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Rong Yu

Publications and source records attributed to Rong Yu.

22 records · Page 2Linked to original sources

Betulinic acid-induced programmed cell death in human melanoma cells involves mitogen-activated protein kinase activation.

Betulinic acid, a naturally occurring triterpene found in the bark of the white birch tree, has been demonstrated to induce programmed cell death with melanoma and certain neuroectodermal tumor cells. We demonstrate currently that treatment of cultured UISO-Mel-1 (human melanoma cells) with betulinic acid leads to the activation of p38 and stress activated protein kinase/c-Jun NH(2)-terminal kinase [widely accepted proapoptotic mitogen-activated protein kinases (MAPKs)] with no change in the phosphorylation of extracellular signal-regulated kinases (antiapoptotic MAPK). Moreover, these results support a link between the MAPKs and reactive oxygen species (ROS). As demonstrated previously, cells treated with betulinic acid generate ROS. Preincubation of cells with antioxidants blocks the process of programmed cell death, and prevents the phosphorylation of p38 and stress activated protein kinase/c-Jun NH(2)-terminal kinase. These data suggest that ROS act upstream of the MAPKs in the signaling pathway of betulinic acid. In addition to mediating these responses, treatment of cells with betulinic acid resulted in a gradual depolarization of mitochondrial membrane potential, a phenomenon established to contribute to the induction of programmed cell death. Interestingly, p38 was capable of partially modulating this perturbation, and investigations of mitochondria-associated apoptotic events indicate no involvement of known caspases. These data provide additional insight in regard to the mechanism by which betulinic acid induces programmed cell death in cultured human melanoma cells, and it likely that similar responses contribute to the antitumor effect mediated with human melanoma carried in athymic mice.

Antineoplastic Agents, Phytogenic↗

[Technology optimization and properties study of factor IV complex concentrates].

OBJECTIVE: To produce high quality factor IX complex concentrates with domestic ion exchanger. A human solvent-detergent (S/D) treated factor IX complex concentrates has been produced from fresh-frozen plasma using domestic DEAE-Sepharose fast flow ion exchange chromatagraphy and Ca3(PO4)2 adsorption. The properties of this new concentrates were compared with those of the concentrates obtained by foreign DEAE-Sapharose CL-6B. RESULTS: The recovery of activity was 93.67 +/- 2.56% (n = 6) and 88.71 +/- 2 (n = 6), respectively. The specific activity of the concentrates was 7.36 +/- 0.96 U Factor IX: C/mg protein (n = 6). This new concentrates retained all the useful components with higher purity and lower thrombogenicity. Conclusion Domestic ion exchanger could replace foreign ion exchanger in producing high quality factor IX complex concentrates.

Chromatography, DEAE-Cellulose↗

Novel prostate-specific promoter derived from PSA and PSMA enhancers.

The expression of prostate-specific membrane antigen (PSMA) and prostate-specific antigen (PSA), two well characterized marker proteins, remains highly active in the hormone refractory stage of prostate cancer. In this study, an artificial chimeric enhancer (PSES) composed of two modified regulatory elements controlling the expression of PSA and PSMA genes was tested for its promoter activity and tissue specificity using the reporter system. As a result, this novel PSES promoter remained silent in PSA- and PSMA-negative prostate and non-prostate cancer cell lines, but mediated high levels of luciferase in PSA- and PSMA-expressing prostate cancer cell lines in the presence and absence of androgen. To determine whether PSES could be used for in vivo gene therapy of prostate cancer, a recombinant adenovirus, Ad-PSES-luc, was constructed. Luciferase activity in prostate cancer cell lines mediated by Ad-PSES-luc was 400- to 1000-fold higher than in several other non-prostate cell lines, suggesting the high tissue-specificity of the PSES promoter in an adenoviral vector. Finally, recombinant virus Ad-PSES-luc was injected into mice to evaluate the tissue-discriminatory promoter activity in an experimental animal. Unlike Ad-CMV-luc, the luciferase activity from systemic injection of Ad-PSES-luc was fairly low in all major organs. However, when injected into prostate, Ad-PSES-luc drove high luciferase activity almost exclusively in prostate and not in other tissues. Our results demonstrated the potential use of PSES for the treatment of androgen-independent prostate cancer patients.

Adenoviridae↗

Differential effects of allopregnanolone and GABA on kainate-induced lactate dehydrogenase release in cultured rat cerebral cortical cells.

AIM: To exam the effects of allopregnanolone and gamma-amino-butyric acid (GABA) on the excitotoxicity. METHODS: The excitotoxicity was evoked by kainate (KA) in the primary culture of rat cerebral cortical cells. Effect of allopregnanolone or GABA on the excitotoxicity was examined by the measurement of lactate dehydrogenase (LDH) activity released in the culture medium. RESULTS: Either acute (3 h) or chronic (24 h) treatment with KA (0.01-1 mmol/L) produced a concentration-dependent increase in LDH activity released. The EC50 values were (0.16+/-0.03) mmol/L and (0.257+/-0.015) mmol/L, respectively. Acute treatment with allopregnanolone (10-1000 nmol/L) for 3 h did not significantly affect the 0.2 mmol/L KA-induced LDH activity. On the other hand, chronic treatment with allopregnanolone (10-1000 nmol/L) for 24 h, produced inhibition on the KA-induced LDH activity in a concentration-dependent manner. The EC50 value was (436+/-19) nmol/L. Acute treatment with GABA (0.1-100 micromol/L) exacerbate the 0.2 mmol/L KA-induced LDH activity in a concentration-dependent manner, with an EC50 value of (2.7+/-1.0) micromol/L; while chronic treatment with GABA had no significant effect. CONCLUSION: There were differential patterns between the effects of allopregnanolone and GABA on the KA-induced excitotoxicity.

Animals↗