Search PubMedSearch

SEARCH · Search PubMed

Results for “RNAse”

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.

At least 19 recordsLinked to original sources

Defining the networks that connect RNase III and RNase J-mediated regulation of primary and specialized metabolism in Streptomyces venezuelae.

UNLABELLED: RNA metabolism involves coordinating RNA synthesis with RNA processing and degradation. Ribonucleases play fundamental roles within the cell, contributing to the cleavage, modification, and degradation of RNA molecules, with these actions ensuring appropriate gene regulation and cellular homeostasis. Here, we employed RNA sequencing to explore the impact of RNase III and RNase J on the transcriptome of Streptomyces venezuelae. Differential expression analysis comparing wild-type and RNase mutant strains at distinct developmental stages revealed significant changes in transcript abundance, particularly in pathways related to multicellular development, nutrient acquisition, and specialized metabolism. Both RNase mutants exhibited dysregulation of the BldD regulon, including altered expression of many cyclic-di-GMP-associated enzymes. We also observed precocious chloramphenicol production in these RNase mutants and found that in the RNase III mutant, this was associated with PhoP-mediated regulation. We further found that RNase III directly targeted members of the PhoP regulon, suggesting a link between RNA metabolism and a regulator that bridges primary and specialized metabolism. We connected RNase J function with translation through the observation that RNase J directly targets multiple ribosomal protein transcripts for degradation. These findings establish distinct but complementary roles for RNase III and RNase J in coordinating the gene expression dynamics critical for S. venezuelae development and specialized metabolism. IMPORTANCE: RNA processing and metabolism are mediated by ribonucleases and are fundamental processes in all cells. In the morphologically complex and metabolically sophisticated Streptomyces bacteria, RNase III and RNase J influence both development and metabolism through poorly understood mechanisms. Here, we show that both ribonucleases are required for the proper expression of the BldD developmental pathway and contribute to the control of chloramphenicol production, with an interesting connection to phosphate regulation for RNase III. Additionally, we show that both RNases have the potential to impact translation through distinct mechanisms and can function cooperatively in degrading specific transcripts. This study advances our understanding of RNases in Streptomyces biology by providing insight into distinct contributions made by these enzymes and the intriguing interplay between them.

Streptomyces

Nuclear and cytoplasmic RNase-activity in regenerating mouse liver.

Nuclear and cytoplasmic RNase activities at pH 5.0 and 7.6 were analyzed in regenerating mouse liver at 6, 12, 24, 48, and 72 h after partial hepatectomy. Two different nucleus-isolation methods were used, one in a EDTA-spermidine medium free from divalent cations, and one in a sucrose medium containing these ions. During regeneration, the cytoplasmic alkaline RNase activity in the sucrose medium was unchanged, but in the spermidine medium showed an increase toward the end of the period. Also the cytoplasmic acid RNase activity was unchanged in sucrose medium, whereas in the spermidine it slightly increased during regeneration. The nuclear alkaline RNase activity showed a notable peak 6 h after the operation and later decreased. Also the nuclear acid RNase activity displayed a similar marked peak 6 h after operation, then decreased, but remained high throughout the period. The nuclear RNase activities were about 1% of the corresponding cytoplasmic RNase activities. The absolute activities varied greatly according to the nucleus-isolation methods. In the controls, the absolute activity of nuclear alkaline RNase was slightly above (1.2 times) that of the corresponding acid activity after the spermidine method. After the sucrose method the nuclear alkaline activity was 2.7 times that of the acid activity. The absoluted activity of cytoplasmic alkaline RNase was slightly above (1.2 times) the acid activity after the spermidine method but after the sucrose method it was only 0.25 times that of the acid activity. In sham-operated animals, cytoplasmic acid and alkaline RNase activities generally were fairly similar to the normal value, but corresponding nuclear activities showed marked variations indicating an influence by anesthesia.

Animals

Bacillus subtilis RNase HII is inefficient at processing guanosine monophosphate and damaged ribonucleotides.

During one round of DNA replication, nearly 2,000 ribonucleoside monophosphates (rNMPs) are incorporated in place of their cognate deoxyribonucleoside monophosphate (dNMP). Given their high rate of insertion, genomic DNA would contain rNMPs that are damaged or mismatched. Here, we tested the activity of Bacillus subtilis and Escherichia coli RNase HII on all four canonical, mismatched, and damaged rNMPs. We show that E. coli RNase HII is adept at incising most rNMP variants from DNA at similar frequencies, with the exception of an oxidized rNMP, where endoribonuclease activity is sharply reduced. In contrast, B. subtilis RNase HII efficiently incised rAMP, rCMP, and rUMP, but was inefficient at processing rGMP in both a canonical and mismatched base pair. We tested damaged ribonucleotides and found that B. subtilis RNase HII is refractory to processing abasic and oxidized ribonucleotide lesions. Our work shows that bacterial RNase HII enzymes have different intrinsic endoribonuclease activity toward the repair of canonical, mismatched, and damaged rNMPs, demonstrating that not all rNMP errors provoke efficient resolution. Our finding that B. subtilis RNase HII is recalcitrant to repairing damaged rNMPs resembles what is observed for eukaryotic RNase H2 orthologs, suggesting that other repair processes are necessary to resolve damaged rNMPs.

Bacillus subtilis

Bacillus subtilis RNase HII Is Inefficient at Processing Guanosine Monophosphate and Damaged Ribonucleotides.

During one round of DNA replication, nearly 2000 ribonucleoside monophosphates (rNMPs) are incorporated in place of their cognate deoxyribonucleoside monophosphates (dNMPs). Given their high rate of insertion, genomic DNA could contain rNMPs that are damaged or mismatched. Here, we test the activity of Bacillus subtilis and Escherichia coli RNase HII on canonical, mismatched, and damaged rNMPs. We show that E. coli RNase HII is adept at incising most rNMP variants from DNA at similar frequencies, with the exception of an oxidized rNMP, where endoribonuclease activity is sharply reduced. In contrast, B. subtilis RNase HII efficiently incises rAMP, rCMP, and rUMP but is inefficient at processing rGMP in both a canonical and mismatched base pair. We test damaged ribonucleotides and find that B. subtilis RNase HII is refractory to processing abasic and oxidized ribonucleotide lesions. Our work shows that bacterial RNase HII enzymes have different intrinsic endoribonuclease activity toward the repair of canonical, mismatched, and damaged rNMPs, demonstrating that not all rNMP errors provoke efficient resolution. Our finding that B. subtilis RNase HII is recalcitrant to repairing damaged rNMPs resembles what is observed for eukaryotic RNase H2 orthologs, suggesting that other repair processes are necessary to resolve damaged rNMPs.

Bacillus subtilis

Rad53 regulates RNase H1, which promotes DNA replication through sites of transcription-replication conflict.

RNA-DNA hybrids and R-loops can lead to extensive DNA damage and loss of genomic integrity if not regulated in a timely manner. Although RNase H1 overexpression is frequently used as a tool to resolve R-loops, the regulation of RNase H1, overexpressed or endogenous, remains poorly characterized. We reveal that in yeast, overexpressed RNase H1 (RNH1) has no effect on gene expression, cell growth, or RNA-DNA hybrid resolution in wild-type cells. Overexpressed RNase H1 does, however, remove RNA-DNA hybrids in mutants where hybrids have become dysregulated. Endogenous RNase H1 becomes up-regulated and chromatin-associated in the absence of Sen1 in a DNA replication checkpoint-dependent manner. Rnh1 gets recruited to genomic loci where RNA-DNA hybrids accumulate following the loss of Sen1. Rnh1, together with Sen1, promotes DNA replication at sites of transcription-replication conflict. Hence, RNase H1, overexpressed or endogenous, responds to unscheduled, stress-inducing RNA-DNA hybrids.

Ribonuclease H

Rho-dependent termination and RNase E-mediated cleavage: dual pathways for RNA 3' end processing in polycistronic mRNA.

"Pre-full-length" transcripts are produced at the end of the polycistronic galactose (gal) operon, 5' galE-galT-galK-galM 3', via Rho-dependent transcription termination (RDT) and -independent transcription termination. The 3' end of the full-length galETKM mRNA is acquired by exonucleolytic processing of the 3'-OH ends of the pre-full-length transcripts. However, the gal operon produces an mRNA termed galE whose 3' end forms approximately 120 nucleotides downstream of the galE stop codon, within the subsequent gene, galT, thereby establishing polarity in gene expression. In this study, we investigated the molecular processes that generate the 3' end of galE mRNA. We discovered that the 3' ends of pre-galE mRNA are produced in the middle of galT as a result of the combination of two separate molecular processes-one previously reported as RDT and the other as unreported RNase E-mediated transcript cleavage. The 3' ends of pre-galE mRNA undergo exonucleolytic processing to the 3' end of galE mRNA observed in vivo. A hairpin structure containing an 8 bp stem and a 4-nucleotide loop, located 5-10 nucleotides upstream of the 3' ends of galE mRNA, blocks exoribonuclease digestion and renders transcript stability. These findings demonstrate that RNase E-contrary to its general role in mRNA degradation-produces RNA 3' ends that regulate polarity in gene expression.IMPORTANCEThis study reports the findings of two molecular mechanisms that generate the 3' ends of pre-galE mRNA in the gal operon, viz., Rho-dependent transcription termination and RNase E-mediated cleavage. These 3' ends are subsequently processed to produce stable galE mRNA with a hairpin structure that prevents exoribonuclease degradation. This mechanism establishes gene expression polarity by generating the 3' end of galE mRNA within galT in contrast to the usual mRNA degradation role of RNase E. The study reveals a unique role of RNase E in mRNA processing and stability.

RNA, Messenger

Structural insights into RNA phosphorylation by the RNase PNK module of the human rixosome complex.

The mammalian rixosome complex is a large multi-subunit complex that plays essential roles in ribosome assembly and heterochromatin maintenance. Three structural proteins form the stable core of the rixosome to which three enzymatic modules are flexibly tethered including an RNA processing module, AAA-ATPase, and SUMO protease. The RNA processing module is formed by RNase PNK, a tetrameric assembly comprising two copies each of the LAS1L endoribonuclease (RNase) and the NOL9 polynucleotide kinase (PNK). Using single particle cryo-EM, we determined ATPγS and AMP-PNP/RNA-bound structures of human RNase PNK. The structures revealed the overall butterfly-like architecture of the complex and provide new insights into the mechanism of RNA accommodation and 5' hydroxyl phosphorylation within the NOL9 active site. Through reconstitution studies and molecular modeling, we establish how RNase PNK is incorporated into the larger rixosome complex by a distinct domain of LAS1L. Finally, we show that the human 5'-3' exoribonuclease XRN2 directly associates with RNase PNK and selectively degrades NOL9-phosphorylated RNA in vitro, thereby linking ITS2 processing by the rixosome to processive exonucleolytic decay. Collectively this work establishes an updated model for how the rixosome integrates its diverse enzymatic activities to regulate ITS2 processing.

Humans

[DNases and RNases of Misgurnus fossilis ovocytes].

The pH optima were determined for DNases and RNases of the loach eggs. For DNases they are 5.6 and 7.6 and for RNases - 5.2 and 7.2. It is established that Ca++ activates, and Fe++ has not effect on the activity of acid and alkaline DNases, while Mg++, Mn++ and especially Co++, Zn++, Cd++, Cu++ have an inhibitory effect on them. The activities of RNases is stimulated by Ca++ and Fe++, and inhibited by Zn++, Co++, Cd++ and Cu++. Iones Mg++ and Mn++ do not affect these activities. Localization of the above mentioned enzymes was studied by means of differential centrifugation of egg homogenates. Acid DNase is concentrated only in postmicrosomal supernatant liquid, its activity being inhibited in the presence of the nucleomitochondrial and microsomal fractions. Acid RNase is also localized predominantly in postmicrosomal supernatant fraction. Alkaline DNase is found to a great extent in nucleomitochondrial fraction, and alkaline RNase - in postmicrosomal one.

Animals

Genetic interactions and natural variation underlying S-RNase-independent unilateral incompatibility in Solanum.

Pistils of self-incompatible (SI) species/populations typically reject pollen of related self-compatible (SC) species/populations, but not vice versa, a pattern known as unilateral incompatibility (UI). UI is complex and includes both S-RNase-dependent and S-RNase-independent mechanisms. Pistils of Solanum pennellii LA0716 (SC, no S-RNase) reject pollen of cultivated tomato, Solanum lycopersicum (SC); UI in this system involves the expression of ornithine decarboxylase2 (ODC2) and HT-A/-B genes in the pistil, and farnesyl pyrophosphate synthase2 (FPS2), ui6.2, and ui12.2 in pollen. We show that IL12-3 (HT-A/-B) × IL3-3 (ODC2) double introgression lines reject S. lycopersicum pollen, while odc2 or ht-a mutants do not, demonstrating that ODC2 and HT-A are required for UI. Transmission ratio distortion in favor of pennellii alleles was observed in interspecific F2 S. lycopersicum × S. pennellii near ui6.2 and ui12.2, and in F2 IL12-3 × IL3-3 near ui12.2. Equivalent populations made with odc2 mutants segregate in Mendelian ratios, while ht-a mutants have little effect, indicating ui6.2 and ui12.2 interact primarily with ODC2. Pollen from fps2 mutants in S. pennellii LA0716 are incompatible on pistils of all tested S. pennellii and some Solanum habrochaites accessions, but compatible with all other tomato clade species, suggesting ODC2-dependent UI evolved in a common ancestor to S. pennellii and S. habrochaites. Within S. habrochaites, fps2 pollen rejection was observed mainly in SI or mixed mating populations, suggesting an association with outcrossing. Triple mutants of S. pennellii and S. habrochaites lacking functional ODC2, HT-A/-B, and S-RNase are cross-compatible as female parents with S. lycopersicum, allowing transfer of their cytoplasmic genomes into cultivated tomato.

Solanum

RNase III cleavage sites spread across splice junctions enforce sequential snoRNA processing.

Small nucleolar RNAs (snoRNAs) are a class of eukaryotic non-coding RNA molecules whose precursor transcripts are capped and polyadenylated. However, these end modifications are detrimental to snoRNA function and must be removed, a process typically involving excision from introns and/or endonucleolytic cleavage. For RNA precursors that host multiple snoRNAs, the sequence of maturation events is potentially important, but not well understood. Here, we report a new mode of maturation concerning snoRNA pairs that are co-hosted in the intron and the adjacent 3' exon of a precursor transcript. For a snoRNA pair with this arrangement in Schizosaccharomyces pombe, we found that the sequence surrounding an exon-exon junction within their precursor transcript folds into a hairpin after splicing of the intron. This hairpin recruits the RNase III ortholog Pac1, which participates in the maturation of the downstream snoRNA by cleaving the precursor. Our findings suggest that conditional RNase III cleavage signals hidden in an exon-exon junction evolved to enforce sequential snoRNA processing. Sequence analysis suggests that this mechanism is conserved in animals and plants.

RNA, Small Nucleolar

[Study of splitting dinucleoside monophosphates by Penicillium brevicompactum RNAse].

In studies of splitting of transferase substrates cytidylyl-(3' leeds to 5')-adenosine and adenylyl-(3'leds to to 5')-cytidine by Penicillium brevicompactum RNAase the pH-optimum activity of enzyme has been found to fall within the range of 4.7 +/- 0;1; temperature optimum--within 41 degrees--43 degrees C; adenine-nucleotides, their constituent components and polyphosphates display the properties of competitive inhibitors on splitting substrates and that amino-acid residues (presumably weakly- and strongly-protonated imidasole groups) function in the active site of this enzyme (pK 5.88 +/- 0,1 AND 6.6 +/- 0.1). A comparison of some physico-chemical and kinetic parameters of Penicillium breviocompactum RNAse to those of other nonspecific RNAses of fungi is made.

Adenine Nucleotides

[Activation parameters for the cleavage reaction of cytidine-2',3'-monophosphate catalyzed by Penicillium brevicompactum and Aspergillus clavatus RNAses].

On the basis of coincidence of all activation parameters (E, deltaH*, deltaF* and deltaS*) for the reaction of cleavage of cytidine-2';3'-monophosphate catalyzed by "acid" (pH-optimum 4.7) nonspecific RNAses from Aspergillus clavatus and Penicillium brevicompactum (EC 3. 1. 4. 23) it has been proposed that the mechanism of action on this reaction stage (hydrolysis) for both enzymes is equal.

Aspergillus

Dynamic Evolution of Poly-A Tail Lengths Visualized by RNAse H Assay and Northern Blot Using Nonradioactive Probes in Yeast.

Poly-A tail length dynamics have been extensively studied from yeast to human, mostly using reporter transcripts. Recent studies have been carried out genome-wide to determine the status of poly-A tails at steady state. However, poly-A tail measurement at equilibrium gives an overall length that reflects a mixture of the different poly-A tail sizes for a single transcript. New genome-scale techniques are emerging to estimate dynamic of poly-A tails lengths, but they are not yet routine and individual validation experiments are useful. In this chapter we describe a protocol for visualizing poly-A tail lengths following transcription inhibition for a reporter mRNA using denaturing poly-acrylamide gel electrophoresis and northern blot assay. This protocol is quick to set up, requires the purchase of only a few specific reagents, does not rely on radioactivity for RNA monitoring, and can be easily implemented in any molecular biology laboratory.

Poly A

Purification and properties of an alkaline ribonuclease from the hepatic cytosol fraction of bullfrog, Rana catesbeiana.

In the hepatic cytosol fraction of bullfrog, Rana catesbeiana, an alkaline RNase [EC 3.1.4.22] exists in two forms. One is the free form of RNase, which elutes from a carboxymethyl-cellulose column at a concentration of 0.2 M NaC1. The other is a masked or latent form (RNase-RNase inhibitor complex) which is not adsorbed on the carboxymethyl-cellulose column and which can be converted to the free form of RNase by the addition of p-chloromercuribenzoate. Electrophoretically pure RNase was obtained by the following procedure. The unadsorbed fraction of hepatic cytosol on a column of carboxymethyl-cellulose was treated with p-chloromercuribenzoate and then applied to a second carboxymethyl-cellulose column. The molar weight of RNase was determined to be approximately 12,000 by gel filtration and polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate. From the results of gel filtration, the molecular weight of the RNase-RNase inhibitor complex was 130,000. The RNase hydrolyzed poly C, poly U, and poly I, but not poly A or poly G. When poly C was used as a substrate, 2',3'-cyclic CMP as an intermediate and 3'-CMP as a final product were identified. The results of amino acid analysis indicated the presence of an unusual component. The general properties of the RNase and the RNase-RNase inhibitor complex are also reported.

Amino Acids

Serum acid ribonuclease in myelogenous leukemia.

Acid and alkaline RNase activities in serum were measured with yeast RNA as the substrate in normal subjects and in leukemic patients pretreatment and posttreatment, and the acid/alkaline ratios of activities were 0.63 +/- 0.08 (S.D.) (N, 12), 2.28 +/- 0.82 (N, 8), and 0.60 +/- 0.13 (N, 9), respectively. The mean value for the ratio in the pretreated leukemia was significantly higher than that in the other 2 groups (p less than 0.01). By separating these acid and alkaline RNases from normal and leukemic sera by phosphocellulose chromatography, it was further confirmed that acid RNase alone increased markedly in leukemic serum. From serum and leukocytes of leukemic patients, acid RNases were purified about 2000-fold and 300-fold, respectively, by phosphocellulose and Sephadex G-75 chromatography. Both enzymes displayed properties nearly identical with those of normal serum and leukocytes, except that leukemic serum acid RNase had about a 2.4-fold greater affinity for polyuridylate than for polycytidylate as substrate, in contrast to normal serum acid RNase that degraded polycytidylate exclusively. On the other hand acid RNases from serum leukocytes of leukemia showed a similar substrate preference. These results suggest that the high RNase levels of leukemic sera are due to an excessive leakage of acid RNase into the blood stream from abnormal leukocytes.

Adult

Photooxidation and carbethoxylation of a minor ribonuclease from Aspergillus saitoi.

In order to investigate the nature of amino acid residues involved in the active in the active site of a ribonuclease from Aspergillus saitoi, the pH dependence of the rates of inactivation of RNase Ms by photooxidation and modification with diethylpyrocarbonate were studied. (1) RNase Ms was inactivated by illumination in the presence of methylene blue at various pH's. The pH dependence of the rate of photooxidative inactivation of RNase Ms indicated that at least one functional group having pKa 7.2 was involved in the active site. (2) Amino acid analyses of photooxidized RNase Ms at various stages of photooxidative inactivation at pH's 4.0 and 6.0 indicated that one histidine residue was related to the activity of RNase Ms, but that no tryptophan residue was involved in the active site. (3) 2',(3')-AMP prevented the photooxidative inactivation of RNase Ms. The results also indicated the presence of a histidine residue in the active site. (4) Modification of RNase Ms with diethylpyrocarbonate was studied at various pH's. The results indicated that a functional group having pKa 7.1 was involved in the active site of RNase Ms.

Aspergillus