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Published on: September 1, 2019
Homologous recombination and cell cycle checkpoints: Rad51 in tumour progression and therapy resistance
Wilhelm Henning1, Horst Werner Stürzbecher
1Institute of Pathology, University Clinic Schleswig-Holstein, Ratzeburger Allee 160, D-23538 Lübeck, Germany.
Abstract:
We provide an overview of the functional interrelationship between genes and proteins related to DNA repair by homologous recombination and cell cycle regulation in relation to the progression and therapy resistance of human tumours. To ensure the high-fidelity transmission of genetic information from one generation to the next, cells have evolved mechanisms to monitor genome integrity. Upon DNA damage, cells initiate complex response pathways including cell cycle arrest, activation of genes and gene products involved in DNA repair, and under some circumstances, the triggering of programmed cell death. Deregulation of this co-ordinated response leads to genetic instability and is fundamental to the aetiology of human cancer. Homologous recombination involved in DNA repair is induced by environmental damage as well as misreplication during the normal cell cycle. However, when not regulated properly, it can result in the loss of heterozygocity or genetic rearrangements, central to the process of carcinogenesis. The central step of homologous recombination is the DNA strand exchange reaction catalysed by the eukaryotic Rad51 protein. Here, we describe the recent progress in our understanding of how Rad51 is involved in the signalling and repair of DNA damage and how tumour suppressors, such as p53, ATM, BRCA1, BRCA2, BLM and FANCD2 are linked to Rad51-dependent pathways. An increased knowledge of the role of Rad51 in DNA repair by homologous recombination and its effects on cell cycle progression, tumour development and tumour resistance may provide opportunities for identifying improved diagnostic markers and developing more effective treatments for cancer.
Insights
Understanding DNA repair by homologous recombination and cell cycle regulation is key to fighting cancer. Disruptions in these processes drive tumor development and resistance to therapy, offering new targets for cancer treatment.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Cellular mechanisms ensure high-fidelity genetic information transmission.
- DNA damage triggers complex responses: cell cycle arrest, DNA repair activation, and programmed cell death.
- Dysregulation of these pathways leads to genetic instability and cancer.
Purpose of the Study:
- To explore the interplay between homologous recombination DNA repair and cell cycle regulation.
- To understand their roles in human tumor progression and therapy resistance.
- To highlight Rad51's central role in DNA repair and its connection to tumor suppressors.
Main Methods:
- Literature review and synthesis of current research.
- Focus on Rad51 protein's function in DNA damage signaling and repair.
- Analysis of tumor suppressor involvement in Rad51-dependent pathways.
Main Results:
- Homologous recombination, crucial for DNA repair, can lead to genetic instability if unregulated.
- Rad51 protein is central to the DNA strand exchange reaction in homologous recombination.
- Tumor suppressors like p53, ATM, BRCA1, BRCA2, BLM, and FANCD2 are linked to Rad51 pathways.
Conclusions:
- Knowledge of Rad51's role in DNA repair and cell cycle impacts tumor development and resistance.
- Understanding these pathways can lead to improved diagnostic markers for cancer.
- This research may pave the way for more effective cancer therapies.
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