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PMID: 7891683 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Identification of an activity in B-cell extracts that selectively impairs the formation of an immunoglobulin mu s poly(A) site processing complex.

Molecular and cellular biology ·Vol. 15 ·No. 4 ·1995-04-00 ·Pages 1901-6

Yan DH, Weiss EA, Nevins JR

Abstract

The immunoglobulin mu heavy-chain transcription unit is differentially expressed during B-cell development, producing mRNAs that encode secreted (mu s) and membrane-bound (mu m) forms of the heavy-chain polypeptide. Whereas the mu s mRNA and the mu m mRNA are produced in approximately equal abundance in B cells, an increase in the utilization of the mu s poly(A) site contributes to the production of the mu s mRNA as the predominant form in a plasma cell. Previous experiments have demonstrated a correlation between the formation of a stable complex on a poly(A) site and the relative function of the poly(A) site. We have thus investigated the parameters determining the interaction of these factors with the immunoglobulin poly(A) sites. Assays of complex formation involving the two immunoglobulin poly(A) sites by using HeLa cell activities revealed the formation of stable complexes with no apparent difference between the mu s site and the mu m site. In contrast, the mu s-specific complex was markedly less stable when a B-cell extract was used. Fractionation of B-cell extracts has revealed an activity that specifically destabilizes the mu s polyadenylation complex, suggesting that the function of this poly(A) site may be regulated by both positive- and negative-acting factors.

MeSH Terms
Animals B-Lymphocytes/immunology,metabolism Base Sequence Immunoglobulin Class Switching/genetics Immunoglobulin Heavy Chains/biosynthesis,genetics Immunoglobulin mu-Chains/biosynthesis,genetics Lymphoma, B-Cell Mice Models, Genetic Molecular Sequence Data RNA Processing, Post-Transcriptional RNA, Messenger/biosynthesis Transcription, Genetic Tumor Cells, Cultured
Chemicals
Immunoglobulin Heavy Chains Immunoglobulin mu-Chains RNA, Messenger
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Yan D H
Department of Genetics, Howard Hughes Medical Institute, Duke University Medical Center, Durham, North Carolina 27710.
Weiss E A
Nevins J R
References (37)
37 references, click to expand
  1. Four factors are required for 3'-end cleavage of pre-mRNAs.
    Genes Dev. 1989 Nov;3(11):1711-24 PMID: 2558045
  2. Regulated immunoglobulin (Ig) RNA processing does not require specific cis-acting sequences: non-Ig RNA can be alternatively processed in B cells and plasma cells.
    Mol Cell Biol. 1994 Dec;14(12):7891-8 PMID: 7969129
  3. An ordered pathway of assembly of components required for polyadenylation site recognition and processing.
    Genes Dev. 1989 Dec;3(12B):2180-90 PMID: 2628166
  4. RNA 3'-end formation.
    Genes Dev. 1989 Dec;3(12B):2218-22 PMID: 2628168
  5. How the messenger got its tail: addition of poly(A) in the nucleus.
    Trends Biochem Sci. 1990 Jul;15(7):277-81 PMID: 1974368
  6. A multisubunit factor, CstF, is required for polyadenylation of mammalian pre-mRNAs.
    Genes Dev. 1990 Dec;4(12A):2112-20 PMID: 1980119
  7. Poly(A) site efficiency reflects the stability of complex formation involving the downstream element.
    EMBO J. 1991 Jan;10(1):215-9 PMID: 1671216
  8. Molecular analyses of two poly(A) site-processing factors that determine the recognition and efficiency of cleavage of the pre-mRNA.
    Mol Cell Biol. 1991 May;11(5):2432-8 PMID: 2017162
  9. A novel poly(A)-binding protein acts as a specificity factor in the second phase of messenger RNA polyadenylation.
    Cell. 1991 Aug 23;66(4):759-68 PMID: 1878970
  10. Purification of the cleavage and polyadenylation factor involved in the 3'-processing of messenger RNA precursors.
    J Biol Chem. 1991 Oct 15;266(29):19768-76 PMID: 1918081
  11. Steps in the processing of Ad2 mRNA: poly(A)+ nuclear sequences are conserved and poly(A) addition precedes splicing.
    Cell. 1978 Dec;15(4):1477-93 PMID: 729004
  12. Accurate transcription initiation by RNA polymerase II in a soluble extract from isolated mammalian nuclei.
    Nucleic Acids Res. 1983 Mar 11;11(5):1475-89 PMID: 6828386
  13. Lymphokine-induced IgM secretion by clones of neoplastic B cells.
    Nature. 1983 Apr 28;302(5911):825-6 PMID: 6601774
  14. The pathway of eukaryotic mRNA formation.
    Annu Rev Biochem. 1983;52:441-66 PMID: 6193753
  15. Cell-specific expression of secreted versus membrane forms of immunoglobulin gamma 2b mRNA involves selective use of alternate polyadenylation sites.
    Mol Cell Biol. 1985 Oct;5(10):2514-20 PMID: 3939252
  16. Complex transcriptional units: diversity in gene expression by alternative RNA processing.
    Annu Rev Biochem. 1986;55:1091-117 PMID: 3017190
  17. Regulated production of mu m and mu s mRNA requires linkage of the poly(A) addition sites and is dependent on the length of the mu s-mu m intron.
    Proc Natl Acad Sci U S A. 1986 Dec;83(23):8883-7 PMID: 3097638
  18. Quantitation of cell surface molecules on a differentiating, Ly-1+ B cell lymphoma.
    J Immunol. 1987 May 1;138(9):3075-82 PMID: 3494780
  19. Relative position and strengths of poly(A) sites as well as transcription termination are critical to membrane versus secreted mu-chain expression during B-cell development.
    Genes Dev. 1987 Jul;1(5):471-81 PMID: 3119424
  20. Separation and characterization of a poly(A) polymerase and a cleavage/specificity factor required for pre-mRNA polyadenylation.
    Cell. 1988 Mar 11;52(5):731-42 PMID: 2830992
  21. Poly(A) site choice rather than splice site choice governs the regulated production of IgM heavy-chain RNAs.
    Proc Natl Acad Sci U S A. 1988 Apr;85(8):2439-43 PMID: 3128787
  22. Polyadenylation of mRNA precursors.
    Biochim Biophys Acta. 1988 May 6;950(1):1-12 PMID: 2896017
  23. Multiple factors are required for specific RNA cleavage at a poly(A) addition site.
    Genes Dev. 1988 May;2(5):578-87 PMID: 2838381
  24. Multiple factors are required for poly(A) addition to a mRNA 3' end.
    Genes Dev. 1988 May;2(5):588-97 PMID: 3384332
  25. 3' cleavage and polyadenylation of mRNA precursors in vitro requires a poly(A) polymerase, a cleavage factor, and a snRNP.
    Cell. 1988 Sep 9;54(6):875-89 PMID: 2842067
  26. Poly(A) polymerase purified from HeLa cell nuclear extract is required for both cleavage and polyadenylation of pre-mRNA in vitro.
    Mol Cell Biol. 1989 Jan;9(1):193-203 PMID: 2538718
  27. The regulated production of mu m and mu s mRNA is dependent on the relative efficiencies of mu s poly(A) site usage and the c mu 4-to-M1 splice.
    Mol Cell Biol. 1989 Feb;9(2):726-38 PMID: 2565533
  28. Multiple forms of poly(A) polymerases purified from HeLa cells function in specific mRNA 3'-end formation.
    Mol Cell Biol. 1989 Oct;9(10):4229-38 PMID: 2555686
  29. Cleavage and polyadenylation factor CPF specifically interacts with the pre-mRNA 3' processing signal AAUAAA.
    EMBO J. 1991 Dec;10(13):4241-9 PMID: 1756731
  30. Plasma cell-regulated polyadenylation at the Ig gamma 2b secretion-specific poly(A) site.
    J Immunol. 1992 Feb 15;148(4):1251-60 PMID: 1346622
  31. The human 64-kDa polyadenylylation factor contains a ribonucleoprotein-type RNA binding domain and unusual auxiliary motifs.
    Proc Natl Acad Sci U S A. 1992 Feb 15;89(4):1403-7 PMID: 1741396
  32. Regulated expression of the mouse gamma 2b Ig H chain gene is influenced by polyA site order and strength.
    J Immunol. 1992 Apr 15;148(8):2578-85 PMID: 1560212
  33. Characterization of the multisubunit cleavage-polyadenylation specificity factor from calf thymus.
    J Biol Chem. 1992 Jul 25;267(21):14804-11 PMID: 1634525
  34. The biochemistry of 3'-end cleavage and polyadenylation of messenger RNA precursors.
    Annu Rev Biochem. 1992;61:419-40 PMID: 1353951
  35. A human polyadenylation factor is a G protein beta-subunit homologue.
    J Biol Chem. 1992 Nov 25;267(33):23471-4 PMID: 1358884
  36. Balanced efficiencies of splicing and cleavage-polyadenylation are required for mu-s and mu-m mRNA regulation.
    Gene Expr. 1992;2(4):319-27 PMID: 1361868
  37. A multicomponent complex is required for the AAUAAA-dependent cross-linking of a 64-kilodalton protein to polyadenylation substrates.
    Mol Cell Biol. 1990 Mar;10(3):1244-8 PMID: 2304466
Article Info
Journal
Molecular and cellular biology
Abbr.
Mol Cell Biol
ISSN
0270-7306
Published
1995-04-00
Pages
1901-6
Language
English
Region
United States
NLM ID
8109087
PMCID
PMC230415
Subset
IM
Grants
NIGMS NIH HHS · GM-35894 · United States
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