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Mitochondrial free radical generation, oxidative stress, and aging.

Mitochondria have been described as "the powerhouses of the cell" because they link the energy-releasing activities of electron transport and proton pumping with the energy conserving process of oxidative phosphorylation, to harness the value of foods in the form of ATP. Such energetic processes are not without dangers, however, and the electron transport chain has proved to be somewhat "leaky." Such side reactions of the mitochondrial electron transport chain with molecular oxygen directly generate the superoxide anion radical (O2*-), which dismutates to form hydrogen peroxide (H2O2), which can further react to form the hydroxyl radical (HO*). In addition to these toxic electron transport chain reactions of the inner mitochondrial membrane, the mitochondrial outer membrane enzyme monoamine oxidase catalyzes the oxidative deamination of biogenic amines and is a quantitatively large source of H2O2 that contributes to an increase in the steady state concentrations of reactive species within both the mitochondrial matrix and cytosol. In this article we review the mitochondrial rates of production and steady state levels of these reactive oxygen species. Reactive oxygen species generated by mitochondria, or from other sites within or outside the cell, cause damage to mitochondrial components and initiate degradative processes. Such toxic reactions contribute significantly to the aging process and form the central dogma of "The Free Radical Theory of Aging." In this article we review current understandings of mitochondrial DNA, RNA, and protein modifications by oxidative stress and the enzymatic removal of oxidatively damaged products by nucleases and proteases. The possible contributions of mitochondrial oxidative polynucleotide and protein turnover to apoptosis and aging are explored.

Animals↗

Maintenance of chromatin states: an open-and-shut case.

The traditional view of chromatin envisions two states: one is 'active' and accessible to nucleases, whereas the other is 'silent' and relatively inaccessible. Recent evidence that combinations of diverse histone tail modifications represent a spectrum of chromatin states challenges this simple view. Here, we examine inter-relationships between chromatin remodeling, histone modification, DNA methylation, RNA interference, and nucleosome assembly activities. We find that the two-state view can accommodate these new findings, and that nucleosome assembly pathways may ultimately maintain euchromatic and heterochromatic states.

Animals↗

The nucleolus: an old factory with unexpected capabilities.

The function of the nucleolus as a factory for assembling ribosomal subunits is well established, but many unrelated activities have been discovered over the past decade. Our understanding of the dynamics of nucleolar structure and its reassembly at the end of mitosis has recently advanced and the small nucleolar RNAs have been shown to be major players in the processing and modification of preribosomal RNA. Unexpectedly, the nucleolus also seems to play a role in nuclear export, sequestering regulatory molecules, modifying small RNAs, assembling ribonucleoprotein (RNP) and controlling aging.

Animals↗

A protein interaction network of the malaria parasite Plasmodium falciparum.

Plasmodium falciparum causes the most severe form of malaria and kills up to 2.7 million people annually. Despite the global importance of P. falciparum, the vast majority of its proteins have not been characterized experimentally. Here we identify P. falciparum protein-protein interactions using a high-throughput version of the yeast two-hybrid assay that circumvents the difficulties in expressing P. falciparum proteins in Saccharomyces cerevisiae. From more than 32,000 yeast two-hybrid screens with P. falciparum protein fragments, we identified 2,846 unique interactions, most of which include at least one previously uncharacterized protein. Informatic analyses of network connectivity, coexpression of the genes encoding interacting fragments, and enrichment of specific protein domains or Gene Ontology annotations were used to identify groups of interacting proteins, including one implicated in chromatin modification, transcription, messenger RNA stability and ubiquitination, and another implicated in the invasion of host cells. These data constitute the first extensive description of the protein interaction network for this important human pathogen.

Animals↗

Viral mimicry escape as a necessary feature of malignant transformation.

Malignant transformation is driven by disruption of pathways regulating proliferation and cell fate, but these same disruptions can create a collateral vulnerability: loss of transcriptional and epigenetic control over transposable elements and other normally silenced genomic regions. Consequently, emerging cancer cells can accumulate transposable element-derived and other endogenous immunogenic nucleic acids capable of triggering antiviral responses, a process termed viral mimicry. Increasing evidence indicates that viral mimicry can eliminate precancerous cells and shape tumour evolution, positioning it as an intrinsic tumour-suppressive mechanism. Here we highlight how cancer-associated changes in DNA methylation, histone modifications, splicing and RNA processing can lead to the presence of immunogenic nucleic acids that can activate viral mimicry pathways. We outline how cancer cells suppress viral mimicry, including compensatory epigenetic repression, RNA editing, nucleic acid decay and dampening of interferon signalling to enable cancer cell growth. Finally, we highlight the evidence suggesting that escaping viral mimicry is a fundamental process for cancer initiation and progression, and suggest that viral mimicry escape is necessary for cancer transformation and a therapeutic target in combination with immunotherapies. By framing viral mimicry escape as a necessary part of cancer transformation, this Review provides a unifying conceptual model for its translational exploitation.

Journal Article↗

A genome-wide screen for Saccharomyces cerevisiae deletion mutants that affect telomere length.

Telomeres are nucleoprotein structures present at the ends of eukaryotic chromosomes that play a central role in guarding the integrity of the genome by protecting chromosome ends from degradation and fusion. Length regulation is central to telomere function. To broaden our knowledge about the mechanisms that control telomere length, we have carried out a systematic examination of approximately 4,800 haploid deletion mutants of Saccharomyces cerevisiae for telomere-length alterations. By using this screen, we have identified >150 candidate genes not previously known to affect telomere length. In two-thirds of the identified mutants, short telomeres were observed; whereas in one-third, telomeres were lengthened. The genes identified are very diverse in their functions, but certain categories, including DNA and RNA metabolism, chromatin modification, and vacuolar traffic, are overrepresented. Our results greatly enlarge the number of known genes that affect telomere metabolism and will provide insights into how telomere function is linked to many other cellular processes.

Base Sequence↗

Evolution of duplicate gene expression in polyploid and hybrid plants.

Allopolyploidy is a prominent mode of speciation in flowering plants. On allopolyploidy, genomic changes can take place, including chromosomal rearrangement and changes in gene expression; these processes continue over evolutionary time. Recent studies of gene expression in polyploid and hybrid plants, reviewed here, have examined expression in natural polyploids and synthetic neopolyploids as well as in diploid and F(1) hybrids. Considerable changes in gene expression have been observed in allopolyploids, including up- or downregulation of expression in the polyploids compared with their parents, unequal expression of duplicated genes, and silencing of one copy. Genes in a variety of functional categories show altered expression, and the patterns vary considerably by gene. Some changes seem to be stochastic, whereas others are repeatable. Gene expression changes can be organ specific. Reciprocal silencing of duplicates in different organs has been observed, suggesting subfunctionalization and long-term retention of duplicates. It has become clear that hybridization has a much greater effect than chromosome doubling on gene expression in allopolyploids. Diploid and triploid F(1) hybrids can show alterations of expression levels compared with their parents. Parent-of-origin effects on gene expression have been examined, and loss of gene imprinting has been shown. Some gene expression changes in polyploids and hybrids can be correlated with phenotypic effects. Demonstrated mechanisms of gene expression changes include DNA methylation, histone modifications, and antisense RNA. Several hypotheses have been proposed for why gene expression is altered in allopolyploids and hybrids.

Evolution, Molecular↗

A PCR-based method for the analysis of human CD44 splice products.

CD44 is a transmembrane glycoprotein involved in the interaction between cells and extracellular matrix. Several variant forms of CD44 exist, which differ from each other in the composition of both the intra- and extracellular domain of the protein. Post-translational modification and alternative RNA processing are responsible for this variation. Recently, it was found that certain variant CD44 proteins, containing extra sequences in the extracellular domain of the protein, are involved in metastatic spread of tumor cells. Variant CD44 proteins are also involved in immunological functions of T and B cells. A large variety of alternatively spliced CD44 mRNAs can be expressed by cells. We have developed a method for the analysis of CD44 mRNAs present in the cell. This reverse transcription-polymerase chain reaction (RT-PCR)-based method can be used to analyze the exon composition of each major CD44 mRNA species present in the cell. In this study we describe the analysis of CD44 mRNAs isolated from six different human cell lines.

Antigens, CD↗

Expression, purification, crystallization and preliminary diffraction studies of the tRNA pseudouridine synthase TruD from Escherichia coli.

Pseudouridine, the 5-ribosyl isomer of uridine, is the most common modification of structural RNA. The recently identified pseudouridine synthase TruD belongs to a widespread class of pseudouridine synthases without significant sequence homology to previously known families. TruD from Escherichia coli was overexpressed, purified and crystallized. The crystals diffract to a minimum Bragg spacing of 2.4 A and belong to space group P2(1)2(1)2(1), with unit-cell parameters a = 63.4, b = 108.6, c = 111.7 A.

Cloning, Molecular↗

Type 1 angiotensin II receptor subtypes in kidney of normal and salt-sensitive hypertensive rats.

We studied the localization and regulation of the two type 1 angiotensin II receptor subtypes AT(1A) and AT(1B) in different renal zones of the rat kidney by a reverse transcription-polymerase chain reaction amplification method. The yield of the reaction was quantified with an internal standard that was a 63-bp deleted mutant cRNA of the AT(1A) receptor. In kidneys of male Sprague-Dawley rats (n=4), the levels of AT(1A) and AT(1B) receptor mRNAs were highest in the inner stripe of the outer medulla, lowest in the inner medulla, and intermediate in the cortex and outer stripe of the outer medulla. Results (mean+/-SE) expressed in 10(5) molecules per microgram total RNA were for cortex outer stripe, inner stripe, and inner medulla, respectively, 171 +/- 15, 152 +/- 27, 322 +/- 10, and 73 +/- 3 for AT(1A), and 35 +/- 9, 26 +/- 1, 71 +/- 10, and 53 +/- 11 for AT(1B). In sabra rats sensitive (n=6) or resistant (n=6) to salt-induced hypertension and maintained on a normal salt diet, the percentage and level of each receptor subtype mRNA in cortex and outer stripe were similar in the two strains and comparable to those observed in Sprague-Dawley rats. However, AT(1A) of the inner stripe was significantly decreased in salt-resistant compared with salt-sensitive rats (166 +/- 28 and 318 +/- 58 10(5) molecules per microgram total RNA, respectively). These modifications were organ specific because no difference in the level of the receptor mRNAs was observed in the liver of the two Sabra rat strains, whereas a twofold increase in AT(1A) mRNA level but not in AT(1B) mRNA level was apparent in adrenal and in one renal zone, the inner stripe of the outer medulla, of hypertension-prone Sabra rats.

Animals↗

Gametes and embryo epigenetic reprogramming affect developmental outcome: implication for assisted reproductive technologies.

There is concern about the health of children who are conceived with the use assisted reproductive technologies (ART). In addition to reports of low birth weight and chromosomal anomalies, there is evidence that ART may be associated with increased epigenetic disorders in the infants who are conceived using these procedures. Epigenetic reprogramming is critical during gametogenesis and at preimplantation stage and involves DNA methylation, imprinting, RNA silencing, covalent modifications of histones, and remodeling by other chromatin-associated complexes. Epigenetic regulation is involved in early embryo development, fetal growth, and birth weight. Disturbances in epigenetic reprogramming may lead to developmental problems and early mortality. Recent reports suggest the increased incidence of imprinting disorders such as Beckwith-Wiedemann syndrome, Angelman syndrome, and retinoblastoma in children who are conceived with the use of ART. These may result from an accumulation of epigenetic alterations during embryo culture and/or by altered embryonic developmental timing. Further research is urgently needed to determine whether a causal relationship between ART and epigenetic disorders exists. Until then, cautious review of both short-term and long-term ART outcomes at a national level is recommended.

Embryo, Mammalian↗

Functional bias and spatial organization of genes in mutational hot and cold regions in the human genome.

The neutral mutation rate is known to vary widely along human chromosomes, leading to mutational hot and cold regions. We provide evidence that categories of functionally related genes reside preferentially in mutationally hot or cold regions, the size of which we have measured. Genes in hot regions are biased toward extracellular communication (surface receptors, cell adhesion, immune response, etc.), while those in cold regions are biased toward essential cellular processes (gene regulation, RNA processing, protein modification, etc.). From a selective perspective, this organization of genes could minimize the mutational load on genes that need to be conserved and allow fast evolution for genes that must frequently adapt. We also analyze the effect of gene duplication and chromosomal recombination, which contribute significantly to these biases for certain categories of hot genes. Overall, our results show that genes are located nonrandomly with respect to hot and cold regions, offering the possibility that selection acts at the level of gene location in the human genome.

Chromosome Mapping↗

Somatic genetic alterations in pituitary neuroendocrine tumors.

The molecular characterization of pituitary neuroendocrine tumors (PitNETs) has progressed pronouncedly in recent years, unraveling the molecular pathways driving initiation and progression of different PitNET types and allowing a better understanding of their biology. The most frequent recurring somatic driver alterations were recognized in corticotroph PitNETs (USP8, USP48, BRAF) and somatotroph PitNETs (GNAS) and, much less frequently, in lactotroph PitNETs (SF3B1). Additional well-characterized somatic driver alterations, including TP53, ATRX, and DAXX, are enriched in aggressive corticotroph tumors. Identification of new molecular markers and delineation of their clinical phenotypes are enabling further subclassification of PitNETs based on tumor molecular profiles, with earlier recognition of more aggressive variants. These molecular markers also provide an opportunity for new targeted therapies. Beyond single-gene alterations, epigenetic modifications, such as DNA methylation, histone modifications, and noncoding RNA dysregulation, are emerging as important contributors to PitNET pathogenesis and potential therapeutic targets. Multi-omics approaches encompassing genomics, transcriptomics, epigenomics, and proteomics are transforming PitNET classification. In this review, we provide a comprehensive, data-driven update on somatic driver alterations, epigenetic alterations, converging signaling pathways, and the related emerging therapeutic targets in PitNETs, integrating pooled analyses from published cohorts.

Humans↗

The effects of cortisol on protein metabolism and on transfer ribonucleic acid methylase activity in rhabdomyosarcoma of rats.

The effects of cortisol on protein metabolism were examined in rhabdomyosarcoma tissue, experimentally provoked in rats by a single intramuscular injection of cobalt powder into the adductor muscle of the hind limb. In vivo treatment of tumour bearing animals with 1 and 10 mg cortisol resulted in a reduced incorporation of [2-14C] glycine into the tumour proteins. In vitro application of 0.01 to 100 micrograms cortisol on tumour slices equally reduced the amino acid incorporation into the proteins. These inhibitions could not be explained by modifications in protein, RNA, DNA content or by changes in the membrane function. The factors inhibiting the amino acid incorporation into tumour proteins could be located in the 105,000 X g supernatant protein fraction. The tumour transfer RNA methylase activity became markedly inhibited by cortisol treatment.

Animals↗

Structure of the U6 RNA intramolecular stem-loop harboring an S(P)-phosphorothioate modification.

Phosphorothioate-substitution experiments are often used to elucidate functionally important metal ion-binding sites on RNA. All previous experiments with S(P)-phosphorothioate-substituted RNAs have been done in the absence of structural information for this particular diastereomer. Yeast U6 RNA contains a metal ion-binding site that is essential for spliceosome function and includes the pro-S(P) oxygen 5' of U(80). S(P)-phosphorothioate substitution at this location creates spliceosomes dependent on thiophilic ions for the first step of splicing. We have determined the solution structure of the U(80) S(P)-phosphorothioate-substituted U6 intramolecular stem-loop (ISL), and also report the refined NMR structure of the unmodified U6 ISL. Both structures were determined with inclusion of (1)H-(13)C residual dipolar couplings. The precision of the structures with and without phosphorothioate (RMSD = 1.05 and 0.79 A, respectively) allows comparison of the local and long-range structural effect of the modification. We find that the U6-ISL structure is unperturbed by the phosphorothioate. Additionally, the thermodynamic stability of the U6 ISL is dependent on the protonation state of the A(79)-C(67) wobble pair and is not affected by the adjacent phosphorothioate. These results indicate that a single S(P)-phosphorothioate substitution can be structurally benign, and further validate the metal ion rescue experiments used to identify the essential metal-binding site(s) in the spliceosome.

Base Sequence↗

Incorporating chemical modification constraints into a dynamic programming algorithm for prediction of RNA secondary structure.

A dynamic programming algorithm for prediction of RNA secondary structure has been revised to accommodate folding constraints determined by chemical modification and to include free energy increments for coaxial stacking of helices when they are either adjacent or separated by a single mismatch. Furthermore, free energy parameters are revised to account for recent experimental results for terminal mismatches and hairpin, bulge, internal, and multibranch loops. To demonstrate the applicability of this method, in vivo modification was performed on 5S rRNA in both Escherichia coli and Candida albicans with 1-cyclohexyl-3-(2-morpholinoethyl) carbodiimide metho-p-toluene sulfonate, dimethyl sulfate, and kethoxal. The percentage of known base pairs in the predicted structure increased from 26.3% to 86.8% for the E. coli sequence by using modification constraints. For C. albicans, the accuracy remained 87.5% both with and without modification data. On average, for these sequences and a set of 14 sequences with known secondary structure and chemical modification data taken from the literature, accuracy improves from 67% to 76%. This enhancement primarily reflects improvement for three sequences that are predicted with <40% accuracy on the basis of energetics alone. For these sequences, inclusion of chemical modification constraints improves the average accuracy from 28% to 78%. For the 11 sequences with <6% pseudoknotted base pairs, structures predicted with constraints from chemical modification contain on average 84% of known canonical base pairs.

Algorithms↗

Screening in vivo for RNA-binding peptides from combinatorial libraries.

We have modified a previously developed genetic assay system for RNA-polypeptide interactions in a attempt to more readily identify RNA-binding peptides. The first modification involved the design of a "complex" library that would contain a variety of RNA-binding polypeptides. The second modification involved the use of neomycin phosphotransferase (NPT II) as the reporter gene, therefore allowing "selection" of RNA-binding peptides by kanamycin resistance. The improved screening system should allow the identification of peptides that bind to a variety of RNA structures.

Combinatorial Chemistry Techniques↗

Specific phosphorothioate substitutions probe the active site of Bacillus subtilis ribonuclease P.

Ribonuclease P (RNase P) is a ribonucleoprotein that requires magnesium ions to catalyze the 5' maturation of transfer RNA. To identify interactions essential for catalysis, the properties of RNase P containing single sulfur substitutions for nonbridging phosphodiester oxygens in helix P4 of Bacillus subtilis RNase P were analyzed using transient kinetic experiments. Sulfur substitution at the nonbridging oxygens of the phosphodiester bond of nucleotide U51 only modestly affects catalysis. However, phosphorothioate substitutions at A49 and G50 decrease the cleavage rate constant enormously (300-4,000-fold for P RNA and 500-15,000-fold for RNase P holoenzyme) in magnesium without affecting the affinity of pre-tRNA(Asp), highlighting the importance of this region for catalysis. Furthermore, addition of manganese enhances pre-tRNA cleavage catalyzed by B. subtilis RNase P RNA containing an Sp phosphorothioate modification at A49, as observed for Escherichia coli P RNA [Christian et al., RNA, 2000, 6:511-519], suggesting that an essential metal ion may be coordinated at this site. In contrast, no manganese rescue is observed for the A49 Sp phosphorothioate modification in RNase P holoenzyme. These differential manganese rescue effects, along with affinity cleavage, suggest that the protein component may interact with a metal ion bound near A49 in helix P4 of P RNA.

Bacillus subtilis↗