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Conservation of protein coding potential in the long terminal repeats of exogenous and endogenous mouse mammary tumor
Abstract:
In vitro protein synthesis and DNA sequence analysis indicate that mouse mammary tumor virus differs from other well-characterized retroviruses in that the long terminal repeat region of the provirus has the capacity to encode proteins. Different exogenously transmitted mouse mammary tumor virus strains and endogenous proviral units conserved this open reading frame feature in the long terminal repeat despite a variation in nucleotide sequence. The proteins encoded by the different long terminal repeats were clearly related, but showed minor variations in size and tryptic peptide maps. In each case, the largest in vitro product had a molecular weight of about 36,000 to 37,000, suggesting that the open reading frame sequences must extend for approximately 1,000 nucleotides beginning at the extreme 5' end of the long terminal repeat. The fact that the reading frame was conserved among these viruses argues in favor of an in vivo function for the open reading frame protein.
Insights
Mouse mammary tumor virus
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Retroviruses typically have non-coding long terminal repeat (LTR) regions.
- The mouse mammary tumor virus (MMTV) is a retrovirus with unique genetic characteristics.
Purpose of the Study:
- To investigate the protein-coding potential of the MMTV LTR.
- To determine if this feature is conserved across different MMTV strains.
Main Methods:
- In vitro protein synthesis assays.
- DNA sequence analysis of MMTV proviral DNA.
Main Results:
- The MMTV LTR contains an open reading frame capable of encoding proteins.
- This protein-coding capacity is conserved in different MMTV strains and endogenous proviruses.
- Encoded proteins show relatedness with minor variations in size and peptide maps, suggesting a molecular weight of 36-37 kDa.
Conclusions:
- The MMTV LTR's conserved protein-coding capacity suggests a functional role in vivo.
- This finding distinguishes MMTV from other well-characterized retroviruses.