PubMed HealthSearch

Biomedical subjects

Ling Liu

Publications and source records attributed to Ling Liu.

4 recordsLinked to original sources

Comparison of Medium-Coverage Whole-Genome Sequencing and Chromosomal Microarray in Prenatal Testing of Absence of Heterozygosity.

OBJECTIVE: Absence of heterozygosity (AOH) is a clinically significant genomic feature often associated with uniparental disomy and parental consanguinity in the prenatal settings. Chromosomal microarray analysis (CMA) is commonly used for AOH detection, while sequencing-based approaches may provide complementary genomic information within a single assay. This study evaluated the performance of medium-coverage whole-genome sequencing (CNV-plus) for the detection of prenatal AOH. METHODS: We analyzed 45 prenatal samples (35-CMA-positive, 10-CMA-negative). Concordance between CNV-plus and CMA was assessed at regional, genome-wide, and sample levels, with particular emphasis on the effect of AOH segment size. RESULTS: CNV-plus detected 56 AOH regions compared with 65 by CMA, yielding 68 matched segments. Segment-level sensitivity was 86.8%, showing clear size dependence: 53.3% for 5-10 Mb regions and 96.2% for regions > 10 Mb. Genome-wide overlap was high (global Jaccard index = 0.871), although boundary resolution differed between methods. At the sample level, CNV-plus achieved 97.1% sensitivity and 100% specificity, with no significant difference from CMA. CONCLUSIONS: CNV-plus demonstrates good concordance with CMA for detecting larger AOH regions in prenatal samples and may serve as a complementary approach when considering its size-dependent performance.

Humans

Clinical impact of metagenomic next-generation sequencing for pathogen identification and guided therapy in pediatric intensive care unit patients with severe pulmonary infections.

UNLABELLED: To explore the diagnostic efficiency, clinical concordance, and precision treatment value of metagenomic next-generation sequencing (mNGS) for severe pulmonary infections in children in the pediatric intensive care unit (PICU), and to provide evidence for improving microbiological diagnosis and optimizing anti-infective strategies. A retrospective cohort study included 89 children with severe pneumonia in the PICU in 2024. All underwent routine microbiological testing and mNGS of bronchoalveolar lavage fluid (BALF). Detection rates, pathogen composition, co-infection identification, diagnostic concordance, and treatment impact were analyzed. Metagenomic next-generation sequencing demonstrated high diagnostic sensitivity in the PICU setting, achieving a positive detection rate of 90.0% (80/89) and identifying a diverse spectrum of 103 pathogens, including 50.5% viruses, 43.7% bacteria, 38.8% co-infections (vs 11.6%), and 86.3% diagnostic concordance (vs 55.8%, P < 0.01). Among 46 patients included in the therapeutic outcome analysis (22 in the mNGS-guided group), 21 patients in the mNGS-guided group improved. Multivariate logistic regression analysis, adjusting for confounding factors (age, underlying diseases, PaO2/FiO2 ratio, PRISM III score, and preoperative antibiotic use duration), confirmed that mNGS-guided therapy was an independent protective factor for achieving the primary outcome (OR = 5.23, 95% CI: 1.87-14.61, P = 0.002) and secondary outcomes (C-reactive protein reduction &#x2265;50%: OR = 4.89, 95% CI: 1.72-13.93, P = 0.003; oxygenation improvement: OR = 5.67, 95% CI: 1.98-16.21, P = 0.001). Metagenomic next-generation sequencing demonstrated high diagnostic sensitivity in the PICU setting, guiding precision therapy, and improving prognosis. IMPORTANCE: It supports metagenomic next-generation sequencing (mNGS) as a supplementary tool for pediatric intensive care unit (PICU) refractory infections, guides anti-infective adjustments, and informs tiered diagnostic pathways for resource-limited settings to optimize cost-effectiveness.

Humans

Chronic psychological stress potentiates IgE class switch recombination via glucocorticoid receptor-mediated epigenetic reprogramming of B cells.

BACKGROUND: Chronic psychological stress is a well-recognized factor in the exacerbation of allergic diseases, with IgE playing a central role in their pathophysiology. However, the exact molecular mechanisms by which stress hormones directly influence IgE production and contribute to allergic responses remain largely uncharacterized. OBJECTIVE: This study aimed to elucidate the direct mechanisms through which chronic psychological stress, via elevated cortisol, regulates IgE class switch recombination (CSR) in B cells and contributes to stress-aggravated allergic inflammation in vivo. METHODS: We employed a chronic restraint stress (CRS) mouse model to investigate the impact of psychological stress on humoral immunity. In vitro experiments utilized primary murine B cells treated with physiological cortisol concentrations (250&#xa0;nM), incorporating molecular techniques such as CRISPR-Cas9-mediated gene knockdown, chromatin immunoprecipitation (ChIP), whole-genome bisulfite sequencing, and pharmacological inhibitors of epigenetic enzymes. Primary human B cells and the U266 human myeloma cell line were used for translational validation. In vivo validation was performed using an ovalbumin (OVA)-induced allergic airway inflammation model with B cell-specific glucocorticoid receptor (GR) knockout mice. RESULTS: Chronic psychological stress significantly elevated plasma corticosterone and serum IgE levels in mice, with no changes in IgG1 or IgM. In purified in vitro B-cell cultures, cortisol promotes epigenetic remodeling at the I&#x3b5; promoter region and enhances I&#x3b5; germline transcript expression in an isotype-specific manner, and this effect was recapitulated in human B cells. GR bound to the I&#x3b5; promoter's Amp_1 region (-154 to -62&#xa0;bp), and CRISPR-Cas9-mediated GR knockdown abolished cortisol-induced IgE production. Mechanistically, cortisol increases enrichment of activating histone marks (H3K27ac, H3K4me3) and reduces H3K27me3 at the I&#x3b5; promoter region, and induces site-specific DNA hypomethylation; inhibition of histone acetyltransferases (HATs) or DNA demethylation attenuated this effect. In vivo, B cell-specific GR knockout completely abrogated stress-induced exacerbation of allergic airway inflammation, including elevated serum IgE, eosinophilic inflammation, and airway hyperresponsiveness (AHR). CONCLUSION: Our findings support a mechanistic model in which chronic psychological stress, through elevated glucocorticoids, acts via GR to promote epigenetic remodeling at the I&#x3b5; promoter region in B cells to enhance IgE synthesis and exacerbate allergic responses. This study provides a critical molecular link between the neuroendocrine system and adaptive immunity, offering promising therapeutic targets for stress-aggravated IgE-mediated diseases.

Animals

Donor MHC-specific thymus vaccination allows for immunocompatible allotransplantation.

Organ transplantation is the last-resort option to treat organ failure. However, less than 10% of patients benefit from this only option due to lack of major histocompatibility complex (MHC)-matched donor organs and 25%-80% of donated organs could not find MHC-matched recipients. T cell allorecognition is the principal mechanism for allogeneic graft rejection. We herein present a "donor MHC-specific thymus vaccination" (DMTV) strategy to induce T cell tolerance to both autologous and allogeneic donor MHC. Allogeneic MHC molecules were expressed in the recipient thymus through adeno-associated virus-mediated delivery, which led to stable expression of allogeneic MHC together with the autologous MHC in the engineered thymus. During local T cell education, those T cells recognizing either autologous MHC or allogeneic MHC were equally depleted. We constructed C57BL/6-MHC and BALB/c-MHC dual immunocompatible mice via thymus vaccination of C57BL/6-MHC into the BALB/c thymus and observed long-term graft tolerance after transplantation of C57BL/6 skin and C57BL/6 mouse embryonic stem cells into the vaccinated BALB/c mice. We also validated our DMTV strategy in a bone marrow, liver, thymus (BLT)-humanized mouse model for immunocompatible allotransplantation of human embryonic stem cells. Our study suggests that the&#xa0;DMTV&#xa0;strategy is a potent avenue to introduce a donor compatible immune system in recipients, which overcomes the clinical dilemma of the extreme shortage of MHC-matched donor organs for treating patients with end-stage organ failure.

Animals