Singlet oxygen (1O2) is a highly reactive form of molecular oxygen that may harm living systems by oxidizing critical cellular macromolecules. Recently, we have shown that NADP+-dependent isocitrate dehydrogenase is involved in the supply of NADPH needed for GSH production against cellular oxidative damage. In this study, we investigated the role of cytosolic form of NADP+-dependent isocitrate dehydrogenase (IDPc) against singlet oxygen-induced cytotoxicity by comparing the relative degree of cellular responses in three different NIH3T3 cells with stable transfection with the cDNA for mouse IDPc in sense and antisense orientations, where IDPc activities were 2.3-fold higher and 39% lower, respectively, than that in the parental cells carrying the vector alone. Upon exposure to singlet oxygen generated from photoactivated dye, the cells with low levels of IDPc became more sensitive to cell killing. Lipid peroxidation, protein oxidation, oxidative DNA damage and intracellular peroxide generation were higher in the cell-line expressing the lower level of IDPc. However, the cells with the highly over-expressed IDPc exhibited enhanced resistance against singlet oxygen, compared to the control cells. The data indicate that IDPc plays an important role in cellular defense against singlet oxygen-induced oxidative injury.
Seung‐Hee JoSoHyun LeeHang Suk ChunSu Min LeeHo‐Jin KohSung‐Eun LeeJang‐Soo ChunJeen‐Woo ParkTae‐Lin Huh
Sun-Yee KimSu Min LeeJean Kyoung TakKyeong Sook ChoiTaeg Kyu KwonJeen‐Woo Park
Hyun Jeong KimBeom Sik KangJeen‐Woo Park
Su Min LeeHo‐Jin KohDong‐Chan ParkByoung J. SongTae‐Lin HuhJeen‐Woo Park
Seung‐Hee JoMi-Kyung SonHo‐Jin KohSu‐Min LeeIn‐Hwan SongYong‐Ou KimYoung Sup LeeKyu‐Shik JeongWon Bae KimJeen‐Woo ParkByoung J. SongTae-Lin Huhe