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1.
Proteins from the 30 S ribosomal subunit of Escherichia coli were fractionated by column chromatography and individually incubated with 16 S ribosomal RNA. Stable and specific complexes were formed between proteins S4, S7, S8, S15 and S20, and the 16 S RNA. Protein S13 and one or both proteins of the S16S17 mixture bound more weakly to the RNA, although these interactions too were apparently specific. The binding of S16S17 was found to be markedly stimulated by proteins S4, S8, S15 and S20. Limited digestion of the RNA-protein complexes with T1 or pancreatic ribonucleases yielded a variety of partially overlapping RNA fragments, which retained one or more of the proteins. Since similar fragments were recovered when 16 S RNA alone was digested under the same conditions, their stability could not be accounted for by the presence of bound protein. The integrity of the fragments was, however, strongly influenced by the magnesium ion concentration at which ribonuclease digestion was carried out. Each of the RNA fragments was characterized by fingerprinting and positioned within the sequence of the 1600-nucleotide 16 S RNA molecule. The location of ribosomal protein binding sites was delimited by the pattern of fragments to which a given protein bound. The binding sites for proteins S4, S8, S15, S20 and, possibly, S13 and S16S17 as well, lie within the 5′-terminal half of the 16 S RNA molecule. In particular, the S4 binding site was localized to the first 500 nucleotides of this sequence while that for S15 lies within a 140-nucleotide sequence starting about 600 nucleotides from the 5′-terminus. The binding site for the protein S7 lies between 900 and 1500 nucleotides from the 5′-terminus of the ribosomal RNA.  相似文献   

2.
Several plant and animal viral RNAs contain a tRNA like structure at their 3′ ends. In this communication we show that tobacco mosaic virus (TMV) RNA is an acceptable substrate for a specific tRNA methyltransferase. Using a crude preparation of E. coli ribothymidine (rT) forming uracil methylase and (methyl 3H) S-adenosyl-L-methionine (SAM) as a methyl donor, 0.7 moles of methyl group is incorporated per mole of TMV RNA in 10 hours at 30°C. Upon T2 RNAse digestion of the labeled RNA, all of the radioactivity was found to be in TMP. T1 RNAse digestion of 3H methylated TMV RNA showed that all of the label was located in a tetranucleotide which co-migrated with authentic TpψpCpGp, an oligonucleotide characteristically found in normal cellular tRNA.The use of this specific methyl transferase reaction may provide a simple assay for the detection of tRNA like structures in large RNAs.  相似文献   

3.
Oligonucleotides remaining in the 70s Escherichiacoli ribosomal particles after varying degrees of digestion with ribonuclease T1 were phosphorylated with polynucleotide kinase in the presence of γ-labeled32P-ATP. The resulting radioactively labeled RNA molecules were further digested with pancreatic ribonuclease and analyzed by a two-dimensional finger-printing technique. The numbers of labeled oligonucleotides were proportional to the duration of T1 digestion; most of these oligonucleotides yielded 1pAp and/or 1pCp as their 5′-end groups upon alkaline hydrolysis.  相似文献   

4.
HeLa cell polysomes were oxidized with sodium periodate and reduced with sodium borohydride to induce covalent crosslinks between ribosomal RNA and nearby proteins. We proved that RNA was tryly crosslinked to protein in oxidized, and not in control, samples using denaturing cesium trichloroacetate density gradients and phenol extraction. By both one- and two-dimensional gel analysis, we found that protein S3a can be crosslinked to 18S RNA, protein L3 to 28S RNA, and proteins L7′ and L23′ to 5.8S RNA. Because of the specificity of the periodate reaction, and since we were able to crosslink protein S1 to 16S RNA in Escherichia,coli 30S ribosomal subunits, it is likely that we have crosslinked proteins to the 3′OH ends of HeLa polysomal RNAs.  相似文献   

5.
There are lysyl-ε-NH2 groups within about 3.5 Å distance across the intersubunit contact area of rabbit muscle phosphorylase b, as shown by cross-linking with malonic diimidate. These include the lysines of N-terminal region as revealed by limited tryptic digestion, but the contribution of the tail lysines to overall formation of covalent dimers is small. The fine structure of dimer band on dodecylsulfate-gelelectrophoretograms of crosslinked phosphorylases suggests that the tail retains its freedom in the phosphorylase b-AMP complex. Amidination induces the dissociation of phosphorylase b dimer, which is slow relative to crosslinking.  相似文献   

6.
E.coli 70S ribosomes uniformly labeled invivo with 32PO4 were subjected to varying doses of u.v. radiation and then to the combined action of the RNases A and T1. Following these treatments the ribosomal proteins were separated by trichloroacetic acid precipitation from the noncovalently attached RNA degradation fragments. Subsequent two-dimensional gel electrophoresis and autoradiography of these proteins revealed that significant 32PO4 was associated with unique ribosomal proteins, L2 was among these.  相似文献   

7.
RNA (guanine-7) methyltransferase, partially purified from N.crassa mycelia, catalyzed the transfer of the methyl group from S-adenosylmethionine to the 5′ terminus of both N.crassa poly A(+) RNA and reovirus unmethylated mRNA. RNase T2 digestion of the invitro methylated poly A(+) RNA from N.crassa yielded the “cap” structures m 7G(5′)pppAp and m 7G(5′)pppGp in a ratio of 2:1 respectively. RNase T2 digestion of the invitro methylated reovirus mRNA yielded m 7G(5′)pppGp exclusively. The absence of mRNA 2′-0-methyltransferase activity in the enzyme preparation is consistent with the absence of 2′-0-methylation in N.crassa mRNA [Seidel, B. L. and Somberg, E. W. (1978) Arch. Biochem. Biophys. 187, 108–112]. This is the first isolation of an eucaryotic, cellular RNA (guanine-7) methyltransferase that has been shown to methylate homologous substrate.  相似文献   

8.
The mode of action of colicin E2 on ribosomes in Escherichia coli cells was investigated by zonal centrifugation analysis. Ribosome particles, both 50S and 30S, were degraded to smaller contents with the lapse of time by the action of colicin E2. Gradual reduction of S values of each particles could not be observed and degradative intermediates of possible RNA-protein complex were detected only at the position between 30S and 4S in the zonal centrifugation profile, which indicated the destruction of ribosome in burst-out attitude. 50S ribosome fraction influenced by colicin E2 contained both 23S and half-sized RNA. From these data, the mode of action of colicin E2 on ribosomes in E. coli was discussed.  相似文献   

9.
RNA-protein interaction in the 30S subunits of rat liver hnRNP has been studied by crosslinking of informofer proteins to hnRNA induced by UV irradiation.Irradiation of 30S particles with 254 nm UV light in doses of 1×105 erg/mm2 leads to the extensive crosslinking hnRNA to informofer proteins. The crosslinked material was analyzed either by resedimentation in a 15–30% sucrose gradient in the presence of 3 M guanidine-HCl and 1 M NaCl or by centrifugation in a Cs2SO4 density gradient containing guanidine-HCl and sarkosyl. The crosslinked complexes sedimented at about 25S in the sucrose gradient and proved to be heterogeneous in isopycnic centrifugation experiments. The proteins of the crosslinked complexes were analyzed by polyacrylamide gel electrophoresis. Proteins with Mr values of 70 000, 58 000, 43 000 and 40 000 appeared to be crosslinked with hnRNAs of the 30S particles.In the unirradiated 30S particles after centrifugation in the Cs2SO4 density gradient containing guanidine-HCl and sarkosyl two minor proteins were observed with Mr values of 70 000 and 58 000, banded in density zones characteristic for free RNA.  相似文献   

10.
RNA-protein crosslinks were introduced into the 40S ribosomal subunits from Saccharomyces cerevisiae by mild UV treatment. Proteins crosslinked to the 18S rRNA molecule were separated from free proteins by repeated extraction of the treated subunits and centrifugation in glycerol gradients. After digestion with RNase to remove the RNA molecules, proteins were radio-labeled with 125I and identified by electrophoresis on two-dimensional polyacrylamide gels with carrier total 40S ribosomal proteins and autoradiography. Proteins S2, S7, S13, S14, S17/22/27, and S18 were linked to the 18S rRNA. A shorter period of irradiation resulted in crosslinking of S2 and S17/22/27 only. Several of these proteins were previously demonstrated to be present in ribosomal core particles or early assembled proteins.  相似文献   

11.
The mechanism of action of chain initiation factor 3 in translation was examined by using E. coli 70S ribosomes which were covalently crosslinked with dimethylsuberimidate. Crosslinked ribosomes were inactive in AUG-dependent fMet-tRNA binding, and were not stimulated by IF-3 in poly(U) translation. IF-3 is known to be required for maximal rates of amino acid incorporation with synthetic polynucleotides at 18 mM Mg2+. A direct interaction of IF-3 with 70S ribosomes was demonstrated by crosslinking 14C-labeled IF-3 to 70S ribosomes. The labeled factor was also crosslinked to 30S and 50S ribosomal subunits. A model is presented proposing the mechanism of action of IF-3 on 70S ribosomes.  相似文献   

12.
Conditions for the production of a complementary DNA sequence for use in studies of ribosomal RNA are described. E. coli DNA polymerase I is used to transcribe highly purified 28S ribosomal RNA from rat liver. The reaction is sensitive to the tertiary structure of the rRNA template-primer. The complementary DNA hybridizes to its rRNA template with a Rot12 of 0.02. The hybrid formed between 28S ribosomal RNA and complementary DNA has a Tm of 73°C. The probe reacts with total rat nuclear RNA with a Rot12 of 1.0.  相似文献   

13.
Specific fragments of the 16 S ribosomal RNA of Escherichia coli have been isolated and tested for their ability to interact with proteins of the 30 S ribosomal subunit. The 12 S RNA, a 900-nucleotide fragment derived from the 5′-terminal portion of the 16 S RNA, was shown to form specific complexes with proteins S4, S8, S15, and S20. The stoichiometry of binding at saturation was determined in each case. Interaction between the 12 S RNA and protein fraction S16S17 was detected in the presence of S4, S8, S15 and S20; only these proteins were able to bind to this fragment, even when all 21 proteins of the 30 S subunit were added to the reaction mixture. Protein S4 also interacted specifically with the 9 S RNA, a fragment of 500 nucleotides that corresponds to the 5′-terminal third of the 16 S RNA, and protein S15 bound independently to the 4 S RNA, a fragment containing 140 nucleotides situated toward the middle of the RNA molecule. None of the proteins interacted with the 600-nucleotide 8 S fragment that arose from the 3′-end of the 16 S RNA.When the 16 S RNA was incubated with an unfractionated mixture of 30 S subunit proteins at 0 °C, 10 to 12 of the proteins interacted with the ribosomal RNA to form the reconstitution intermediate (RI) particle. Limited hydrolysis of this particle with T1 ribonuclease yielded 14 S and 8 S subparticles whose RNA components were indistinguishable from the 12 S and 8 S RNAs isolated from digests of free 16 S RNA. The 14 S subparticle contained proteins S6 and S18 in addition to the RNA-binding proteins S4, S8, S15, S20 and S16S17. The 8 S subparticle contained proteins S7, S9, S13 and S19. These findings serve to localize the sites at which proteins incapable of independent interaction with 16 S RNA are fixed during the early stages of 30 S subunit assembly.  相似文献   

14.
When parsley [2Fe-2S] and C. pasteurianum 2[4Fe-4S] proteins in the normal oxidised state are reduced 1:1 with Cr(II) (15-aneN4) (H2O)22+ the Cr(III) product remains attached to the protein and reduction is by an inner-sphere mechanism. With Chromatium high potential [4Fe-4S] protein and C. pasteurianum rubredoxin the Cr(III) product is not attached to the protein and the mechanism is outer-sphere. Results are discussed in the context of protein crystallographic information. The Cr(III) product is not attached to the Fe2S2 core (extrusion experiments) or to the cysteinyl S-atoms (ESR). Negative patches close to the active site remain possible alternatives.  相似文献   

15.
16.
Reaction of the affinity-labeling reagent N-bromoacetyl-[14C]phenylalanyl-tRNA with Escherichia coli ribosomes results in covalent labeling of 23 S ribosomal RNA in addition to the previously reported labeling of ribosomal proteins. The reaction with the 23 S RNA is absolutely dependent on the presence of messenger RNA. Covalent attachment of the affinity label to 23 S RNA was demonstrated by its integrity in strongly dissociating solvents, and the conversion of the labeled material to small oligonucleotides by ribonuclease treatment. After digestion of labeled 23 S RNA with T1 ribonuclease, the radioactivity is found mainly in two oligonucleotide fragments. These results support models in which both ribosomal RNA and ribosomal protein contribute to the structure of the region of the ribosome surrounding the peptidyl transferase center.  相似文献   

17.
The amino acid sequences of pyridoxal-binding tetrapeptide and the NH2-terminal portion of aspartate transaminase from E.coli B were analyzed and compared with those of the corresponding parts of the cytosolic and mitochondrial isozymes from pig heart. After borohydride reduction and chymotryptic digestion of the E.coli enzyme, a pyridoxal-containing peptide was isolated, showing the sequence, Ser-Lys(Pxy)-Asn-Phe, identical with that of the cytosolic isozyme. The NH2-terminal sequence was determined up to 33 residues with a liquid phase sequence analyzer. Nearly the same degree of homology was observed among the NH2-terminal sequences of the three aspartate transaminases.  相似文献   

18.
A 0.5 × 106Mr RNA found in plastids of the aquatic angiosperm Spirodela, is synthesized at a much higher rate than any other rapidly labeling RNA species about 3–312 h after dark-grown plants are transferred to light. The pulse labeling kinetics of the 0.5 × 106Mr RNA after transfer to light, argue against its involvement in the biogenesis of plant rRNAs. Although poly(A) RNA is found in Spirodela, poly(A) sequences are not detected in the 0.5 × 106Mr RNA; yet a sucrose gradient fraction which includes RNA of this Mr stimulates amino acid incorporation by an E. coli cell free extract more than other RNA fractions. The possible involvement of the 0.5 × 106Mr RNA as a chloroplast messenger is discussed.  相似文献   

19.
The radiolabeled RNA polymerase inhibitors 3-(2-bromoacetamidoethyl)-thiorifamycin and 3-(2-acetamidoethyl)-thiorifamycin quinone have been prepared and covalently attached to the B. subtilis enzyme under mild conditions. Analysis of the subunits labeled indicates that regions of subunits sigma, beta, and beta-prime lie within about 7Å of the 3-position of rifamycin bound to the enzyme, while subunits alpha, beta, and beta-prime lie near the aromatic rings. The results of this work imply that the rifamycin binding site lies near the center of an arrangement involving at least four of the subunits of RNA polymerase. This idea is supported by the results of other studies involving cross-linking of subunits and also rifamycin binding to subunit complexes.  相似文献   

20.
The effect of T4 phage on ribosomes in terms of their ability to bind RNA viral template is examined. It is found that the 30S subunits of T4 ribosomes bind MS2 RNA as efficiently as do the subunits of uninfected E. coli ribosomes. On the other hand, analyses of the formation of 70S initiation complex, presumably from MS2 RNA-30S ribosome complex, using both labeled MS2 RNA and initiator tRNA, reveal that T4 ribosomes are only about half as active as E. coli ribosomes. The latter phenomenon has been reported previously. These results suggest that, following T4 infection, ribosomes are modified in such a way that the attachment of fMet-tRNAf to MS2 RNA-30S subunit complex is impaired.  相似文献   

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