Search bioRxiv⌕ Search

Biology subjects

Ding, J.-L.

Publications and source records attributed to Ding, J.-L..

3 recordsLinked to original sources

SRC Knockdown Impairs Proliferation, Migration, and Invasion While Promoting Apoptosis in HTR8/SVneo Trophoblast Cells via Activation of the PI3K/Akt/Bcl-2 Signaling Pathway

SRC knockdown inhibits trophoblast cell proliferation, migration, and invasion while inducing apoptosis via activation of the PI3K/Akt/Bcl-2 signaling pathway. Trophoblast dysfunction is central to pregnancy disorders such as preeclampsia and miscarriage, yet the role of SRC, a non-receptor tyrosine kinase, in these cells remains poorly understood. This study aimed to elucidate the functional impact of SRC on trophoblast behavior and its underlying mechanism. Using siRNA-mediated knockdown in HTR8/SVneo cells, we confirmed efficient reduction of SRC mRNA and protein expression via RT-qPCR and Western blot. Functional assays demonstrated that SRC silencing significantly suppressed cell proliferation (CCK-8), migration (wound healing), and invasion (Transwell), while promoting apoptosis, evidenced by increased Annexin V-FITC/PI staining and upregulated Caspase-3 and Caspase-9 protein levels. Mechanistically, Western blot analysis revealed that SRC knockdown upregulated PI3K, Akt1, and Bcl-2 protein expression without altering IRS1 levels, indicating activation of the PI3K/Akt/Bcl-2 pro-survival pathway. This paradoxical activation appears to be a compensatory feedback insufficient to overcome SRC loss-induced dysfunction. Our findings identify SRC as a critical positive regulator of trophoblast proliferation, motility, and survival, acting through a non-canonical, IRS1-independent negative regulation of PI3K/Akt signaling. This study provides novel insights into trophoblast biology and suggests SRC as a potential therapeutic target for pregnancy complications; future in vivo studies are warranted to validate these mechanisms.

molecular biology↗

miR-6818-5p Drives Ovarian Granulosa Cell Dysfunction in PCOS via Targeting HSD17B2 and Modulating PI3K/Caspase-9 Axis

Polycystic ovary syndrome (PCOS) is a prevalent endocrine disorder characterized by hyperandrogenism, ovulatory dysfunction, and polycystic ovaries, with granulosa cell dysfunction being a key pathological feature. This study aimed to investigate the role of microRNA-6818-5p in PCOS pathogenesis. Quantitative PCR revealed a significant upregulation of circulating miR-6818-5p in PCOS patients compared to healthy controls. In vitro, functional assays in the human granulosa cell line KGN demonstrated that miR-6818-5p overexpression markedly inhibited cell proliferation (assessed by CCK-8 assay) and promoted apoptosis (measured by Annexin V/PI flow cytometry). Mechanistically, dual-luciferase reporter assay and Western blotting identified HSD17B2 as a direct target of miR-6818-5p, with miR-6818-5p mimics significantly suppressing HSD17B2 protein expression. In conclusion, our findings reveal that elevated miR-6818-5p in PCOS may contribute to follicular development dysfunction by targeting HSD17B2 to disrupt granulosa cell proliferation and apoptosis balance, offering novel insights into PCOS pathology and highlighting miR-6818-5p as a potential diagnostic biomarker and therapeutic target.

molecular biology↗

Real-Time Cell Analysis Reveals Distinct Roles of S100A4 in Regulating Proliferation, Migration, and Invasion of JAR Choriocarcinoma Cells

S100A4, a metastasis promoting calcium binding protein, drives tumor progression through pleiotropic mechanisms, yet its context dependent functions in gestational malignancies remain elusive. To dynamically decode its role in choriocarcinoma pathogenesis, we leveraged label free real time cell analysis (RTCA) to profile malignant phenotypes in JAR cells following siRNA mediated S100A4 silencing, complemented by apoptosis assessment and targeted signaling profiling. Efficient knockdown (verified by qPCR/Western blotting) significantly attenuated cellular proliferation (96 hr cell index slope decreased vs. scramble control; p<0.01) and suppressed migration capacity (p<0.01). Critically, S100A4 depletion did not induce apoptosis (flow cytometry and cleaved caspase 3/9 blotting confirmed no significant change), and invasion through Matrigel coated membranes remained statistically unaltered despite comparable experimental rigor. Mechanistically, S100A4 silencing triggered adaptive signaling rewiring: IRS1 and PI3K expression were elevated, Akt1 was suppressed, while MEK1/2 remained unchanged suggesting compensatory pathway activation.

cell biology↗