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Biomedical subjects

Shan Wang

Publications and source records attributed to Shan Wang.

3 recordsLinked to original sources

Phosphoproteomic analysis in a mouse model reveals ERK signaling as a key modulator of inflammatory response in nasal mucosa associated with childhood allergic rhinitis.

Childhood allergic rhinitis (AR) is a multifactorial condition arising from the interplay between genetic predisposition and environmental exposures. Although protein phosphorylation is widely recognized as a key regulator of gene expression across various physiological and pathological states, its global alterations in the nasal mucosa of pediatric patients with AR and their subsequent impact on mucosal function and inflammatory pathways remain incompletely characterized. Our study aimed to elucidate the molecular mechanisms underlying nasal mucosa dysfunction induced by pediatric AR. Our analysis revealed 3,861 proteins encompassing a total of 15,491 phosphorylation sites. Specifically, we detected 441 downregulated phosphorylation sites on 584 proteins and 531 upregulated phosphorylation sites on 722 proteins in the nasal mucosa of the AR group. Our proteomics findings suggest that the dysregulation of immune activation and metabolic regulation may contribute to AR pathophysiology. Through pathway analysis of the identified phosphorylation sites, we found Extracellular Signal-Regulated Kinase (ERK) signaling emerged as an important pathway; notably, upregulation of ERK1/2 phosphorylation was observed as a significant marker associated with AR. Importantly, targeting ERK inhibitors presents a potential therapeutic strategy for modulating key inflammatory response signaling pathways in the context of AR, although this finding is derived from preclinical mouse models and requires rigorous validation in human pediatric nasal mucosal tissues before any clinical translation can be considered. Collectively, these findings highlight that elucidating the molecular mechanisms underlying AR-induced nasal mucosal dysfunction in the mouse model may inform the novel therapeutic targets for pediatric allergy-related diseases. Overall, elucidating these mechanisms has substantial implications for developing targeted interventions aimed at mitigating inflammation associated with allergic rhinitis.

Animals

Salmonella Pullorum strain SPullorum-YN-07 from dead embryos of Yanjin black-bone chickens: Complete genome with IncFII(S) and Col(pVC) plasmids and pathogenicity.

Salmonella Pullorum is a host-adapted pathogen that causes Pullorum disease in chickens and can be vertically transmitted via eggs, leading to embryonic mortality. The susceptibility and vertical transmission of S. Pullorum may vary among chicken breeds, yet genomic characterization of strains from dead embryos of indigenous breeds remains limited. This study isolated and characterized a Gram-negative short rod, designated Salmonella Pullorum strain SPullorum-YN-07, from dead embryos of Yanjin black-bone chickens, a native breed in Yunnan, China. The strain formed colorless colonies on MacConkey agar and red, non-H2S colonies on XLD agar, with biochemical reactions consistent with the genus Salmonella. Whole-genome sequencing using Illumina and PacBio platforms generated a complete genome consisting of one circular chromosome and four circular plasmids; plasmid replicon types IncFII(S) and Col(pVC) were identified in two of the plasmids. On the chromosome, a total of 340 virulence-associated genes were detected, including those involved in secretion systems, adhesion, motility, and immune modulation. Resistance gene analysis identified the acquired aminoglycoside resistance gene aac(6')-Iaa, alongside multiple intrinsic resistance determinants related to efflux pumps and target alteration. Multilocus sequence typing (MLST) assigned the strain to sequence type ST92, and core-genome phylogenetic analysis confirmed its clustering within the Salmonella Pullorum lineage. In a chick infection model, the strain induced depression, white diarrhea, and growth retardation, with clinical scores peaking at 10 days post-infection and a mortality rate of 10%. Bacterial colonization was highest in the cecum, and histopathological lesions were observed in the liver, spleen, and cecum. This study provides the first complete genomic characterization and pathogenicity assessment of an S. Pullorum strain isolated from dead embryos of Yanjin black-bone chickens, offering a foundation for understanding host-pathogen interactions in indigenous breeds and assessing cross-transmission risks to commercial poultry populations.

Complete genome

Pan-cancer analysis identifies KANSL2 as a cell-cycle-associated regulator of tumor progression and immunity in liver hepatocellular carcinoma.

KANSL2, a core component of the NSL histone acetyltransferase complex, has been implicated in tumorigenesis. However, its pan-cancer relevance and functional role in liver hepatocellular carcinoma (LIHC) remain unclear. Multi-omics data from TCGA, GEO, and HPA were integrated to systematically evaluate KANSL2 expression, clinical significance, genomic alterations, and immune associations across cancers. Functional enrichment, immune infiltration analyses, and single-cell transcriptomics were performed. In vitro assays were conducted to validate the biological effects of KANSL2 in LIHC cells. KANSL2 is broadly upregulated across cancers and exhibits strong diagnostic performance. Elevated KANSL2 expression correlates with unfavorable prognosis, particularly in LIHC. Mechanistically, KANSL2 and its co-expressed genes are enriched in cell-cycle progression. KANSL2 expression is also closely associated with immune infiltration and immunoregulatory signaling within the tumor microenvironment, with single-cell data indicating preferential expression in proliferative T-cell subsets. Functional experiments demonstrate that KANSL2 silencing suppresses proliferation, migration, and invasion, and induces G2/M phase arrest in LIHC cells. Notably, its effects on apoptosis are limited, suggesting that KANSL2 primarily drives tumor progression through cell-cycle-dependent mechanisms. This study identifies KANSL2 as a key regulator of tumor progression and immune remodeling in LIHC. By promoting malignancy predominantly via cell-cycle control, KANSL2 represents a promising biomarker for diagnosis and prognosis, and a potential therapeutic target.

Carcinoma, Hepatocellular