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Prevalence and Prognostic Significance of Exercise-Accentuated J-Point Elevation in Brugada Syndrome.

BACKGROUND: The clinical significance of accentuation of precordial J-point elevation during exercise in Brugada syndrome (BrS) remains unclear. OBJECTIVES: This study sought to determine the prevalence and prognostic significance of accentuation of J-point elevation during exercise in a large single-center BrS cohort. METHODS: In this retrospective study, 141 consecutive patients referred for BrS evaluation (95 with type 1 BrS pattern-BrS1 cohort, 46 without type 1 pattern but with loss-of-function sodium voltage-gated channel alpha subunit 5 variants-SCN5A cohort) who underwent exercise stress testing (EST) from January 1, 2000, through October 31, 2025 were included. Two blinded cardiologists reviewed all tracings. An exercise-accentuated BrS phenotype was defined as J-point elevation increase &#x2265;1 mm in V1/V2 during exercise. Cardiac events included arrhythmic syncope, cardiac arrest, and appropriate implantable cardioverter-defibrillator shocks. Firth penalized logistic regression was used for unadjusted and adjusted analyses. RESULTS: Overall, 41 patients (29%) demonstrated an exercise-accentuated BrS phenotype, emerging near peak exercise (median 90% age-predicted maximum heart rate). The phenotype was highly reproducible on serial testing (88% of follow-up ESTs). Exercise-accentuated phenotype was not associated with overall cardiac events (unadjusted OR: 1.83 [0.84-3.99]; P = 0.13; adjusted OR: 1.22 [0.47-3.21]; P = 0.69). However, it was strongly associated with exertion-triggered cardiac events (unadjusted OR: 10.50 [2.94-37.50]; P < 0.001; adjusted OR: 10.04 [2.76-36.53]; P < 0.001), independent of sex, exercise workload, and baseline type 1 pattern. Consistent results were noted in SCN5A variant-positive patients. CONCLUSIONS: Exercise-induced accentuation of J-point elevation reproducibly identifies a subset of BrS patients at risk for exertional cardiac events. These findings support the inclusion of EST in the evaluation of patients with a clinical diagnosis or genetic susceptibility to BrS and may inform exercise-related risk counseling.

Brugada syndrome↗

Engineering local nitrogen coordination environments of Palladium subnanometric clusters in metal-organic frameworks for efficient hydrogenation.

Subnanometric clusters (SCs) bridge the gap between single-atom catalysts and nanoparticles by combining high atomic utilization with cooperative multi-atom effects. However, stabilizing low-coordinated SCs while maintaining accessible active sites remains challenging. Here, we introduce pyrazole-3,5-dicarboxylic acid (PZDC), pyridine-3,5-dicarboxylic acid (PDC), and pyrrole-3,5-dicarboxylic acid (PPy) as secondary ligands in metal-organic frameworks to regulate the local nitrogen (N) coordination environment of Pd SCs (&#x223c;0.6&#xa0;nm). Specifically, PZDC provides a chemically differentiated pyrazolic dual-N environment containing formally pyridinic-like and pyrrolic-like N sites. Aberration-corrected high-angle annular dark-field scanning transmission electron microscopy (AC HAADF-STEM) and X-ray absorption spectroscopy (XAS) confirm the formation of low-coordinated Pd clusters containing PdN and PdPd interactions, while CO diffuse reflectance infrared Fourier transform spectroscopy (CO-DRIFTS) reveals a distinctive adsorption environment characterized by geminal dicarbonyl species and strongly suppressed bridge-bonded CO adsorption. Within this catalyst series, the PZDC-functionalized material exhibits the highest activity and tetrahydrocyclopentadiene (THDCPD) selectivity in dicyclopentadiene (DCPD) hydrogenation. These results demonstrate that modification of the local N environment can regulate the average coordination structure, adsorption behavior, and catalytic properties of MOF-supported Pd SCs.

Hydrogenation catalysis↗

Characterisation of Carbapenem-Resistant Raoultella planticola and Structural Analysis of NDM Composite Plasmids.

OBJECTIVE: This study aimed to investigate the molecular characteristics, resistant plasmid structures and phylogeny of a carbapenem-resistant Raoultella planticola (CRRP) strain from a patient with pneumonia to inform antimicrobial resistance control strategies. METHODS: We performed strain identification using MALDI-TOF MS, the BD Phoenix 100 system and whole-genome sequencing (WGS). We assessed antimicrobial susceptibility and resistance gene transfer using PCR, conjugation and stability assays, plasmid structure using a bioinformatics tool and phylogeny using a core-genome phylogenetic tree. RESULTS: WGS confirmed the isolate as R. planticola (average nucleotide identity (ANI) > 98.9% with reference type strains), co-harbouring blaKPC-2 and blaNDM-1. It was resistant to 19 antimicrobial agents and susceptible to only polymyxin, amikacin and chloramphenicol. Resistance genes were present on two conjugative plasmids: pzwx_KPC (IncFIA) and pzwx_NDM (a novel repFIB/repHI5B hybrid assembled via non-homologous end joining). Both plasmids demonstrated efficient transfer and stable inheritance over 12 passages. pzwx_KPC was highly homologous to plasmids from Klebsiella pneumoniae. Phylogenetic analysis revealed the closest relationship with German R. planticola strains. CONCLUSION: CRRP carries highly transmissible and stable resistance plasmids. Strengthened monitoring in immunocompromised patients and improved environmental disinfection are recommended. The risk of misidentification by automated systems underscores the importance of WGS for accurate pathogen identification.

Carbapenem resistance↗

Concurrence of antibiotic resistance genes in plasmid genomes shape environmental resistomes.

Horizontal transfer of plasmid-associated antibiotic resistance genes (ARGs) plays a pivotal role in environmental antibiotic resistance dissemination. Here, we characterized ARG concurrence patterns in plasmid genomes and examined plasmid-associated ARGs across 106 environmental metagenomes. Approximately half of known ARG subtypes (257) occurred in plasmid genomes, and nearly one-quarter of plasmids carried ARGs, including "super plasmids" harboring over 20 ARG subtypes spanning 10 antibiotic categories. Aminoglycoside resistance genes (AmRGs) exhibited the highest concurrence frequency (CF) with other ARGs in plasmid genomes, followed by beta-lactam and sulfonamide resistance genes. Many high-risk ARGs preferentially coexisted with AmRGs (45.6% of total AmRGs CF). Environmental metagenomes revealed distinct plasmid-associated ARG profiles between polluted and relatively pristine environments, with significantly greater diversity and abundance under anthropogenic pollution. Five widespread ARG subtypes occurred across all environmental media, whereas polluted environments contained more unique ARGs. Co-occurrence networks identified AmRGs as "hubs" linking multiple ARG subtypes in environmental resistomes. Plasmid-ARG interaction networks further showed more complex potential plasmid-mediated concurrent dissemination in polluted environments. Collectively, use of aminoglycosides is more likely to cause co-transmission of multiple plasmid-related ARGs than other antibiotics, and CF of ARGs is proposed as an important supplementary factor for evaluating ARG dissemination under anthropogenic antibiotic stress.

Antibiotic resistance genes (ARGs)↗

Maternal high-fat diet modulates lupus nephritis through fetal Wnt-steroid hormone and epigenetic reprogramming in MRL/lpr mouse offspring.

We previously investigated whether maternal high-fat diet (HFD) exposure alters lupus nephritis (LN) progression in MRL/lpr offspring. Contrary to expectation, maternally HFD-exposed offspring showed delayed and attenuated nephritic progression compared with control diet offspring. The maternal HFD developmental impact on LN remains unclear. Here, integrated amniotic fluid metabolomics and fetal liver transcriptomics revealed that maternal HFD reshaped the intrauterine molecular environment, particularly involving steroid hormone biosynthesis and Wnt/&#x3b2;-catenin-associated regulatory networks. Methylome profiling further demonstrated broad CpG hypomethylation, immune-related differentially methylated region enrichment, and an inverse association between global CpG methylation and oxidative genomic DNA damage. Among candidate regulatory nodes, Axin2, a canonical Wnt/&#x3b2;-catenin target and feedback regulator, emerged as a potential link between fetal nutritional exposure, epigenetic remodeling, and persistent pathway modulation. Although whole-locus and gene body methylation of Axin2 were not markedly altered, promoter-region methylation showed an increasing tendency under maternal HFD exposure. In adult offspring, maternal HFD was associated with reduced Axin2 protein expression, decreased Wnt-responsive transcripts, increased peripheral corticosterone levels, and attenuation of LN progression. The inverse association between Axin2 expression and corticosterone further suggested coupling between suppressed Wnt pathway output and steroid hormone remodeling. Together, these findings support a developmental model in which maternal HFD reshapes the fetal intrauterine environment and establishes a persistent Wnt-steroid hormone-epigenetic regulatory axis that unexpectedly attenuates LN progression in genetically susceptible offspring.

Axin2↗

Osteoarthritis Year in Review 2026: Genetics, genomics and epigenetics.

OBJECTIVE: The purpose of this narrative review is to highlight advances made over the past 12 months in the field of osteoarthritis (OA) genetics, genomics and epigenomics, with a particular focus on the interpretation of OA risk loci through functional genomic and regulatory approaches. DESIGN: PubMed and Europe PMC were searched to identify studies relevant to OA genetics, genomics and epigenomics published between 1st March 2025 and 30th April 2026. Searches used combinations of terms relating to genetics, genomics, epigenomics, functional genomics, molecular quantitative trait loci, chromatin accessibility and enhancer biology. Studies were limited to human subjects and English-language publications, with additional articles identified through citation screening and expert knowledge of the field. RESULTS: Over the past year, the field has continued to transition from large-scale locus discovery towards biological interpretation of OA genetic risk. Major advances included the largest OA genome-wide association study to date, further development of polygenic risk score approaches, and increasing integration of molecular quantitative trait loci, chromatin accessibility, and enhancer biology datasets to prioritise effector genes and elucidate regulatory mechanisms. Several studies highlighted the highly context-dependent nature of OA genetic risk mechanisms, demonstrating that distinct tissues, cell types, and regulatory layers can identify different candidate effector genes at the same locus. Additional developments included increasing application of singlecell and multi-omic technologies to study OA-relevant tissues. CONCLUSION: Recent advances in OA genetics have shifted the field from locus discovery towards mechanistic interpretation. Emerging evidence demonstrates that the biological consequences of genetic variation are highly dependent upon tissue, cell state and disease context, with different functional genomic approaches often prioritising distinct candidate genes and regulatory mechanisms at the same susceptibility locus. Together, these findings suggest that OA risk loci should increasingly be viewed as dynamic regulatory systems rather than simple variant-to-gene relationships, providing a framework for future studies aimed at resolving causal mechanisms, defining disease endotypes, and identifying therapeutic targets.

Genetics↗

Evaluation of dried blood spots relative to peripheral blood mononuclear cells for intracellular tenofovir-diphosphate and emtricitabine-triphosphate assessment using liquid chromatography-tandem mass spectrometry.

Tenofovir alafenamide/emtricitabine (TAF/FTC) is widely used for HIV treatment and prevention. Their intracellular metabolites, tenofovir-diphosphate (TFV-DP) and emtricitabine-triphosphate (FTC-TP), provide informative measures of drug exposure. Peripheral blood mononuclear cells (PBMCs) are the primary matrix for these measurements; however, their isolation is labor-intensive, limiting clinical applicability. This study evaluated dried blood spots (DBS) for assessing intracellular TFV-DP and FTC-TP exposure relative to PBMCs. Paired PBMC and DBS samples (n&#x202f;=&#x202f;124) were analyzed using a validated LC-MS/MS method. Moderate correlations were observed between DBS and PBMC concentrations for TFV-DP (r&#x202f;=&#x202f;0.44, p&#x202f;<&#x202f;0.0001) and FTC-TP (r&#x202f;=&#x202f;0.27, p&#x202f;=&#x202f;0.0025), with stronger correlations in the central 80% of participants based on the DBS-to-PBMC concentration ratios (r&#x202f;=&#x202f;0.61 and 0.44, respectively). Log-transformed Bland-Altman analysis, with more than 90% of samples falling within the 95% limits of agreement. Additionally, concentration distributions across different virological statuses were similar between DBS and PBMC. DBS samples (n&#x202f;=&#x202f;44) were also collected at baseline and on day 29 from people with HIV receiving TAF/FTC in combination with isoniazid plus rifapentine (1HP) to demonstrate the applicability of DBS for investigating potential drug-drug interactions (DDIs). In conclusion, the observed moderate correlations between DBS and PBMC concentrations of TFV-DP and FTC-TP suggest that DBS may serve as a feasible sampling approach for population-level assessment of intracellular TFV-DP and FTC-TP exposure. The simplicity of DBS sample collection and handling may facilitate large-scale clinical studies and highlights its potential utility in future clinical research.

Dried blood spots↗

Crystal structures of Parechovirus A1 3Dpol reveal a mechanism of conformational stabilization in +ssRNA virus RNA-dependent RNA polymerase.

Parechovirus A1 (PeV A1) 3Dpol is an RNA-dependent RNA polymerase responsible for replication of the virus genome. We solved crystal structures of PeV A1 3Dpol structure in complex with GTP and in apo-state at 1.8-2.0&#xa0;&#xc5; resolutions. In the 3Dpol-GTP complex, the conformation of the conserved motif B loop was stabilized by zinc ion coordination by cysteine residues. Apo-state structures of PeV A1 3Dpol showed significant conformational flexibility in the motif B loop, in the absence of zinc. While one of the conformational states of apo-3Dpol was similar to the 3Dpol-GTP complex structure, the alternative apo-3Dpol conformation showed a 4.3&#xa0;&#xc5; movement of the motif B loop out of the active site cavity relative to the complex of 3Dpol with GTP. We propose that PeV A1 3Dpol activity is regulated by conformational stabilization of the motif B loop by zinc coordination.

Crystal structure↗

Kv11.1 (hERG) Protein Interaction Networks Connect Endocytic Trafficking to Polygenic Influences on Cardiac Repolarization.

Polygenic scores (PGS) capture the combined effect of many common genetic variants on quantitative traits and disease risk, yet their functional consequences at the protein level remain poorly defined. Here, we integrated quantitative and interaction proteomics to resolve how polygenic liability for cardiac repolarization manifests in human cells. We studied human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) from donors with extreme PGS for QT interval duration, a clinically relevant electrophysiologic trait associated with arrhythmia risk. Global quantitative proteomics revealed increased abundance of mitochondrial proteins in high-PGS cardiomyocytes. To define protein network-level effects on a key repolarizing ion channel, we performed multiplexed affinity purification-mass spectrometry (AP-MS) of Kv11.1. While mitochondrial changes did not directly explain Kv11.1-associated complexes, interactome analysis revealed increased association of Kv11.1 with myosin motor proteins and endosomal recycling machinery in high-PGS cells. These findings suggest altered channel trafficking dynamics of Kv11.1, distinct from the trafficking defects observed in monogenic Kv11.1 variants. Together, these data show that integrating global and interaction proteomics can resolve how polygenic variation reshapes protein networks. Future work using these methods could connect genomic risk to subcellular remodeling and our work provides a generalizable framework to probe the proteomic basis of complex traits. SIGNIFICANCE STATEMENT: Polygenic scores (PGS) predict disease risk, but how biological pathways are influenced by these common variants remains difficult to define. We generated human induced pluripotent stem cells from individuals with extreme high- and low- PGS for QT interval, a key electrocardiographic measure linked to arrhythmia risk. By combining global proteomics and interactomics for a common ion channel involved in regulating the QT interval (Kv11.1) we found potential mechanisms that are influenced by common genetic traits in patients. Our work provides an approach to connect polygenic scores to pathway-level molecular mechanisms in human cells and a general framework for uncovering how complex genetic architecture drives disease-relevant biology.

AP-MS↗

Genomic and epigenetic regulatory mechanisms in exercise-based rehabilitation processes: Cellular and tissue remodeling, microvascular adaptation, and circulating biomarkers.

While exercise-based rehabilitation is known to positively impact functionally related parameters, the role of genomic and epigenomic responses coordinated with cellular, extracellular matrix (ECM), mitochondrial, and microvascular adaptations remains insufficiently investigated. This narrative review summarizes mechanistic evidence linking exercise-associated mechanical, metabolic, hypoxia-redox, inflammatory, and hemodynamic stimuli with tissue remodeling and clinically relevant biomarkers. Current findings indicate that integrin-focal adhesion kinase (FAK) signaling and Hippo YAP/TAZ pathways contribute to mechanical signal transduction, cytoskeletal regulation, and gene expression, whereas metabolic adaptation, ATP homeostasis, and protein synthesis are regulated through AMPK-PGC-1&#x3b1;, SIRT1, and mTOR-dependent pathways. Epigenetic mechanisms, including DNA methylation, histone modifications, chromatin remodeling, and noncoding RNA regulation, further influence cell-specific responses in myofibers, satellite cells, fibro-adipogenic progenitors, endothelial cells, pericytes, and immune cells. In addition, VEGF-VEGFR2, eNOS-NO, and KLF2/KLF4 signaling, together with extracellular matrix turnover and inflammation resolution, contribute to tissue repair and microvascular adaptation during rehabilitation. Importantly, acute exercise-induced molecular responses should not be interpreted as direct evidence of sustained tissue adaptation. Circulating microRNAs, extracellular vesicles, cell-free DNA, collagen-related markers, and vascular proteins represent promising approaches for monitoring rehabilitation-related changes; however, their clinical translation remains limited by challenges related to tissue specificity, biomarker kinetics, analytical variability, and the need for standardized validation alongside structural and functional outcomes.

AMPK&#x2013;PGC-1&#x3b1; signaling↗

Identification and validation of condition-specific candidate reference genes for accurate RT-qPCR normalization in acute and chronic methamphetamine-exposed cynomolgus monkeys.

Reverse transcription quantitative real-time PCR (RT-qPCR) is widely used to quantify gene expression, but its accuracy depends on appropriate normalization using stable reference genes (RGs). Because methamphetamine (METH) exposure induces widespread transcriptional changes, conventional housekeeping genes may not remain stable under these conditions. However, condition-specific RGs have not been systematically evaluated in METH-exposed nonhuman primate models. We evaluated transcriptome-derived candidate RGs together with four commonly used RGs (GAPDH, ACTB, RPS5, and YWHAZ) in blood and tissue samples obtained from acute and chronic METH-exposed cynomolgus monkeys representing multiple age groups. Expression stability was assessed using geNorm, NormFinder, and BestKeeper, and the results were integrated using geometric mean ranking. The impact of RG selection on target-gene quantification was further examined by analyzing the expression of FOSL2, JUN, and NR4A1. The stability rankings of candidate RGs differed across age-stratified groups, exposure paradigms, and sample types. No single gene exhibited consistently stable expression across all experimental conditions. In contrast, the traditionally used RGs generally ranked poorly in most sample groups. Normalization using the most stable and least stable RGs produced different expression patterns of FOSL2 and JUN in acute blood samples, while NR4A1 and JUN expression in chronic blood samples was evaluated using the selected RGs. This study provides condition-specific candidate reference genes for RT-qPCR normalization in acute and chronic METH-exposed cynomolgus monkeys. Rather than identifying universally stable housekeeping genes, our findings demonstrate that reference-gene stability should be empirically validated for each experimental context. These findings provide a practical framework for improving the reliability and reproducibility of gene expression analyses in METH exposure studies.

Cynomolgus monkey↗

Individual Differences in Cognitive Aging Rodent Datasets (ID-CARD): A collaborative platform for behavioral analysis across the lifespan.

Understanding cognitive aging requires approaches that capture individual variability while enabling integration across studies. In rodent models, behavioral data are central to this effort, yet cross-laboratory differences in experimental design limit comparability and constrain secondary analysis. To address this gap, we developed the Individual Differences in Cognitive Aging Rodent Datasets (ID-CARD), a first-of-its-kind collaborative repository aggregating trial-level Morris water maze data from multiple laboratories. ID-CARD is designed to support large-scale, integrative analyses and to facilitate secondary use of existing behavioral data in alignment with emerging data-sharing and transparency initiatives. Rather than imposing retrospective harmonization of experimental protocols, we implemented a normalization and modeling framework that enables comparison of learning trajectories while preserving meaningful variation across studies. Behavioral data from >&#x202f;5000 rats spanning common strains, both sexes, and multiple ages were normalized in training and performance domains and fit with a logarithmic function to derive an error accumulation rate coefficient (EARC) as a measure of spatial learning. Age was strongly associated with increased EARC, indicating attenuated learning, even after adjusting for non-spatial cue performance. Analyses of goodness of fit revealed systematic structure in learning dynamics, where age was associated with reduced learning-curve conformity after accounting for overall performance. Inter-individual variability in spatial learning also increased with age, with strain-specific interactions. These findings demonstrate that integrated analysis of heterogeneous behavioral datasets can yield robust, individual-level insights into cognitive aging. ID-CARD provides a scalable resource and analytic framework to advance discovery in behavioral neuroscience by enabling reuse, integration, and comparative analysis of existing data.

Cognitive aging↗

Biochemical analysis of the TPS-b subfamily reveals a cineole-centered monoterpene biosynthetic module in Medicago truncatula.

Terpenoids constitute one of the largest and most structurally diverse classes of plant specialized metabolites, with diversity generated by terpene synthases (TPSs) and downstream tailoring enzymes. In Medicago truncatula, the TPS-b subfamily comprises five putative synthases, two of which are embedded within a previously uncharacterized genomic locus containing a cytochrome P450 (CYP) and a BAHD-type acyltransferase. Here, we present a comprehensive biochemical analysis of the M. truncatula TPS-b subfamily and define a cineole-centered monoterpene biosynthetic module. Heterologous expression and in vitro assays with multiple prenyl diphosphate substrates revealed three catalytically active TPS-b enzymes with distinct substrate preferences and product profiles. MtTPS4 functions as a dedicated (E)-&#x3b2;-ocimene synthase, whereas MtTPS15 exhibits substrate-dependent bifunctionality, producing (E)-&#x3b2;-ocimene from geranyl diphosphate and &#x3b1;-farnesene from farnesyl diphosphate. MtTPS36 generates 1,8-cineole as the predominant product alongside &#x3b1;-terpineol from geranyl and neryl diphosphate. Genome analysis revealed that MtTPS36 is colocalized with a cytochrome P450 belonging to the CYP736 family. Biochemical characterization of this CYP identified a previously undescribed plant cineole hydroxylase that catalyzes oxidation of 1,8-cineole to yield 2&#x3b1;-hydroxy-1,8-cineole (also known as 2-exo-hydroxy-1,8-cineole), establishing a TPS-CYP biosynthetic module. These results define the gene-to-metabolite relationships within the TPS-b subfamily in M. truncatula and expand the known enzymatic biosynthetic capacity underlying oxygenated monoterpene biosynthesis in plants.

1,8-Cineole↗

Genomic and functional characterization of sugar transporters reveals potential roles in sugar accumulation in a modern sugarcane cultivar.

Sugarcane (Saccharum spp.) is a globally important sugar crop whose productivity depends on efficient sugar transport from source to sink organs. However, systematic identification and functional characterization of sugar transporters (STs) in sugarcane cultivars remain limited. Here, we identified 190 non-redundant ST genes in sugarcane cultivar Guitang 42 (GT42) and phylogenetically classified them into nine groups within the Monosaccharide Transporter (MST), Sucrose Transporter (SUT), and Sugars Will Eventually be Exported Transporters (SWEET) families. Comparative evolutionary analysis revealed significant lineage-specific expansions in the PMT, STP subfamilies, and SWEET families compared to diploid and wild relatives, likely driven by polyploidization and intensive selection for sugar yield. Transcriptomic profiling across tissues and internode elongation stages demonstrated marked tissue-specific and developmental expression patterns. Yeast complementation assays confirmed the transport activity of candidate MSTs, SUTs and SWEETs, with confocal microscopy verifying their distinct subcellular localization at the plasma membrane, tonoplast, or endoplasmic reticulum. Furthermore, transient overexpression of several candidate transporters (ScSWEET4-T2, ScSWEET15, and ScTST4-T1) in Nicotiana benthamiana modulated soluble sugar accumulation, and their expression in sugarcane protoplasts activated key sugar-responsive marker genes (ScGPT2 and ScWIP4). Together, our study establishes a systematic genomic framework and identifies candidate functional transporters that govern sugar partitioning and storage, providing valuable genetic targets for molecular breeding and quality enhancement in sugarcane.

Functional characterization↗

Establishment of a cBSA-mediated miRNA delivery system in Camellia sinensis and functional validation of the Cs-miR163/CsSK1 module in cold stress response.

Cold stress severely limits tea (Camellia sinensis) yield and quality. MicroRNAs (miRNAs) are key post-transcriptional regulators of plant cold responses; however, in vivo functional validation in tea plants is hindered by the lack of efficient genetic transformation and nucleic acid delivery systems. In this study, a cationized bovine serum albumin (cBSA)-mediated miRNA delivery system was established in tea plants. The cold-responsive miRNA Cs-miR163 and its target gene CsSK1 (a negative regulator of cold tolerance) were used as a model. Direct cleavage of CsSK1 mRNA by Cs-miR163 was confirmed by 5' RLM-RACE and GUS transient expression assays, and enhanced cold tolerance was demonstrated in Arabidopsis overexpression lines. The cBSA preparation protocol was optimized, yielding stable cBSA/miRNA complexes with high protective capacity across temperatures of 15-35&#x202f;&#xb0;C and pH 4.5-7.2. Delivery parameters were systematically evaluated; optimal conditions were determined as 2&#x202f;mg/mL cBSA with 10&#x202f;nM miRNA and solution uptake into 3-cm cuttings for 5 days, enhancing miRNA delivery efficiency by approximately 48-fold. Transmission electron microscopy provided direct ultrastructural evidence that cBSA/miRNA nanocomplexes are internalized into tea plant cells via adsorptive-mediated endocytosis involving electrostatic membrane adsorption, membrane invagination, and cytoplasmic release. Under optimized conditions, cBSA-mediated delivery of Cs-miR163 silenced CsSK1 expression by approximately 72%, reduced relative electrolyte leakage and ROS accumulation, and markedly enhanced cold tolerance. The regulatory role of the Cs-miR163/CsSK1 module was clarified, and the established system provides a promising strategy for functional genomics in woody plants that warrants further testing in additional species and tissues.

Camellia sinensis↗

Omics in optic neuropathies: From molecular landscapes to personalized therapeutics.

Optic neuropathies comprise a heterogeneous group of disorders involving transient or permanent injury to retinal ganglion cells (RGCs) and their axons. Clinically, these neurodegenerative conditions manifest as dyschromatopsia, decreased visual acuity, and visual field defects, and in severe cases may ultimately lead to blindness and disability. The marked heterogeneity across disease subtypes, incompletely understood etiologies, and complex pathogenic mechanisms pose substantial challenges to precise diagnosis and effective treatment. Recent advances in omics technologies - including genomics, transcriptomics, proteomics, metabolomics, lipidomics, single-cell and spatial sequencing, and integrative multi-omics approaches - have ushered optic nerve degenerative disease research into an era of high-resolution comprehensive investigation. In this review, we summarize representative applications of omics approaches to elucidate genetic alterations, signaling dysregulation, metabolic reprogramming, and immune responses in optic neuropathies. We further discuss the emerging potential of multi-omics in identifying early diagnostic biomarkers and informing individualized therapeutic strategies. Finally, we provide a forward-looking perspective on the future trajectory of omics technologies and their prospects in both fundamental research and clinical translation, with the overarching aim of accelerating the bench-to-bedside transition in this critical eye disease field.

biomarkers↗

CRISPR/Cpf1-mediated editing of DNM1L in induced pluripotent stem cells.

The dynamin-1-like protein (DNM1L), also termed DRP1, is essential for mitochondrial fission. Mutations in DNM1L are associated with neurological disorders and cardiac dysfunction. To decipher the role of DNM1L in human induced pluripotent stem cells (hiPSCs) and in their differentiated counterparts, we used CRISPR/Cpf1 and generated a human iPSC line with a mutation by targeting exon 18 of the DNM1L gene. The generated compound heterozygous (biallelic) DNM1L mutant cell line showed normal cell morphology, genomic stability, and expression of classical stem cell markers. Furthermore, the cells can be differentiated efficiently into the three germ layers meso-, endo-, and ectoderm.

Journal Article↗

Ancient polyploidization waves as evolutionary shields for angiosperms.

Chen et al. identified 132 whole-genome duplications (WGDs) clustered around environmental crises. We highlight how, over longer evolutionary timescales, ancient WGDs convergently retained MADS-box, MYB, WRKY and HSF transcription factors, building stress-adaptation networks. These insights guide climate-resilient crop improvement through comparative genomics and CRISPR engineering.

MADS-box↗