Synthetic quantitative array technology identifies the Ubp3-Bre5 deubiquitinase complex as a negative regulator of mitophagy.
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Summary
A quantitative methodology termed synthetic quantitative array (SQA) technology was developed, which allowed us to perform a genome-wide screen for modulators of rapamycin-induced mitophagy in S. cerevisiae, and point to a role of ubiquitination in mitophile in yeast and suggest a reciprocal regulation of distinct autophagy pathways.
- Type
- article
- Published
- 2015-02-24
- Cited by
- 62
- References
- 35
- Access
- Open access
- OpenAlex
- https://openalex.org/W25704822
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:10904092
Keywords
Medicine, Pulmonary hypertension, Cardiology, Intensive care medicine, Internal medicine
References
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Cited by
- Mitophagy and deubiquitination in yeast – the power of synthetic quantitative array technology
- Ubiquitin-Dependent And Independent Signals In Selective Autophagy.
- Mitophagy and mitochondrial dynamics in Saccharomyces cerevisiae.
- Multiplexed, Proteome-Wide Protein Expression Profiling: Yeast Deubiquitylating Enzyme Knockout Strains
- Tetracycline-inducible shRNA targeting antisense long non-coding RNA HIF1A-AS2 represses the malignant phenotypes of bladder cancer.
- Controlling quality and amount of mitochondria by mitophagy: insights into the role of ubiquitination and deubiquitination
- Mitophagie: die gezielte Entsorgung unerwünschter Mitochondrien
- Mitochondrial protein assemblies: Biogenesis of the cytochrome c oxidase and mitophagic signaling complexes
- Emerging connections between RNA and autophagy
- The pleiotropic deubiquitinase Ubp3 confers aneuploidy tolerance
- Ubiquitination of ERMES components by the E3 ligase Rsp5 is involved in mitophagy
- Asc1p/RACK1 Connects Ribosomes to Eukaryotic Phosphosignaling
- The Degradation Pathway of the Mitophagy Receptor Atg32 Is Re-Routed by a Posttranslational Modification
- Global and chromosome-specific consequences of aneuploidy in Saccharomyces cerevisiae
- Ribosomal Asc1p/RACK1 in the phosphorylation signaling network of Saccharomyces cerevisiae
- The Molecular Mechanisms and Physiological Role of Mitophagy in Yeast
- Mitophagy in Yeast: A Screen of Mitophagy-Deficient Mutants.
- Cytosolic Proteostasis Networks of the Mitochondrial Stress Response.
- How to get rid of mitochondria: crosstalk and regulation of multiple mitophagy pathways
- Autophagy: The Master of Bulk and Selective Recycling.
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