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Updated: Feb 2, 2026

In Vitro Cleavage Assays using Purified Recombinant Drosophila Caspases for Substrate Screening
Published on: October 6, 2022
Tri-arginine exosite patch of caspase-6 recruits substrates for hydrolysis
Derek J MacPherson1, Caitlyn L Mills2, Mary Jo Ondrechen2
1Department of Chemistry, University of Massachusetts, Amherst, Amherst, Massachusetts 01003.
Abstract:
Caspases are cysteine-aspartic proteases involved in the regulation of programmed cell death (apoptosis) and a number of other biological processes. Despite overall similarities in structure and active-site composition, caspases show striking selectivity for particular protein substrates. Exosites are emerging as one of the mechanisms by which caspases can recruit, engage, and orient these substrates for proper hydrolysis. Following computational analyses and database searches for candidate exosites, we utilized site-directed mutagenesis to identify a new exosite in caspase-6 at the hinge between the disordered N-terminal domain (NTD), residues 23-45, and core of the caspase-6 structure. We observed that substitutions of the tri-arginine patch Arg-42-Arg-44 or the R44K cancer-associated mutation in caspase-6 markedly alter its rates of protein substrate hydrolysis. Notably, turnover of protein substrates but not of short peptide substrates was affected by these exosite alterations, underscoring the importance of this region for protein substrate recruitment. Hydrogen-deuterium exchange MS-mediated interrogation of the intrinsic dynamics of these enzymes suggested the presence of a substrate-binding platform encompassed by the NTD and the 240's region (containing residues 236-246), which serves as a general exosite for caspase-6-specific substrate recruitment. In summary, we have identified an exosite on caspase-6 that is critical for protein substrate recognition and turnover and therefore highly relevant for diseases such as cancer in which caspase-6-mediated apoptosis is often disrupted, and in neurodegeneration in which caspase-6 plays a central role.
Insights
Researchers discovered a new exosite on caspase-6, crucial for recognizing and processing protein substrates. This finding is vital for understanding cancer and neurodegenerative diseases involving caspase-6 dysfunction.
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Caspases are cysteine-aspartic proteases regulating programmed cell death (apoptosis).
- Caspases exhibit substrate selectivity, with exosites emerging as key recognition mechanisms.
- Caspase-6 plays a significant role in apoptosis and is implicated in cancer and neurodegeneration.
Purpose of the Study:
- To identify and characterize novel exosites in caspase-6.
- To investigate the role of identified exosites in protein substrate recognition and hydrolysis.
- To understand the implications of caspase-6 exosite function in disease.
Main Methods:
- Computational analyses and database searches for candidate exosites.
- Site-directed mutagenesis to alter specific caspase-6 residues (e.g., tri-arginine patch, R44K mutation).
- Hydrogen-deuterium exchange mass spectrometry (HDX-MS) to study enzyme dynamics and substrate binding.
Main Results:
- A new exosite was identified at the hinge region of caspase-6 (residues 23-45).
- Mutations in this exosite (Arg-42-Arg-44, R44K) significantly altered protein substrate hydrolysis rates.
- HDX-MS revealed a substrate-binding platform involving the N-terminal domain (NTD) and the 240's region for caspase-6 substrate recruitment.
Conclusions:
- An exosite critical for caspase-6 protein substrate recognition and turnover has been identified.
- This exosite is essential for recruiting and orienting protein substrates for hydrolysis.
- The findings are highly relevant to diseases like cancer and neurodegeneration where caspase-6 function is altered.
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