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ATP 合酶六聚体组装形成弓形虫线粒体嵴。

ATP synthase hexamer assemblies shape cristae of Toxoplasma mitochondria.

机构信息

Science for Life Laboratory, Department of Biochemistry and Biophysics, Stockholm University, 17165, Solna, Sweden.

Department of Medical Biochemistry and Biophysics, Karolinska Institute, 17177, Stockholm, Sweden.

出版信息

Nat Commun. 2021 Jan 5;12(1):120. doi: 10.1038/s41467-020-20381-z.

Abstract

Mitochondrial ATP synthase plays a key role in inducing membrane curvature to establish cristae. In Apicomplexa causing diseases such as malaria and toxoplasmosis, an unusual cristae morphology has been observed, but its structural basis is unknown. Here, we report that the apicomplexan ATP synthase assembles into cyclic hexamers, essential to shape their distinct cristae. Cryo-EM was used to determine the structure of the hexamer, which is held together by interactions between parasite-specific subunits in the lumenal region. Overall, we identified 17 apicomplexan-specific subunits, and a minimal and nuclear-encoded subunit-a. The hexamer consists of three dimers with an extensive dimer interface that includes bound cardiolipins and the inhibitor IF. Cryo-ET and subtomogram averaging revealed that hexamers arrange into ~20-megadalton pentagonal pyramids in the curved apical membrane regions. Knockout of the linker protein ATPTG11 resulted in the loss of pentagonal pyramids with concomitant aberrantly shaped cristae. Together, this demonstrates that the unique macromolecular arrangement is critical for the maintenance of cristae morphology in Apicomplexa.

摘要

线粒体 ATP 合酶在诱导膜弯曲以建立嵴方面起着关键作用。在引起疟疾和弓形体病等疾病的顶复门生物中,观察到一种不寻常的嵴形态,但其结构基础尚不清楚。在这里,我们报告说,顶复门生物的 ATP 合酶组装成环状六聚体,这对于形成其独特的嵴至关重要。冷冻电镜用于确定六聚体的结构,该结构通过腔室内寄生虫特异性亚基之间的相互作用保持在一起。总的来说,我们鉴定了 17 种顶复门特异性亚基,以及一种最小的和核编码的亚基-a。六聚体由三个二聚体组成,具有广泛的二聚体界面,包括结合的心磷脂和抑制剂 IF。冷冻电镜和亚图平均显示,六聚体在弯曲的顶膜区域排列成约 20 兆道尔顿的五边形金字塔。连接蛋白 ATPTG11 的敲除导致五边形金字塔的丢失,并伴有嵴的异常形状。总之,这表明这种独特的大分子排列对于顶复门生物嵴形态的维持至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3512/7785744/dbd057e8ec86/41467_2020_20381_Fig1_HTML.jpg

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