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Published on: May 5, 2014
Two genetic determinants acquired late in Mus evolution regulate the inclusion of exon 5, which alters mouse APOBEC3
Jun Li1, Yoshiyuki Hakata, Eri Takeda
1Department of Immunology, Kinki University School of Medicine, Osaka, Japan.
Abstract:
Mouse apolipoprotein B mRNA-editing enzyme catalytic polypeptide-like editing complex 3 (mA3), an intracellular antiviral factor, has 2 allelic variations that are linked with different susceptibilities to beta- and gammaretrovirus infections among various mouse strains. In virus-resistant C57BL/6 (B6) mice, mA3 transcripts are more abundant than those in susceptible BALB/c mice both in the spleen and bone marrow. These strains of mice also express mA3 transcripts with different splicing patterns: B6 mice preferentially express exon 5-deficient (Δ5) mA3 mRNA, while BALB/c mice produce exon 5-containing full-length mA3 mRNA as the major transcript. Although the protein product of the Δ5 mRNA exerts stronger antiretroviral activities than the full-length protein, how exon 5 affects mA3 antiviral activity, as well as the genetic mechanisms regulating exon 5 inclusion into the mA3 transcripts, remains largely uncharacterized. Here we show that mA3 exon 5 is indeed a functional element that influences protein synthesis at a post-transcriptional level. We further employed in vitro splicing assays using genomic DNA clones to identify two critical polymorphisms affecting the inclusion of exon 5 into mA3 transcripts: the number of TCCT repeats upstream of exon 5 and the single nucleotide polymorphism within exon 5 located 12 bases upstream of the exon 5/intron 5 boundary. Distribution of the above polymorphisms among different Mus species indicates that the inclusion of exon 5 into mA3 mRNA is a relatively recent event in the evolution of mice. The widespread geographic distribution of this exon 5-including genetic variant suggests that in some Mus populations the cost of maintaining an effective but mutagenic enzyme may outweigh its antiviral function.
Insights
Mouse apolipoprotein B mRNA-editing enzyme catalytic polypeptide-like editing complex 3 (mA3) has variations affecting retrovirus resistance. Exon 5 inclusion impacts antiviral activity and is regulated by genetic polymorphisms, influencing its evolutionary role.
Area of Science:
- Immunology
- Genetics
- Virology
Background:
- Mouse apolipoprotein B mRNA-editing enzyme catalytic polypeptide-like editing complex 3 (mA3) is an intracellular antiviral factor.
- Allelic variations in mA3 correlate with differential susceptibility to beta- and gammaretroviruses in mice.
- C57BL/6 (B6) mice exhibit higher mA3 transcript abundance and favor exon 5-deficient (Δ5) mA3 mRNA, conferring resistance, while BALB/c mice produce more full-length mA3 mRNA, correlating with susceptibility.
Purpose of the Study:
- To investigate the functional role of mA3 exon 5 in antiviral activity.
- To elucidate the genetic mechanisms regulating exon 5 inclusion in mA3 transcripts.
- To understand the evolutionary implications of mA3 exon 5 splicing patterns.
Main Methods:
- In vitro splicing assays using genomic DNA clones.
- Analysis of mA3 transcript abundance and splicing patterns in different mouse strains (B6 and BALB/c).
- Examination of polymorphisms (TCCT repeats and single nucleotide polymorphism) associated with exon 5 inclusion.
Main Results:
- mA3 exon 5 is a functional element influencing protein synthesis post-transcriptionally.
- Two critical polymorphisms, TCCT repeat number and an exon 5 SNP, regulate exon 5 inclusion.
- Exon 5 inclusion is a recent evolutionary event in mice, with its distribution suggesting a balance between antiviral function and mutagenic cost.
Conclusions:
- mA3 exon 5 inclusion significantly impacts antiviral efficacy.
- Genetic variations controlling mA3 splicing are key determinants of retroviral resistance in mice.
- The evolution of mA3 reflects a trade-off between defense against viruses and potential mutagenic effects.
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