scispace - formally typeset
H

Honglin Liu

Researcher at Nanjing Agricultural University

Publications -  191
Citations -  3619

Honglin Liu is an academic researcher from Nanjing Agricultural University. The author has contributed to research in topics: Gene & Apoptosis. The author has an hindex of 27, co-authored 175 publications receiving 2455 citations. Previous affiliations of Honglin Liu include Washington State University.

Papers
More filters
Journal ArticleDOI

Involvement of the Up-regulated FoxO1 Expression in Follicular Granulosa Cell Apoptosis Induced by Oxidative Stress

TL;DR: The results suggest that up-regulation of FoxO1 by oxidative stress leads to apoptosis of granulosa cells, which eventually results in follicular atresia in mice.
Journal ArticleDOI

Protective mechanism of FSH against oxidative damage in mouse ovarian granulosa cells by repressing autophagy

TL;DR: A new mechanism involving FSH-FOXO1 signaling in defense against oxidative damage to GCs by restraining autophagy is suggested, which may be a potential avenue for the clinical treatment of anovulatory disorders.
Journal ArticleDOI

MicroRNAs in ovarian follicular atresia and granulosa cell apoptosis

TL;DR: A deep understanding of the roles of miRNA networks will not only help elucidate the mechanisms of GC apoptosis, follicular development, atresia and their disorders but also offer new diagnostic and treatment strategies for infertility and other ovarian dysfunctions.
Journal ArticleDOI

TGF-β signaling controls FSHR signaling-reduced ovarian granulosa cell apoptosis through the SMAD4/miR-143 axis.

TL;DR: It is shown that FSHR knockdown induced porcine granulosa cell (pGC) apoptosis and follicular atresia, and attenuated the levels of intracellular signaling molecules such as PKA, AKT and p-AKT.
Journal ArticleDOI

Melatonin protects mouse granulosa cells against oxidative damage by inhibiting FOXO1-mediated autophagy: Implication of an antioxidation-independent mechanism

TL;DR: Findings reveal a brand new mechanism of melatonin in defense against oxidative damage to GCs by repressing FOXO1, which may be a potential therapeutic target for anovulatory disorders.