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Published on: January 26, 2016
Harnessing caseinolytic proteases ClpP1P2 for next-generation antimycobacterial agents: Mechanisms, challenges and
Andressa Franciélli Bonjorno1, Mateus Mello de Souza1, Ana Luísa Rodriguez Gini1
1São Paulo State University (UNESP), School of Pharmaceutical Sciences, Araraquara, São Paulo, Brazil.
Abstract:
The caseinolytic protease (Clp) complex plays a fundamental role in protein homeostasis, ensuring the degradation of misfolded and damaged proteins in prokaryotic cells and eukaryotic organelles. Given its essential function, Clp has emerged as an attractive therapeutic target for bacterial infections, particularly for Mycobacterium tuberculosis (Mtb). The growing concern over antimicrobial resistance has prompted efforts to identify inhibitors and activators of ClpP1P2, the unique hetero-oligomeric protease in Mtb. This review explores the structural and functional characteristics of ClpP1P2 and its regulatory ATPase partners (ClpC1 and ClpX), detailing their role in bacterial viability and virulence. Advances in structural biology and proteomics have facilitated the development of novel inhibitors, including acyldepsipeptides (ADEPs), β-lactones, boronate derivatives, and pyrrole-based compounds, many of which exhibit promising antimicrobial activity. Additionally, the emergence of BacPROTAC technology, which leverages targeted protein degradation mechanisms to selectively deplete essential bacterial proteins, represents a groundbreaking strategy in tuberculosis drug discovery. Notably, several inhibitors have demonstrated significant efficacy in vitro and in vivo models, with selectivity towards Mtb ClpP1P2 over human proteasomes, reducing off-target effects. Despite these advances, challenges remain in optimizing compound selectivity, pharmacokinetic properties, and resistance profiles. This review highlights key discoveries in Clp-targeting strategies, emphasizing their potential to contribute to the development of next-generation antimycobacterial agents.
Insights
Targeting the caseinolytic protease (Clp) complex in Mycobacterium tuberculosis offers a promising strategy against drug-resistant infections. Novel inhibitors and BacPROTAC technology show potential for developing new antimycobacterial drugs.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- The caseinolytic protease (Clp) complex is vital for protein homeostasis, degrading damaged proteins.
- Clp is a key therapeutic target for bacterial infections, especially Mycobacterium tuberculosis (Mtb).
- Antimicrobial resistance necessitates new strategies, focusing on Mtb's unique ClpP1P2 protease.
Purpose of the Study:
- To review the structural and functional aspects of Mtb's ClpP1P2 protease and its ATPase partners (ClpC1, ClpX).
- To explore novel inhibitors and therapeutic strategies targeting the Clp complex for Mtb.
- To highlight advances and challenges in developing next-generation antimycobacterial agents.
Main Methods:
- Structural biology and proteomics analyses of the Clp complex.
- Screening and development of various inhibitor classes (ADEPs, β-lactones, etc.).
- Evaluation of BacPROTAC technology for targeted protein degradation.
Main Results:
- Several novel inhibitors demonstrate promising antimicrobial activity against Mtb.
- Inhibitors show selectivity for Mtb ClpP1P2 over human proteasomes, minimizing off-target effects.
- BacPROTAC technology offers a novel approach for selective bacterial protein depletion.
Conclusions:
- Clp-targeting strategies are advancing the development of new antimycobacterial agents.
- Optimizing inhibitor selectivity, pharmacokinetics, and resistance profiles remains crucial.
- The Clp complex represents a significant target for combating tuberculosis.
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