The Wilms' Tumor Suppressor Protein WT1 Is Processed by the Serine Protease HtrA2/Omi
MOLECULAR CELL
Authors: Hartkamp, Joerg; Carpenter, Brian; Roberts, Stefan G. E.
Abstract
The Wilms' tumor suppressor protein WT1 functions as a transcriptional regulator of genes controlling growth, apoptosis, and differentiation. It has become clear that WT1 can act as an oncogene in many tumors, primarily through the inhibition of apoptosis. Here, we identify the serine protease HtrA2 as a WT1 binding partner and find that it cleaves WT1 at multiple sites following the treatment of cells with cytotoxic drugs. Ablation of HtrA2 activity either by chemical inhibitor or by siRNA prevents the proteolysis of WT1 under apoptotic conditions. Moreover, the apoptosis-dependent cleavage of WT1 is defective in HtrA2 knockout cells. Proteolysis of WT1 by HtrA2 causes the removal of WT1 from its binding sites at gene promoters, leading to alterations in gene regulation that enhance apoptosis. Our findings provide insights into the function of HtrA2 in the regulation of apoptosis and the oncogenic activities of WT1.
Melatonin protects against rotenone-induced cell injury via inhibition of Omi and Bax-mediated autophagy in Hela cells
JOURNAL OF PINEAL RESEARCH
Authors: Zhou, Hongyan; Chen, Jie; Lu, Xilin; Shen, Cunzhou; Zeng, Jinsheng; Chen, Ling; Pei, Zhong
Abstract
Parkinsons disease is the second most common neurodegenerative disease, and environmental toxins such as rotenone play an important role in causing degeneration of dopaminergic neurons. Melatonin, a major secretory product of pineal, is recently reported to protect against rotenone-induced cell death in animal models. Yet, the mechanism involved in this protection needs to be elucidated. Here, we report that rotenone treatment (0100 mu m) decreased cell survival of Hela cells in a dose-dependent manner. At concentrations ranging from 0.1 to 100 mu m, rotenone induced a dose-dependent increase in the expression of microtubule-associated protein 1 light chain 3 (LC3)-II, a protein associated with the autophagosomal membrane. Knockdown of Bax or Omi using shRNA inhibited 1 mu m rotenone-induced autophagy. To determine whether melatonin would protect cells against rotenone-induced cell death and autophagy, we pretreated Hela cells with 250 mu m melatonin for 24 hr in the presence of rotenone. Melatonin inhibited Bax expression and the release of the omi/HtrA2 into the cytoplasm induced by 1 mu m rotenone. Melatonin 250 mu m treatment also suppressed cell death induced by 0.1100 mu m rotenone and protected against the formation of LC3-II in cells exposed to 1 mu m rotenone. This work demonstrates a novel role for melatonin as a neuroprotective agent against rotenone.