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Khosa, S.

Publications and source records attributed to Khosa, S..

2 recordsLinked to original sources

In vitro characterization of the baker's yeast deubiquitinase Ubp3

Ubp3 is one of about 20 deubiquitinases (DUBs) in S. cerevisiae. The current view generally assumes that Ubp3 requires its interaction partner Bre5, which is proposed to function as a positive regulator. Accordingly, the Ubp3/Bre5 complex has been implicated in a broad range of cellular processes for example trafficking between ER and Golgi, stress granule formation and selective autophagy. However, the molecular basis of this proposed Bre5-dependent activity remains unclear. To address this at a molecular level, Ubp3, Bre5, and related constructs were heterologously expressed in E. coli, purified to homogeneity, and characterized in vitro. Both proteins contain folded domains as well as extensive intrinsically disordered regions (IDRs). Despite this structural complexity, the Ubp3/Bre5 complex could be isolated following either co-expression in vivo or after in vitro assembly. Unexpectedly, complex formation with Bre5 was not required for the catalytic activity of full length Ubp3. Furthermore, even the isolated catalytic domain of Ubp3 was fully active against two distinct substrates in the absence of Bre5, demonstrating that its deubiquitinating activity is intrinsically independent of Bre5. These findings indicate that the catalytic domain alone is sufficient for substrate cleavage, whereas the extensive IDRs of Ubp3 and its cofactor Bre5 might contribute to substrate recognition or specificity. Overall, this study challenges the prevailing model of Bre5-dependent activation of Ubp3 and provides new insights into the molecular organization of the Ubp3/Bre5 system. More broadly, it highlights the importance of intrinsically disordered regions in regulating deubiquitinase function and cellular signaling networks.

biochemistry↗

Molecular Insights into CLD Domain Dynamics and Toxin Recruitment of the HlyA E. coli T1SS

Escherichia coli is a Gram-negative opportunistic pathogen causing nosocomial infections through the production of various virulence factors. Type 1 secretion systems (T1SS) contribute to virulence by mediating one-step secretion of unfolded substrates directly into the extracellular space, bypassing the periplasm. A well-studied example is the hemolysin A (HlyA) system, which secretes the HlyA toxin in an unfolded state across the inner and outer membranes. T1SS typically comprise a homodimeric ABC transporter (HlyB), a membrane fusion protein (HlyD), and the outer membrane protein TolC. Some ABC transporters in T1SS also contain N-terminal C39 peptidase or peptidase-like (CLD) domains implicated in substrate interaction. Recent cryo-EM studies have resolved the inner-membrane complex as a trimer of HlyB homodimers with associated HlyD protomers. However, a full structural model including TolC remains unavailable. We present the first complete structural model of the HlyA T1SS, constructed using template- and MSA-based information and validated by SAXS. Molecular dynamics simulations provide insights into the function of the CLD domains, which are partially absent from existing cryo-EM structures. These domains may modulate transport by stabilizing specific conformations of the complex. Simulations with a C-terminal fragment of HlyA indicate that toxin binding occurs in the occluded conformation of HlyB, potentially initiating substrate transport through a single HlyB protomer before transitioning to an inward-facing state. HlyA binding also induces allosteric effects on HlyD, altering key residues involved in TolC recruitment. These results indicate how substrate recognition and transport are coupled and may support the development of antimicrobial strategies targeting the T1SS.

biophysics↗