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Identification of Host Pathways Targeted by Bacterial Effector Proteins using Yeast Toxicity and Suppressor Screens
Published on: October 25, 2019
Identification of novel human damage response proteins targeted through yeast orthology
J Peter Svensson1, Rebecca C Fry, Emma Wang
1Biological Engineering Department, Center for Environmental Health Sciences, Massachusetts Institute of Technology, Cambridge, Massachusetts, United States of America.
Abstract:
Studies in Saccharomyces cerevisiae show that many proteins influence cellular survival upon exposure to DNA damaging agents. We hypothesized that human orthologs of these S. cerevisiae proteins would also be required for cellular survival after treatment with DNA damaging agents. For this purpose, human homologs of S. cerevisiae proteins were identified and mapped onto the human protein-protein interaction network. The resulting human network was highly modular and a series of selection rules were implemented to identify 45 candidates for human toxicity-modulating proteins. The corresponding transcripts were targeted by RNA interference in human cells. The cell lines with depleted target expression were challenged with three DNA damaging agents: the alkylating agents MMS and 4-NQO, and the oxidizing agent t-BuOOH. A comparison of the survival revealed that the majority (74%) of proteins conferred either sensitivity or resistance. The identified human toxicity-modulating proteins represent a variety of biological functions: autophagy, chromatin modifications, RNA and protein metabolism, and telomere maintenance. Further studies revealed that MMS-induced autophagy increase the survival of cells treated with DNA damaging agents. In summary, we show that damage recovery proteins in humans can be identified through homology to S. cerevisiae and that many of the same pathways are represented among the toxicity modulators.
Insights
Human DNA repair proteins were identified using yeast gene homology, revealing key roles in cellular survival against DNA damage. Many identified proteins modulate sensitivity or resistance to genotoxic agents.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Studies in yeast (Saccharomyces cerevisiae) identified proteins crucial for survival after DNA damage.
- Human orthologs of these yeast proteins were investigated for similar roles in human cells.
Purpose of the Study:
- To identify human proteins that modulate cellular toxicity in response to DNA damaging agents.
- To explore conserved DNA damage response pathways between yeast and humans.
Main Methods:
- Identified human homologs of yeast DNA damage response proteins.
- Mapped homologs onto the human protein-protein interaction network.
- Used RNA interference to deplete candidate proteins in human cells and assessed survival after exposure to MMS, 4-NQO, and t-BuOOH.
Main Results:
- Identified 45 candidate human toxicity-modulating proteins.
- 74% of these proteins significantly altered cellular survival (sensitivity or resistance) when depleted.
- Identified proteins involved in autophagy, chromatin modification, RNA/protein metabolism, and telomere maintenance.
Conclusions:
- Human DNA damage recovery proteins can be identified via homology to Saccharomyces cerevisiae.
- Conserved pathways, including autophagy, play critical roles in human cellular survival following DNA damage.

