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Biomedical subjects

Bingzhong Xue

Publications and source records attributed to Bingzhong Xue.

2 recordsLinked to original sources

Big data analytics for CLEC5A dynamics based on single cell genomics and proteomics reveal its diverse functions in human diseases.

BACKGROUND: CLEC5A (C-type lectin domain family 5 member A) is an innate immune receptor implicated in inflammatory signaling, contributing to hyperinflammatory responses in infections and sterile inflammation. However, CLEC5A dynamics in human diseases remain to be identified. Here, we systematically characterized CLEC5A dynamics in humans across cells, tissues, and disease states, and to explore the functional significance of CLEC5A in macrophage activation based on single-cell genomics. METHODS: With multi-omics (scRNA-seq, proteomics and big data analytics), we analyzed extensive human transcriptomic datasets (>42,000 samples) to profile CLEC5A expression by cell type, tissue, and disease. Single-nucleus RNA-seq (snRNA-seq) from pediatric congenital heart disease and a virtual CLEC5A gene knockout were also performed to characterize CLEC5A dynamics in humans. RESULTS: CLEC5A is highly enriched in innate immune cells, particularly in macrophages and neutrophils. Baseline CLEC5A in most tissues is low, but it is markedly upregulated in inflammatory and infectious diseases. CLEC5A expression has sex-specific differences in certain organs. Single-cell analysis showed that CLEC5A can be considered novel marker of proinflammatory macrophages with elevated cytokine production, antigen presentation, and impaired phagocytosis. Virtual CLEC5A knockout analysis identified coordinated perturbation of immune-regulatory pathways and overlapping genes linking CLEC5A to macrophage activation networks. CONCLUSION: CLEC5A is predominantly expressed in myeloid cells and acts as a key amplifier of inflammation in human diseases. Our findings highlight CLEC5A as a potential biomarker and therapeutic target in myeloid-driven hyperinflammatory conditions, warranting further experimental and translational validation.

Humans

GHSR suppression in neurons protects against aging-associated metabolic and cognitive impairments.

Aging is accompanied by progressive declines in metabolic and cognitive functions. Growth hormone secretagogue receptor (GHSR), a receptor for the gut hormone ghrelin, is highly expressed in neurons and plays a crucial role in metabolic regulation. We previously reported that aged global GHSR-ablated mice are lean and insulin-sensitive, and that neuronal GHSR-deleted mice (Syn1-cre;Ghsrf/f) completely prevent diet-induced obesity. However, the role of neuronal GHSR in metabolic and cognitive aging has not been elucidated. The current study aims to determine the roles of neuronal GHSR in aging metabolism and cognitive dysfunction. Syn1-cre;Ghsrf/f mice were subjected to cold stress, glucose- and insulin-tolerance tests, behavioral tests, and tissue analysis. Aging is accompanied by glycemic dysregulation and insulin resistance; old Syn1-cre;Ghsrf/f mice showed improved glucose tolerance and insulin sensitivity. Aging is associated with thermogenic impairment and cognitive decline; old Syn1-cre;Ghsrf/f mice showed better cold resistance and retained better recognition memory. Noticeably, there were increased expression of thermogenic makers (PGC1α and UCP1) and elevated sympathetic innervation markers (tyrosine hydroxylase and synaptophysin) in brown adipose tissue of old Syn1-cre;Ghsrf/f mice. Lastly, old Syn1-cre;Ghsrf/f mice exhibited decreased pro-inflammatory cytokines and increased neural plasticity-related markers (brain-derived neurotrophic factor, synaptophysin, and tyrosine hydroxylase) in metabolic and cognitive-relevant brain regions such as hypothalamus, cortex, and hippocampus. In conclusion, neuronal inhibition of GHSR promotes a healthy aging phenotype showing improved energy metabolism and cognitive function, which is likely contributed to the improved thermogenesis and insulin sensitivity, reduced inflammation, and restored neuronal plasticity.

Animals