Kim Young-Hwan, Haidl Gerhard, Schaefer Martina, Egner Ursula, Mandal Arabinda, Herr John C
Center for Research in Contraceptive and Reproductive Health, Department of Cell Biology, University of Virginia, Charlottesville, PO Box 800732, VA 22908, USA.
Dev Biol. 2007 Feb 15;302(2):463-76. doi: 10.1016/j.ydbio.2006.10.004. Epub 2006 Oct 10.
The longest part of the sperm flagellum, the principal piece, contains the fibrous sheath, a cytoskeletal element unique to spermiogenesis. We performed mass spectrometry proteomics on isolated human fibrous sheaths identifying a unique ADP/ATP carrier protein, SFEC [AAC4], seven glycolytic enzymes previously unreported in the human sperm fibrous sheath, and sorbitol dehydrogenase. SFEC, pyruvate kinase and aldolase were co-localized by immunofluorescence to the principal piece. A homology model constructed for SFEC predicted unique residues at the entrance to the nucleotide binding pocket of SFEC that are absent in other human ADP/ATP carriers, suggesting opportunities for selective drug targeting. This study provides the first evidence of a role for an ADP/ATP carrier family member in glycolysis. The co-localization of SFEC and glycolytic enzymes in the fibrous sheath supports a growing literature that the principal piece of the flagellum is capable of generating and regulating ATP independently from mitochondrial oxidation in the mid-piece. A model is proposed that the fibrous sheath represents a highly ordered complex, analogous to the electron transport chain, in which adjacent enzymes in the glycolytic pathway are assembled to permit efficient flux of energy substrates and products with SFEC serving to mediate energy generating and energy consuming processes in the distal flagellum, possibly as a nucleotide shuttle between flagellar glycolysis, protein phosphorylation and mechanisms of motility.
精子鞭毛最长的部分,即主段,包含纤维鞘,这是精子发生过程中特有的一种细胞骨架成分。我们对分离出的人类纤维鞘进行了质谱蛋白质组学分析,鉴定出一种独特的ADP/ATP载体蛋白SFEC [AAC4]、七种先前未在人类精子纤维鞘中报道过的糖酵解酶以及山梨醇脱氢酶。通过免疫荧光法发现,SFEC、丙酮酸激酶和醛缩酶共定位于主段。构建的SFEC同源模型预测,在SFEC核苷酸结合口袋入口处存在独特的残基,而在其他人类ADP/ATP载体中不存在,这表明存在选择性药物靶向的机会。本研究首次证明了ADP/ATP载体家族成员在糖酵解中的作用。SFEC与糖酵解酶在纤维鞘中的共定位支持了越来越多的文献观点,即鞭毛的主段能够独立于中段的线粒体氧化产生和调节ATP。我们提出了一个模型,纤维鞘代表一种高度有序的复合物,类似于电子传递链,其中糖酵解途径中的相邻酶组装在一起,以允许能量底物和产物高效流动,而SFEC可能作为鞭毛糖酵解、蛋白质磷酸化和运动机制之间的核苷酸穿梭体,在鞭毛远端介导能量产生和能量消耗过程。