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Published on: February 28, 2025
Elucidating the structural basis of ClpP activation and dynamics in Mycobacterium tuberculosis
Smriti Bhardwaj1, Kuldeep K Roy1
1School of Health Sciences and Technology, UPES, Dehradun, Uttarakhand, India.
Abstract:
The rise of drug-resistant Mycobacterium tuberculosis (Mtb) strains has driven the search for novel therapeutic targets beyond conventional anti-tubercular agents. One such promising target is the ClpP protease complex, composed of ClpP1 and ClpP2 subunits, which is essential for proteostasis and bacterial survival under stress. This study explores the molecular dynamics (MD) and activation mechanism of Mtb ClpP subunits by N-[(benzyloxy)carbonyl]-L-isoleucyl-L-leucine (ZIL), an N-blocked dipeptide activator. MD simulations (200-1000 ns) were used to analyze structural stability, ligand interactions, and domain dynamics of both subunits in active and inactive states. ZIL-bound simulations showed that ClpP1 and ClpP2 maintained structural integrity, with conserved ligand-proximal residues forming stable interactions, although ClpP2 exhibited more variable polar contacts. In contrast, ligand-free simulations (500 ns) revealed significant instability, particularly in the handle domain and S1 binding pocket, underscoring the stabilizing role of ZIL. A 1000 ns simulation, with ZIL placed away from its known binding site on inactive ClpP1, showed that the ligand approached its target site and triggered a conformational shift in the handle domain, an early allosteric response, even though it did not fully dock as observed in the crystal structure. Notably, the residues in proximity to ZIL were associated with the observed structural changes in the simulations. The resulting MD trajectories provide a continuous, atomic-level view of ligand-induced dynamics and early activation events. Conducted without prior mechanistic assumptions, this unbiased simulation highlights the potential of targeting allosteric activation mechanisms and offers valuable insight into the rational design of ClpP-based therapeutics against drug-resistant Mtb.
Insights
Novel drug-resistant Mycobacterium tuberculosis (Mtb) therapies target the ClpP protease. Molecular dynamics simulations reveal how the activator ZIL stabilizes ClpP subunits and initiates allosteric activation, offering insights for new drug design.
Area of Science:
- Biochemistry
- Structural Biology
- Computational Biology
Background:
- Drug-resistant Mycobacterium tuberculosis (Mtb) necessitates novel therapeutic targets.
- The ClpP protease complex (ClpP1/ClpP2) is crucial for Mtb survival and proteostasis.
- Understanding ClpP activation is key to developing new anti-tubercular agents.
Purpose of the Study:
- To investigate the molecular dynamics and activation mechanism of Mtb ClpP subunits using an activator ZIL.
- To analyze the structural stability and ligand interactions of ClpP1 and ClpP2.
- To elucidate the allosteric activation pathway of Mtb ClpP.
Main Methods:
- Molecular dynamics (MD) simulations ranging from 200 to 1000 ns.
- Analysis of structural stability, ligand-protein interactions, and domain dynamics.
- Unbiased simulations to observe ligand-induced conformational changes.
Main Results:
- ZIL binding stabilizes ClpP1 and ClpP2 structure, with conserved interactions.
- Ligand-free simulations show instability in the handle domain and S1 pocket.
- A simulation with ZIL repositioned demonstrated an early allosteric response in ClpP1, involving handle domain conformational shifts.
Conclusions:
- ZIL plays a critical stabilizing role in Mtb ClpP structure and function.
- MD simulations provide atomic-level insights into ligand-induced allosteric activation.
- Targeting ClpP allosteric mechanisms offers a promising strategy for designing new anti-TB drugs.
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