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Related Concept Videos

Mutations01:39

Mutations

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Overview
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Mutations01:35

Mutations

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Mutations are changes in the sequence of DNA. These changes can occur spontaneously or they can be induced by exposure to environmental factors. Mutations can be characterized in a number of different ways: whether and how they alter the amino acid sequence of the protein, whether they occur over a small or large area of DNA, and whether they occur in somatic cells or germline cells.
Chromosomal Alterations Are Large-Scale Mutations
While point mutations are changes in a single nucleotide in...
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Export of Mitochondrial and Chloroplast Genes02:19

Export of Mitochondrial and Chloroplast Genes

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A eukaryotic cell can have up to three different types of genetic systems: nuclear, mitochondrial, and chloroplast. During evolution, organelles have exported many genes to the nucleus; this transfer is still ongoing in some plant species. Approximately 18% of the Arabidopsis thaliana nuclear genome is thought to be derived from the chloroplast’s cyanobacterial ancestor, and around 75% of the yeast genome derived from the mitochondria’s bacterial ancestor. This export has occurred...
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Animal Mitochondrial Genetics02:59

Animal Mitochondrial Genetics

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Among all the organelles in an animal cell, only mitochondria have their own independent genomes. Animal mitochondrial DNA is a double-stranded, closed-circular molecule with around 20,000 base pairs. Mitochondrial DNA is unique in that one of its two strands, the heavy, or H, -strand is guanine rich, whereas the complementary strand is cytosine rich and called the light, or L, -strand. Compared to nuclear DNA, mitochondrial DNA has a very low percentage of non-coding regions and is marked by...
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Viral Mutations00:36

Viral Mutations

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A mutation is a change in the sequence of bases of DNA or RNA in a genome. Some mutations occur during replication of the genome due to errors made by the polymerase enzymes that replicate DNA or RNA. Unlike DNA polymerase, RNA polymerase is prone to errors because it is not capable of “proofreading” its work. Viruses with RNA-based genomes, like HIV, therefore accrue mutations faster than viruses with DNA-based genomes. Because mutation and recombination provide the raw material...
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Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes02:16

Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes

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The present-day mitochondrial and chloroplast genomes have retained some of the characteristics of their ancestral prokaryotes and also have acquired new attributes during their evolution within eukaryotic cells. Like prokaryotic genomes, mitochondrial and chloroplast genomes neither bind with histone-like proteins nor show complex packaging into chromosome-like structures, as observed in eukaryotes. Unlike mitotic cell divisions observed in eukaryotic cells, mitochondria and chloroplasts...
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Related Experiment Video

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Methylnitrosourea MNU-induced Retinal Degeneration and Regeneration in the Zebrafish: Histological and Functional Characteristics
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Methylnitrosourea MNU-induced Retinal Degeneration and Regeneration in the Zebrafish: Histological and Functional Characteristics

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Mouse Idh3a mutations cause retinal degeneration and reduced mitochondrial function.

Amy S Findlay1, Roderick N Carter2, Becky Starbuck3

  • 1MRC Human Genetics Unit, Institute of Genetics and Molecular Medicine, University of Edinburgh, Crewe Road, Edinburgh EH4 2XU, UK.

Disease Models & Mechanisms
|November 28, 2018
PubMed
Summary

Mutations in Isocitrate dehydrogenase 3 alpha (IDH3A) cause retinal degeneration and reduced mitochondrial function in mice. This highlights IDH3A

Keywords:
Krebs cycleMouse modelRetinitis pigmentosa

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Determination of Mitochondrial Respiration and Glycolysis in Ex Vivo Retinal Tissue Samples
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Determination of Mitochondrial Respiration and Glycolysis in Ex Vivo Retinal Tissue Samples
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Determination of Mitochondrial Respiration and Glycolysis in Ex Vivo Retinal Tissue Samples

Published on: August 4, 2021

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Area of Science:

  • Biochemistry
  • Molecular Biology
  • Ophthalmology

Background:

  • Isocitrate dehydrogenase (IDH) enzymes are crucial for cellular metabolism, particularly in mitochondria.
  • Mutations in IDH3A and IDH3B have been linked to retinal degeneration in humans.
  • The retina has high energy demands and relies on mitochondrial function.

Purpose of the Study:

  • To investigate the role of Isocitrate dehydrogenase 3 (IDH3) in retinal disease and mitochondrial function using mouse models.
  • To determine the specific contribution of IDH3A to retinal degeneration.

Main Methods:

  • Screening of aging mice for mutations affecting retinal function.
  • Generation and analysis of mice with specific mutations in Idh3a (E229K) and Idh3a knockout models.
  • Assessment of retinal stress using GFAP staining and evaluation of mitochondrial respiration in cell lines.

Main Results:

  • Mice with an E229K mutation in Idh3a exhibited late-onset retinal degeneration and signs of retinal stress.
  • Homozygous knockout of Idh3a resulted in embryonic lethality, while compound heterozygotes showed severe retinal degeneration.
  • Mutant cell lines displayed reduced mitochondrial maximal respiration and reserve capacity, unlike Idh3b mutants.

Conclusions:

  • Loss-of-function mutations in IDH3A are sufficient to cause retinal degeneration in mice.
  • Reduced mitochondrial reserve capacity in the retina, exacerbated by IDH3A mutations, underlies the observed degenerative phenotype.
  • IDH3A, but not IDH3B, plays a critical role in maintaining retinal health and mitochondrial function.