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Updated: May 30, 2026

Identification of Host Pathways Targeted by Bacterial Effector Proteins using Yeast Toxicity and Suppressor Screens
Published on: October 25, 2019
The Chlamydia effector chlamydial outer protein N (CopN) sequesters tubulin and prevents microtubule assembly
Tara L Archuleta1, Yaqing Du, Chauca A English
1Division of Chemical and Physical Biology, Vanderbilt University School of Medicine, Nashville, Tennessee 37232, USA.
Abstract:
Chlamydia species are obligate intracellular pathogens that utilize a type three secretion system to manipulate host cell processes. Genetic manipulations are currently not possible in Chlamydia, necessitating study of effector proteins in heterologous expression systems and severely complicating efforts to relate molecular strategies used by Chlamydia to the biochemical activities of effector proteins. CopN is a chlamydial type three secretion effector that is essential for virulence. Heterologous expression of CopN in cells results in loss of microtubule spindles and metaphase plate formation and causes mitotic arrest. CopN is a multidomain protein with similarity to type three secretion system "plug" proteins from other organisms but has functionally diverged such that it also functions as an effector protein. We show that CopN binds directly to αβ-tubulin but not to microtubules (MTs). Furthermore, CopN inhibits tubulin polymerization by sequestering free αβ-tubulin, similar to one of the mechanisms utilized by stathmin. Although CopN and stathmin share no detectable sequence identity, both influence MT formation by sequestration of αβ-tubulin. CopN displaces stathmin from preformed stathmin-tubulin complexes, indicating that the proteins bind overlapping sites on tubulin. CopN is the first bacterial effector shown to disrupt MT formation directly. This recognition affords a mechanistic understanding of a strategy Chlamydia species use to manipulate the host cell cycle.
Insights
Chlamydia
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Chlamydia species are obligate intracellular pathogens.
- Genetic manipulation in Chlamydia is challenging.
- Effector proteins are crucial for virulence and host cell manipulation.
Purpose of the Study:
- To investigate the molecular mechanism of Chlamydia's effector protein CopN.
- To understand how CopN disrupts host cell processes, specifically microtubule dynamics.
- To determine if CopN directly interacts with tubulin and affects polymerization.
Main Methods:
- Heterologous expression of CopN in host cells.
- Biochemical assays to test binding of CopN to αβ-tubulin and microtubules (MTs).
- Analysis of CopN's effect on tubulin polymerization and MT formation.
- Competition assays with stathmin to identify binding sites on tubulin.
Main Results:
- CopN directly binds to αβ-tubulin but not to assembled microtubules.
- CopN inhibits tubulin polymerization by sequestering free αβ-tubulin.
- CopN shares functional similarity with stathmin in disrupting MT formation.
- CopN displaces stathmin from tubulin complexes, suggesting overlapping binding sites.
Conclusions:
- CopN is the first identified bacterial effector protein that directly disrupts microtubule formation.
- CopN manipulates host cell cycle by interfering with microtubule dynamics.
- Understanding CopN's mechanism provides insight into Chlamydia's virulence strategies.
Related Concept Videos
Bacterial Phylum Chlamydiae
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Attachment of Sister Chromatids
Destabilization of Microtubules
Pinching-off of Coated Vesicles
Microtubule Formation

