Fleming Ingrid, Mohamed Annisuddin, Galle Jan, Turchanowa Ljudmila, Brandes Ralf P, Fisslthaler Beate, Busse Rudi
Institut für Kardiovaskuläre Physiologie, Johann Wolfgang Goethe-Universität, Theodor-Stern-Kai 7, 60590 Frankfurt am Main, Germany.
Cardiovasc Res. 2005 Mar 1;65(4):897-906. doi: 10.1016/j.cardiores.2004.11.003.
Oxidized low-density lipoprotein (ox-LDL) increases superoxide anion (O(2)(-)) production by the endothelial nitric oxide (NO) synthase (eNOS). We assessed whether the uncoupling of eNOS was associated with alterations in eNOS phosphorylation and/or the assembly of the eNOS signaling complex.
In unstimulated human endothelial cells, eNOS Thr(495) was constitutively phosphorylated. ox-LDL, but not native LDL, enhanced the production of O(2)(-) by endothelial cells, an effect that was partially sensitive to NOS inhibition. ox-LDL, but not native LDL, induced a time- and concentration-dependent decrease in the phosphorylation of eNOS on Thr(495). Protein kinase C (PKC) has been reported to phosphorylate this residue, and the increase in the phosphorylation of Thr(495) induced by phorbol 12-myristate 13-acetate was attenuated in cells pretreated with ox-LDL. Moreover, the phosphorylation and activity of PKCalpha was attenuated by ox-LDL and paralleled the changes in eNOS phosphorylation. ox-LDL also induced the dissociation of eNOS from the plasma and Golgi membranes. In COS-7 cells, a T495A eNOS mutant generated significantly more O(2)(-) than a T495D mutant did, indicating that the dephosphorylation of Thr(495) alone can increase O(2)(-) production by eNOS. However, although the dephosphorylation of Thr(495) in histamine-stimulated endothelial cells enhanced the binding of calmodulin to eNOS, calmodulin no longer bound to eNOS from ox-LDL-treated endothelial cells.
These results indicate that a decrease in the activity of PKCalpha in ox-LDL-treated endothelial cells is associated with the dephosphorylation of eNOS, dissociation of the eNOS signaling complex, and the enhanced production of eNOS-derived O(2)(-).
氧化型低密度脂蛋白(ox-LDL)可增加内皮型一氧化氮合酶(eNOS)产生超氧阴离子(O₂⁻)。我们评估了eNOS的解偶联是否与eNOS磷酸化改变和/或eNOS信号复合物的组装有关。
在未受刺激的人内皮细胞中,eNOS的苏氨酸(Thr)⁴⁹⁵组成性磷酸化。ox-LDL而非天然LDL可增强内皮细胞产生O₂⁻,该效应部分对一氧化氮合酶(NOS)抑制敏感。ox-LDL而非天然LDL可诱导eNOS的Thr⁴⁹⁵磷酸化呈时间和浓度依赖性降低。据报道蛋白激酶C(PKC)可使该残基磷酸化,在用ox-LDL预处理的细胞中,佛波醇12-肉豆蔻酸酯13-乙酸酯诱导的Thr⁴⁹⁵磷酸化增加减弱。此外,ox-LDL使PKCα的磷酸化和活性减弱,且与eNOS磷酸化变化平行。ox-LDL还诱导eNOS从质膜和高尔基体膜解离。在COS-7细胞中,T495A eNOS突变体产生的O₂⁻明显多于T495D突变体,表明仅Thr⁴⁹⁵去磷酸化就能增加eNOS产生O₂⁻。然而,尽管组胺刺激的内皮细胞中Thr⁴⁹⁵去磷酸化增强了钙调蛋白与eNOS的结合,但钙调蛋白不再与ox-LDL处理的内皮细胞中的eNOS结合。
这些结果表明,ox-LDL处理的内皮细胞中PKCα活性降低与eNOS去磷酸化、eNOS信号复合物解离以及eNOS衍生的O₂⁻产生增加有关。