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Updated: Jan 28, 2026

In Vitro Selection of Engineered Transcriptional Repressors for Targeted Epigenetic Silencing
Published on: May 5, 2023
Reverse Engineering Cancer: Inferring Transcriptional Gene Signatures from Copy Number Aberrations with ICAro
Davide Angeli1, Maurizio Fanciulli2, Matteo Pallocca3
1Department of Paediatric Haematology, IRCCS Ospedale Pediatrico Bambino Gesù, 00146 Rome, Italy. davide.ang@gmail.com.
Abstract:
The characterization of a gene product function is a process that involves multiple laboratory techniques in order to silence the gene itself and to understand the resulting cellular phenotype via several omics profiling. When it comes to tumor cells, usually the translation process from in vitro characterization results to human validation is a difficult journey. Here, we present a simple algorithm to extract mRNA signatures from cancer datasets, where a particular gene has been deleted at the genomic level, ICAro. The process is implemented as a two-step workflow. The first one employs several filters in order to select the two patient subsets: the inactivated one, where the target gene is deleted, and the control one, where large genomic rearrangements should be absent. The second step performs a signature extraction via a Differential Expression analysis and a complementary Random Forest approach to provide an additional gene ranking in terms of information loss. We benchmarked the system robustness on a panel of genes frequently deleted in cancers, where we validated the downregulation of target genes and found a correlation with signatures extracted with the L1000 tool, outperforming random sampling for two out of six L1000 classes. Furthermore, we present a use case correlation with a published transcriptomic experiment. In conclusion, deciphering the complex interactions of the tumor environment is a challenge that requires the integration of several experimental techniques in order to create reproducible results. We implemented a tool which could be of use when trying to find mRNA signatures related to a gene loss event to better understand its function or for a gene-loss associated biomarker research.
Insights
We developed ICAro, a novel algorithm to identify mRNA signatures associated with gene loss in cancer. This tool aids in understanding gene function and discovering biomarkers by analyzing cancer genomic data.
Area of Science:
- Genomics
- Bioinformatics
- Cancer Research
Background:
- Characterizing gene function in cancer requires complex laboratory techniques and omics profiling.
- Translating in vitro findings to human validation for tumor cells presents significant challenges.
Purpose of the Study:
- To present ICAro, a simple algorithm for extracting mRNA signatures from cancer datasets with genomic gene deletions.
- To facilitate the understanding of gene function and identify gene-loss associated biomarkers.
Main Methods:
- A two-step workflow involving patient subset selection (inactivated vs. control) based on gene deletion.
- Signature extraction using Differential Expression analysis and Random Forest for gene ranking based on information loss.
Main Results:
- Benchmarked ICAro on frequently deleted cancer genes, validating target gene downregulation.
- Demonstrated correlation with L1000 signatures, outperforming random sampling in specific classes.
- Presented a use case correlating ICAro with a published transcriptomic experiment.
Conclusions:
- Deciphering tumor environment interactions necessitates integrated experimental techniques for reproducible results.
- ICAro provides a valuable tool for identifying mRNA signatures linked to gene loss events.
- The tool supports functional gene studies and gene-loss associated biomarker research.
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Transcription
Transcription is the process of synthesizing RNA from a DNA sequence by RNA polymerase. It is the first step in producing a protein from a gene sequence. Additionally, many other proteins and regulatory sequences are involved in the proper synthesis of messenger RNA (mRNA). Regulation of transcription is responsible for the differentiation of all the different types of cells and often for the proper cellular response to environmental signals.
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