Search PubMedSearch

SEARCH · Search PubMed

Results for “exon”

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 37 records · Page 2Linked to original sources

Alternative spliceosomal protein Eftud2 mediated Kif3a exon skipping promotes SHH-subgroup medulloblastoma progression.

Alternative splicing plays a pivotal role in various facets of organogenesis, immune response, and tumorigenesis. Medulloblastoma represents a prevalent childhood brain tumor, with approximately one-third classified as the Sonic Hedgehog (SHH) subgroup. Nevertheless, the contribution of alternative splicing to medulloblastoma oncogenesis remains elusive. This investigation delineated an upregulation of the spliceosomal protein Eftud2 in the SHH-subgroup medulloblastoma mouse model and human medulloblastoma patients. Targeted ablation of Eftud2 in granule precursor cells (GNPs) within the cerebellum prolonged the survival of SHH-subgroup medulloblastoma mice, indicating a putative association between Eftud2 expression and medulloblastoma prognosis. Functional assays unveiled that EFTUD2 depletion in human medulloblastoma cells significantly curtailed cellular proliferation by impeding the activation of the SHH signaling pathway. Through multi-omics sequencing analysis, it was discerned that Eftud2 influences exons 10-11 skipping of Kif3a, a kinesin motor critical for primary cilia formation. Notably, exons 10-11 skipping in Kif3a augmented human medulloblastoma cell proliferation by potentiating the transcriptional activity of Gli2. These findings underscore a robust correlation between Eftud2 and SHH-subgroup medulloblastoma, emphasizing its regulatory role in modulating downstream transcription factors through the alternative splicing of pivotal genes within the SHH signaling pathway, thereby propelling the aggressive proliferation of SHH-subgroup medulloblastoma.

Medulloblastoma

Lung Squamous Cell Carcinoma Harbouring a Novel PAX8::PPARγ Fusion and a FGFR2 Exon 7 Missense Mutation.

Comprehensive molecular profiling is now routinely performed in newly diagnosed non-small cell lung carcinomas (NSCLCs) to identify actionable genomic alterations. Although numerous molecular abnormalities have been described in lung carcinomas, rare and unexpected gene fusions may create significant diagnostic challenges, particularly when they are characteristically associated with tumours of different lineages. To our knowledge, this is the first reported case of a primary lung squamous cell carcinoma harbouring an in-frame PAX8::PPARγ fusion with a concurrent FGFR2 exon 7 missense mutation (p.W290C). An 80-year-old man with a smoking history exceeding 50 years presented with a rapidly enlarging PET-avid right upper lobe pulmonary mass. Bronchial brushing cytology demonstrated a hypercellular malignant neoplasm composed of pleomorphic squamoid cells with hyperchromatic nuclei, dense cytoplasm and extensive necrosis. Cell block material showed squamous morphology and diffuse p40 positivity, supporting squamous differentiation. Reflex next-generation sequencing identified an FGFR2 exon 7 missense mutation (p.W290C; c.870G>C) and targeted RNA fusion analysis demonstrated an in-frame PAX8::PPARγ fusion resulting from a t(2;3)(q13;p25.2) translocation. Because PAX8::PPARγ rearrangements are strongly associated with follicular thyroid neoplasms, extensive clinicoradiologic and immunohistochemical correlation was performed to exclude metastatic thyroid carcinoma. Imaging studies showed no thyroid lesion or residual thyroid tissue, and tumour cells were negative for thyroglobulin, TTF-1 and PAX8. Correlation of the clinical history, radiologic findings, cytomorphology, immunophenotype and molecular profile supported the diagnosis of primary lung squamous cell carcinoma. This case expands the molecular spectrum of lung squamous cell carcinoma and highlights the importance of integrated cytopathologic, immunohistochemical, molecular and radiologic evaluation when unexpected gene fusions are identified in cytology specimens.

FGFR2 exon 7 missense mutation

A Novel Splice Variant in the COL1A1 Gene Leads to Exon 46 Skipping and Osteogenesis Imperfecta.

BACKGROUND: Osteogenesis imperfecta (OI) is a clinical and genetic disorder characterised by bone fragility, growth deficiency and skeletal deformity. Ninety per cent of OI cases are attributable to autosomal dominant variants in the COL1A1 and COL1A2 genes. METHODS: Candidate variants were identified and verified through trio whole-exome sequencing (trio-WES), copy number variation sequencing (CNV-seq) and Sanger sequencing. Minigene splicing assays were performed in HeLa and HEK293T cells with pcDNA3.1 and pcMINI-C vectors to investigate the function of the candidate variants. A systematic review of COL1A1 splicing variants and the corresponding genotype-phenotype spectrum was performed. RESULTS: Trio-WES revealed a novel heterozygous variant in the C-terminal region of the COL1A1 gene: NM_000088.4:c.3423+5G>A. Sanger sequencing confirmed the variant in both the proband (II-2) and her foetus (III-1) who were clinically suspected of having OI. The c.3423+5G>A variant causes complete skipping of Exon 46, as demonstrated by a minigene splicing assay. We retrieved 419 COL1A1 splicing variants from PubMed, excluded 15 without phenotypic data and 2 linked to Ehlers-Danlos syndrome and stratified the remaining 402 variants into three types on the basis of splice site location: (1) Variants at canonical splicing sites (77.8%, 313/402) mostly cause mild phenotypes, whereas a minority may be severe. (2) Intron variants in other locations, such as splice region variants (17.9%, 72/402), usually cause mild clinical phenotypes, and deep intronic splice variants (0.4%, 2/402) that may result in severe phenotypes. (3) Other variants (3.7%, 15/402), such as exon variants or fragment loss, are extremely rare. We also preliminarily discuss the mechanisms underlying phenotypic variability and the characteristics of C-terminal variants. CONCLUSIONS: This intron variant in COL1A1 was classified as likely pathogenic and was confirmed to disrupt COL1A1 expression. The summary analysis results also revealed a correlation among splicing variants, C-terminal region variants and disease, suggesting that variant location provides a useful framework for prognosis prediction.

Female

PUS7-dependent Ψ reshapes specific synaptic gene exons to facilitate fear extinction memory formation.

RNA modifications serve as dynamic regulators of neural plasticity through their ability to fine-tune transcript stability and splicing. Pseudouridine (Ψ), an evolutionarily conserved RNA modification catalyzed by pseudouridine synthases, plays established roles in neurodevelopment, yet its functional significance in activity-dependent behavioral adaptation remains poorly defined. Here, we investigate Ψ-mediated epitranscriptomic regulation within the infralimbic prefrontal cortex (ILPFC), a brain region requiring precise synaptic remodeling for the clinically relevant form of fear extinction memory. Combining transcriptome-wide pseudouridylation profiling with behavioral analysis in mice, we identified selective Ψ enrichment at exons of synaptic regulatory genes within ILPFC during fear extinction learning. Fear extinction in the ILPFC drives concomitant exonic Ψ deposition and upregulation of synaptogenic transcripts, processes that involve pseudouridine synthase PUS7. Crucially, PUS7 knockdown in the ILPFC selectively impaired fear extinction memory formation without altering baseline fear expression, establishing a causal link between Ψ-dependent RNA processing and activity-dependent synaptic structural remodeling in this microcircuit. Our findings demonstrate that PUS7-mediated Ψ modification spatiotemporally regulates activity-dependent RNA dynamics in the ILPFC, providing the evidence that epitranscriptomic mechanisms precisely coordinate synaptic gene expression within behaviorally defined brain sub-region. This work bridges molecular RNA biology with systems neuroscience, revealing a novel mechanism for activity-dependent regulation of fear extinction in ILPFC.

Animals

Single nucleotide polymorphism-based validation of exonic splicing enhancers.

Because deleterious alleles arising from mutation are filtered by natural selection, mutations that create such alleles will be underrepresented in the set of common genetic variation existing in a population at any given time. Here, we describe an approach based on this idea called VERIFY (variant elimination reinforces functionality), which can be used to assess the extent of natural selection acting on an oligonucleotide motif or set of motifs predicted to have biological activity. As an application of this approach, we analyzed a set of 238 hexanucleotides previously predicted to have exonic splicing enhancer (ESE) activity in human exons using the relative enhancer and silencer classification by unanimous enrichment (RESCUE)-ESE method. Aligning the single nucleotide polymorphisms (SNPs) from the public human SNP database to the chimpanzee genome allowed inference of the direction of the mutations that created present-day SNPs. Analyzing the set of SNPs that overlap RESCUE-ESE hexamers, we conclude that nearly one-fifth of the mutations that disrupt predicted ESEs have been eliminated by natural selection (odds ratio = 0.82 +/- 0.05). This selection is strongest for the predicted ESEs that are located near splice sites. Our results demonstrate a novel approach for quantifying the extent of natural selection acting on candidate functional motifs and also suggest certain features of mutations/SNPs, such as proximity to the splice site and disruption or alteration of predicted ESEs, that should be useful in identifying variants that might cause a biological phenotype.

Alleles

Beyond exons: Linking noncoding heritability and polygenicity across complex human traits and disorders.

The genetic architecture of complex traits spans a continuum of polygenicity, yet it remains unclear how differences in polygenicity relate to the functional localization of SNP heritability across the genome. We use a MiXeR-based framework to partition heritability across 74 functional annotations covering exonic, intronic, and intergenic regions for 34 complex traits and introduce a likelihood-based annotation contribution score that quantifies annotation-specific impact on heritability. Exons account for a minority of heritability, and their contribution decreases with increasing polygenicity, from an average of 22% in less-polygenic somatic diseases and biomarkers to 13% in highly polygenic psychiatric and cognitive phenotypes. Intergenic fractions show the opposite trend, whereas intronic fractions remain relatively stable. Analysis of the broader set of functional annotations also reveals systematic differences along the polygenicity axis: highly polygenic traits show stronger contributions from comparative genomics and variant-effect scores, whereas less-polygenic traits show stronger contributions from promoter, transcription, and chromatin annotations. Together, these results indicate that the functional partitioning of heritability systematically varies with polygenicity, shifting from gene-proximal regulatory architectures to architectures shaped by numerous dispersed regulatory effects.

MiXeR

Exon 21 skipping in ARHGAP10: A splicing switch that governs breast cancer metastasis.

Rho GTPase-activating protein 10 (ARHGAP10) is recognized as a tumor suppressor, yet the functional impact of its alternative splicing isoforms on breast cancer metastasis remains unclear. This study aimed to elucidate the role and regulatory mechanism of ARHGAP10 exon 21 skipping in breast cancer progression. Our research results indicate that in metastatic breast cancer cells, the full-length isoform ARHGAP10-L is downregulated, whereas the truncated ARHGAP10-S is upregulated. The RNA-binding protein HNRNPA0 directly binds to intron 21 of ARHGAP10 pre-mRNA, promoting exon-21 skipping and ARHGAP10-S production. Functionally, ARHGAP10-L and ARHGAP10-S exert opposing effects on breast cancer cell malignancy: ARHGAP10-L suppresses migration, invasion, and lung metastasis, whereas ARHGAP10-S promotes these aggressive phenotypes. Moreover, ARHGAP10-S exhibits enhanced binding to CDC42 and is associated with increased AKT phosphorylation. In a nude mouse model, HNRNPA0 drove lung metastasis by upregulating ARHGAP10-S. These findings establish the HNRNPA0-ARHGAP10 splicing axis as a key regulator of breast cancer metastasis, in which ARHGAP10-S promotes progression via the AKT pathway whereas ARHGAP10-L acts as a tumor suppressor, highlighting the therapeutic potential of targeting this splicing event to combat metastasis.

ARHGAP10 (RhoGTPase activating protein 10)

Beyond Exons: Linking Noncoding Heritability and Polygenicity across Complex Human Traits and Disorders.

The genetic architecture of complex traits spans a continuum of polygenicity, yet it remains unclear how differences in polygenicity relate to the functional localization of SNP heritability across the genome. We use a MiXeR-based framework to partition heritability across exonic, intronic, and intergenic regions for 34 traits and introduce a likelihood-based annotation contribution score that quantifies annotation-specific impact on heritability. Exons explain a minority of heritability, and their contribution decreases with increasing polygenicity, from an average of 22% in less polygenic somatic diseases and biomarkers to 13% in highly polygenic psychiatric and cognitive phenotypes. Intergenic fractions show the opposite trend, whereas intronic fractions remain relatively stable. Analysis of a broader set of functional annotations reveals systematic differences along the polygenicity axis: highly polygenic traits show stronger contributions from comparative genomics and variant-effect scores, whereas less polygenic traits show stronger contributions in promoter, transcription, and chromatin annotations. Together, these results indicate that the functional partitioning of heritability systematically varies with polygenicity, pointing to a shift from gene-proximal regulatory architectures to architectures shaped by numerous dispersed regulatory effects as a key determinant of differences in polygenicity across traits.

Journal Article

Real-world frontline treatments in patients with advanced non-small-cell lung cancer harboring epidermal growth factor receptor exon 20 insertions and adjusted comparisons versus amivantamab plus chemotherapy from the PAPILLON study.

INTRODUCTION: In PAPILLON, frontline amivantamab&#xa0;+&#xa0;carboplatin&#xa0;+&#xa0;pemetrexed (ACP) demonstrated superior efficacy over carboplatin&#xa0;+&#xa0;pemetrexed in patients with advanced or metastatic non-small-cell lung cancer (aNSCLC) harboring mutations in epidermal growth factor receptor (EGFR) exon 20 insertions (exon20ins). Real-world (RW) treatment patterns and comparative effectiveness of ACP versus RW treatments are unknown. MATERIALS AND METHODS: The present study (NECTAR) retrospectively analyzed frontline treatments prescribed 2012-2023 for patients with aNSCLC and confirmed EGFR exon20ins from English (ENG-NCRD), French (FR-ESME), and US (US-COTA and US-ConcertAI) datasets. Overall survival (OS), time to next treatment (TTNT), and progression-free survival (PFS) were assessed in RW pooled and individual treatment classes and in indirect treatment comparisons (ITC) between ACP from PAPILLON and RW treatments using Cox proportional hazards model adjusted for prognostic factors. RESULTS: NECTAR assessed 208 RW patients: ENG-NCRD, n&#xa0;=&#xa0;23; FR-ESME, n&#xa0;=&#xa0;91; US-COTA, n&#xa0;=&#xa0;39, and US-ConcertAI, n&#xa0;=&#xa0;55. Common frontline treatment classes were platinum-based chemotherapy (33.7&#xa0;%), platinum&#xa0;+&#xa0;immunotherapy (23.1&#xa0;%), EGFR tyrosine kinase inhibitors (TKIs) alone (15.4&#xa0;%), platinum&#xa0;+&#xa0;VEGF inhibitors (VEGFi) (11.1&#xa0;%), and immunotherapy alone (7.7&#xa0;%). Compared with platinum-based chemotherapy, none of the evaluated treatment classes demonstrated improved OS, TTNT, and PFS. Exceptions were platinum&#xa0;+&#xa0;VEGFi in TTNT and PFS and platinum&#xa0;+&#xa0;immunotherapy in TTNT. In ITCs, ACP significantly improved OS over pooled RW treatments (HR&#xa0;=&#xa0;0.48 [95&#xa0;% CI, 0.32-0.71]; P&#xa0;<&#xa0;0.001), platinum-based chemotherapy (HR&#xa0;=&#xa0;0.48 [0.30-0.77]; P&#xa0;=&#xa0;0.003), platinum&#xa0;+&#xa0;immunotherapy (HR&#xa0;=&#xa0;0.41 [0.23-0.73]; P&#xa0;=&#xa0;0.003), and EGFR TKI alone (HR&#xa0;=&#xa0;0.48 [0.23-1.02]; P&#xa0;=&#xa0;0.055). TTNT and PFS results were similar to OS. CONCLUSIONS: In patients with EGFR exon20ins aNSCLC, frontline ACP was superior to common RW treatments, highlighting the need for practice change.

Humans

SLC12A1 variant c.1684+1 G>A causes Bartter syndrome type 1 by promoting exon 13 skipping.

BACKGROUND: Bartter syndrome type 1, an autosomal recessive genetic disorder, is caused by pathogenic loss-of-function variants in the SLC12A1 gene. It is characterized by metabolic alkalosis and prenatal-onset polyuria leading to polyhydramnios. METHODS: We identified pathogenic gene in a 12-day-old newborn boy with Bartter syndrome type 1 using whole-exome sequencing. Sanger sequencing validated the identified variants. A minigene assay was performed to investigate the effect of a novel splice site variant on pre-mRNA splicing. RESULTS: We found a compound heterozygous variants in the SLC12A1 gene, consisting of a known pathogenic missense mutation (NM_000338: c.769 G>A; p.Gly257Ser) and a novel splice site variant (c.1684+1 G>A). In silico predictions and an in vitro minigene splicing assay demonstrated that the splicing variant c.1684+1 G>A abolished a consensus splice donor site of SLC12A1 intron 13, resulting in complete exon 13 skipping, translational frameshift, and premature termination codon, ultimately leading to loss of SLC12A1 function. CONCLUSION: Using a cell-based in vitro assay, we revealed the aberrant effect of the pathogenic splicing variant SLC12A1 c.1684+1 G>A on pre-mRNA splicing. Our findings expand the gene mutation spectrum of Bartter syndrome type 1, providing a basis for genetic diagnosis and the development of genetic medicines.

Humans

Comprehensive characterization of MET exon 14 skipping mutations in non-small cell lung cancer.

BACKGROUND: MET exon 14 skipping mutation (MET&#x394;ex14) is a key driver event in non-small cell lung cancer (NSCLC) and can emerge as an acquired drug resistance mechanism to MET, EGFR or ALK inhibitors. The clinical and genomic features of MET&#x394;ex14 in NSCLC require further characterization. METHODS: Our study included a total of 585 patients with MET&#x394;ex14&#x2009;+&#x2009;NSCLC, comprising 556 baseline samples, 53 samples from patients exhibiting resistance to MET inhibitors, and 16 samples from patients resistant to EGFR/ALK inhibitors. Genomic data from targeted next-generation sequencing (NGS) of tissue and/or plasma samples using GeneseeqPrime&#x2122; (a 425 pan-cancer gene panel) were analyzed. RESULTS: Overall, MET&#x394;ex14 exhibited a prevalence of 1.02% (n&#x2009;=&#x2009;585) in the screened NSCLC population, with a higher incidence in patients with a sarcomatoid histology. MET&#x394;ex14 was predominantly detected at the splice donor site, though the non-coding region adjacent to the splice acceptor site contributed considerably to the complexity of MET&#x394;ex14. Common concurrent alterations identified at baseline included those in TP53 (40.8%), CDK4 (16%) and EGFR (12.4%). Concurrent MET amplification and cell cycle pathway mutations were both associated with worse outcomes in patients treated with crizotinib, with significant co-occurrences observed also among these concurrent genomic variations. In addition, increased chromosomal instability and intra-tumoral heterogeneity correlated with a poorer response to crizotinib. Mechanisms of acquired resistance to MET inhibitors were primarily attributed to on-target MET D1228X/Y1230X mutations or off-target alterations within genes in the RTK/RAS/MAPK and PI3K/AKT/mTOR pathways. Intriguingly, our exploratory analysis also identified the FGFR3::TACC3 fusion as a potential resistance mechanism to savolitinib. Moreover, MET&#x394;ex14 was identified in 16 patients following progression on EGFR and ALK inhibitors, highlighting the need for developing tailored therapeutic strategies to overcome resistance. CONCLUSIONS: This study provides a comprehensive characterization of MET&#x394;ex14 in NSCLC, revealing its dual role as a primary driver of oncogenesis and a potential resistance mechanism to EGFR/ALK inhibitors. The identification of concurrent genetic alterations and potential resistance mechanisms enhances our molecular understanding of treatment responses. These findings highlight the need for further investigation into targeted therapies that consider the genomic complexity of MET&#x394;ex14 to improve treatment efficacy and patient outcomes.

Humans

Novel Co-Occurrence of Germline EGFR p.V843I and Somatic EGFR Exon 19 Deletion in NSCLC: Insights into Reduced Sensitivity to EGFR-TKIs.

Germline EGFR pathogenic variants (PVs) are rare and define a distinct hereditary subset of NSCLC with unique clinical characteristics. Germline EGFR p.T790M is the most frequent and best characterized, with reported sensitivity to first- and second-generation EGFR-TKIs. Yet, the response of germline EGFR variants, especially the rarer ones such as p.V843I, to osimertinib remains poorly characterized. Given the very low frequency of germline non-p.T790M variants, their clinical relevance can only be investigated via case reports. Herein, we report what is, to the best of our knowledge, the first case of advanced lung adenocarcinoma harboring a germline EGFR p.V843I variant coexisting in cis with the unusual somatic EGFR exon 19 C-helix deletion, p.S752_I759del. Additionally, a somatic TP53 variant was detected. Treatment with afatinib induced a partial response lasting only six months, as rapid disease progression occurred without identifiable acquired resistance mechanisms. Subsequently, no objective response to osimertinib or afatinib rechallenge was observed. Acquired EGFR and MET amplification were detected in corresponding rebiopsies. Overall survival was 29 months. Our findings suggest that, despite the presence of the previously reported EGFR-TKI-sensitive, EGFR p.S752_I759del, the co-occurrence of germline p.V843I may have contributed to reduced sensitivity to afatinib and osimertinib. This case expands the molecular spectrum of hereditary EGFR-mutated NSCLC and, together with our narrative review of the literature, supports an emerging model in which germline EGFR PVs may act both as tumor-predisposing events and as potential mechanisms of early resistance to EGFR-TKIs.

Humans

Intracranial and systemic progression on amivantamab in platinum-treated epidermal growth factor receptor exon 20 insertion-mutated advanced non-small cell lung cancer.

BACKGROUND: Amivantamab, an epidermal growth factor receptor (EGFR)-MET bispecific antibody, is approved as monotherapy and as combination therapy for patients with advanced non-small cell lung cancer (NSCLC) harboring various EGFR mutations in first-line and refractory settings. Sites of progressive disease on amivantamab monotherapy are not well understood and could be instructive for treatment management. METHODS: CHRYSALIS (NCT02609776) enrolled participants with NSCLC, including those with treated brain metastases. Brain magnetic resonance imaging was required at screening but performed per local practice after enrollment (conducted postbaseline every 6 [&#xb1;1] weeks after Cycle 1 Day 1). Sites of target, non-target, and new lesion progression were reported. This analysis includes 114 participants with EGFR exon 20 insertion (Ex20ins) NSCLC after disease progression on platinum-based chemotherapy who received amivantamab monotherapy on or before June 4, 2020. RESULTS: As of March 30, 2021, the median follow-up was 12.5&#xa0;months (range, 0.2-30.5). Among 114 participants, the objective response rate by blinded independent central review was 43&#xa0;%; median duration of response was 10.8&#xa0;months, and median progression-free survival was 6.7&#xa0;months. RECIST-defined progressive disease occurred in 72/114 participants (63&#xa0;%); 25/72 (35&#xa0;%) continued amivantamab after progression (4.2 median additional months; range, 1.0-12.5). The most common first sites of progression were the lungs/pleura (29&#xa0;%), followed by bone (21&#xa0;%), brain (15&#xa0;%), and lymph node (12&#xa0;%). Thirteen participants (11&#xa0;%) had intracranial-only first progression. Six of these 13 participants underwent stereotactic radiosurgery (SRS) while continuing amivantamab. The median duration of amivantamab treatment post-progression in these 6 participants was 4.0&#xa0;months (range, 2.3-6.0). SRS was well tolerated, with 2 adverse events reported (nausea and fatigue, n&#xa0;=&#xa0;1 each). CONCLUSIONS: Amivantamab monotherapy in post-platinum Ex20ins NSCLC demonstrated meaningful antitumor activity in participants, and intracranial-only progression was infrequent. Treatment of brain progression with SRS while continuing amivantamab appears feasible and tolerable.

Adult

MRI roadmap-guided transendocardial delivery of exon-skipping recombinant adeno-associated virus restores dystrophin expression in a canine model of Duchenne muscular dystrophy.

Duchenne muscular dystrophy (DMD) cardiomyopathy patients currently have no therapeutic options. We evaluated catheter-based transendocardial delivery of a recombinant adeno-associated virus (rAAV) expressing a small nuclear U7 RNA (U7smOPT) complementary to specific cis-acting splicing signals. Eliminating specific exons restores the open reading frame resulting in translation of truncated dystrophin protein. To test this approach in a clinically relevant DMD model, golden retriever muscular dystrophy (GRMD) dogs received serotype 6 rAAV-U7smOPT via the intracoronary or transendocardial route. Transendocardial injections were administered with an injection-tipped catheter and fluoroscopic guidance using X-ray fused with magnetic resonance imaging (XFM) roadmaps. Three months after treatment, tissues were analyzed for DNA, RNA, dystrophin protein, and histology. Whereas intracoronary delivery did not result in effective transduction, transendocardial injections, XFM guidance, enabled 30&#xb1;10 non-overlapping injections per animal. Vector DNA was detectable in all samples tested and ranged from <1 to >3000 vector genome copies per cell. RNA analysis, western blot analysis, and immunohistology demonstrated extensive expression of skipped RNA and dystrophin protein in the treated myocardium. Left ventricular function remained unchanged over a 3-month follow-up. These results demonstrated that effective transendocardial delivery of rAAV-U7smOPT was achieved using XFM. This approach restores an open reading frame for dystrophin in affected dogs and has potential clinical utility.

Animals

BRCA1 Exon 11 Mutations in Breast Cancer: A Study From Pakistan.

Breast cancer ranks among the top causes of cancer-related deaths in women around the globe, with genetic mutations in the BRCA1 gene being a frequent cause of breast or ovarian cancer. This study investigates hotspot mutations in exon 11 of the BRCA1 gene among Pakistani women diagnosed with breast cancer. Thirty clinically diagnosed breast cancer patients, all women, were enrolled in the current study, and high-quality DNA was extracted from peripheral blood samples. Two of the twenty-five successfully sequenced samples had a homozygous missense variant (c.2312T&#x2009;>&#x2009;C: p.Leu771Ser) detected by Sanger sequencing after PCR amplification. Upon investigation in the ClinVar database, the identified variant showed conflicting interpretations of pathogenicity. Demographic data highlighted an early disease onset, showing that 56% of patients were under 50&#x2009;years of age. The need for genetic screening was further supported by the fact that 24% of the patients had a positive family history of cancer. Our study emphasizes the necessity of screening BRCA1 gene mutations to better understand the pathogenic potential of the identified variants in the Pakistani population.

Humans

Ovalbumin gene: evidence for a leader sequence in mRNA and DNA sequences at the exon-intron boundaries.

Selected regions of cloned EcoRI fragments of the chicken ovalbumin gene have been sequenced. The positions where the sequences coding for ovalbumin mRNA (ov-mRNA) are interrupted in the genome have been determined, and a previously unreported interruption in the DNA sequences coding for the 5' nontranslated region of the messenger has been discovered. Because directly repeated sequences are found at exon-intron boundaries, the nucleotide sequence alone cannot define unique excision-ligation points for the processing of a possible ov-mRNA precursor. However, the sequences in these boundary regions share common features; this leads to the proposal that there are, in fact, unique excision-ligation points common to all boundaries.

Animals