Wang Huanchen, Nair Vasudha S, Holland Ashley A, Capolicchio Samanta, Jessen Henning J, Johnson Michael K, Shears Stephen B
Laboratory of Signal Transduction, National Institute of Environmental Health Sciences, National Institutes of Health , 101 T. W. Alexander Drive, Research Triangle Park, North Carolina 27709, United States.
Department of Chemistry and Center for Metalloenzyme Studies, University of Georgia , Athens, Georgia 30602, United States.
Biochemistry. 2015 Oct 27;54(42):6462-74. doi: 10.1021/acs.biochem.5b00532. Epub 2015 Oct 9.
Iron-sulfur (Fe-S) clusters are widely distributed protein cofactors that are vital to cellular biochemistry and the maintenance of bioenergetic homeostasis, but to our knowledge, they have never been identified in any phosphatase. Here, we describe an iron-sulfur cluster in Asp1, a dual-function kinase/phosphatase that regulates cell morphogenesis in Schizosaccharomyces pombe. Full-length Asp1, and its phosphatase domain (Asp1(371-920)), were each heterologously expressed in Escherichia coli. The phosphatase activity is exquisitely specific: it hydrolyzes the 1-diphosphate from just two members of the inositol pyrophosphate (PP-InsP) signaling family, namely, 1-InsP7 and 1,5-InsP8. We demonstrate that Asp1 does not hydrolyze either InsP6, 2-InsP7, 3-InsP7, 4-InsP7, 5-InsP7, 6-InsP7, or 3,5-InsP8. We also recorded 1-phosphatase activity in a human homologue of Asp1, hPPIP5K1, which was heterologously expressed in Drosophila S3 cells with a biotinylated N-terminal tag, and then isolated from cell lysates with avidin beads. Purified, recombinant Asp1(371-920) contained iron and acid-labile sulfide, but the stoichiometry (0.8 atoms of each per protein molecule) indicates incomplete iron-sulfur cluster assembly. We reconstituted the Fe-S cluster in vitro under anaerobic conditions, which increased the stoichiometry to approximately 2 atoms of iron and acid-labile sulfide per Asp1 molecule. The presence of a 2Fe-2S cluster in Asp1(371-920) was demonstrated by UV-visible absorption, resonance Raman spectroscopy, and electron paramagnetic resonance spectroscopy. We determined that this 2Fe-2S cluster is unlikely to participate in redox chemistry, since it rapidly degraded upon reduction by dithionite. Biochemical and mutagenic studies demonstrated that the 2Fe-2S cluster substantially inhibits the phosphatase activity of Asp1, thereby increasing its net kinase activity.
铁硫(Fe-S)簇是广泛分布的蛋白质辅因子,对细胞生物化学和生物能量稳态的维持至关重要,但据我们所知,它们从未在任何磷酸酶中被鉴定出来。在这里,我们描述了裂殖酵母中一种调节细胞形态发生的双功能激酶/磷酸酶Asp1中的一个铁硫簇。全长Asp1及其磷酸酶结构域(Asp1(371-920))均在大肠杆菌中异源表达。该磷酸酶活性具有高度特异性:它仅水解肌醇焦磷酸(PP-InsP)信号家族的两个成员,即1-InsP7和1,5-InsP8中的1-二磷酸。我们证明Asp1不水解InsP6、2-InsP7、3-InsP7、4-InsP7、5-InsP7、6-InsP7或3,5-InsP8。我们还在Asp1的人类同源物hPPIP5K1中记录到了1-磷酸酶活性,该同源物在果蝇S3细胞中异源表达,带有生物素化的N端标签,然后用抗生物素蛋白珠从细胞裂解物中分离出来。纯化的重组Asp1(371-920)含有铁和酸不稳定硫化物,但化学计量比(每个蛋白质分子各含0.8个原子)表明铁硫簇组装不完全。我们在厌氧条件下体外重建了Fe-S簇,这使化学计量比增加到每个Asp1分子约2个铁原子和酸不稳定硫化物原子。通过紫外可见吸收、共振拉曼光谱和电子顺磁共振光谱证明了Asp1(371-920)中存在2Fe-2S簇。我们确定这个2Fe-2S簇不太可能参与氧化还原化学过程,因为它在连二亚硫酸盐还原后迅速降解。生化和诱变研究表明,2Fe-2S簇显著抑制Asp1的磷酸酶活性,从而增加其净激酶活性。