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Mehrabipour, M.

Publications and source records attributed to Mehrabipour, M..

2 recordsLinked to original sources

Identification of SIRT4 as a novel paralog-specific interactor and candidate suppressor of C-RAF kinase in MAPK signaling

Cellular responses leading to development, proliferation, and differentiation rely on RAF/MEK/ERK signaling that integrates and amplifies signals from various stimuli to cellular downstream responses. The clinical significance of C-RAF activation has been reported in many types of tumor cell proliferation and developmental disorders, which requires the discovery of potential C-RAF protein regulators. Here, we identify a novel and specific protein interaction between C-RAF, among the RAF kinase paralogs, and SIRT4 among the mitochondrial sirtuin family members SIRT3, SIRT4, and SIRT5. Structurally, C-RAF binds to SIRT4 through the N-terminal cysteine-rich domain (CRD; a.a. 136-187), and on the other side, SIRT4 requires predominantly the C-terminus (a.a. 255-314) for full interaction with C-RAF. Interestingly, SIRT4 interacts specifically with C-RAF in a pre-signaling inactive (serine 259 phosphorylated) state. Consistent with this finding, ectopic expression of SIRT4 in HEK293 cells results in upregulation of pS259-C-RAF levels and concomitant reduction of MAPK signaling as evidenced by strongly decreased phospho-ERK signals. Thus, our findings propose another extra-mitochondrial role of SIRT4 and suggest that SIRT4 functions as a cytosolic tumor suppressor of C-RAF-MAPK signaling, besides its known metabolic tumor suppressor role towards glutamate dehydrogenase and glutamine levels in mitochondria.

biochemistry↗

CoCl2 triggered pseudohypoxic stress induces proteasomal degradation of SIRT4 via polyubiquitination of lysines K78 and K299

SIRT4 comprises together with SIRT3 and SIRT5 the mitochondrially localized subgroup of sirtuins. SIRT4 regulates via its NAD+-dependent enzymatic activities mitochondrial bioenergetics, dynamics (mitochondrial fusion), and quality control (mitophagy). Here, we address the regulation of SIRT4 itself by characterizing its protein stability and degradation upon CoCl2-induced pseudohypoxic stress that typically triggers mitophagy. Interestingly, within the mitochondrial sirtuins, only the protein levels of SIRT4 or ectopically expressed SIRT4-eGFP decrease upon CoCl2 treatment of HEK293 cells. Co-treatment with BafA1, an inhibitor of autophagosome-lysosome fusion required for autophagy/mitophagy, or the use of the proteasome inhibitor MG132 prevented CoCl2-induced SIRT4 downregulation. Consistent with the proteasomal degradation of SIRT4, the lysine mutants SIRT4(K78R) and SIRT4(K299R) showed significantly reduced polyubiquitination upon CoCl2 treatment and were more resistant to pseudohypoxia-induced degradation as compared to SIRT4. Moreover, SIRT4(K78R) and SIRT4(K299R) displayed increased basal protein stability as compared to wild-type SIRT4 when subjected to MG132 treatment or cycloheximide (CHX) chase assays. Thus, our data indicate that stress-induced protein degradation of SIRT4 occurs through two mechanisms, (i) via mitochondrial autophagy/mitophagy, and (ii) as a separate process via proteasomal degradation within the cytoplasm.

biochemistry↗