Phenotype diversity in type 1 Gaucher disease: discovering the genetic basis of Gaucher disease/hematologic malignancy phenotype by individual genome analysis

Author:

Lo Sarah M.1,Choi Murim2,Liu Jun3,Jain Dhanpat4,Boot Rolf G.5,Kallemeijn Wouter W.5,Aerts Johannes M. F. G.5,Pashankar Farzana1,Kupfer Gary M.1,Mane Shrikant2,Lifton Richard P.2,Mistry Pramod K.36

Affiliation:

1. Section of Pediatric Hematology-Oncology, Department of Pediatrics, Yale School of Medicine, New Haven, CT;

2. Howard Hughes Medical Institute, Department of Genetics, Yale School of Medicine, New Haven, CT;

3. Section of Pediatric Gastroenterology-Hepatology, Department of Pediatrics, Yale School of Medicine, New Haven, CT;

4. Department of Pathology, Yale School of Medicine, New Haven, CT;

5. Department of Biochemistry, Academic Medical Centre, Amsterdam, The Netherlands; and

6. Section of Digestive Diseases, Department of Internal Medicine, Yale School of Medicine, New Haven, CT

Abstract

Abstract Gaucher disease (GD), an inherited macrophage glycosphingolipidosis, manifests with an extraordinary variety of phenotypes that show imperfect correlation with mutations in the GBA gene. In addition to the classic manifestations, patients suffer from increased susceptibility to hematologic and nonhematologic malignancies. The mechanism(s) underlying malignancy in GD is not known, but is postulated to be secondary to macrophage dysfunction and immune dysregulation arising from lysosomal accumulation of glucocerebroside. However, there is weak correlation between GD/cancer phenotype and the systemic burden of glucocerebroside-laden macrophages. Therefore, we hypothesized that genetic modifier(s) may underlie the GD/cancer phenotype. In the present study, the genetic basis of GD/T-cell acute lymphoblastic lymphoma in 2 affected siblings was deciphered through genomic analysis. GBA gene sequencing revealed homozygosity for a novel mutation, D137N. Whole-exome capture and massively parallel sequencing combined with homozygosity mapping identified a homozygous novel mutation in the MSH6 gene that leads to constitutional mismatch repair deficiency syndrome and increased cancer risk. Enzyme studies demonstrated that the D137N mutation in GBA is a pathogenic mutation, and immunohistochemistry confirmed the absence of the MSH6 protein. Therefore, precise phenotype annotation followed by individual genome analysis has the potential to identify genetic modifiers of GD, facilitate personalized management, and provide novel insights into disease pathophysiology.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

Reference43 articles.

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3. Enzyme replacement for lysosomal diseases.;Brady;Annu Rev Med,2006

4. Gaucher disease: variability in phenotype among siblings.;Amato;J Inherit Metab Dis,2004

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