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Biology subjects

Bian, J.-S.

Publications and source records attributed to Bian, J.-S..

2 recordsLinked to original sources

MFAP5 Drives Elastic Fiber Disorganization to Promote Pulmonary Fibrosis

BACKGROUNDElastic fibers (EF) disorganization contributes to increased tissue stiffness and impaired lung function in pulmonary fibrosis (PF). However, the complex structural features of EF are difficult to capture using conventional histology. Moreover, the molecular mechanisms governing EF homeostasis during fibrosis remain poorly understood. METHODSA high-dimensional Elastic Fiber Algorithm (EFA) was developed to digitally quantify EF structural features in PF. Gene variation-rate analysis was performed to identify candidate regulators of EF homeostasis. Fibroblast-specific and pathological fibroblast-specific MFAP5 knockout mice were generated to assess the role of MFAP5 in PF rodent models. Bulk RNA sequencing was employed to investigate MFAP5-mediated fibroblast activation and signaling pathways. RESULTSEFA revealed profound EF disorganization in fibrotic lungs, capturing various architectural alterations. Gene variation-rate analysis identified MFAP5 as a candidate regulator of EF homeostasis, with upregulated expression in PF patients and mouse models. Fibroblast-specific deletion of MFAP5 significantly attenuated fibrosis, restored EF architecture, reduced collagen deposition, and improved pulmonary function in PF mouse models. MFAP5-positive fibroblasts displayed a dynamic shift toward pathological states during PF progression. Mechanistically, MFAP5 promoted fibroblast activation and ECM production via v{beta}3 integrin-mediated TGF{beta} signaling. CONCLUSIONSMFAP5 is a key orchestrator of EF remodeling and fibroblast activation in PF. Targeting MFAP5 restores EF homeostasis, reduces fibrotic severity, and represents a potential therapeutic strategy for PF.

molecular biology↗

TXNDC5 Governs Extracellular Matrix Homeostasis in Pulmonary Hypertension

BACKGROUNDPulmonary hypertension (PH) is characterized by vascular remodeling without effective treatments. Thioredoxin domain containing 5 (TXNDC5), a member of the protein disulfide isomerases (PDI) family, regulates protein folding and vascular homeostasis, yet its role in PH remains unknown. METHODSLabel-free proteomics profiled protein expression in lungs from PH patients. TXNDC5 was analyzed by single-cell RNA sequencing, immunofluorescence, and Western blot. Endothelial gain- and loss-of-function approaches were applied in Sugen5416/hypoxia (SuHx)-induced rodent PH models. RNA sequencing and protein-protein interaction analysis were used to investigate underlying mechanisms. RESULTSTXNDC5 was significantly upregulated in the lungs of patients with PH and in experimental PH models, with predominant localization in endothelial cells (ECs) of remodeled distal pulmonary arteries. Endothelial TXNDC5 overexpression exacerbated pulmonary vascular remodeling, elevated right ventricular systolic pressure, and promoted right ventricular hypertrophy, whereas global or endothelial-specific TXNDC5 deficiency conferred protection against SuHx-induced PH. Hypoxia-induced factor (HIF)-2 transcriptionally activated TXNDC5 to drive PH development. Single-cell RNA sequencing identified a distinct subpopulation characterized by TXNDC5high extracellular matrix (ECM)-producing ECs. Bulk RNA sequencing combined with protein-protein interaction analysis revealed that TXNDC5 regulated ECM homeostasis through biglycan (BGN). Pharmacological inhibition of TXNDC5 with E64FC26 and endothelial-targeted TXNDC5 gene therapy significantly attenuated PH severity in rats. CONCLUSIONSOur study reveals that TXNDC5 is a main modulator to regulate ECM homeostasis and may serve as a promising target for the treatment of PH.

molecular biology↗