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Biomedical subjects

Su-Young Oh

Publications and source records attributed to Su-Young Oh.

3 recordsLinked to original sources

Reactive oxygen species augment B-cell-activating factor expression.

B-cell-activating factor (BAFF) plays a role in mature B-cell generation and maintenance. Lipopolysaccharide (LPS) activates toll-like receptor 4 (TLR4)-dependent signal transduction and induces ROS production. Here, we investigated BAFF production regulated by reactive oxygen species (ROS). BAFF expression was augmented by LPS stimulation and by serum deprivation that induced ROS production. BAFF expression was inhibited by treatment with various antioxidants including N-acetyl-L-cysteine (NAC). We also investigated BAFF expression in vivo using peroxiredoxin II (PrxII)-deficient mouse spleen cells. PrxII is a member of the antioxidant enzyme family that protects cells from oxidative damage. Constitutive production of endogenous ROS was detected in spleen cells lacking PrxII. Serum BAFF protein level and BAFF transcript expression in splenocytes were significantly higher in PrxII(-/-) mice than wildtype mice. A higher BAFF level is consistent with the higher total number of splenocytes and B220(+)cells. Results were supported by NF-kappaB activation as judged by reduced IkappaBalpha degradation and increased nuclear translocation of p65/RelA with LPS stimulation, serum deprivation, and PrxII deletion. Data suggest that TLR4-mediated BAFF expression was increased by ROS and it was inhibited by PrxII controlling ROS production.

Animals↗

ERK activation by thymosin-beta-4 (TB4) overexpression induces paclitaxel-resistance.

The development of paclitaxel-resistance in tumors is one of the most significant obstacles to successful therapy. Thymosin-beta-4 (TB4) has been known as actin-sequestering protein and functions in tumor metastasis. Here, we overexpressed TB4 in HeLa cells (TB4-HeLa) and examined the effect of TB4 in paclitaxel-induced cell death. TB4-HeLa cells showed a higher growth rate and a lower percentage of basal apoptosis than HeLa cells. TB4-HeLa cells were more resistant to paclitaxel-induced cell death than HeLa cells. TB4 transcript expression with paclitaxel treatment was dose-dependently increased in HeLa cells but that was not in TB4-HeLa cells. Small interfering RNA (siRNA) of TB4 inhibited HeLa cell growth and enhanced paclitaxel-induced cell death. Basal ERK phosphorylation was elevated and basal p38 kinase phosphorylation was reduced in paclitaxel non-treated TB4-HeLa cells. When treated with paclitaxel, cell death and resistance-induction were independent of ERK and p38 kinase activation. Paclitaxel-resistance of TB4-HeLa cells was overcome by the inhibition of basal ERK activity with PD98059 pre-treatment. The inhibition of basal p38 kinase activity with SB203580 pre-treatment attenuated the paclitaxel-induced HeLa cell death. In conclusion, TB4 induced paclitaxel-resistance through the elevation of basal level of ERK phosphorylation. Therefore, TB4 could be a novel target to regulate paclitaxel-resistance.

Animals↗

Epac1-mediated Rap1 activation is not required for the production of nitric oxide in BV2, murine microglial cells.

This study demonstrates that cyclic AMP (cAMP) production is induced by lipopolysaccharide (LPS) stimulation and activates two different pathways in murine BV2 microglial cells. Two principal effector proteins for cAMP are protein kinase A (PKA) and cAMP-responsive guanine nucleotide exchange factor (Epac), a Rap GDP exchange factor. When cells were treated with various cAMP level modulators, nitric oxide (NO) production increased as the result of posttreatment with Type IV phosphodiesterase (PDE4) inhibitor, rolipram or dibutyryl-cAMP (dbcAMP), at 2 hr after LPS stimulation. Intracellular cAMP increased due to LPS stimulation and the cAMP modulators phosphorylate transcription factor CREB, which is enhanced in turn by posttreatment with dbcAMP. In contrast, the Epac-specific cAMP analog 8-(4-chloro-phenylthio)-2'-O-methyladenosine-3',5'-cyclic monophosphate (8CPT-2Me-cAMP) activates Rap1 in the BV2 cells, but does not induce PKA activation, as judged by CREB phosphorylation. NO production was enhanced by posttreatment with dbcAMP but not by treatment with 8CPT-2Me-cAMP. This suggests that LPS-stimulated NO production is mainly PKA-dependent and also that Epac1-mediated Rap1 activation is not required for the induction of NO production.

Analysis of Variance↗