (ii) the G272R and ΔAP mutations block pilus production at distinct steps of the pilus biogenesis pathway.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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