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可视化活细胞中线粒体血红素通过甘油醛-3-磷酸脱氢酶流向靶点及其受一氧化氮的调节。

Visualizing Mitochondrial Heme Flow through GAPDH to Targets in Living Cells and its Regulation by NO.

作者信息

Biswas Pranjal, Palazzo Joseph, Schlanger Simon, Jayaram Dhanya Thamaraparambil, Islam Sidra, Page Richard C, Stuehr Dennis J

出版信息

bioRxiv. 2024 Jan 11:2024.01.10.575067. doi: 10.1101/2024.01.10.575067.

Abstract

Iron protoporphyrin IX (heme) is an essential cofactor that is chaperoned in mammalian cells by GAPDH in a process regulated by NO. To gain further understanding we generated a tetra-Cys human GAPDH reporter construct (TC-hGAPDH) which after being expressed and labeled with fluorescent FlAsH reagent could indicate heme binding by fluorescence quenching. When purified or expressed in HEK293T mammalian cells, FlAsH-labeled TC-hGAPDH displayed physical, catalytic, and heme binding properties like native GAPDH and its heme binding (2 mol per tetramer) quenched its fluorescence by 45-65%. In live HEK293T cells we could visualize TC-hGAPDH binding mitochondrially-generated heme and releasing it to the hemeprotein target IDO1 by monitoring cell fluorescence in real time. In cells with active mitochondrial heme synthesis, a low-level NO exposure increased heme allocation into IDO1 while keeping steady the level of heme-bound TC-hGAPDH. When mitochondrial heme synthesis was blocked at the time of NO exposure, low NO caused cells to reallocate existing heme from TC-hGAPDH to IDO1 by a mechanism requiring IDO1 be present and able to bind heme. Higher NO exposure had an opposite effect and caused cells to reallocate existing heme from IDO1 to TC-hGAPDH. Thus, with TC-hGAPDH we could follow mitochondrial heme as it travelled onto and through GAPDH to a downstream target (IDO1) in living cells, and to learn that NO acted at or downstream from the GAPDH heme complex to promote a heme reallocation in either direction depending on the level of NO exposure.

摘要

铁原卟啉IX(血红素)是一种必需的辅因子,在哺乳动物细胞中由甘油醛-3-磷酸脱氢酶(GAPDH)陪伴,该过程受一氧化氮(NO)调节。为了进一步了解,我们构建了一种四半胱氨酸人GAPDH报告基因构建体(TC-hGAPDH),其在表达并用荧光FlAsH试剂标记后,可通过荧光猝灭指示血红素结合。当在HEK293T哺乳动物细胞中纯化或表达时,FlAsH标记的TC-hGAPDH表现出与天然GAPDH相似的物理、催化和血红素结合特性,其血红素结合(每四聚体2摩尔)使荧光猝灭45%-65%。在活的HEK293T细胞中,我们可以通过实时监测细胞荧光来观察TC-hGAPDH结合线粒体产生的血红素并将其释放到血红素蛋白靶标吲哚胺2,3-双加氧酶1(IDO1)。在具有活跃线粒体血红素合成的细胞中,低水平的NO暴露增加了血红素向IDO1的分配,同时使血红素结合的TC-hGAPDH水平保持稳定。当在NO暴露时线粒体血红素合成被阻断,低浓度的NO通过一种需要IDO1存在并能够结合血红素的机制使细胞将现有的血红素从TC-hGAPDH重新分配到IDO1。更高浓度的NO暴露则产生相反的效果,使细胞将现有的血红素从IDO1重新分配到TC-hGAPDH。因此,利用TC-hGAPDH,我们可以追踪线粒体血红素在活细胞中从GAPDH转运到下游靶标(IDO1)的过程,并了解到NO在GAPDH血红素复合物处或其下游起作用,根据NO暴露水平促进血红素向任一方向的重新分配。

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