Novel disease-causing mutations in the dihydropyrimidine dehydrogenase gene interpreted by analysis of the three-dimensional protein structure

Author:

van KUILENBURG André B.P.1,DOBRITZSCH Doreen2,MEINSMA Rutger1,HAASJES Janet1,WATERHAM Hans R.1,NOWACZYK Malgorzata J.M.3,MAROPOULOS George D.4,HEIN Guido5,KALHOFF Hermann5,KIRK Jean M.6,BAASKE Holger7,AUKETT Anne8,DULEY John A.9,WARD Kate P.10,LINDQVIST Ylva2,van GENNIP Albert H.1

Affiliation:

1. Academic Medical Center, University of Amsterdam, Emma Children's Hospital and Department of Clinical Chemistry, PO Box 22700, 1100 DE Amsterdam, The Netherlands

2. Department of Medical Biochemistry and Biophysics, Karolinska Institute, Stockholm, Sweden

3. Department of Pathology and Molecular Medicine, McMaster University, Hamilton, Canada

4. Department of Chemical Pathology, General Children's Hospital of Athens, Athens, Greece

5. Children's Hospital Dortmund, Dortmund, Germany

6. Dept. of Paediatric Biochemistry, Royal Hospital for Sick Children, Edinburgh, Scotland, U.K.

7. Klinik am Eichert Göppingen, Göppingen, Germany

8. City Hospital NHS Trust, Birmingham, U.K.

9. Purine Research Laboratory, Guy's Hospital, London Bridge, London, U.K.

10. Airedale General Hospital, Keighley, West Yorkshire, U.K.

Abstract

Dihydropyrimidine dehydrogenase (DPD) deficiency is an autosomal recessive disease characterized by thymine-uraciluria in homozygous deficient patients. Cancer patients with a partial deficiency of DPD are at risk of developing severe life-threatening toxicities after the administration of 5-fluorouracil. Thus, identification of novel disease-causing mutations is of the utmost importance to allow screening of patients at risk. In eight patients presenting with a complete DPD deficiency, a considerable variation in the clinical presentation was noted. Whereas motor retardation was observed in all patients, no patients presented with convulsive disorders. In this group of patients, nine novel mutations were identified including one deletion of two nucleotides [1039-1042delTG] and eight missense mutations. Analysis of the crystal structure of pig DPD suggested that five out of eight amino acid exchanges present in these patients with a complete DPD deficiency, Pro86Leu, Ser201Arg, Ser492Leu, Asp949Val and His978Arg, interfered directly or indirectly with cofactor binding or electron transport. Furthermore, the mutations Ile560Ser and Tyr211Cys most likely affected the structural integrity of the DPD protein. Only the effect of the Ile370Val and a previously identified Cys29Arg mutation could not be readily explained by analysis of the three-dimensional structure of the DPD enzyme, suggesting that at least the latter might be a common polymorphism. Our data demonstrate for the first time the possible consequences of missense mutations in the DPD gene on the function and stability of the DPD enzyme.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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