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Cisplatin resistance in germ cell tumours: models and mechanisms
1Department of Oncology, Haematology, Bone Marrow Transplantation with Section Pulmology, Hubertus Wald Tumor Center, Hamburg University Medical Center, University of Hamburg, Hamburg, Germany.
Abstract:
Recent years have led to a better understanding of the mechanisms underlying cisplatin response and resistance in germ cell tumours (GCT), and several promising targets have been identified. Two main mechanisms of the responsiveness to DNA damaging agents have been postulated. Firstly, GCT readily activate a DNA damage response, but show deficits in several damage repair pathways. In particular, they have been found to have defects in interstrand crosslink repair and in homologous recombination (HR). Secondly, GCT, especially embryonal carcinoma (EC) cells, show a hypersensitive apoptotic response to DNA damage, which activates p53, and leads to up-regulation of the pro-apoptotic factors Noxa, Puma and Fas in non-resistant EC. These cells fail to activate p21 which induces a G1/S arrest, but accumulate in G2/M phase. In the absence of functional p53, family members like p73 and GTAp63 might be important in initiating this response. Mechanisms involved in cisplatin resistance are as follows: down-regulation of Oct4 (e.g. as a result of hypoxia, treatment with retinoic acid or exposure to cisplatin) and failure to induce Puma and Noxa; changes in the expression levels of micro-RNAs such as miR-17/-106b, miR-302a, or miR-371 to -373; elevated levels of MDM2 and cytoplasmic translocation of p21 by phosphorylation; and activation of the PDGFRβ/PI3K/pAKT pathway. Several approaches to overcome resistance have been successfully examined in vitro and in vivo, including PARP inhibitors, especially in cells showing deficient HR-repair; stabilization of p53 using nutlin-3; inhibition of several components of the PI3K/pAKT pathway using small molecules; and DNA demethylation by 5-azacytidine or 5-aza-deoxy-cytidine, among others. Many of these substances deserve further exploration, alone or in combination with DNA damaging agents, and the most promising approaches should be taken forward to clinical testing. Targeted therapy based on mechanistic insights holds the promise to turn cisplatin-resistant GCT into a curable disease.
Insights
Understanding cisplatin resistance in germ cell tumors (GCT) reveals DNA repair deficits and apoptotic responses. Novel therapeutic strategies targeting these mechanisms offer promise for treating resistant GCT.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Germ cell tumors (GCT) exhibit unique responses to DNA damaging agents like cisplatin.
- GCTs show deficits in DNA repair pathways, including interstrand crosslink repair and homologous recombination (HR).
- Embryonal carcinoma (EC) cells within GCTs display hypersensitive apoptosis upon DNA damage, involving p53 and pro-apoptotic factors.
Purpose of the Study:
- To elucidate the mechanisms of cisplatin response and resistance in GCT.
- To identify potential therapeutic targets for overcoming cisplatin resistance in GCT.
- To explore novel strategies for treating cisplatin-resistant GCT.
Main Methods:
- Analysis of DNA damage response and repair pathways in GCT cells.
- Investigation of apoptotic signaling and cell cycle arrest mechanisms.
- Evaluation of molecular alterations contributing to cisplatin resistance, including gene expression and micro-RNA changes.
Main Results:
- GCTs have defects in homologous recombination (HR) repair and fail to induce G1/S arrest, accumulating in G2/M phase.
- Cisplatin resistance mechanisms involve down-regulation of Oct4, altered micro-RNA profiles, MDM2 elevation, and PI3K/pAKT pathway activation.
- In vitro and in vivo studies show promise for PARP inhibitors, p53 stabilizers, PI3K/pAKT inhibitors, and DNA demethylating agents.
Conclusions:
- Targeted therapies, particularly those addressing HR repair deficiencies and apoptotic pathways, hold significant potential.
- Combination therapies involving novel agents with DNA damaging agents warrant further investigation.
- Mechanistic insights into cisplatin resistance pave the way for developing effective treatments for resistant GCT.

