NRP1 transduces mechanical stress inhibition via LATS1/YAP in hypertrophic scars.
Mengzhi LiPeng WangJingting LiFei ZhouShixin HuangShaohai QiBin ShuPublished in: Cell death discovery (2023)
Hypertrophic scar (HS) is an abnormal fibrous hyperplasia of the skin caused by excessive tissue repair in response to skin burns and trauma, which restricts physical function and impairs patients' quality of life. Numerous studies have shown that pressure garment therapy (PGT) is an effective treatment for preventing hypertrophic scars. Herein, we found that mechanical stress stimulates the neuropilin 1 (NRP1) expression through screening GSE165027, GSE137210, and GSE120194 from Gene Expression Omnibus (GEO) database and bioinformatics analysis. We verified this stimulation in the human hypertrophic scar, pressure culture cell model, and rat tail-scar model. Mechanical compression increased LATS1 and pYAP enrichment, thus repressing the expression of YAP. Functionally, the knockdown of NRP1 promoted the expression of LATS1, thus decreasing the expression of YAP and inhibiting endothelial cell proliferation. Furthermore, co-immunoprecipitation analysis confirmed that NRP1 binds to YAP, and mechanical compression disrupted this binding, which resulted in the promotion of YAP relocation to nuclear. In conclusion, our results indicated that NRP1 transduces mechanical force inhibition by inhibiting YAP expression. Mechanical pressure can release YAP bound to NRP1, which explains the phenomenon that mechanical stress increases YAP in the nucleus. Strategies targeting NRP1 may promote compression therapy with optimal and comfortable pressures.
Keyphrases
- poor prognosis
- gene expression
- cell proliferation
- binding protein
- endothelial cells
- emergency department
- long non coding rna
- end stage renal disease
- signaling pathway
- bioinformatics analysis
- cell therapy
- oxidative stress
- dna methylation
- body mass index
- stress induced
- single molecule
- weight gain
- peritoneal dialysis
- cancer therapy
- patient reported outcomes
- functional connectivity
- soft tissue
- resting state
- induced pluripotent stem cells
- platelet rich plasma
- dna binding