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我患上瓜氨酸血症的历程。

My path to citrin deficiency.

作者信息

Walker John E

机构信息

Medical Research Council Mitochondrial Biology Unit, University of Cambridge, Cambridge, UK.

出版信息

J Inherit Metab Dis. 2025 Jan;48(1):e12818. doi: 10.1002/jimd.12818. Epub 2024 Nov 24.

DOI:10.1002/jimd.12818
PMID:39581577
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11670154/
Abstract

Citrin belongs to the SLC25 transport protein family found mostly in inner mitochondrial membranes. The family prototype, the ADP-ATP carrier, delivers ATP made inside mitochondria to the cellular cytoplasm and returns ADP to the mitochondrion for resynthesis of ATP. In pre-genomic 1981, I noticed that the protein sequence of the bovine ADP-ATP carrier consists of three related sequences, each containing two transmembrane α-helices traveling in opposite senses. Colleagues and I demonstrated that two other mitochondrial carriers had similar features. From emergent genomic sequences, it became apparent that they represented a large family of transport proteins with the same characteristic threefold repeats. The human genome encodes 53 members, but the functions of many were unknown. So, colleagues and I determined how to make these proteins in Escherichia coli and introduce them into liposomes to allow exploration of their transport functions. The 27 human family members to have been thus identified include citrin and the closely related protein aralar. Both exchange aspartate from the mitochondrial matrix for cytosolic glutamate plus a proton. Citrin is expressed predominantly in liver and non-excitable tissues, whereas aralar is the dominant form in the brain. Each has a membrane extrinsic N-terminal Ca-binding domain, a transport domain, and a C-terminal amphipathic α-helix. Human mutations in citrin impair the urea cycle, malate-aspartate shuttle, gluconeogenesis, amino acid breakdown, and energy metabolism leading to citrin deficiency. Currently, the complex etiology of this condition is poorly understood and new knowledge would help to improve diagnosis, therapies, and finding a cure. My aims are to seek a basic understanding of the etiology of citrin deficiency and to use that knowledge in improving diagnostic procedures and in developing new treatments and a cure.

摘要

柠苹转运蛋白属于SLC25转运蛋白家族,主要存在于线粒体内膜。该家族的原型,即ADP-ATP载体,将线粒体内部产生的ATP输送到细胞质中,并将ADP返回线粒体以重新合成ATP。在1981年基因组学出现之前,我注意到牛ADP-ATP载体的蛋白质序列由三个相关序列组成,每个序列包含两个方向相反的跨膜α螺旋。我和同事们证明,另外两种线粒体载体也有类似的特征。从新出现的基因组序列来看,很明显它们代表了一个具有相同特征三重重复的大型转运蛋白家族。人类基因组编码53个成员,但许多成员的功能尚不清楚。因此,我和同事们确定了如何在大肠杆菌中制造这些蛋白质,并将它们引入脂质体中,以便探索它们的转运功能。由此确定的27个人类家族成员包括柠苹转运蛋白和与之密切相关的蛋白质阿拉拉尔。两者都将线粒体基质中的天冬氨酸与胞质谷氨酸加一个质子进行交换。柠苹转运蛋白主要在肝脏和非兴奋性组织中表达,而阿拉拉尔是大脑中的主要形式。每种蛋白都有一个膜外N端钙结合结构域、一个转运结构域和一个C端两亲性α螺旋。柠苹转运蛋白的人类突变会损害尿素循环、苹果酸-天冬氨酸穿梭、糖异生、氨基酸分解代谢和能量代谢,导致柠苹转运蛋白缺乏。目前,这种疾病的复杂病因尚不清楚,新知识将有助于改善诊断、治疗和找到治愈方法。我的目标是寻求对柠苹转运蛋白缺乏病因的基本理解,并利用这些知识改进诊断程序,开发新的治疗方法和找到治愈方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/2ea1eca47e18/JIMD-48-0-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/4840b7ccbbf8/JIMD-48-0-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/3d7611bfa3e1/JIMD-48-0-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/413aa9fc4135/JIMD-48-0-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/59eaa92b60be/JIMD-48-0-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/2ea1eca47e18/JIMD-48-0-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/4840b7ccbbf8/JIMD-48-0-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/3d7611bfa3e1/JIMD-48-0-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/413aa9fc4135/JIMD-48-0-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/59eaa92b60be/JIMD-48-0-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b53/11670154/2ea1eca47e18/JIMD-48-0-g002.jpg

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本文引用的文献

1
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Mol Metab. 2024 Dec;90:102047. doi: 10.1016/j.molmet.2024.102047. Epub 2024 Oct 16.
2
The therapeutic landscape of citrin deficiency.瓜氨酸血症的治疗景观。
J Inherit Metab Dis. 2024 Nov;47(6):1157-1174. doi: 10.1002/jimd.12768. Epub 2024 Jul 17.
3
Human mitochondrial carriers of the SLC25 family function as monomers exchanging substrates with a ping-pong kinetic mechanism.
人类线粒体 SLC25 家族载体作为单体以乒乓动力学机制交换底物。
EMBO J. 2024 Aug;43(16):3450-3465. doi: 10.1038/s44318-024-00150-0. Epub 2024 Jun 27.
4
Clinical landscape of citrin deficiency: A global perspective on a multifaceted condition. citrin 缺乏症的临床概况:一种多方面疾病的全球视角。
J Inherit Metab Dis. 2024 Nov;47(6):1144-1156. doi: 10.1002/jimd.12722. Epub 2024 Mar 19.
5
Whole genome sequencing to screen 100 000 newborns for treatable genetic disorders.全基因组测序用于筛查10万名新生儿的可治疗遗传性疾病。
J Inherit Metab Dis. 2024 Jan;47(1):7-8. doi: 10.1002/jimd.12704. Epub 2023 Dec 26.
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Pathogenesis and Management of Citrin Deficiency.Citrin 缺乏症的发病机制与治疗管理。
Intern Med. 2024 Jul 15;63(14):1977-1986. doi: 10.2169/internalmedicine.2595-23. Epub 2023 Nov 13.
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Improved sensitivity and specificity for citrin deficiency using selected amino acids and acylcarnitines in the newborn screening.采用特定氨基酸和酰基肉碱的新生儿筛查可提高 citrin 缺乏症的灵敏度和特异性。
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Nutrients. 2023 May 12;15(10):2284. doi: 10.3390/nu15102284.
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Mol Genet Metab Rep. 2023 Mar 16;35:100967. doi: 10.1016/j.ymgmr.2023.100967. eCollection 2023 Jun.
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Nicotinamide riboside rescues dysregulated glycolysis and fatty acid β-oxidation in a human hepatic cell model of citrin deficiency.烟酰胺核糖苷挽救了 citrin 缺乏症的人类肝细胞模型中失调的糖酵解和脂肪酸 β-氧化。
Hum Mol Genet. 2023 May 18;32(11):1922-1931. doi: 10.1093/hmg/ddad018.