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Jabeena, C. A.

Publications and source records attributed to Jabeena, C. A..

2 recordsLinked to original sources

The Chlamydia trachomatis secreted effector protein CT181 binds to Mcl-1 to prolong neutrophil survival

Chlamydia trachomatis (C.t) infections can lead to severe complications due to the pathogens ability to evade the host immune response, often resulting in asymptomatic infections. The mechanisms underlying this immune subversion remain incompletely understood but likely involve specific bacterial effector proteins. Here, we identify CT181 as a novel effector that directly binds to Mcl-1, a key regulator of neutrophil survival. While a C.t. CT181 mutant exhibited only modest defects in epithelial cell replication and inclusion development, it was essential for C.t. survival in neutrophils, correlating with Mcl-1 stabilization. Using a murine infection model, we demonstrate that CT181 is required for C.t. colonization and cytokine production in vivo. Our findings establish CT181 as the first bacterial effector protein known to bind Mcl-1 to enhance neutrophil survival, revealing a critical strategy by which C.t. promotes immune dysregulation, facilitating bacterial persistence while driving C.t. pathogenesis.

microbiology↗

Tetramer formation of CpoS facilitates Inc-Inc interactions during Chlamydia trachomatis infection

Chlamydia trachomatis (C.t.), the leading bacterial cause of sexually transmitted infections, replicates within a unique intracellular compartment called the inclusion, which is modified by secreted proteins known as inclusion membrane (Inc) proteins. Here we further characterize CpoS, an Inc previously shown to be critical for replication and inclusion development. We demonstrate that CpoS directly binds multiple coiled-coil domain-containing Incs while simultaneously engaging Rab GTPases at a separate site. Notably, CpoS-InaC interactions facilitate the recruitment of select Arfs to the inclusion membrane, while Rab recruitment occurs independtly of these interactions. Biochemical and biophysical analyses revealed that Incs self-oligomerize, forming higher-ordered structures, with CpoS adpoting a tetrameric structure resembling eukaryotic SNAREs. We propose these assemblies likely serve as scaffolds to orchestrate vesicle docking, tethering, and fusion. Our findings underscore the intricate interplay between bacterial and host factors, revealing that C.t. leverages both Inc-Inc interactions and host protein engagement to manipulate vesicular trafficking and sustain infection.

microbiology↗