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At least 163 records · Page 9Linked to original sources

New Otx2 mRNA isoforms expressed in the mouse brain.

The mouse Otx2 gene is essential throughout head and brain development, from anterior-posterior polarity determination and neuroectoderm induction to post-natal sensory organ maturation. These numerous activities must rely on a very finely tuned regulation of expression. In order to understand the molecular control of the Otx2 gene, we set out to isolate its promoter. During this quest, we identified three remote transcription start sites, two defining two new upstream exons and one mapping within the previously reported first exon. The three transcripts differed in their 5' non-coding region but encoded the same protein. The transcription start nucleotides of each mRNA species have been mapped by RNase protection assays and by an RNA circularization technique. We have demonstrated that they are all used and linked to functional promoters. In addition to leader versatility, we also detected alternative splicing within the coding sequence that gives rise to a new protein endowed with an 8 amino-acid insertion upstream of the homeodomain. Combined analysis of the relative abundance of Otx2 mRNA isoforms in representative tissues and in situ hybridization studies revealed distinct spatial and temporal, although partially overlapping, expression patterns of the mRNA isoforms. These findings provide new clues to a better understanding of the relationships between Otx2 gene architecture and its complex regulatory requirements.

5' Untranslated Regions↗

Suppression of potato spindle tuber viroid replication and symptom expression by mutations which stabilize the pathogenicity domain.

Nucleotides within the pathogenicity domain of potato spindle tuber viroid (PSTVd) are known to play an important role in regulating symptom expression, but the underlying molecular mechanism is unknown. In order to determine more precisely how structural features within the pathogenicity domain regulate symptom expression, we have characterized a series of mutations that progressively stabilize premelting region 1 and the rest of the "virulence modulating" region. The structural effects of these mutations were monitored by temperature gradient gel electrophoresis of circularized RNA transcripts, and their biological effects were assessed by quantitative bioassays in tomato. Closure of a 4-nucleotide loop within the premelting region 1 virtually abolished PSTVd infectivity, especially when a nearby 2-nucleotide loop was also closed. Although RNA transcripts containing less stabilizing mutations were readily infectious, none of the four single and one double substitutions examined were stably maintained in vivo. The pattern of spontaneous, apparently compensatory sequence changes observed in the progeny suggests that PSTVd variants with less stable secondary structures enjoy a selective advantage. Mutations which stabilize the pathogenicity domain of PSTVd in vitro also suppressed symptom expression, but at least one other mutation having no obvious structural effects was associated with a similar phenotype. Conformational stability appears to be only one of several factors regulating PSTVd replication and pathogenicity.

Base Sequence↗

Self-splicing of a mitochondrial group I intron from the cytochrome b gene of the ascomycete Podospora anserina.

We have shown that the second intron of the Podospora mitochondrial gene coding for cytochrome b (Cytb 12) splices autocatalytically, using in vitro transcripts generated from the T7 promoter. The reaction takes place at 37 degrees C in the presence of 50 mM TRIS-HCl pH 7.5, 60 mM MgCl2 and 1 mM GTP but shows a low efficiency even at high KCl concentrations of up to 1.2 M. Under these conditions, intron bI2 follows the conventional pathway of group I splicing, and all characteristic products, with regard to both transesterification and hydrolysis, could be identified. Moreover, the intron is capable of undergoing cyclization, thereby releasing the noncoded G and one additional nucleotide (U) from the 5' end. The 5' cleavage site is preceded by the same two nucleotides, indicating a base-pairing at the same site of the internal guide sequence (IGS) for both splicing and cyclization ("one-binding-site model"). In addition, products resulting from site-specific hydrolysis 138 nucleotides downstream of the 5' splice site were detected. Unusually, the shortened intron is also able to form a circular RNA and an alternative sequence that aligns the cyclization site to the catalytic core of the intron must be assumed.

Ascomycota↗

A viroid from Brunfelsia undulata closely related to the Columnea latent viroid.

A viroid was isolated from symptomless Brunfelsia undulata plants using the bidirectional PAGE method for analysis of small circular RNA molecules. The viroid was transmitted to tomato by mechanical inoculation. Infected tomato plants developed symptoms similar to those caused by intermediate strains of potato spindle tuber viroid (PSTVd). Cloning and sequencing revealed that the viroid from Brunfelsia undulata is closely related to the Columnea latent viroid (CLVd). Therefore, the new viroid sequence variant has been named CLVd-B. The Brunfelsia viroid CLVd-B consists of 373 nucleotides, 215 G + C, 158 A + U with a GC content of 57.6%. The most stable rod-like secondary structure of this viroid has 80 G:C, 39 A:U and 11 G:U base pairs with a minimum free energy of -157.2 kcal/mol (-657.1 kJ/mol). The sequence similarity of the right terminal domain of CLVd-B and of tomato apical stunt viroid (TASVd) is higher than the sequence similarity of these domains comparing CLVd and TASVd.

Base Sequence↗

A new sequence variant of Coleus blumei viroid 1 from the Coleus blumei cultivar "Rainbow Gold'.

A viroid was isolated from symptomless Coleus blumei cultivar (cv.) 'Rainbow Gold' plants using the bidirectional PAGE method for analysis of small circular RNA molecules. The viriod was transmitted to viroid-free plants of Coleus blumei cv. 'Scarlet Dragonfly' by mechanical inoculation. Cloning and sequencing revealed that the viriod from the Coleus cv. 'Rainbow Gold' is closely related to the Coleus blumei viriod 1-BvA (CbVd 1-BvA) isolated from the Coleus cv. 'Bienvenue'. Therefore, new viroid sequence variant has been named Coleus blumei viriod 1-RG (CbVd 1-RG). Coleus blumei viriod 1-RG consists of 251 nucleotides, 140 G + C, 111 A + U with a GC content of 55.4%. The most stable rod-like secondary structure of this viroid has 53 G:C, 29 A:U and 5 G:U base pairs with a minimum free energy (at 25 degrees C) of -81.2 kcal/mol (-339.4 kJ/mol). The right terminal domain shows a high sequence similarity to the corresponding domain of hop latent viroid (HLVd).

Cloning, Molecular↗

A new sequence variant of Coleus blumei viroid 3 from the Coleus blumei cultivar 'Fairway Ruby'.

A viroid was isolated from symptomless Coleus blumei cultivar (cv) 'Fairway Ruby' plants using the bidirectional PAGE method for analysis of small circular RNA molecules. The viroid was transmitted to viroid-free plants of Coleus blumei cv. 'Scarlet Dragonfly' by mechanical inoculation. Cloning and sequencing revealed that the viroid from the Coleus cv. 'Fairway Ruby' is closely related to the Coleus blumei viroid 3-Bv (CbVd 3-Bv) isolated from the Coleus cv. 'Bienvenue'. Therefore, the new viroid sequence variant has been named Coleus blumei viroid 3-FR (CbVd 3-FR). Coleus blumei viroid 3-FR consists of 364 nucleotides, 202 G + C, 162 A + U with a GC content of 55.5%. The most stable rod-like secondary structure of this viroid has 82 G:C, 50 A:U and 10 G:U base pairs with a minimum free energy of -670.5 kJ/mol (-160.4 kcal/mol). Due to mutations that increase the stability of the rod-like secondary structure, CbVd 3-FR has a lower minimum free energy than CbVd 3-Bv (-598.2 kJ/mol; -143.1 kcal/mol). A base-exchange in the upper strand of the central domain of CbVd 3-FR may stabilize the basal helix of hairpin I.

Base Sequence↗

Human Umbilical Cord Mesenchymal Stem Cells in Metabolic Dysfunction-associated Fatty Liver Disease (MAFLD) Therapy: Mechanisms, Clinical Efficacy, and Future Perspectives.

There is currently no approved drug treatment for metabolic dysfunction-related fatty liver disease (MAFLD). Umbilical cord-derived mesenchymal stem cells (UC-MSCs) show therapeutic potential, but their mechanism of action is remains incompletely understood. Different from previous reviews that focused on a single pathway, this article presents three important contributions: First, it constructs an integrated "multi-target synergy network" model, clarifying how UC-MSCs coordinate and regulate the inflammatory, metabolic and fibrotic processes through the interactions between the AMPK/mTOR, Nrf2/HO-1 and TGF-β/Smad pathways; Second, it systematically assesses recent clinical trials (2022-2025), identifying several unaddressed barriers to transformation, including the lack of histological endpoint indicators, batch-to-batch differences, and the absence of dose exploration studies; Third, we integrate the latest developments from 2024 to 2025, particularly mitochondrial transfer (mediated by tunnel nanotubes and accompanied by quantitative efficacy data) and exosome circular RNA networks [Formula: see text], which have not been covered in previous reviews. Based on the above analysis, we also propose specific suggestions for standardized GMP production, mandatory genomic stability testing, and long-term safety registration. This review provides a comprehensive analysis of elaborates on the treatment of MAFLD with UC-MSCs from a mechanistic and translational perspective, based on the extensive updates of relevant literature.

Humans↗

The viroid: big punch in a small package.

Although viroids consist solely of short lengths of unencapsidated single-stranded circular RNA, they replicate autonomously in plants and cause diseases that are as varied and often as severe as those caused by plant viruses. All this, without ever serving as mRNAs. However, aside from some fascinating glimpses, the mechanisms of viroid pathogenesis remain largely enigmatic.

Base Sequence↗

Comparative transcriptome analysis reveals ncRNA-mediated regulatory networks associated with muscle crispiness in grass carp.

Non-coding RNAs (ncRNAs) have been demonstrated to be involved in muscle development and to function as key regulators. However, the molecular mechanism underlying muscle crispiness in grass carp (GC) remains poorly understood, and whether these ncRNAs are involved in its regulation is still unknown. In the current investigation, differentially expressed (DE) RNAs (including lncRNAs, circRNAs, miRNAs, and mRNAs) were identified; concomitantly, target genes prediction was conducted, and functional and signaling pathway enrichment analyses were performed. Pathways related to muscle crispiness were identified, and the competitive endogenous RNA (ceRNA) (lncRNA/circRNA-miRNA-mRNA) regulatory network was further constructed. The results showed that a total of 126 DE-lncRNAs, 17 DE-circRNAs, 329 DE-miRNAs, and 442 DE-mRNAs were identified in muscle tissues of both the GC and crisp grass carp (CGC). GO and KEGG enrichment analyses revealed that target genes of DE-ncRNAs were significantly enriched in signaling pathways, including structural constituents of muscle, apoptosis, oxidative phosphorylation, and regulation of actin cytoskeleton, suggesting that these pathways may be involved in muscle texture remodeling. Subsequently, DE-RNAs enriched in related pathways were identified, and a core ceRNA regulation network comprising 3 lncRNAs, 4 circRNAs, 3 miRNAs, and 17 mRNAs was constructed. Additionally, 10 DE-RNAs from randomly selected groups were validated by qRT-PCR. Our findings not only provide scientific evidence elucidating the molecular mechanisms underlying muscle crispiness in GC but also establish a foundation for studying changes in muscle textural qualities across other fish species.

Animals↗

Hepatitis delta virus.

Hepatitis delta virus (HDV) is a sub-viral agent that is dependent for its life cycle on hepatitis B virus (HBV). The help it obtains from HBV is limited to the sharing of envelope proteins. These proteins are needed to facilitate the assembly of the HDV genome into new virus particles, and in turn, to allow the attachment and entry of HDV into new host cells. In other respects, the replication of the small single-stranded circular RNA genome of HDV is independent of HBV. HDV genome replication produces two forms of a RNA-binding protein known as the long and small delta antigens (Ag). All other proteins needed for HDV genome replication, especially the RNA-directed RNA polymerase activity, are provided by the host cell. This mini-review article is a mixture of personal perspective and speculations about the future of HDV research. It starts with a brief overview of HDV and its replication, notes some of the major unresolved questions, and directs the interested reader to more detailed reviews.

Animals↗

Function of hexameric RNA in packaging of bacteriophage phi 29 DNA in vitro.

A cyclic hexamer of the 120-base prohead RNA (pRNA) is needed for efficient in vitro packaging of the B. subtilis bacteriophage phi 29 genome. This capacity of pRNA to form higher multimers by intermolecular base pairing of identical subunits represents a new RNA structural motif. Dimers of pRNA are likely intermediates in formation of the cyclic hexamer. A three-dimensional model of the pRNA hexamer is presented.

Bacillus Phages↗

Reaction pathway of the trans-acting hepatitis delta virus ribozyme: a conformational change accompanies catalysis.

The hepatitis delta virus (HDV), an infectious human pathogen and satellite of hepatitis B virus, leads to intensified disease symptoms, including progression to liver cirrhosis. Both the circular RNA genome of HDV and its complementary antigenome contain the same cis-cleaving catalytic RNA motif that plays a crucial role in virus replication. Previously, the high-resolution crystal structure of the product form of a cis-acting genomic HDV ribozyme has been determined, while a trans-acting version of the ribozyme was used to dissect the cleavage reaction pathway. Using fluorescence resonance energy transfer (FRET) on a synthetic trans-cleaving form of the ribozyme, we are able to directly observe substrate binding (at a rate constant k(on) of 7.8 x 10(6) M(-1) min(-1) at pH 7.5, 11 mM MgCl(2), and 25 degrees C) and dissociation (at 0.34 min(-1)). Steady-state and time-resolved FRET experiments in solution and in nondenaturing gels reveal that the substrate (precursor) complex is slightly more compact (by approximately 3 A) than the free ribozyme, yet becomes significantly extended (by approximately 15 A) upon cleavage and product complex formation. We also find that trans cleavage is characterized by a high transition-state entropy (-26 eu). We propose that the significant global conformational change that we observe between the precursor and product structures occurs on the reaction trajectory into a constrained product complex-like transition state. Our observations may present the structural basis of the recently described utilization of intrinsic substrate binding energy to the overall catalytic rate enhancement by the trans-acting HDV ribozyme.

Base Sequence↗

Trans-acting hepatitis delta virus ribozyme: catalytic core and global structure are dependent on the 5' substrate sequence.

The hepatitis delta virus (HDV), an infectious human pathogen affecting millions of people worldwide, leads to intensified disease symptoms, including progression to liver cirrhosis upon coinfection with its helper virus, HBV. Both the circular RNA genome of HDV and its complementary antigenome contain a common cis-cleaving catalytic RNA motif, the HDV ribozyme, which plays a crucial role in viral replication. Previously, the crystal structure of the product form of the cis-acting genomic HDV ribozyme has been determined, and the precursor form has been suggested to be structurally similar. In contrast, solution studies by fluorescence resonance energy transfer (FRET) on a trans-cleaving form of the ribozyme have shown significant global conformational changes upon catalysis, while 2-aminopurine (AP) fluorescence assays have detected concomitant local conformational changes in the catalytic core. Here, we augment these studies by using terbium(III) to probe the structure of the trans-acting HDV ribozyme at nucleotide resolution. We observe significant structural differences between the precursor and product forms, especially in the P1.1 helix and the trefoil turn in the single-stranded region connecting P4 and P2 (termed J4/2) of the catalytic core. We show, using terbium(III) footprinting and sensitized luminescence spectroscopy as well as steady-state, time-resolved, and gel-mobility FRET assays on a systematic set of substrates, that the substrate sequence immediately 5' to the cleavage site significantly modulates these local as well as resultant global structural differences. Our results suggest a structural basis for the previously observed impact of the 5' substrate sequence on catalytic activity.

Fluorescence Resonance Energy Transfer↗

Hammerheads derived from sTRSV show enhanced cleavage and ligation rate constants.

The catalytic properties of the hammerhead ribozyme embedded in the (+) strand of the satellite tobacco ringspot viral genome are analyzed with the goal of obtaining the elemental rate constants of the cleavage (k(2)) and ligation (k(-)(2)) steps. Two different chimeras combining the sTRSV (+) hammerhead and the well-characterized hammerhead 16 were used to measure the cleavage rate constant (k(2)), the rate of approach to equilibrium (k(obs) = k(2) + k(-)(2)), and the fraction of full-length hammerhead at equilibrium (k(-)(2)/k(2) + k(-)(2)). When compared to minimal hammerheads that lack the recently discovered loop I-loop II interaction, an extended format hammerhead derived from sTRSV studied here shows at least a 20-fold faster k(2) and a 1300-fold faster k(-)(2) at 10 mM MgCl(2). However, the magnesium dependence of the cleavage rate is not significantly changed. Thus, the enhanced cleavage of this hammerhead observed in vivo is due to its higher intrinsic rate and not due to its tighter binding of magnesium ions. The faster k(-)(2) of this hammerhead suggests that ligation may be used to form circular RNA genomes. This in vitro system will be valuable for experiments directed at understanding the hammerhead mechanism and the role of the loop I-loop II interaction.

Animals↗

A new structural motif in the left terminal domain of large viroids identified by covariation analysis.

Sequence alignment of non-hammerhead viroids (Pospiviroidae) reveals that they can be divided into large and small viroids. Covariation analysis of these groups provides evidence for a rod-like secondary structure, but also for two proposed suboptimal structures, namely hairpin I and a bifurcation in the left terminus of large viroids. The strongest covariation within the branched T1 domain of all large Pospiviroidae indicates a new tertiary interaction, resulting in a double-pseudoknot within the (+) strand or an additional hairpin in the (-) strand. The structural element is expected to play a role in the viroid's life cycle.

Algorithms↗

Mutational analysis of potato spindle tuber viroid reveals complex relationships between structure and infectivity.

Viroids are single-stranded, covalently closed circular RNA pathogens that can be isolated from certain higher plants afflicted with specific diseases. Their small size (246-375 nucleotides; M(r) 0.8-1.3 x 10(5)) and ability to replicate autonomously make viroids a unique model system in which to study the relationships between the structure of an RNA and its biological function. The demonstrated infectivity of certain cloned viroid cDNAs allows the use of site-specific mutagenesis techniques to probe structure-function relationships suggested by comparative sequence analysis. Several site-specific mutations that disrupt base pairing in either the native structure or secondary hairpin I destroyed the ability of potato spindle tuber viroid cDNA to initiate infection. Alterations in the terminal loops of the native structure also abolished cDNA infectivity. One pseudorevertant, a mutant cDNA containing compensating changes that restore base pairing in the native structure, was marginally infectious; a second pseudorevertant in which base pairing was restored within the stem of secondary hairpin I was not infectious. The behavior of these mutants dramatically demonstrates the effect of remarkably small structural changes on viroid infectivity and emphasizes the importance of the conserved rod-like native structure for viroid function.

Journal Article↗