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Updated: Dec 22, 2025

Repression of Multiple Myeloma Cell Growth In Vivo by Single-wall Carbon Nanotube SWCNT-delivered MALAT1 Antisense Oligos
Published on: December 13, 2018
Drug Targeting of Genomic Instability in Multiple Myeloma
Meral Beksac1, Sevinc Balli2, Dilara Akcora Yildiz3
1Department of Hematology, School of Medicine, Ankara University, Ankara, Turkey.
Abstract:
Genomic instability can be observed at both chromosomal and chromatin levels. Instability at the macro level includes centrosome abnormalities (CA) resulting in numerical as well as structural chromosomal changes, whereas instability at the micro level is characterized by defects in DNA repair pathways resulting in microsatellite instability (MIN) or mutations. Genomic instability occurs during carcinogenesis without impairing survival and growth, though the precise mechanisms remain unclear. Solid tumors arising from most cells of epithelial origin are characterized by genomic instability which renders them resistant to chemotherapy and radiotherapy. This instability is also observed in 25% of myeloma patients and has been shown to be highly prognostic, independently of the international staging system (ISS). However, a biomarker of aberrant DNA repair and loss of heterozygosity (LOH), was only observed at a frequency of 5% in newly diagnosed patients. Several new molecules targeting the pathways involved in genomic instability are under development and some have already entered clinical trials. Poly(ADP-ribose) polymerase-1 (PARP) inhibitors have been FDA-approved for the treatment of breast cancer type 1 susceptibility protein (BRCA1)-mutated metastatic breast cancer, as well as ovarian and lung cancer. Topoisomerase inhibitors and epigenetic histone modification-targeting inhibitors, such as HDAC (Histone Deacetylase) inhibitors which are novel agents that can target genomic instability. Several of the small molecule inhibitors targeting chromosomal level instability such as PARP, Akt, Aurora kinase, cyclin dependent kinase or spindle kinase inhibitors have been tested in mouse models and early phase I/II trials. ATM, ATR kinase inhibitors and DNA helicase inhibitors are also promising novel agents. However, most of these drugs are not effective as single agents but appear to act synergistically with DNA damaging agents such as radiotherapy, platinum derivatives, immunomodulators, and proteasome inhibitors. In this review, new drugs targeting genomic instability and their mechanisms of action will be discussed.
Insights
Genomic instability, a hallmark of many cancers, involves chromosomal and DNA repair defects. New drugs targeting these pathways, like PARP inhibitors, show promise, especially when combined with other therapies.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Genomic instability, at chromosomal and chromatin levels, is prevalent in solid tumors and myeloma.
- It confers resistance to chemotherapy and radiotherapy, and is a poor prognostic indicator in myeloma.
- Mechanisms driving genomic instability during carcinogenesis are not fully understood.
Purpose of the Study:
- To review novel therapeutic agents targeting genomic instability.
- To discuss their mechanisms of action and clinical trial progress.
- To highlight synergistic potential with existing treatments.
Main Methods:
- Literature review of preclinical and clinical studies on drugs targeting genomic instability.
- Analysis of drug classes including PARP inhibitors, topoisomerase inhibitors, and epigenetic modifiers.
- Examination of small molecule inhibitors targeting chromosomal instability pathways.
Main Results:
- Several novel agents targeting genomic instability are in development and clinical trials.
- PARP inhibitors are approved for BRCA1-mutated breast, ovarian, and lung cancers.
- Many agents show synergistic effects with DNA damaging agents, radiotherapy, and other cancer therapies.
Conclusions:
- Targeting genomic instability represents a promising therapeutic strategy in oncology.
- Combination therapies involving novel agents and DNA damaging agents are likely to be more effective.
- Further research into mechanisms and drug development is crucial for improving cancer treatment outcomes.
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