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Updated: Jan 24, 2026

Genome-wide Analysis using ChIP to Identify Isoform-specific Gene Targets
Published on: July 7, 2010
Computational analysis of data from a genome-wide screening identifies new PARP1 functional interactors as potential
Samuele Lodovichi1,2, Alberto Mercatanti1, Tiziana Cervelli1
1Yeast Genetics and Genomics Group, Laboratory of Functional Genetics and Genomics, Institute of Clinical Physiology CNR, Pisa, Italy.
Abstract:
Knowledge of interaction network between different proteins can be a useful tool in cancer therapy. To develop new therapeutic treatments, understanding how these proteins contribute to dysregulated cellular pathways is an important task. PARP1 inhibitors are drugs used in cancer therapy, in particular where DNA repair is defective. It is crucial to find new candidate interactors of PARP1 as new therapeutic targets in order to increase efficacy of PARP1 inhibitors and expand their clinical utility. By a yeast-based genome wide screening, we previously discovered 90 candidate deletion genes that suppress growth-inhibition phenotype conferred by PARP1 in yeast. Here, we performed an integrated and computational analysis to deeply study these genes. First, we identified which pathways these genes are involved in and putative relations with PARP1 through g:Profiler. Then, we studied mutation pattern and their relation to cancer by interrogating COSMIC and DisGeNET database; finally, we evaluated expression and alteration in several cancers with cBioPortal, and the interaction network with GeneMANIA. We identified 12 genes belonging to PARP1-related pathways. We decided to further validate RIT1, INCENP and PSTA1 in MCF7 breast cancer cells. We found that RIT1 and INCENP affected PARylation and PARP1 protein level more significantly in PARP1 inhibited cells. Furthermore, downregulation of RIT1, INCENP and PSAT1 affected olaparib sensitivity of MCF7 cells. Our study identified candidate genes that could have an effect on PARP inhibition therapy. Moreover, we also confirm that yeast-based screenings could be very helpful to identify novel potential therapy factors.
Insights
This study identified novel protein interactors of PARP1 using yeast screening and computational analysis. These findings could enhance PARP1 inhibitor efficacy in cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Protein interaction networks are crucial for understanding cancer and developing new therapies.
- Poly (ADP-ribose) polymerase 1 (PARP1) inhibitors are used in cancer treatment, particularly for DNA repair-deficient cancers.
- Identifying novel PARP1 interactors can improve PARP1 inhibitor efficacy and clinical use.
Purpose of the Study:
- To computationally analyze 90 candidate genes identified from a yeast-based screen for their involvement in PARP1-related pathways.
- To investigate the mutation patterns, cancer associations, expression alterations, and interaction networks of these candidate genes.
- To validate the functional roles of selected genes (RIT1, INCENP, PSAT1) in breast cancer cells and their impact on PARP1 inhibition.
Main Methods:
- Yeast-based genome-wide screening to identify PARP1 suppressor genes.
- Integrated computational analysis using g:Profiler, COSMIC, DisGeNET, cBioPortal, and GeneMANIA.
- Experimental validation in MCF7 breast cancer cells, including assessment of PARylation, PARP1 protein levels, and sensitivity to olaparib.
Main Results:
- Identified 12 candidate genes involved in PARP1-related pathways.
- RIT1 and INCENP significantly affected PARylation and PARP1 protein levels in PARP1-inhibited cells.
- Downregulation of RIT1, INCENP, and PSAT1 influenced the sensitivity of MCF7 cells to olaparib.
Conclusions:
- The study identified novel candidate genes with potential roles in PARP1 inhibition therapy.
- Yeast-based screening is a valuable approach for discovering new therapeutic targets in cancer.
- The findings contribute to expanding the clinical utility of PARP1 inhibitors.
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