Direct targeting of host microtubule and actin cytoskeletons by a chlamydial pathogenic effector protein

Author:

Höhler Mona1ORCID,Alcázar-Román Abel R.1,Schenk Katharina1,Aguirre-Huamani Mac Pholo1ORCID,Braun Corinna2,Zrieq Rafat34,Mölleken Katja2,Hegemann Johannes H.2ORCID,Fleig Ursula1ORCID

Affiliation:

1. Heinrich-Heine-University 1 Eukaryotic Microbiology , , 40225 Düsseldorf , Germany

2. Institute of Functional Microbial Genomics, Heinrich-Heine-University 2 , 40225 Düsseldorf , Germany

3. College of Public Health and Health Informatics, University of Haʹil 3 Department of Public Health , , Ha′il City 2440 , Saudi Arabia

4. Applied Science Research Centre, Applied Science Private University 4 , Amman 11931 , Jordan

Abstract

ABSTRACT To propagate within a eukaryotic cell, pathogenic bacteria hijack and remodulate host cell functions. The Gram-negative obligate intracellular Chlamydiaceae, which pose a serious threat to human and animal health, attach to host cells and inject effector proteins that reprogram host cell machineries. Members of the conserved chlamydial TarP family have been characterized as major early effectors that bind to and remodel the host actin cytoskeleton. We now describe a new function for the Chlamydia pneumoniae TarP member CPn0572, namely the ability to bind and alter the microtubule cytoskeleton. Thus, CPn0572 is unique in being the only prokaryotic protein that directly modulates both dynamic cytoskeletons of a eukaryotic cell. Ectopically expressed GFP–CPn0572 associates in a dose-independent manner with either cytoskeleton singly or simultaneously. In vitro, CPn0572 binds directly to microtubules. Expression of a microtubule-only CPn0572 variant resulted in the formation of an aberrantly thick, stabilized microtubule network. Intriguingly, during infection, secreted CPn0572 also colocalized with altered microtubules, suggesting that this protein also affects microtubule dynamics during infection. Our analysis points to a crosstalk between actin and microtubule cytoskeletons via chlamydial CPn0572.

Funder

Deutsche Forschungsgemeinschaft

Jürgen Manchot Stiftung

Heinrich-Heine-University Düsseldorf

Publisher

The Company of Biologists

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