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JY
Verified CAS / Academic Author3 Decoded Studies

Prof. JIA Yi-Chen

Shenzhen Key Laboratory of Steroid Drug Discovery and Development, School of Medicine, The Chinese University of Hong Kong, Shenzhen

Research Publications & English Decoded Briefs

Showing 3 publications
Acta Biochimica et Biophysica Sinica2025DOI: 10.3724/abbs.2025100

Characterization of the mechanisms underlying sulfasalazine-induced ferroptotic cell death: role of protein disulfide isomerase-mediated NOS activation and NO accumulation

Sulfasalazine (SAS), a clinically utilized anti-inflammatory drug, has been shown to induce ferroptosis by inhibiting system Xc− activity, thereby causing cellular glutathione depletion. Recently, protein disulfide isomerase (PDI) was shown to be an upstream mediator of the oxidative cell death (oxytosis/ferroptosis) induced by glutamate, erastin, RSL3 and SAS. The present study aims to further characterize the detailed biochemical and cellular mechanisms of SAS-induced ferroptosis in two cell lines, i.e., H9C2 rat cardiomyocytes and BRL-3A rat hepatocytes, with a focus on elucidating the critical role of PDI in mediating SAS-induced toxicity. We find that SAS can induce ferroptosis in H9C2 and BRL-3A cells, which is accompanied by a sequential increase in the buildup of cellular nitric oxide (NO), reactive oxygen species (ROS) and lipid-ROS. SAS activates PDI-mediated dimerization of inducible NO synthase (iNOS) and cellular accumulation of NO, and these effects are followed by ROS and lipid-ROS accumulation. Furthermore, SAS markedly upregulates the iNOS protein levels in these cells. Knockdown of PDI or pharmacological inhibition of PDI catalytic activity effectively suppresses SAS-induced iNOS dimerization, abrogates SAS-induced accumulation of NO, ROS and lipid-ROS, and prevents ferroptosis. On the other hand, PDI activation through the use of TrxR1 inhibitors sensitizes these cells to SAS-induced ferroptosis. These findings provide further experimental support for a pivotal role of PDI in SAS-induced cytotoxicity through the activation of the PDI-NOS-NO axis, which then leads to the accumulation of cellular ROS and lipid-ROS and ultimately the induction of oxidative cell death.

Acta Biochimica et Biophysica Sinica2026DOI: 10.3724/abbs.2026080

DNAJC9 promotes cervical cancer cell proliferation by regulating GLI1 expression

DNAJC9, an HSP40 family member with histone chaperone function, exhibits unclear roles in cervical cancer. DNAJC9 is specifically overexpressed in malignant cervical cancer cells, and downregulation of DNAJC9 inhibits proliferation, induces G1/S arrest, and suppresses tumorigenicity. GLI1 has been identified as a key downstream effector of DNAJC9, and GLI1 rescue reverses proliferation defects. Mechanistically, DNAJC9 promotes the p300-H3 interaction to sustain H3K27ac at the GLI1 enhancer and facilitate GLI1 transcription, driving proliferation. Furthermore, DNAJC9 expression correlates positively with GLI1 in clinical specimens, suggesting that the DNAJC9-GLI1 axis is a potential prognostic marker and therapeutic target.

Acta Biochimica et Biophysica Sinica2025DOI: 10.3724/abbs.2025100

Characterization of the mechanisms underlying sulfasalazine-induced ferroptotic cell death: role of protein disulfide isomerase-mediated NOS activation and NO accumulation

Sulfasalazine (SAS), a clinically utilized anti-inflammatory drug, induces ferroptosis by inhibiting system Xc− and depleting glutathione. This study characterizes the biochemical and cellular mechanisms of SAS-induced ferroptosis in H9C2 rat cardiomyocytes and BRL-3A rat hepatocytes, focusing on protein disulfide isomerase (PDI). SAS induced ferroptosis with sequential increases in cellular nitric oxide (NO), reactive oxygen species (ROS), and lipid-ROS. SAS activated PDI-mediated dimerization of inducible NO synthase (iNOS) and NO accumulation, followed by ROS and lipid-ROS buildup. SAS also upregulated iNOS protein levels. PDI knockdown or pharmacological inhibition suppressed iNOS dimerization, abrogated NO, ROS, and lipid-ROS accumulation, and prevented ferroptosis. Conversely, PDI activation via TrxR1 inhibitors sensitized cells to SAS-induced ferroptosis. These findings support a pivotal role of the PDI-NOS-NO axis in SAS-induced cytotoxicity, leading to oxidative cell death. The study provides mechanistic insights and suggests strategies for sensitizing cancer cells to SAS-induced ferroptosis.

Prof. JIA Yi-Chen | Publications & Academic Profile | SinoBioData | SinoBioData