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Updated: May 14, 2025

An Integrated Platform for Genome-wide Mapping of Chromatin States Using High-throughput ChIP-sequencing in Tumor Tissues
Published on: April 5, 2018
Epigenetic dynamics and molecular mechanisms in oncogenesis, tumor progression, and therapy resistance
Mohammed Kaleem1, Lubna Azmi2, Naiyer Shahzad3
1Department of Pharmacology, Dadasaheb Balpande College of Pharmacy, Rashtrasant Tukadoji Maharaj Nagpur University, Nagpur, Maharashtra, India.
Abstract:
Cancer progression is governed by a dynamic interplay of genetic, epigenetic, and molecular mechanisms that regulate tumor initiation, growth, metastasis, and therapy resistance. This review highlights key molecular pathways involved in oncogenesis, focusing on genetic alterations (mutations, amplifications, and translocations) in oncogenes (RAS and MYC) and tumor suppressor genes (TP53 and PTEN). Additionally, genomic instability, resulting from defective DNA repair mechanisms like mismatch repair and homologous recombination (HR), is identified as a critical factor contributing to tumor heterogeneity and clonal evolution. Epigenetic modifications, including DNA methylation, histone acetylation, and non-coding RNA regulation, further remodel chromatin structure and modulate gene expression, influencing tumor initiation, growth, metastasis, and response to treatment. Post-translational modifications, such as the attachment of a Small Ubiquitin-like Modifier (SUMO) to a target protein and ubiquitination, further influence autophagy, apoptosis, and cellular plasticity, enabling cancer cells to survive therapeutic stress. Cutting-edge technologies such as CRISPR-Cas9-mediated epigenome editing and single-cell RNA sequencing have opened new doors to understanding cellular diversity and regulatory networks in cancer. The review further examines the tumor microenvironment, including stromal remodeling, immune evasion, and hypoxia-driven signaling pathways, which are critical modulators of tumor progression and drug resistance to treatment. By integrating molecular, genetic, and epigenetic perspectives, this study underscores the crucial need for innovative, targeted therapeutic approaches to address the complexity and adaptability of cancer, thereby paving the way for more effective treatments.
Insights
Cancer progression involves complex genetic and epigenetic changes. Understanding these molecular mechanisms and the tumor microenvironment is key to developing targeted therapies for better treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
- Epigenetics
Background:
- Cancer progression is driven by intricate genetic, epigenetic, and molecular interactions.
- Key oncogenes (RAS, MYC) and tumor suppressor genes (TP53, PTEN) are frequently altered.
- Genomic instability and epigenetic modifications significantly impact tumor development and treatment resistance.
Purpose of the Study:
- To review the molecular pathways governing cancer progression, including genetic and epigenetic alterations.
- To highlight the role of the tumor microenvironment in modulating cancer.
- To emphasize the need for innovative, targeted therapeutic strategies.
Main Methods:
- Review of literature on molecular mechanisms in oncogenesis.
- Analysis of genetic alterations (mutations, amplifications, translocations).
- Examination of epigenetic modifications (DNA methylation, histone acetylation, non-coding RNAs).
- Discussion of post-translational modifications (SUMOylation, ubiquitination).
- Inclusion of advanced technologies like CRISPR-Cas9 and single-cell RNA sequencing.
- Exploration of tumor microenvironment factors (stromal remodeling, immune evasion, hypoxia).
Main Results:
- Genetic alterations in oncogenes and tumor suppressors are central to cancer initiation.
- Genomic instability contributes to tumor heterogeneity and evolution.
- Epigenetic changes and post-translational modifications influence gene expression, cell survival, and therapeutic response.
- The tumor microenvironment plays a critical role in cancer progression and drug resistance.
Conclusions:
- A comprehensive understanding of cancer's molecular, genetic, and epigenetic complexity is essential.
- Targeted therapeutic approaches are crucial for overcoming cancer's adaptability.
- Integrating diverse biological insights can lead to more effective cancer treatments.
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