The acid-induced aggregation of E. coli s-RNA.
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We present here an improved RNA purification method using fast performance liquid chromatography (FPLC) size-exclusion chromatography in place of denaturing polyacrylamide gel electrophoresis (PAGE). The method allows preparation of milligram quantities of pure RNA in a single day. As RNA oligonucleotides behave differently from globular proteins in the size-exclusion column, we present standard curves for RNA oligonucleotides of different lengths on both the Superdex 75 column and the Superdex 200 size-exclusion column. Using this approach, we can separate monomer from multimeric RNA species, purify the desired RNA product from hammerhead ribozyme reactions, and isolate refolded RNA that has aggregated after long-term storage. This methodology allows simple and rapid purification of RNA oligonucleotides for structural and biophysical studies.
When 25-S tobacco mosaic virus (TMV) protein aggregate and TMV RNA, which has been partially digested by T1 RNase, are mixed under conditions suitable for reconstitution, only a few RNA fragments are encapsidated. These fragments were isolated and purified by polyacrylamide gel electrophoresis. The sequence of the three main fragments, the longest of which (fragment 1) was estimated to contain 103 nucleotides, has been determined. The two smaller fragments are portions of the longer chain produced by an additional specific scission. Because of the great affinity of 25-S TMV protein for this nucleotide sequence, it will be referred to as the "specifically encapsidated RNA fragment". The occurrence of a "hidden break" in the sequence has been demonstrated: fragment 1, purified by electrophoresis on a polyacrylamide gel without 8 M urea, gives rise upon further electroporesis in the presence of urea to two new bands corresponding to the two halves of the molecule. A stable hair-pin secondary structure has been derived from the base sequence which can account for the specificity of action of the enzyme. Because of its properties, we have suggested elsewhere that the sequence of fragment 1 might correspond to the disk recognition site for reconstitution, which is known to be located at the 5' end of the intact RNA. But experiments with TMV RNA whose 5'-OH end has been radioactively phosphorylated with polynucleotide kinase show that this is not the case. Analysis of the amino acid coding capacity of the fragment has instead revealed that fragment 1 is a portion of the TMV coat protein cistron.
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Ehrlich ascites tumor cell putative nuclear pre-messenger RNA (pre-mRNA) was isolated under conditions minimizing RNA degradation by ribonucleases, aggregation, and non-specific protein-RNA interaction. Isolated under these conditions, it sedimented 10 to 12 S; proteinase K, a powerful proteolytic enzyme with a broad action spectrum, gave similar sedimentation values and polyacrylamide gel electrophoresis revealed the major component migrating ahead of 16S E. Coli rRNA marker. Cesium chloride buoyant density analysis of pre-mRNA revealed 2 components (1.51 and 1.68 g/cm3). Therefore, pre-mRNA appeared to be smaller than some previous reports.
Based on dry weight, first-order kinetics adequately describe the net decrease of RNA in Dictyostelium discoideum NC-4 until culmination, when a cessation of RNA degradation occurs. Between aggregation and sorocarp formation, the cells lose 40% of their RNA, or 19 mM-glucose equivalents expressed in terms of cell volume at aggregation. In sorocarps the spores contain a disproportionately large amount of RNA. Net RNA contents in sorocarps and in spores are unaffected by the availability of exogenous glucose. The relationship of dry weight, cell number and packed cell volume during differentiation is given.
The pathogenesis of neurodegenerative diseases is believed to involve abnormal aggregation of proteins, but the mechanisms initiating protein aggregation are unclear. Here we report a novel phenomenon that could be instrumental in triggering protein aggregation in neurodegenerative diseases. We show that the 3' untranslated region (3'UTR) of a light neurofilament (NF-L) transcript enhances the reactivity of its own translated product and leads to loss of solubility and aggregation of NF-L protein and to coaggregation of mutant superoxide dismutase 1 (SOD1) protein. Full-length mouse NF-L cDNAs, with and without NF-L 3'UTR, were fused to the C terminus of a green fluorescent protein (GFP) reporter gene, and the GFP-tagged NF-L proteins were examined in transfected Neuro2a cells. The GFP-tagged NF-L protein expressed from the transgene containing NF-L 3'UTR, but not from the transgene lacking NF-L 3'UTR, colocalizes with endogenous heavy neurofilament protein and, at high-level expression, leads to loss of solubility and aggregation of GFP-tagged NF-L protein. Aggregation of GFP-tagged NF-L protein triggers coaggregation and loss of solubility of coexpressed DsRed-tagged mutant (G93A) SOD1 protein but not wild-type SOD1 protein. Deletional mutagenesis maps the RNA sequence causing aggregation of GFP-tagged NF-L protein to the proximal 45 nucleotides of NF-L 3'UTR. This is the site of a major destabilizing element in NF-L RNA and binding site for RNA-binding proteins. Our findings support a working model whereby NF-L RNA, or cognate RNA-binding factors, enhances the reactivity of NF-L protein and provides a triggering mechanism leading to aggregation of NF-L and other proteins in neurodegenerative diseases.
We use spectroscopic and calorimetric techniques to characterize the binding of the aminoglycoside antibiotics neomycin, paromomycin, and ribostamycin to a RNA oligonucleotide that models the A-site of Escherichia coli 16S rRNA. Our results reveal the following significant features: (i) Aminoglycoside binding enhances the thermal stability of the A-site RNA duplex, with the extent of this thermal enhancement decreasing with increasing pH and/or Na(+) concentration. (ii) The RNA binding enthalpies of the aminoglycosides become more exothermic (favorable) with increasing pH, an observation consistent with binding-linked protonation of one or more drug amino groups. (iii) Isothermal titration calorimetry (ITC) studies conducted as a function of buffer reveal that aminoglycoside binding to the host RNA is linked to the uptake of protons, with the number of linked protons being dependent on pH. Specifically, increasing the pH results in a corresponding increase in the number of linked protons. (iv) ITC studies conducted at 25 and 37 degrees C reveal that aminoglycoside-RNA complexation is associated with a negative heat capacity change (Delta C(p)), the magnitude of which becomes greater with increasing pH. (v) The observed RNA binding affinities of the aminoglycosides decrease with increasing pH and/or Na(+) concentration. In addition, the thermodynamic forces underlying these RNA binding affinities also change as a function of pH. Specifically, with increasing pH, the enthalpic contribution to the observed RNA binding affinity increases, while the corresponding entropic contribution to binding decreases. (vi) The affinities of the aminoglycosides for the host RNA follow the hierarchy neomycin > paromomycin > ribostamycin. The enhanced affinity of neomycin relative to either paromomycin or ribostamycin is primarily, if not entirely, enthalpic in origin. (vii) The salt dependencies of the RNA binding affinities of neomycin and paromomycin are consistent with at least three drug NH(3)(+) groups participating in electrostatic interactions with the host RNA. In the aggregate, our results reveal the impact of specific alterations in aminoglycoside structure on the thermodynamics of binding to an A-site model RNA oligonucleotide. Such systematic comparative studies are critical first steps toward establishing the thermodynamic database required for enhancing our understanding of the molecular forces that dictate and control aminoglycoside recognition of RNA.
TMV RNA was modified by two bulky carcinogens, N-acetoxy-2-acetylamino-fluorene (AAAF) and (+/-)-7beta, 8alpha- dihydroxy-9alpha, 10alpha-epoxy-7,8,9,10-tetrahydrobenzo[alpha]pyrene (BPDE), and the effects of such substituents on biological and physical properties was studied. For both types of modification, the loss of infectivity was directly proportional to the number of chemical modifications indicating that all modifications are lethal. Neither AAAF nor BPDE produced measurable mutations. Reconstitution of modified RNA with TMV protein was partially inhibited, but such inhibition occurred to similar extents with either carcinogen and a varying levels of modification. The data suggest that both types of substitution of TMV RNA generally permit the TMV coat protein to aggregate normally around the RNA, but that AAAF and BPDE may induce some conformational change in the initiation region that inhibits the initiation step.
Human syncytium-forming (foamy) virus was labeled with 3H-uridine and banded isopycnically in sucrose gradients (buoyant density = 1.16 to 1.18 g/cm3). Viral RNA extracted from the banded virus was analyzed either by rate zonal separation in sucrose gradients or by polyacrylamide-agarose gel electrophoresis. The results indicated that purified HSFV contains a 60S RNA component plus several smaller molecular weight RNA components. On dissociation with heat, smaller RNA structures were released from the 60S component. These results indicate that the genome of HSFV, like the other members of the Retroviridae family, is composed of an aggregate of several RNA species.
TMV assembly starts with a specific interaction between the assembly origin on the RNA and a disk aggregate of coat protein. The assembly origin is located in the 30K protein cistron for common and tomato strains of TMV and in the coat protein cistron for cowpea strain of TMV and for CGMMV. All the assembly origins have three essential structures: a long base-paired hairpin loop structure; a target sequence, GAPuGUUG, at the top of the hairpin loop structure; and a tract where every third base is a purine. The protein aggregate responsible for the initiation of TMV assembly is a 20S disk, a two-layered aggregate of 34 protein subunits. The two layers of a disk open apart onto the central hole and this structure may be critical for the disk to interact with the assembly origin on the RNA. The target sequence may bind specifically to this structure. Although only a low concentration of 20S disks exists in the usual assembly condition, one disk is enough to initiate TMV assembly. TMV elongation proceeds in two directions. Elongation to the 5'-end proceeds rapidly by preferential incorporation of protein subunits (or A protein) and in 5-7 min gives rise to 260 nm intermediate particles whose 5'-end is coated. A model of elongation toward the 5'-end is shown in Fig. 15. Protected RNAs from nuclease digestion during the assembly reaction produce a banding pattern on gels by electrophoresis. The banding pattern reflects features of the RNA rather than protein that are used in the assembly reaction, since the pattern was the same for assembly between TMV-RNA and CGMMV protein subunits as for assembly between TMV-RNA and TMV protein containing 20S aggregates. The 20S aggregate in the assembly solution has a helical structure with 39 protein subunits rather than the disk structure. Rapid addition of 20S helical aggregates to the top of the growing rod seems to be impossible because of its topological complexity. Elongation toward the 3'-end does not start for at least the first 4 min after initiation. It probably cannot begin until the 5'-end RNA tail disappears into the intermediate rod. Elongation toward the 3'-end favors 20S aggregates as the protein source and gives rise to the full-length rods in about 30 min after the initiation. There are no topological difficulties in adding 20S helical aggregates to the protruding RNA tail.(ABSTRACT TRUNCATED AT 400 WORDS)
Problems involved in using the Hg-nucleotide technique for in vitro chromatin transcription are 2-fold. First, Escherichia coli RNA polymerase can utilize endogenous RNA as template and synthesize complementary sequences which remain base-paired to the template, thereby allowing it to bind to the SH-Sepharose column and copurify with the newly synthesized Hg-RNA. Second, non-mercurated endogenous RNA can bind to the SH-Sepharose through aggregation with Hg-RNA and thus be retained in the final RNA preparation. These two problems associated with the Hg-nucleotide technique can be minimized by modifying the conditions for RNA synthesis and SH-Sepharose chromatography. Using the modified procedure the Hg-nucleotide and SH-Sepharose technique can remove more than 90% of endogenous RNA contaminants. In order to directly demonstrate that the mRNAov sequences detected in vitro result from de novo transcription of oviduct chromatin, experiments were carried out which show that the hybridizable RNA sequences contain the Hg element and that the synthesis of these RNA sequences is sensitive to low concentrations of actinomycin D. These combined results strongly suggest that the majority of mRNAov sequences detected by hybridization to cDNAov is indeed due to DNA-dependent RNA synthesis by E. coli RNA polymerase and not due to an artifact of endogenous RNA contamination. This observation was further supported by data obtained using a filter hybridization method which measures directly the mRNAov sequences present in [3H]RNA synthesized from chromatin. The 3H-labeled ovalbumin messenger RNA was assayed by hybridization to cloned pOV230 DNA containing the ovalbumin structural gene sequence. With this modified Hg-nucleotide-SH-Sepharose technique and filter hybridization technique, we have restudied the in vitro transcription of the ovalbumin gene from chromatins isolated at different stages of hormone-induced oviduct development. The results are in agreement with our previous findings which suggest that the primary regulation of ovalbumin synthesis by steroid hormones occurs at the transcriptional level.
Pelham previously proposed that the hsp70 family of heat shock proteins could prevent the formation and/or allow the dissolution of protein aggregates created during stress conditions. We confirmed this hypothesis by showing that the E. coli hsp70 homolog, the dnaK gene product, protects the host RNA polymerase enzyme from heat inactivation in an ATP-independent reaction. In addition, we show that heat-inactivated and aggregated RNA polymerase is both disaggregated and reactivated following simultaneous incubation with DnaK protein and hydrolyzable ATP. The DnaK756 mutant protein has lost the ability to disaggregate the inactivated RNA polymerase enzyme. Our results demonstrate that the DnaK protein contributes to E. coli's growth not only by protecting some enzymes from denaturation but also by reactivating some once they are misfolded or aggregated.
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Oncornavirus 60 to 70S ribonucleic acids (RNA), such as those from avian myeloblastosis virus, Schmidt-Ruppin virus, or mouse sarcoma-mouse leukemia viruses, isolated by conventional techniques, contain 4S transferlike RNA molecules that are released upon dissociation of the 60 to 70S RNA with heat. The 4S RNA represents 2.5 to 3.0% of the RNA in the 65S aggregate or 4 to 5 molecules per molecule of 35S RNA formed.
Quercetin, a mutagenic but noncarcinogenic flavonoid, inhibited the increased incorporation of inorganic phosphate into phospholipids of human embryo fibroblasts induced by 12-O-tetradecanoylphorbol-13-acetate (TPA), a potent tumor promoter. Quercetin also inhibited TPA-induced increases of sugar transport and RNA synthesis in chick embryo fibroblasts, and TPA-induced aggregation of human platelets. These results suggest that quercetin may have antitumor promoter activity, which provides a possible reason why quercetin does not develop malignant tumors despite its mutagenicity.
The previous electron microscopic investigations on the occurrence in HeLa cell mitochondria of transcription complexes of mitochondrial DNA [Aloni, Y., and Attardi, G. (1972a), J. Mol. Biol. 70, 363-373] have been extended with the aim of obtaining these complexes in a reasonably pure form for biochemical analysis. By using conditions designed to minimize losses of such structures and any possible contamination by nuclear DNA, it has been shown that a substantial fraction (40 to 50%) of mitochondrial DNA can be isolated from exponentially growing HeLa cells in the form of fastsedimenting complexes with RNA. These complexes have been characterized with respect to density and sedimentation properties, content in newly synthesized RNA, stability of the association of RNA with DNA, presence of different forms of mitochondrial DNA, and electron microscopic appearance. The properties of these complexes, as well as the results of reconstruction experiments, strongly suggest that the majority of such structures represent true transcriptional intermediates. The occurrence in this fraction of replicating or newly replicated mitochondrial DNA molecules has been observed. Although the presence of single-stranded DNA segments makes the replicative intermediates particularly susceptible to aggregation with free RNA, electron microscopic observations point to the possibility that these intermediates may be recruited for transcription.
The mechanisms that direct positive-stranded RNA virus replication complexes to plant and animal cellular membranes are poorly understood. We describe a specific interaction between a replication protein of an RNA plant virus and membranes in vitro and in live cells. The tobacco etch virus (TEV) 6 kDa protein associated with membranes as an integral protein via a central 19 amino acid hydrophobic domain. In the presence or absence of other viral proteins, fluorescent fusion proteins containing the 6 kDa protein associated with large vesicular compartments derived from the endoplasmic reticulum (ER). Infection by TEV was associated with a collapse of the ER network into a series of discrete aggregated structures. Viral RNA replication complexes from infected cells were also associated with ER-like membranes. Targeting of TEV RNA replication complexes to membranous sites of replication is proposed to involve post-translational interactions between the 6 kDa protein and the ER.