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Biomedical subjects

Yijun Li

Publications and source records attributed to Yijun Li.

2 recordsLinked to original sources

Infancy IgE methylation score and childhood wheezing and asthma: Multicohort study.

BACKGROUND: Early-life epigenetic programming may mediate gene-environment interactions underlying recurrent wheezing and asthma. Multi-CpG methylation scores can summarize the epigenetic potential for high IgE beyond what is captured by observed IgE levels. OBJECTIVE: We sought to establish and examine the residual effect of an epigenetic total IgE (DNAm-IgE) score on respiratory morbidity in a pediatric population. METHODS: We used data from the 35th Multicenter Airway Research Collaboration (MARC-35; n = 560), the 43rd Multicenter Airway Research Collaboration (MARC-43; n = 177), and the Boston Birth Cohort (BBC; n = 80). DNA methylation (Illumina EPIC array) was measured in blood during infancy (MARC-35, MARC-43) and in cord blood at birth (BBC). Total IgE was assessed in blood at infancy, recurrent wheezing at age 3 years, and asthma at age 6 years for all cohorts. RESULTS: MARC-35 data were used to train and evaluate a DNAm-IgE score (R = 0.502 vs total IgE). MARC-43 and BBC data were used to validate the score (R = 0.309 and R = 0.132). In meta-analyses of the 3 cohorts, 1 standard deviation of DNAm-IgE score residuals (DNAm-IgE score regressed on total IgE) was associated with recurrent wheezing (OR = 1.33 [95% confidence interval, 1.11, 1.60], Pheterogeneity = .92), while 1 standard deviation of total IgE was associated with asthma (OR = 1.45 [95% confidence interval, 1.19, 1.76], Pheterogeneity = .29). All models were adjusted for sex, race/ethnicity, and birth weight. CONCLUSION: Early-life epigenetic patterns related to total IgE may contribute to subsequent respiratory morbidity beyond measured IgE levels. The DNAm-IgE score and its residual component should be viewed as exploratory tools that require further validation and mechanistic study.

Humans

Single cell RNA sequencing provides novel cellular transcriptional profiles and underlying pathogenesis of presbycusis.

Age-related hearing loss (ARHL) or presbycusis is associated with irreversible progressive damage in the inner ear, where the sound is transduced into electrical signal; but the detailed mechanism remains unclear. Here, we sought to determine the potential molecular mechanism involved in the pathogeneses of ARHL with bioinformatics methods. A single-cell transcriptome sequencing study was performed on the cochlear samples from young and aged mice. Detection of identified cell type marker allowed us to screen 18 transcriptional clusters, including myeloid cells, epithelial cells, B cells, endothelial cells, fibroblasts, T cells, inner pillar cells, neurons, inner phalangeal cells, and red blood cells. Cell-cell communications were analyzed between young and aged cochlear tissue samples by using the latest integration algorithms Cellchat. A total of 56 differentially expressed genes were screened between the two groups. Functional enrichment analysis showed these genes were mainly involved in immune, oxidative stress, apoptosis, and metabolic processes. The expression levels of crucial genes in cochlear tissues were further verified by immunohistochemistry. Overall, this study provides new theoretical support for the development of clinical therapeutic drugs.

Animals