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Published on: May 9, 2025
Targeting vulnerabilities in IDH mutant tumours: The model matters
Alwine B Kruisselbrink1, Tessa A H Wilpshaar1, Ieva Palubeckaitė2
1Department of Pathology, Leiden University Medical Center, Leiden, The Netherlands.
Introduction:
Synthetic lethal interactions with IDH1 and IDH2 (IDH) mutations were identified in non-endogenous IDH mutant (IDHMUT) AML and glioma models, but are absent in endogenous IDHMUT chondrosarcoma cell lines. The translation into successful clinical applications has remained challenging, implying artificially created models do not fully recapitulate endogenous IDHMUT tumour biology. The aim of this study was to elucidate if the model system is indeed an important factor to consider when studying therapeutic vulnerabilities in IDHMUT tumours.
Methods:
Vector-based and CRISPR-Cas9 approaches were used to introduce or revert the IDH1 mutation in chondrosarcoma cell lines. These isogenic cell line pairs were used to examine the presence of known therapeutic vulnerabilities and their underlying biological mechanisms.
Results:
Vector-based IDHMUT chondrosarcoma models showed the previously reported synthetic lethal interactions, but these treatment sensitivities were absent in the CRISPR-edited models. Interestingly, not all vector-based IDHMUT cell lines displayed the same therapeutic vulnerabilities. Differences in treatment response were associated with multiple factors, including IDHMUT protein expression and D-2-HG levels, in line with the fact that therapeutic vulnerabilities could be induced in the CRISPR-edited models by enhancing D-2-HG levels.
Conclusion:
Our findings demonstrate that synthetic lethal interactions observed in vector-based models are often a consequence of IDHMUT protein overexpression and supra-physiological D-2-HG levels. These results highlight that relying on artificially created IDHMUT models may lead to the identification of therapeutic vulnerabilities that are not present in IDHMUT tumours, potentially explaining the poor translation of preclinical findings to clinical trials.
Insights
Synthetic lethal interactions in IDH-mutant cancers are often model-dependent. Artificially created models may show vulnerabilities not present in actual tumors, hindering clinical translation.
Area of Science:
- Oncology
- Cancer Biology
- Molecular Therapeutics
Background:
- Synthetic lethal interactions are key targets for cancer therapy.
- Previous studies identified synthetic lethality with IDH1 and IDH2 (IDH) mutations in non-endogenous IDH mutant (IDHMUT) models.
- However, these interactions are absent in endogenous IDHMUT chondrosarcoma cell lines, suggesting model systems impact therapeutic vulnerability discovery.
Purpose of the Study:
- To investigate the role of model systems in studying therapeutic vulnerabilities in IDHMUT tumors.
- To determine if artificially created IDHMUT models accurately reflect endogenous IDHMUT tumor biology.
Main Methods:
- Generated isogenic chondrosarcoma cell line pairs using vector-based and CRISPR-Cas9 approaches to introduce or revert IDH1 mutations.
- Examined known therapeutic vulnerabilities and their underlying biological mechanisms in these cell lines.
Main Results:
- Vector-based IDHMUT models exhibited synthetic lethal interactions, while CRISPR-edited models did not.
- Treatment sensitivities varied among vector-based models and correlated with IDHMUT protein expression and D-2-hydroxyglutarate (D-2-HG) levels.
- Therapeutic vulnerabilities could be induced in CRISPR-edited models by increasing D-2-HG levels.
Conclusions:
- Synthetic lethal interactions in vector-based models are often artifacts of IDHMUT protein overexpression and supra-physiological D-2-HG levels.
- Relying on artificially created IDHMUT models can identify non-existent therapeutic vulnerabilities, potentially explaining poor clinical translation of preclinical findings.
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