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Published on: August 24, 2013
Functional characterization of mutations in the myosin Vb gene associated with microvillus inclusion disease
Agata M Szperl1, Magdalena R Golachowska, Marcel Bruinenberg
1Department of Genetics, University Medical Center Groningen, The Netherlands.
Objectives:
Microvillus inclusion disease (MVID) is a rare autosomal recessive enteropathy characterized by intractable diarrhea and malabsorption. Recently, various MYO5B gene mutations have been identified in patients with MVID. Interestingly, several patients with MVID showed only a MYO5B mutation in 1 allele (heterozygous) or no mutations in the MYO5B gene, illustrating the need to further functionally characterize the cell biological effects of the MYO5B mutations.
Patients And Methods:
The genomic DNA of 9 patients diagnosed as having MVID was screened for MYO5B mutations, and quantitative polymerase chain reaction and immunohistochemistry on the material of 2 patients was performed to investigate resultant cellular consequences.
Results:
We demonstrate for the first time that MYO5B mutations can be correlated with altered myosin Vb messenger RNA expression and with an aberrant subcellular distribution of the myosin Vb protein. Moreover, we demonstrate that the typical and myosin Vb-controlled accumulation of Rab11a- and FIP5-positive recycling endosomes in the apical cytoplasm of the cells is abolished in MVID enterocytes, which is indicative of altered myosin Vb function. Moreover, we report 8 novel MYO5B mutations in 9 patients of various ethnic backgrounds with MVID, including compound heterozygous mutations.
Conclusions:
Our functional analysis indicates that MYO5B mutations can be correlated with an aberrant subcellular distribution of the myosin Vb protein, and apical recycling endosomes, which, together with the additional compound heterozygous mutations, significantly strengthen the link between MYO5B and MVID.
Insights
Mutations in the MYO5B gene are linked to microvillus inclusion disease (MVID), a rare intestinal disorder. This study shows MYO5B mutations alter myosin Vb protein distribution and cell function, confirming its role in MVID.
Area of Science:
- Genetics and Molecular Biology
- Cell Biology
- Gastroenterology
Background:
- Microvillus inclusion disease (MVID) is a rare, severe enteropathy.
- While MYO5B gene mutations are implicated, some patients lack clear mutations, necessitating further functional studies.
- Understanding MYO5B's role is crucial for diagnosing and potentially treating MVID.
Purpose of the Study:
- To investigate the functional consequences of MYO5B mutations in MVID patients.
- To correlate MYO5B mutations with cellular changes in MVID enterocytes.
- To identify novel MYO5B mutations in a cohort of MVID patients.
Main Methods:
- Screening of genomic DNA from 9 MVID patients for MYO5B mutations.
- Quantitative polymerase chain reaction (qPCR) to assess mRNA expression.
- Immunohistochemistry to analyze protein distribution and cellular consequences.
Main Results:
- Demonstrated correlation between MYO5B mutations, altered myosin Vb mRNA expression, and aberrant protein distribution.
- Showed abolished accumulation of Rab11a- and FIP5-positive recycling endosomes in MVID enterocytes.
- Reported 8 novel MYO5B mutations in 9 patients, including compound heterozygous mutations.
Conclusions:
- MYO5B mutations are functionally linked to aberrant myosin Vb protein and recycling endosome distribution in MVID.
- These findings strengthen the association between MYO5B gene and microvillus inclusion disease.
- The study highlights the importance of functional analysis in understanding genetic enteropathies.
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