Yeast-Based High-Throughput Screening Platform for Identifying Modulators of Mitochondrial Protein Import

Mitochondrial protein import is essential for overall cellular homeostasis, yet scalable approaches to systematically interrogate mitochondrial protein import and identify modulators of this process remain limited. Here, we describe a yeast-based, gain-of-growth (GoG), high-throughput screening assay for the identification of small-molecule modulators of mitochondrial protein import. In this system, truncated human proteins that contain N-terminal mitochondrial targeting sequences (MTSs) are expressed in S. cerevisiae , where mitochondrial protein import is coupled to an auxotrophic growth readout. Disruption of import leads to cytosolic accessibility of the URA3 reporter, producing a GoG phenotype under selective conditions. As a proof of concept, we applied this model to PTEN-induced kinase 1 (PINK1), a mitochondrial imported regulator of mitochondrial quality control. Using this approach, we demonstrate the ability to monitor PINK1 import and identify candidate compounds that modulate this process. Collectively, this work establishes a scalable and reproducible platform for interrogating mitochondrial protein import and identifying compounds for downstream validation in mammalian systems.

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Publication Details

Journal
Assay and Drug Development Technologies
Published
2026-09-30
DOI
https://doi.org/10.1177/1540658x261490394
Primary Topic
Mitochondrial Function and Pathology
Type
article
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article

Yeast-Based High-Throughput Screening Platform for Identifying Modulators of Mitochondrial Protein Import

Sandy Che-Eun S. Lee, Robert Damoiseux, Cameron Taylor, Shaya Smith et al.
Assay and Drug Development Technologies
Mitochondrial Function and Pathology
article

Yeast-Based High-Throughput Screening Platform for Identifying Modulators of Mitochondrial Protein Import

Sandy Che-Eun S. Lee, Robert Damoiseux, Cameron Taylor, Shaya Smith, Maya Cielo Cornejo, Carla M. Koehler, Christina Nguyen
article en

Abstract

Mitochondrial protein import is essential for overall cellular homeostasis, yet scalable approaches to systematically interrogate mitochondrial protein import and identify modulators of this process remain limited. Here, we describe a yeast-based, gain-of-growth (GoG), high-throughput screening assay for the identification of small-molecule modulators of mitochondrial protein import. In this system, truncated human proteins that contain N-terminal mitochondrial targeting sequences (MTSs) are expressed in S. cerevisiae , where mitochondrial protein import is coupled to an auxotrophic growth readout. Disruption of import leads to cytosolic accessibility of the URA3 reporter, producing a GoG phenotype under selective conditions. As a proof of concept, we applied this model to PTEN-induced kinase 1 (PINK1), a mitochondrial imported regulator of mitochondrial quality control. Using this approach, we demonstrate the ability to monitor PINK1 import and identify candidate compounds that modulate this process. Collectively, this work establishes a scalable and reproducible platform for interrogating mitochondrial protein import and identifying compounds for downstream validation in mammalian systems.

Assay and Drug Development Technologies
California NanoSystems Institute (US), University of California, Los Angeles (US), University of California System (US), UCLA Jonsson Comprehensive Cancer Center
Openalex Percentile: Top 20%
Mitochondrial Function and Pathology
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