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MK-STYX, a catalytically inactive phosphatase regulating mitochondrially dependent apoptosis
Authors:Niemi Natalie M  Lanning Nathan J  Klomp Jeff A  Tait Stephen W  Xu Yong  Dykema Karl J  Murphy Leon O  Gaither L Alex  Xu H Eric  Furge Kyle A  Green Douglas R  MacKeigan Jeffrey P
Institution:1Laboratory of Systems Biology;2Laboratory of Computational Biology;3Laboratory of Structural Sciences, Van Andel Research Institute, Grand Rapids, Michigan 49503;4Department of Immunology, St. Jude Children''s Research Hospital, Memphis, Tennessee 38105;5Developmental and Molecular Pathways, Novartis Institutes for BioMedical Research, 250 Massachusetts Avenue, Cambridge, Massachusetts 02139
Abstract:Evasion of apoptosis is a significant problem affecting an array of cancers. In order to identify novel regulators of apoptosis, we performed an RNA interference (RNAi) screen against all kinases and phosphatases in the human genome. We identified MK-STYX (STYXL1), a catalytically inactive phosphatase with homology to the mitogen-activated protein kinase (MAPK) phosphatases. Despite this homology, MK-STYX knockdown does not significantly regulate MAPK signaling in response to growth factors or apoptotic stimuli. Rather, RNAi-mediated knockdown of MK-STYX inhibits cells from undergoing apoptosis induced by cellular stressors activating mitochondrion-dependent apoptosis. This MK-STYX phenotype mimics the loss of Bax and Bak, two potent guardians of mitochondrial apoptotic potential. Similar to loss of both Bax and Bak, cells without MK-STYX expression are unable to release cytochrome c. Proapoptotic members of the BCL-2 family (Bax, Bid, and Bim) are unable to trigger cytochrome c release in MK-STYX-depleted cells, placing the apoptotic deficiency at the level of mitochondrial outer membrane permeabilization (MOMP). MK-STYX was found to localize to the mitochondria but is neither released from the mitochondria upon apoptotic stress nor proximal to the machinery currently known to control MOMP, indicating that MK-STYX regulates MOMP using a distinct mechanism.
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