Identical 3' non-coding sequences in five mouse Ig kappa chain mRNAs favour a unique C kappa gene.
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Biomedical subjects
Publications and source records attributed to S Cory.
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To investigate the organization of immunoglobulin genes, we have constructed a clone library containing 10(6) randomly generated fragments of mouse embryo DNA, corresponding to eight equivalents of the genome. The cloning method involved methylation of embryo DNA at EcoRI recognition sites, partial digestion by EcoRI* endonclease activity, and direct ligation of the resulting large fragments to the lambda phage vector Charon 4A. The library was searched for sequences homologous to a cloned complementary DNA copy of a mu heavy chain mRNA. Nine clones bearing variable heavy chain (VH) sequences were isolated, representing at least eight distinct VH genes. Thus, multiple related VH genes are available in the genome to contribute to immunoglobulin diversity. Each of the two clones carries a pair of VH genes, one pair separated by 15 +/- 1 kilobase pairs of mouse DNA and the other by 14 +/- 2 kilobase pairs. This indicates that related VH genes are clustered and may occur in a tandem array having a repeating unit of 14--16 kilobase pairs. The large spacer sequences between VH genes cannot, however, be highly conserved.
It is shown that the DNA-dependent RNA polymerase of Escherichia coli can synthesize complementary RNA (cRNA) directly on rRNA and mRNA templates. Synthesis occurred preferentially in the presence of Mn2+ and at relatively high substrate and enzyme concentrations. No primer was required, and addition of oligo-U to a mRNA-dependent reaction gave no marked stimulation. Sedimentation analysis of cRNA made on different templates indicated that the products were mainly 2-4 S, but a fraction of the product was larger. Fingerprints of 32P-labelled cRNA made on 5 S rRNA and 18 S rRNA indicated that the complexity of the cRNAs was related to the size of the template, suggesting that a substantial portion of the templates were copied. This reaction provides a simple method for preparing cRNA of high specific activity for use in hybridisation studies, and possibly in sequence analysis. 32P-labelled cRNA made on 18 S and 28 S rRNA was a sensitive hybridisation probe for detection of the specific fragments of mouse DNA containing the rRNA genes.
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The organization of the 18S, 28S and 5.8S rRNA genes in the mouse has been elucidated by mapping with restriction endonucleases Eco RI, Hind III and Bam HI. Ribosomal DNA fragments were detected in electrophoretically fractionated digests of total nuclear DNA by in situ hybridization with radioiodinated rRNAs or with complementary RNA synthesized directly on rRNA templates. A map of the rDNA which includes 13 restriction sites was constructed from the sizes of rDNA fragments and their labeling by different probes The map indicates that the rRNA genes lie within remarkably large units of reiterated DNA, at least 44,000 base pairs long. At least two, and possibly four, classes of repeating unit can be distinguished, the heterogeneity probably residing in the very large nontranscribed spacer region. The 5.8S rRNA gene lies in the transcribed region between the 18S and 28S genes.
The borohydride reaction has been used to investigate modified nucleosides and end groups in purified immunoglobulin light chain mRNA and rabbit globin mRNA. 1. The light chain mRNA was isolated from the microsomal fraction of MOPC 41A mouse myelomas, which secrete kappa chains, by two cycles of oligo(dT) cellulose chromatography and glycerol gradient centrifugation. The 12 S mRNA was active in a Krebs II ascites cell-free system and appeared to be homogenous as judged by gradient centrifugation, polyacrylamide gel electrophoresis in 98% formamide and fingerprint analysis of 125I-labelled mRNA. 2. End group labelling of the light chain and globin mRNAs by oxidation with periodate and reduction with boro[3H]hydride showed that the RNAs have a 5'-terminal 7-methyl guanosine in 5'-pyrophosphate linkage with the next nucleoside. 3. To detect any modified residues in the interior of chains, nucleosides in complete digests of the mRNAs were converted by the borohydride reaction to 3H-labelled nucleoside trialcohols, which were fractionated by two dimensional chromatography (the Randerath technique). The light chain mRNA was found to contain N6-methyl adenosine (1 mole) but the rabbit globin mRNAs lacked this nucleoside. Deficiencies in this technique for analysis of minor constituents in large RNAs were noted.
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Messenger RNAs from mouse myeloma cells contain N-6-methyl adenosine and novel 5' termini having 7-methy-guanosine in a 5', 5' triphosphate linkage with ribose-methylated nucleosides. Ten common 5'-terminal sequences of the forms m-7-G-5'-PPP-5'-NmpNp and m-7-G-5'-ppp-5'-NmpNmpNp are reported. Structures like this may be a general feature of mRNA in eukaryotes.
Nuclei of MPC 11 mouse myeloma cells contain several species of small RNAs related to those found in other mammalian cells. These include U1 RNA, about 190 nucleotides in length and U2 RNA, about 170 nucleotides long. The 5'-termini of 32P-labelled U1 and U2 RNAs have been investigated by a fingerprinting technique involving digestion with T2-ribonuclease. The RNAs were found to have modified 5'-terminal structures of the form m3G(5')ppp (5')AmpUmpAp for U1 RNA and m3G(5')ppp(5')AmpUmpCmpCp for U2 RNA, where m3G is N2, N27-trimethyl guanosine and Am and Um are 2'-O-methyl nucleosides. These 5'-terminal sequences are the same as those proposed for rat hepatoma U1 and U2 RNAs (Ro-Choi et al., Fed. Proc. 33, 1548, 1974) but with triphosphate rather than diphosphate links.
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