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Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
OMA1 High-Throughput Screen Reveals Protease Activation by Kinase Inhibitors
1712 North Inc., QB3 Incubator at UC Berkeley, 130 Stanley Hall, #3220, Berkeley, California 94720, United States.
Abstract:
Mitochondrial proteases are interesting but challenging drug targets for multifactorial diseases, such as neurodegeneration and cancer. The mitochondrial inner membrane protease OMA1 is a bona fide drug target for heart failure supported by data from human linkage analysis and animal disease models, but presumably relevant for more indications. OMA1 acts at the intersection of energy metabolism and stress signaling. The protease cleaves the structural protein OPA1, which organizes the cristae, as well as the signaling peptide DELE1, which can stimulate the integrated stress response. OMA1 shows little activity under physiological conditions but hydrolyzes OPA1 in mitochondria destined for mitophagy and during apoptosis. Little is known about OMA1, its structure has not been solved, let alone its context-dependent regulation. Autocatalytic processing and the lack of OMA1 inhibitors are thereby creating the biggest roadblocks. This study introduces a scalable, cellular OMA1 protease assay suitable for high-throughput drug screening. The assay utilizes an engineered luciferase targeted to the inner membrane as artificial OMA1 substrate, whereby the reporter signal inversely correlates to OMA1 activity. Testing different screening protocols and sampling different compound collections validated the reporter and demonstrated that both OMA1 activators as well as OMA1 inhibitors can be identified with the assay. Ten kinase-targeted cancer drugs triggered OMA1 in the assays, which suggests─considering cardiotoxicity as a rather common side-effect of this class of drugs─cross-reactivity with the OMA1 pathway.
Insights
Researchers developed a new assay to screen for drugs targeting the mitochondrial protease OMA1, crucial for diseases like heart failure and cancer. This assay can identify both OMA1 activators and inhibitors, paving the way for new therapeutic strategies.
Area of Science:
- Biochemistry
- Molecular Biology
- Drug Discovery
Background:
- Mitochondrial proteases, like OMA1, are challenging drug targets for multifactorial diseases.
- OMA1 plays a role in energy metabolism and stress signaling by cleaving OPA1 and DELE1.
- Limited knowledge exists regarding OMA1's structure, regulation, and inhibition.
Purpose of the Study:
- To develop a scalable, cellular assay for high-throughput drug screening of OMA1 activity.
- To identify potential activators and inhibitors of OMA1 for therapeutic development.
- To investigate potential cross-reactivity of existing drugs with the OMA1 pathway.
Main Methods:
- Engineered a luciferase reporter targeted to the inner mitochondrial membrane as an artificial OMA1 substrate.
- Developed a cellular assay where reporter signal inversely correlates with OMA1 activity.
- Validated the assay using different screening protocols and compound collections.
Main Results:
- Successfully established and validated a scalable OMA1 protease assay for drug screening.
- Demonstrated the assay's capability to identify both OMA1 activators and inhibitors.
- Identified ten kinase-targeted cancer drugs that triggered OMA1 activity, suggesting potential cross-reactivity.
Conclusions:
- The developed assay is suitable for high-throughput screening of OMA1 modulators.
- OMA1 is a promising drug target for heart failure, neurodegeneration, and cancer.
- Kinase-targeted cancer drugs may interact with the OMA1 pathway, potentially explaining cardiotoxicity.

