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A Phenotyping Regimen for Genetically Modified Mice Used to Study Genes Implicated in Human Diseases of Aging
Published on: July 14, 2016
A novel ENU-induced Cpox mutation causes microcytic hypochromic anemia in mice
Yuki Miyasaka1, Kento Okuda1, Ikuo Miura2
1Division of Experimental Animals, Graduate School of Medicine, Nagoya University, 65 Tsurumai-cho, Showa-ku, Nagoya, Aichi 466-8550, Japan.
Abstract:
Mouse models of red blood cell abnormalities are important for understanding the underlying molecular mechanisms of human erythrocytic diseases. DBA.B6-Mha (Microcytic hypochromic anemia) congenic mice were generated from the cross between N-ethyl-N-nitrosourea (ENU)-mutagenized male C57BL/6J and female DBA/2J mice as part of the RIKEN large-scale ENU mutagenesis project. The mice were established by backcrossing with DBA/2J mice for more than 20 generations. These mice showed autosomal-dominant microcytic hypochromic anemia with decreased mean corpuscular volume (MCV) and mean corpuscular hemoglobin (MCH) levels and increased red blood cell distribution width (RDW) and plasma ferritin levels. Linkage analysis indicated that the Mha locus was located within an interval of approximately 1.95-Mb between D16Nut1 (58.35 Mb) and D16Mit185 (60.30 Mb) on mouse chromosome 16. Mutation analysis revealed that DBA.B6-Mha mice had a point mutation (c.921-2A>G) at the acceptor site of intron 4 in the coproporphyrinogen oxidase (Cpox) gene, a heme-synthesizing gene. RT-PCR revealed that the Cpox mRNA in DBA.B6-Mha mice caused splicing errors. Our results suggest that microcytic hypochromic anemia in DBA.B6-Mha mice is owing to impaired heme synthesis caused by splice mutations in Cpox. Therefore, the DBA.B6-Mha mice may be used to elucidate the molecular mechanisms underlying microcytic hypochromic anemia caused by mutations in Cpox. Although low MCV levels are known to confer malarial resistance to the host, there were no marked changes in the susceptibility of DBA.B6-Mha mice to rodent malarial (Plasmodium yoelii 17XL) infection.
Insights
DBA.B6-Mha mice exhibit microcytic hypochromic anemia due to a splice mutation in the coproporphyrinogen oxidase (Cpox) gene, impairing heme synthesis. This mouse model aids in studying erythrocytic diseases caused by Cpox mutations.
Area of Science:
- Genetics and Genomics
- Hematology
- Molecular Biology
Background:
- Mouse models are crucial for understanding human red blood cell disorders.
- N-ethyl-N-nitrosourea (ENU) mutagenesis is a key tool for generating disease models.
Purpose of the Study:
- To characterize a novel mouse model of microcytic hypochromic anemia.
- To identify the genetic basis of the anemia in DBA.B6-Mha mice.
Main Methods:
- Congenic mouse strain generation and characterization.
- Linkage analysis and mutation screening of candidate genes.
- Reverse transcription polymerase chain reaction (RT-PCR) to analyze gene splicing.
Main Results:
- DBA.B6-Mha mice display autosomal-dominant microcytic hypochromic anemia with altered red blood cell indices and increased plasma ferritin.
- A splice mutation (c.921-2A>G) in the coproporphyrinogen oxidase (Cpox) gene was identified.
- The mutation caused splicing errors in Cpox mRNA, leading to impaired heme synthesis.
Conclusions:
- Microcytic hypochromic anemia in DBA.B6-Mha mice results from impaired heme synthesis due to Cpox splice mutations.
- This mouse model is valuable for investigating Cpox-related erythrocytic diseases.
- No significant change in susceptibility to Plasmodium yoelii infection was observed.
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