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Immunopeptidomics-guided cancer vaccine design: Advances, challenges, and emerging opportunities.

Selecting clinically relevant tumor antigens remains a major challenge in the development of therapeutic cancer vaccines. Although computational approaches have considerably improved neoantigen prediction, many candidate epitopes identified in silico are not ultimately presented on the tumor cell surface. The emergence of immunopeptidomics has provided direct access to naturally processed HLA-associated peptides and has offered new opportunities for antigen discovery. Increasing evidence has shown that information derived from the immunopeptidome becomes considerably more informative when interpreted alongside genomic, transcriptomic, and proteomic data. This integrative view has broadened the spectrum of targetable antigens and has also revealed important limitations related to peptide abundance, HLA diversity, tumor heterogeneity, and the imperfect relationship between antigen presentation and immunogenicity. These issues have renewed interest in multi-antigen vaccine strategies designed to better reflect the complexity of tumor antigen landscapes. Advances in bioinformatics and artificial intelligence are facilitating the interpretation of increasingly complex datasets and are beginning to support more systematic approaches to antigen prioritization. In this review, we discuss how immunopeptidomics is contributing to next-generation cancer vaccine development, summarize the major translational challenges, and highlight emerging concepts that may improve the clinical applicability of immunopeptidomics-guided immunotherapy.

Cancer immunotherapy↗

Chronotherapy with immune checkpoint inhibitors: The knowns, the unknowns, and the contested.

Emerging data indicate that immune checkpoint inhibitors can exhibit time-of-day-dependent effects in pre-clinical models. Furthermore, multiple retrospective clinical trials associate earlier anti-tumor treatment timing with improved outcomes. However, key questions remain regarding the reproducibility of these findings, the underlying mechanisms, and their clinical implications. This commentary discusses these open questions and provides an outlook on the field.

Journal Article↗

Locus coeruleus activation transforms cortical taste representations.

Noradrenergic neurons in the locus coeruleus (LC) shape sensory processing, yet how LC activity influences population taste coding remains unclear. Using optogenetic LC activation with miniscope imaging in the gustatory cortex (GC), we examined LC modulation of multiple taste attributes. Phasic LC activation strengthens correlations between neuronal responses and palatability and expands the dynamic range of stimulus representations along a palatability axis. This expansion is driven by an aversive shift in the representations of all tastants except sucrose, the most palatable stimulus. For mixture ratio and concentration, phasic activation expands and rotates attribute axes, potentially reflecting dependencies between these attributes and palatability. These transformations likely arise from multiplicative gain modulation and more flexible tuning changes. Tonic LC activation affects fewer neurons and does not expand attribute axes. Together, the findings show that LC activation reorganizes GC population geometry in a pattern-dependent manner, linking neuromodulation with feeding behavior and affective processing.

CP: neuroscience↗

Genomic profiling by circulating tumor DNA in patients with hormone receptor-positive/HER2-negative advanced breast cancer: Prevalence of actionable mutations across treatment lines.

INTRODUCTION: Plasma next-generation sequencing (NGS) is endorsed by ESMO as an alternative to tissue testing in advanced hormone receptor-positive, HER2-negative metastatic breast cancer (HR+/HER2- mBC), particularly after progression on endocrine therapy plus CDK4/6 inhibitors. However, prospective real-world data across distinct therapeutic contexts remain limited. PATIENTS AND METHODS: In this prospective observational study conducted within a nationwide cancer network in Brazil, centralized plasma NGS, and tissue NGS when available, was performed in two independent cohorts: prior to initiation of first-line endocrine therapy in the metastatic setting (Cohort 1) and at progression on endocrine therapy plus a CDK4/6 inhibitor (Cohort 2). The primary objective was to evaluate plasma-detected ESR1 mutation prevalence across these therapeutic contexts, and secondarily to assess other actionable drivers detected by plasma or tissue NGS. RESULTS: Among 86 collected plasma samples, 72 (84%) had evaluable NGS results (Cohort 1, n = 37; Cohort 2, n = 35). ESR1 mutations were identified in 18.9% of patients in Cohort 1 and 40.0% in Cohort 2, mostly at low variant allele fractions (<0.5%), corresponding to an absolute prevalence difference of 21.1 percentage points (95% CI, -0.2 to 40.3; P value=0.07). When considering any actionable alteration detected by plasma, including ESR1, PIK3CA, AKT1, PTEN, BRCA1, BRCA2, and ERBB2, prevalences were 43.2% and 68.6%, respectively (P value=0.04). Only four patients had ESR1 mutations identified in tissue, three in metastatic samples. Plasma-tissue concordance was higher for PIK3CA mutations (85.1%). CONCLUSION: Plasma NGS identified clinically meaningful ESR1 mutation rates across both contexts, supporting guideline-endorsed plasma-based genomic profiling in HR+/HER2- mBC.

CDK4/6 inhibitors↗

Molecular epidemiology and genomic characteristics of clinical Acinetobacter baumannii isolates from patients with hospital-acquired pneumonia in China, 2019-2020: a multicentre retrospective study.

BACKGROUND: Carbapenem-resistant Acinetobacter baumannii (CRAB) is a leading cause of hospital-acquired pneumonia (HAP) with high mortality. However, large-scale nationwide data of HAP-causing CRAB in China remain limited. METHODS: Here, we performed a nationwide multicentre retrospective study to characterise the molecular epidemiology and genomic features of 802 A. baumannii isolates from patients with HAP across 33 tertiary hospitals in China during 2019-2020. Antimicrobial susceptibility testing (AST), whole-genome sequencing (WGS), phylogenetic and comparative genomic analysis were used to investigate molecular epidemiology of HAP-causing CRAB strain. Clinical comparative analyses were carried out on data from 500 patients with HAP stratified by distinct antimicrobial susceptibility and genomic profiles, and a Galleria mellonella infection model was utilised for in vivo virulence assessment. FINDINGS: The overall carbapenem resistance rate of A. baumannii was 82.0% (658/802), with marked regional variations. CRAB exhibited high resistance to conventional agents but remained largely susceptible to polymyxin, tigecycline, cefiderocol and sulbactam-durlobactam. Among enrolled patients, CRAB infection was linked to substantially higher mortality (39.0% vs. 17.5%), and multivariate analysis confirmed ICU admission and advanced age as independent risk factors for patients with CRAB infection. Molecular typing revealed STPas2 (96.2%) as the absolutely predominant type; STOxf208, STOxf195, STOxf540, and STOxf369 were the most prevalent Oxford sequence types with obvious geographic stratification and divergent comorbidity profiles among corresponding patients. A total of 654 CRAB isolates harboured carbapenemase genes, with blaOXA-23 dominating at 98.8%. Genomic analysis revealed lineage-specific features: STOxf208 carried more virulence genes, while STOxf540 harboured a broader antimicrobial resistance genes (ARGs). The STOxf208 clone mainly belonged to KL2 (62.1%) and KL7 (36.8%) serotypes, with KL2 strains possessing richer ARGs and virulence factors, and in vivo virulence assays further validated that KL2 strains possessed higher pathogenicity than KL7 strains. INTERPRETATION: This study demonstrates the extremely high prevalence and clonal dominance of CRAB in Chinese patients with HAP, providing critical evidence for clinical treatment, antimicrobial stewardship, and targeted infection control. FUNDING: National Key Research and Development Program of China (2024YFE0106200), National Natural Science Foundation of China (U22A20338, 82502763, W2621007), Zhejiang Provincial Natural Science Foundation of China (LQN25H190006), Zhejiang Provincial Postdoctoral Science Foundation (ZJ2025058).

Acinetobacter baumannii↗

Challenges of Using Circulating Tumour DNA: Insights from Advanced Prostate Cancer.

Precision oncology relies on integrating tumour fraction, variant allele frequency, clonal haematopoiesis of indeterminate potential assessment, pathogenicity, and clinical context into next-generation sequencing interpretation, enabling biologically informed and clinically meaningful treatment decisions while reducing the risk of overinterpreting nontumour or nonactionable genomic alterations.

Editorial↗

Pilot study of allele-specific multi-InDel markers for the detection of extremely unbalanced DNA mixtures.

Mixtures are common in forensic casework, and they represent one of the most challenging types of biological evidence. Traditional short tandem repeat analyses are often associated with limitations when dealing with extremely unbalanced mixtures because alleles from minor contributors can easily be masked by those of major contributors. Consequently, researchers have developed new technologies and methods for improving the analysis of mixtures, spanning upstream DNA extraction and downstream software analysis. Among these, strategies combining allele-specific amplification with compound markers have drawn particular interest because of their ability to selectively detect minor contributors in complex mixtures. In this study, we screened multi-InDels across the entire genome, designed allele-specific primers compatible with the capillary electrophoresis platform, and further explored their potential in unbalanced DNA mixtures and cell-free fetal DNA (cffDNA). Ultimately, a set comprising 10 multi-InDels was developed, and this included two groups of primers that separately amplified the long alleles (L primer set) and short alleles (S primer set). The results demonstrated that each primer pair could detect the minor component at a 1:1000 mixture ratio, whereas the L and S primer sets successfully detected the minor contributors at mixture ratios of 1:200 and 1:500, respectively. Furthermore, in the cffDNA analysis, 60 of 78 informative markers were successfully detected, with the complete detection of all informative markers achieved in 18 mother-child reference pairs. Overall, allele-specific amplification-based multi-InDel markers enabled the sensitive detection of minor contributors, providing a potential strategy for the analysis of unbalanced two-person mixtures.

Allelic-specific amplification↗

Decreased expression of Kr&#xfc;ppel-like factor 4 is associated with colorectal cancer progression.

Kr&#xfc;ppel-like factor 4 (KLF4), a key transcription factor,plays an important role in cell proliferation, differentiation, and apoptosis. Here, we explored the prognostic value of KLF4 and its role in colorectal cancer (CRC) progression. We analyzed transcriptomic data and clinical information related to CRC from The Cancer Genome Atlas (TCGA) and the Gene Expression Omnibus (GEO) database. database. Immunohistochemistry was performed to evaluate KLF4 expression in CRC tissue samples. Additionally, we examined the relationship between clinicopathological factors and patient prognosis using Cox proportional hazards model analysis. Lentiviral transfection was used to create KLF4 knockdown HCT-116 cells. Analysis of the TCGA database and two GEO datasets (GSE21510 and GSE117606) revealed that KLF4 was expressed at low levels in CRC. Furthermore, reduced KLF4 levels correlated with lymph node metastasis, distant metastasis, and advanced TNM staging. ROC curve analysis indicated that KLF4 can effectively differentiate cancerous tissue from normal tissue. Functional enrichment analysis identified KLF4 as significantly linked to the glycoprotein metabolic pathway. Our detection of KLF4 expression in CRC tissue samples confirmed its decreased levels and their association with poorer patient survival. However, KLF4 was not identified as an independent prognostic factor. In vitro, KLF4 knockdown promoted HCT-116 cell migration and invasion and downregulated the mRNA expression of glycoprotein synthesis- and glycosylation-related genes. Conversely, KLF4 re-expression markedly reversed these effects. Our findings suggested that low KLF4 expression served as a predictor factor for disease progression in CRC patients. Furthermore, reduced KLF4 levels enhance the migration and invasion of CRC cells, which may be related to impaired glycoprotein metabolism.

Colorectal cancer↗

Investigation of pmrCAB and mcr associated resistance in colistin-resistant A. baumannii isolates.

BACKGROUND & OBJECTIVES: Colistin is one of the last-resort antibiotics for multidrug-resistant Acinetobacter baumannii. Increasing resistance to colistin limits treatment options, particularly in intensive care units (ICUs). The aim of this study was to compare the expression levels of pmrC, pmrA, and pmrB, among colistin-resistant and colistin-susceptible clinical A. baumannii isolates, to investigate the presence of plasmid-mediated mcr-1-5 genes, and to determine clonal relationships among colistin-resistant isolates. METHODS: A total of 110 A. baumannii isolates recovered from ICU patients in 2020 were included. Colistin minimum inhibitory concentrations were determined using the broth microdilution method. Expression levels of pmrC, pmrA, and pmrB were analyzed by RT-qPCR and compared with the reference strain A. baumannii ATCC 19606. Colistin-resistant isolates (Group 1) were compared with 10 randomly selected colistin-susceptible isolates (Group 2). Detection of mcr-1-5 genes was performed by in-house multiplex PCR. Clonal relationships among resistant isolates were assessed by PFGE. RESULTS: Colistin resistance was detected in 15.45% (17/110) of isolates. The median relative expression levels of pmrC, pmrB, and pmrA in colistin-resistant isolates were 47.84-fold (IQR: 19.29-67.18), 14.72-fold (IQR: 10.13-16.68), and 8.57-fold (IQR: 5.17-12.82), respectively. In colistin-susceptible isolates, the corresponding median expression levels were 5.32-fold (IQR: 3.60-7.97), 3.29-fold (IQR: 0.85-5.95), and 3.31-fold (IQR: 2.58-6.55). Expression levels were significantly higher in colistin-resistant isolates for pmrC (p < 0.001), pmrB (p = 0.002), and pmrA (p = 0.024). None of the resistant isolates carried mcr-1-5 genes. PFGE analysis revealed 12 distinct genotypes among 17 resistant isolates. INTERPRETATION & CONCLUSIONS: Colistin-resistant A. baumannii isolates exhibited significantly higher expression levels of the pmrC, pmrA, and pmrB genes compared to colistin-susceptible isolates. Among the genes evaluated, pmrC showed the largest effect size and the strongest association with the colistin-resistant phenotype. No changes were found in the mcr-1-5 genes among the isolates studied. Further studies, including genomic and functional analyses, are needed to elucidate the underlying mechanisms of these expression changes and their contribution to colistin resistance.

Journal Article↗

Overlapping RAD18- and DNA-binding interfaces in DNA polymerase &#x3b7; contribute to UV-induced DNA damage tolerance.

DNA polymerase &#x3b7; (Pol&#x3b7;) bypasses UV-induced pyrimidine dimers and thereby confers tolerance to UV irradiation. Although the C-terminus of Pol&#x3b7; has been reported to interact with ubiquitinated PCNA and RAD18, how Pol&#x3b7; engages RAD18 is not fully understood. Here, we show that Pol&#x3b7; and RAD18 interact through two distinct modes in human cells: a ubiquitinated-PCNA-dependent mode that requires the Pol&#x3b7; C-terminus, and an unexpected PCNA-independent mode mediated by its N-terminal region. We focused our subsequent analyses on this newly identified PCNA-independent mode. Using purified recombinant proteins, we demonstrate direct binding of the N-terminal region of human Pol&#x3b7; (Pol&#x3b7;&#x394;C) to RAD18 in vitro. Although Pol&#x3b7;&#x394;C and RAD18 each bound primer-template DNA, we were unable to detect a ternary Pol&#x3b7;&#x394;C-RAD18-DNA complex, and DNA competitively inhibited RAD18 binding to both Pol&#x3b7;&#x394;C and full-length Pol&#x3b7;. Mutational analyses revealed that the DNA-binding and RAD18-binding domains within Pol&#x3b7; overlap. A separation-of-function mutant, Pol&#x3b7;&#x394;C(K317A), which retains near-normal DNA-binding and polymerase activities but exhibits reduced RAD18 binding in vitro, displayed a diminished ability to rescue the UV sensitivity of Pol&#x3b7;-deficient cells. Notably, the detrimental impact of the K317A persisted in a PCNA-binding-defective background but was attenuated in RAD18-knockout cells. These findings demonstrate that RAD18 binding to the N-terminal domain of Pol&#x3b7; contributes to efficient bypass of pyrimidine dimers independently of the Pol&#x3b7;-PCNA interaction and provide mechanistic insights into how Pol&#x3b7;-RAD18 complexes assemble and dissociate during translesion DNA synthesis.

Journal Article↗

Resurgence and molecular epidemiology of dengue virus serotype 4 amid the COVID-19 pandemic in Thailand.

INTRODUCTION: Dengue virus serotype 4 (DENV4) co-circulates with other serotypes in Thailand, a hyperendemic setting characterized by cyclical shifts in serotype predominance. During the COVID-19 pandemic, related public health interventions may have influenced dengue detection, transmission and epidemiological dynamics. MATERIALS AND METHODS: A total of 413 dengue NS1/PCR-positive samples collected from 2018 to 2024 at a tertiary hospital in Bangkok were serotyped using a real-time PCR DENV1-4 subtyping assay. Forty-seven DENV4-positive samples (Ct < 32) underwent whole-genome sequencing using the ATOPlex DENV1-4 panel on the DNBSEQ-G99RS platform. Sequencing reads were processed using CLC Genomics Workbench, followed by phylogenetic, mutation, codon-based selection-pressure, and epitope-mapping analyses. RESULTS: DENV4 was identified in 18.2% (75/413) of samples, with 48% of cases requiring hospitalization. Detection increased markedly from 11.8% (22/186) during 2018-2021-23.3% (53/227) during 2022-2024 (proportion ratio, 1.97; p&#x202f;=&#x202f;0.0025). Among the 47 whole-genome-sequenced samples, most strains clustered within genotype I lineage 4I_A.3 and showed lineage-associated non-synonymous substitutions. NS1-A90T, NS2A-L113F, and NS3-F523Y appeared exclusively during 2022-2024 (p&#x202f;<&#x202f;0.001), whereas NS2A-L113F, NS5-G223S, and NS5-Q631R showed concordant positive-selection signals by FEL and MEME. CONCLUSIONS: This hospital-based study highlights an increase in DENV4 detection in Bangkok during 2022-2024 compared with 2018-2021, accompanied by predominance of lineage 4I_A.3 distinct from Malaysian and Indonesian strains reported during a similar period. These findings support integrated clinical and genomic surveillance to monitor DENV serotype and genotype dynamics and inform public health and vaccine strategies.

COVID-19 pandemic↗

Urban soil multifunctionality and seasonal variability of carbon-linked soil traits.

Urban soils can play a significant role in climate change mitigation due to their capacity to store carbon (C) and support microbial biodiversity. In this context, this study evaluated the effects of different fertilization strategies on soil quality, greenhouse gas emissions, and microbial communities in two urban green areas located in the Campania region (Southern Italy) over a three-year period. Mineral fertilization (MIN), micronized vermicompost (CMP), micronized biochar (BCH), vermicompost plus biochar (CMP&#xa0;+&#xa0;BCH) were compared to an unfertilized control (CNT). The results showed that soil physicochemical properties were mainly influenced by site-specific conditions and temporal variability, whereas cation exchange capacity was the soil parameter most responsive to fertilization treatments. The QBS-ar index, used as an indicator of soil biological quality based on soil arthropods, was primarily affected by seasonality, with higher values recorded during spring-summer and no significant effects attributable to fertilization treatments. Vermicompost, BCH, and their combination were associated with lower net soil-vegetation CO2 fluxes and smaller temporal increases in the measured flux compared with the control and mineral fertilization treatments. All treatments exhibited a negative estimated annualized net C balance, indicating that, under the adopted temporal upscaling procedure, the estimated gaseous exchanges exceeded the annual increase in soil organic carbon stocks. Nevertheless, BCH showed the least negative estimated annualized balance. Analyses of microbial diversity revealed that bacterial and fungal communities were mainly shaped by temporal and seasonal factors, while fertilization treatments had limited effects on microbial diversity and community composition. Overall, the findings indicate that biochar showed the most favorable estimated carbon balance and the lowest measured net CO2 fluxes under the conditions investigated. However, its effects on soil biological and microbial properties were limited in the short term, and none of the tested treatments achieved net carbon sequestration. These results suggest that biochar may contribute to climate change mitigation as part of long-term, site-specific management strategies rather than as a standalone solution for improving soil multifunctionality.

Biochar↗

National Antimicrobial Resistance Monitoring System: Three Decades of Advancing Public Health Through Integrated Surveillance of Antimicrobial Resistance.

Antimicrobial resistance (AMR) occurs when bacteria and other microorganisms adapt in ways that make medicines less effective, causing infections that are harder to treat and more likely to spread. According to the Centers for Disease Control and Prevention (CDC), AMR infections affect millions of Americans each year and contribute to thousands of deaths (CDC, 2019). After three decades of operation, the U.S. National Antimicrobial Resistance Monitoring System (NARMS) stands as a model of sustained, collaborative public health surveillance. What began in 1996 as an effort to track resistance in Salmonella and E. coli O157 has evolved into a One Health surveillance network monitoring AMR across the farm-to-fork continuum. Through a partnership among CDC, the Food and Drug Administration (FDA), the U.S. Department of Agriculture (USDA), state and local health departments, and universities, NARMS has become the backbone of foodborne AMR surveillance in the United States. The past decade has been particularly transformative. NARMS explored new sampling to include companion animals, minor livestock, aquaculture, surface water, and wildlife. Whole-genome sequencing (WGS) revolutionized the program's capabilities, enabling timely identification of emerging pathogens and revealing how resistance genes spread. Near real-time public dashboards make NARMS data accessible to researchers, clinicians, regulators, and policymakers. NARMS data shape decisions about new animal drug approvals, guide stewardship programs, and inform clinical treatment guidelines nationwide. As NARMS enters its fourth decade with a 2026-2030 strategic plan, the program will leverage artificial intelligence and metagenomics while expanding surveillance to fill remaining gaps ensuring this vital system continues to protect the food supply and both human and animal health from AMR.

Antimicrobial Resistance (AMR)↗

Parallel Analysis of Repeat Expansions: An Updated Clinical Nanopore Cas9-Targeted Sequencing Workflow for Nanopore R10 Flow Cells.

Hereditary ataxias, caused by expansions of short tandem repeats, are difficult to diagnose using traditional PCR and Southern blot methods, which struggle to detect complex repeat expansions and cannot assess repeat interruptions or methylation. An updated Clinical Nanopore Cas9-Targeted Sequencing workflow is presented for analyzing repeat expansions, now compatible with the Oxford Nanopore Technologies R10 flow cell. The workflow incorporates the Oxford Nanopore Technologies wf-human-variation Epi2Me workflow, including the Straglr tool to analyze base-called reads, ensuring compatibility with past, current, and future sequencing chemistries. It expands the number of genes analyzed from 10 to 27 and introduces new gene panels for ataxia, myopathy, neurodegeneration, and amyotrophic lateral sclerosis/motor neuron disease. Validated with Coriell reference and clinical samples, this method improves the analysis of pathogenic repeat expansions, providing deeper insights into repeat structures while addressing the limitations of traditional approaches. In this work, the use of multiplexing, Flongle flow cells, and single-gene targeting were explored as alternatives to panel-based approaches in the Clinical Nanopore Cas9-Targeted Sequencing workflow, finding that only single-gene targeting provides compatibility and reliable performance.

Journal Article↗

Multi-omics integration and colocalization analyses prioritize candidate molecular loci associated with hypothermia.

BACKGROUND: Hypothermia is a life-threatening condition lacking specific pharmacological treatments. This study aimed to prioritize genetically supported molecular loci associated with hypothermia and to explore their pharmacological tractability using multi-omics data. METHODS: Initially, 2532 druggable genes were curated from the Drug-Gene Interaction Database and established literature. These were cross-referenced with cis-eQTL and cis-pQTL datasets, encompassing 870,655 and 114,281 SNPs for blood, respectively, alongside 2379 shared SNPs across adipose, skeletal muscle, and heart tissues. Matched instrumental variables were integrated with hypothermia GWAS summary statistics for two-sample Mendelian randomization (MR) and Bayesian colocalization. Transcriptomic differential expression analysis (DEA) was subsequently conducted as an exploratory analysis of cold-exposure-associated expression changes. Database-derived compound annotations were systematically re-evaluated according to target specificity, established pharmacological mechanism, and concordance with the direction of the MR estimates. RESULTS: Among 671 gene-level MR tests, 36 genes reached nominal significance, whereas only ABCC8 remained significant after FDR correction. Colocalization was evaluable for 8 of these 36 genes, and 4 loci (COL18A1, SLC1A7, ADIPOQ, and MERTK) met the prespecified PP.H4>0.90 threshold. The remaining 28 loci were not evaluable because sufficient overlapping regional variants were unavailable after harmonization. Transcriptomic analysis identified altered expression of SLC1A3 and SLCO4A1 under cold exposure, although these findings did not directly validate the colocalization-supported loci. Re-evaluation of database-derived compound annotations did not identify any direct, selective, and directionally concordant drug-repurposing candidate for hypothermia. CONCLUSIONS: COL18A1, SLC1A7, ADIPOQ, and MERTK showed colocalization support among the 8 evaluable nominal MR-associated loci. Because colocalization coverage was limited, these genes should be regarded as preliminary candidate loci rather than established therapeutic targets. The pharmacological annotations were indirect, non-selective, unsupported, or directionally inconsistent and should be interpreted solely as hypothesis-generating information.

Bayesian colocalization↗

FBN1-related connective tissue disorders: unraveling cardiovascular, skeletal, and ocular complications through TGF-&#x3b2; signaling dysregulation and genotypic correlations.

Fibrillin-1 is an extracellular matrix glycoprotein essential for microfibril integrity, mediating cell-matrix interactions, providing structural support to tissues, and serving as a scaffold for elastogenesis. Pathogenic variants in the fibrillin 1 gene (FBN1) give rise to a spectrum of autosomal dominant connective tissue disorders collectively termed type-1 fibrillinopathies, which include Marfan syndrome, geleophysic dysplasia 2, acromicric dysplasia, Weill-Marchesani syndrome 2, marfanoid-progeroid-lipodystrophy syndrome, stiff skin syndrome, MASS syndrome, and isolated ectopia lentis 1. These disorders predominantly manifest cardiovascular, skeletal, and ocular abnormalities. Among these, aortic and valvular lesions are the principal and most life-threatening complications and therefore warrant the greatest clinical attention. Skeletal anomalies are diverse and can even be diametrically opposed across different phenotypes, while ectopia lentis represents the hallmark of ocular conditions. Notably, mutant fibrillin-1 disrupts microfibril structure and/or function, leading to dysregulated transforming growth factor-&#x3b2; (TGF-&#x3b2;) signaling, which is widely recognized as a central mechanism underlying type-1 fibrillinopathies. Although numerous pathogenic FBN1 variants have been identified, the knowledge of genotype-phenotype correlations remains limited in some specific regions. This review synthesizes the current understanding of the FBN1-related molecular mechanisms linking aberrant TGF-&#x3b2; signaling to distinct phenotypic outcomes and discusses how genetically engineered animal models and human induced pluripotent stem cell models advance mechanistic insights and facilitate therapy development. Additionally, clinical manifestations and genetic characteristics across all phenotypes are elaborated to facilitate diagnosis, treatment, and management of these complex disorders.

Cardiovascular complications↗

Biogeographic patterns and metabolic potential of chemoautotrophic communities in cold seep sediments across subarctic to tropical regions.

Cold seeps are hotspots of chemoautotrophic primary production, yet how chemoautotrophic community structure and dark carbon fixation (DCF) vary across climatic regions remains unclear. We combined incubation experiments and metagenomics to compare chemoautotrophic communities in cold seep sediments across northwestern Pacific marginal seas, from the subarctic Okhotsk Sea to the tropical South China Sea. Incubation experiments demonstrated higher DCF rates in tropical (1.20&#x202f;&#x3bc;g&#x202f;C g-1 day-1) than subarctic (0.35&#x202f;&#x3bc;g&#x202f;C g-1 day-1) sediments (p&#x202f;=&#x202f;0.002). Analyses of 133 cold seep sediment metagenomes (26 in this study and 107 from NCBI, spanning 0-240 cmbsf) revealed that subarctic chemoautotrophs were dominated by Chloroflexota, Asgardarchaeota, Campylobacterota, and Thermoproteota, whereas tropical chemoautotrophs were dominated by Pseudomonadota and Asgardarchaeota, with higher alpha diversity and integrated co-occurrence networks observed in tropical sediments. Representative genes of the Calvin-Benson-Bassham (CBB) cycle, the 3-hydroxypropionate/4-hydroxybutyrate (3HP/4HB) cycle, and the 3-hydroxypropionate (3HP) bicycle were enriched in tropical sediments, whereas reductive tricarboxylic acid (rTCA) cycle and Wood-Ljungdahl (WL) pathway genes predominated in subarctic sediments. Genome-resolved analysis showed that CBB cycle potential was concentrated in Pseudomonadota in tropical sediments and in Asgardarchaeota in subarctic sediments, and was most strongly correlated with nitrogen metabolism genes, whereas rTCA cycle potential was concentrated in Campylobacterota across both sediments, coupled strongly to sulfur metabolism. Depth profiling revealed surface communities dominated by Campylobacteria using rTCA cycle in subarctic sediments, and Alphaproteobacteria and Gammaproteobacteria using CBB cycle in tropical sediments, whereas the WL pathway predominated in Dehalococcoidia and Lokiarchaeia in the deeper layers of both regions. This study provides a comparative framework for chemoautotrophic biogeography across climatically distinct seeps.

Climate zones↗