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Published on: October 6, 2016
A Drosophila XPD model links cell cycle coordination with neuro-development and suggests links to cancer
Karin Stettler1, Xiaoming Li1, Björn Sandrock2
1Institute of Cell Biology, University of Bern, 3012 Bern, Switzerland.
Abstract:
XPD functions in transcription, DNA repair and in cell cycle control. Mutations in human XPD (also known as ERCC2) mainly cause three clinical phenotypes: xeroderma pigmentosum (XP), Cockayne syndrome (XP/CS) and trichothiodystrophy (TTD), and only XP patients have a high predisposition to developing cancer. Hence, we developed a fly model to obtain novel insights into the defects caused by individual hypomorphic alleles identified in human XP-D patients. This model revealed that the mutations that displayed the greatest in vivo UV sensitivity in Drosophila did not correlate with those that led to tumor formation in humans. Immunoprecipitations followed by targeted quantitative MS/MS analysis showed how different xpd mutations affected the formation or stability of different transcription factor IIH (TFIIH) subcomplexes. The XP mutants most clearly linked to high cancer risk, Xpd R683W and R601L, showed a reduced interaction with the core TFIIH and also an abnormal interaction with the Cdk-activating kinase (CAK) complex. Interestingly, these two XP alleles additionally displayed high levels of chromatin loss and free centrosomes during the rapid nuclear division phase of the Drosophila embryo. Finally, the xpd mutations showing defects in the coordination of cell cycle timing during the Drosophila embryonic divisions correlated with those human mutations that cause the neurodevelopmental abnormalities and developmental growth defects observed in XP/CS and TTD patients.
Insights
Developing a fly model for XPD gene mutations revealed that UV sensitivity did not correlate with cancer risk in humans. Specific XPD mutations impact transcription factor IIH stability and cell cycle control, linking them to distinct clinical phenotypes.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- The XPD (ERCC2) gene is crucial for transcription, DNA repair, and cell cycle regulation.
- Mutations in XPD cause xeroderma pigmentosum (XP), Cockayne syndrome (XP/CS), and trichothiodystrophy (TTD), with XP patients exhibiting high cancer predisposition.
Purpose of the Study:
- To investigate the functional consequences of hypomorphic XPD alleles found in human XP-D patients using a Drosophila model.
- To correlate specific XPD mutations with distinct clinical phenotypes, including cancer risk, developmental defects, and UV sensitivity.
Main Methods:
- Development of a Drosophila melanogaster model for studying XPD mutations.
- Immunoprecipitation followed by quantitative MS/MS analysis to assess TFIIH subcomplex formation and stability.
- Microscopic analysis of chromatin and centrosome behavior during embryonic development.
Main Results:
- Drosophila UV sensitivity did not correlate with human tumor formation predisposition for certain XPD mutations.
- XPD mutations linked to high cancer risk showed reduced interaction with core TFIIH and abnormal interaction with the CAK complex.
- Specific XPD alleles caused chromatin loss, free centrosomes, and cell cycle timing defects, correlating with XP/CS and TTD neurodevelopmental and growth abnormalities.
Conclusions:
- The Drosophila model effectively recapitulates distinct aspects of XPD-related human disorders.
- XPD mutation effects on TFIIH stability and cell cycle control are key determinants of clinical phenotype.
- Understanding these molecular mechanisms can inform the diagnosis and potential therapeutic strategies for XPD-related diseases.

