Structure and function of nuclear ribonucleoprotein complexes.
Explore the source record for details and available documents.
SEARCH · Search PubMed
Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Nuclear and cytoplasmic RNP complexes obtained from normal mouse liver cells, Guelstein hepatomas of different degrees of malignancy (22A and 48) as well as from liver of tumor-bearing mice were subjected to chromatography on a celite column (NPC--chromatography). In addition cytoplasmic RNP complexes were centrifuged in sucrose and CsCl density gradients. The results of the NPC-chromatography indicate that nuclear rapidly labelled RNA species of all tissues under study are constituents of the two main types of RNP particles differing from each other by the tightness of RNA-protein bonds. No precursor-product relationship could be revealed between the above types of RNP-particles of nucleus, labelled under conditions of a partial Actinomycin D block. Rapidly labelled nonribosomal cytoplasmic RNAs represent constituents of RNP-particles resembling nuclear ones in their degree of heterogeneity and chromatographic position. Sedimentation analysis of cytoplasmic RNP-particles from tumours showed an increase in relative proportion of monoribosomes and informosomes (free non-ribosomal cytosol RNP-complexes) at the expense of polyribosomes and mRNP complexes. Thus, the liver cells of experimental tumour-bearing animals undergo changes (although not very well-defined), typical for tumour cells.
Nonpolysomal cytoplasmic (free) mRNA.protein (mRNP) complexes of embryonic chicken muscle were purified by a combination of oligo(dT)-cellulose chromatography and sucrose density gradient centrifugation. The protein moieties of the purified mRNP complex were analyzed by two-dimensional gel electrophoresis using separation according to charge in the first dimension and molecular weight in the second. Sixteen polypeptides of Mr = 27,000 to 75,000 were present in the mRNP complex. These mRNP polypeptides displayed different electrophoretic migration properties than those of ribosomal proteins. A protein kinase activity was found associated with the mRNP. This enenzyme was able to transfer phosphate group(s) from ATP to at least three acidic mRNP polypeptides of Mr = 27,000, 38,000, and 73,000 and one basic polypeptide of Mr = 75,000. Among these, the Mr = 38,000 acidic polypeptide was the best acceptor of phosphate groups.
Free cytoplasmic globin mRNA containing mRNP-particles were isolated from rabbit reticulocytes by zonal sucrose gradient centrifugation and their properties were compared with mRNP particles isolated in the same way from EDTA-dissociated reticulocyte polyribosomes. The average poly(A)-length of 9S mRNA from free cytoplasmic mRNP was 17-20 nucleotides being about two times shorter than the average poly(A)-length of polysomal 9S mRNA. The protein composition of the free cytoplasmic mRNP particles disclosed the absence of the 76,000 dalton protein which is associated with the 3'poly(A)-segment of polysomal globin mRNA. It was concluded that free cytoplasmic mRNP-particles from rabbit reticulocytes can be classified as "old" mRNP in a post-translational phase. Free cytoplasmic mRNPs were translated in heterologous cell-free systems as well as in Xenopus laevis oocytes. Addition of hemin stimulated the synthesis of alpha-globin in all systems, while the presence of the cap analogue m7G(5')p inhibited translation of free cytoplasmic mRNA completely. The latter finding suggested that free cytoplasmic mRNA has a 5' terminal "cap". Shortening of the poly(A)-segment with concomitant loss of the 76,000 dalton protein may lead to less efficient translation of free cytoplasmic mRNP.
Explore the source record for details and available documents.
A study of the action of ribonuclease on 30--50-S monoparticles prepared from pre-messenger ribonucleoprotein (pre-mRNA . protein) was started in order to elucidate the structure of monoparticles. A ribonucleoprotein complex containing mostly 30000--38000-Mr proteins of pI 7--9 (alpha class) persisted under conditions where other proteins (23000--110000 Mr, pI 5--8.5, beta class) were relased. An unexpected increase of sedimentation coefficient accompanied the formation of the ribonucleoprotein complex. The extent of increase varied with the initial size of the monoparticles, reaching 45% for 30-S monoparticles. The ribonucleoprotein complexes designated here as 40--45-S alpha-ribonucleoproteins were more homogeneous in size than the original monoparticles. Electron microscopic examination showed that the sedimentation shift corresponded to an increase of the actual size of the particles, not to flattening or change of shape. Therefore, the 40--45-S alpha-ribonucleoprotein is not a pre-existing unit of pre-mRNA . protein but arises from specific rearrangements probably between small alpha ribonucleoproteins formed by fragmentation of monoparticles. In addition to the 40--45-S alpha-ribonucleoproteins, large protein aggregates corresponding to 15% of the monoparticle proteins were formed upon ribonuclease hydrolysis. Their major proteins were neutral, suggesting that the aggregates might be precipitates of proteins at pH close to the pI. Ribonuclease being a widespread cellular enzyme, partial rearrangements may occur during preparation and handling of pre-mRNA . protein. It is particularly crucial to remark that the 40--45-S alpha-ribonucleoprotein which does not pre-exist might be mistaken for a pre-mRNA . protein unit.
The ribonucleoprotein complex between 5-S RNA and its binding protein (5-S RNA . protein complex) of yeast ribosomes was released from 60-S subunits with 25 mM EDTA and the protein component was purified by chromatography on DEAE-cellulose. This protein, designated YL3 (Mr = 36000 on dodecylsulfate gels), was relatively insoluble in neutral solutions (pH 4--9) and migrated as one of four acidic 60-S subunit proteins when analyzed by the Kaltschmidt and Wittman two-dimensional gel system. Amino acid analyses indicated lower amounts of lysine and arginine than most ribosomal proteins. Sequence homology was observed in the N terminus of YL3, and two prokaryotic 5-S RNA binding proteins, EL18 from Escherichia coli and HL13 from Halobacterium cutirubrum: Ala1-Phe2-Gln3-Lys4-Asp5-Ala6-Lys7-Ser8-Ser9-Ala10-Tyr11-Ser12-Ser13-Arg14-Phe15-Gln16-Tyr17-Pro18-Phe19-Arg20-Arg21-Arg22-Arg23-Glu24-Gly25-Lys26-Thr27-Asp28-Tyr29-Tyr35; of particular interest was homology in the cluster of basic residues (18--23). Since the protein contained one methionine residue it could be split into two fragments, CN1 (Mr = 24700) and CN2 (Mr = 11300) by CNBr treatment; the larger fragment originated from the N terminus. The N-terminal amino acid sequence of CN2 shared a limited sequence homology with an internal portion of a second 5-S RNA binding protein from E. coli, EL5, and, based also on the molecular weights of the proteins and studies on the protein binding sites in 5-S RNAs, a model for the evolution of the eukaryotic 5-S RNA binding protein is suggested in which a fusion of the prokaryotic sequences may have occurred. Unlike the native 5-S RNA . protein complex, a variety of RNAs interacted with the smaller CN2 fragment to form homogeneous ribonucleoprotein complexes; the results suggest that the CN1 fragment may confer specificity on the natural 5-S RNA-protein interaction.
1. As shown by a double-radioisotope technique in vivo, at a non-lethal dose of cycloheximide, a stimulation of nuclear RNA synthesis occurred by 12 h after the treatment; the stimulation lasted over 48 h. Analysis of radioactive nuclear RNA by gel electrophoresis demonstrated that most of the cycloheximide-stimulated synthesis could be accounted for by known rRNA precursors (45 S, 41 S, 32 S and 28 S). 2. During the inhibitory phase of protein synthesis, 2 h after cycloheximide treatment, synthesis of the poly(A)-containing mRNA isolated from the cytoplasmic ribonucleoprotein complexes with an oligo(dT)-cellulose column was stimulated, whereas the synthesis of rRNA was slightly inhibited. However, during the stimulatory phase of protein synthesis, 24 h after cycloheximide treatment, the syntheses of both poly(A)-containing mRNA and rRNA were enhanced. 3. Kinetic studies revealed that the newly synthesized RNA species were transported from the nuclei, integrated into the ribonucleoprotein complexes, and associated with both free and membrane-bound polyribosomes. 4. These data corroborate our proposal that the stimulated protein synthesis after cycloheximide administration involves gene transcription.
The major viral phosphoproteins (p12) of the Rauscher murine leukemia virus (R-MuLV) and the simian sarcoma-associated virus (SSAV) bind in vitro to their homologous 70S and 35S viral RNAs. Using purified 32P-labeled RNA and 125I-labeled p12 protein, complexes that are stabilized by formaldehyde-cross-linking can be readily detected after velocity gradient centrifugation. The in vitro reconstructed ribonucleoprotein complexes are seen only with p12 proteins incubated with viral RNAs isolated from the same type C viruses; no such complexes form with heterologous protein-RNA mixtures. Homologous but not heterologous p12 molecules compete with radiolabeled p12 protein for the specific viral RNA binding sites. The competition assay permits the detection of 10 ng of viral p12 protein. The major internal protein of type C viruses (p30) does not bind to viral RNA using identical assay conditions. From the specific activities of the radiolabeled components and also by equilibrium sedimentation analysis, we estimate that fewer than 15 molecules of p12 protein bind to each molecule of viral RNA. Both the specificity and stoichiometry of the p12-RNA interactions suggest that these RNA tumor virus proteins have a regulatory role in cells.