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In Vivo Modeling of the Morbid Human Genome using Danio rerio
Published on: August 24, 2013
Further delineation of defects in MRPS2 causing human OXPHOS deficiency and early developmental abnormalities in
Amoolya Kandettu1, Mayuri Yeole2, Hamsini Sekar3
1Department of Public Health Genomics, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, India.
Abstract:
Mitochondrial ribosomal protein-small 2 (MRPS2) encodes a vital structural protein essential for assembling mitoribosomal small subunit and thus mitochondrial translation. Any defect in mitochondrial translation impacts OXPHOS activity and cellular respiration. Defects in MRPS2 have been implicated recently in four families with combined oxidative phosphorylation deficiency-36 (MIM# 617950). We herein describe two individuals from two unrelated families with variable phenotypes of acute onset severe metabolic decompensation and symptomatic hypoglycemia. Exome sequencing identified bi-allelic variants in MRPS2 (NM_016034.5) in the affected individuals: P1: c.490 G > A p.(Glu164Lys); and P2: c.413 G > A p.(Arg138His). Further evaluation of the variant c.490 G > A p.(Glu164Lys) in patient-derived skin fibroblasts revealed decreased expression of MRPS2 transcript and protein levels of MRPS2 along with expression of complex I and IV proteins. Proteomics analysis revealed decreased expression of small subunit proteins and increased expression of large subunit proteins. Also, reduced complex I and IV enzyme activities, mitochondrial respiration (OCR), and altered mitochondrial morphology on confocal imaging were observed. Additionally, mrps2 knockout zebrafish larvae demonstrated an abnormal developmental phenotype and reduced Complex IV activity. With these findings, we identify additional families with variants in MRPS2, illustrating the variable clinical spectrum and validate the pathogenicity of defects in MRPS2 through in-vitro and in-vivo assays.
Insights
Genetic defects in Mitochondrial ribosomal protein-small 2 (MRPS2) cause severe metabolic disorders. This study identifies new families with MRPS2 variants, confirming its role in mitochondrial translation and disease.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Mitochondrial ribosomal protein-small 2 (MRPS2) is crucial for mitochondrial translation and cellular respiration.
- Defects in MRPS2 are linked to combined oxidative phosphorylation deficiency-36.
- Mitochondrial dysfunction impacts cellular energy production.
Purpose of the Study:
- To identify and characterize novel variants in the MRPS2 gene.
- To investigate the functional consequences of MRPS2 defects on mitochondrial function.
- To expand the understanding of the clinical spectrum associated with MRPS2 mutations.
Main Methods:
- Exome sequencing to identify genetic variants.
- Analysis of patient-derived fibroblasts to assess gene and protein expression.
- Proteomics, enzyme activity assays, and oxygen consumption rate (OCR) measurements.
- Zebrafish model for in-vivo validation.
Main Results:
- Identified bi-allelic MRPS2 variants (p.(Glu164Lys) and p.(Arg138His)) in two unrelated families.
- Demonstrated decreased MRPS2 expression, impaired Complex I and IV activity, and altered mitochondrial morphology in patient fibroblasts.
- Observed developmental abnormalities and reduced Complex IV activity in mrps2 knockout zebrafish.
Conclusions:
- MRPS2 variants are associated with a variable clinical spectrum of severe metabolic decompensation and hypoglycemia.
- Functional studies confirm the pathogenicity of MRPS2 defects.
- This research expands the known genetic causes of mitochondrial translation disorders.
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