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本文引用的文献

1
Stone former urine proteome demonstrates a cationic shift in protein distribution compared to normal.结石形成者尿液蛋白质组与正常相比表现出阳离子分布的偏移。
Urolithiasis. 2017 Aug;45(4):337-346. doi: 10.1007/s00240-017-0969-y. Epub 2017 Mar 17.
2
The role of macromolecules in the formation of kidney stones.大分子在肾结石形成中的作用。
Urolithiasis. 2017 Feb;45(1):57-74. doi: 10.1007/s00240-016-0948-8. Epub 2016 Dec 2.
3
Label-free proteomic methodology for the analysis of human kidney stone matrix composition.用于分析人肾结石基质成分的无标记蛋白质组学方法。
Proteome Sci. 2016 Feb 27;14:4. doi: 10.1186/s12953-016-0093-x. eCollection 2016.
4
Proteomic Analysis after Sequential Extraction of Matrix Proteins in Urinary Stones Composed of Calcium Oxalate Monohydrate and Calcium Oxalate Dihydrate.对由一水合草酸钙和二水合草酸钙组成的尿结石进行基质蛋白顺序提取后的蛋白质组学分析。
Anal Sci. 2015;31(9):935-42. doi: 10.2116/analsci.31.935.
5
Inflammatory and fibrotic proteins proteomically identified as key protein constituents in urine and stone matrix of patients with kidney calculi.在尿液和肾结石患者结石基质中,经蛋白质组学方法鉴定到的炎症和纤维蛋白在蛋白质组层面被鉴定为关键蛋白成分。
Clin Chim Acta. 2014 Feb 15;429:81-9. doi: 10.1016/j.cca.2013.11.036. Epub 2013 Dec 9.
6
Nephrolithiasis: molecular mechanism of renal stone formation and the critical role played by modulators.肾结石:肾结石形成的分子机制和调节剂的关键作用。
Biomed Res Int. 2013;2013:292953. doi: 10.1155/2013/292953. Epub 2013 Sep 14.
7
Diversity in protein profiles of individual calcium oxalate kidney stones.个体草酸钙肾结石中蛋白质谱的多样性。
PLoS One. 2013 Jul 9;8(7):e68624. doi: 10.1371/journal.pone.0068624. Print 2013.
8
Comparison of matrix proteins in different types of urinary stone by proteomic analysis using liquid chromatography-tandem mass spectrometry.采用液相色谱-串联质谱法通过蛋白质组学分析比较不同类型尿石中的基质蛋白。
Int J Urol. 2012 Aug;19(8):765-72. doi: 10.1111/j.1442-2042.2012.03005.x. Epub 2012 Apr 11.
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Visualize: a free and open source multifunction tool for proteomics data analysis.可视化:一个免费的开源多功能工具,用于蛋白质组学数据分析。
Proteomics. 2011 Mar;11(6):1058-63. doi: 10.1002/pmic.201000556. Epub 2011 Feb 7.
10
Calcium oxalate monohydrate aggregation induced by aggregation of desialylated Tamm-Horsfall protein.去唾液酸Tamm-Horsfall蛋白聚集诱导的一水合草酸钙聚集
Urol Res. 2011 Aug;39(4):269-82. doi: 10.1007/s00240-010-0353-7. Epub 2011 Jan 13.

选择性蛋白质在草酸钙结石基质中的富集:发病机制的窗口?

Selective protein enrichment in calcium oxalate stone matrix: a window to pathogenesis?

机构信息

Consultant Care Division/Nephrology Section, Department of Veterans Affairs Medical Center, Clement J Zablocki VA Medical Center, 5000 W National Avenue (111K), Milwaukee, WI, 53295, USA.

Department of Medicine/Division of Nephrology, Medical College of Wisconsin, 9200 W Wisconsin Avenue, Milwaukee, WI, 53226, USA.

出版信息

Urolithiasis. 2019 Dec;47(6):521-532. doi: 10.1007/s00240-019-01131-3. Epub 2019 Apr 16.

DOI:10.1007/s00240-019-01131-3
PMID:30993355
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8496971/
Abstract

Urine proteins are thought to control calcium oxalate stone formation, but over 1000 proteins have been reported in stone matrix obscuring their relative importance. Proteins critical to stone formation should be present at increased relative abundance in stone matrix compared to urine, so quantitative protein distribution data were obtained for stone matrix compared to prior urine proteome data. Matrix proteins were isolated from eight stones (> 90% calcium oxalate content) by crystal dissolution and further purified by ultradiafiltration (> 10 kDa membrane). Proteomic analyses were performed using label-free spectral counting tandem mass spectrometry, followed by stringent filtering. The average matrix proteome was compared to the average urine proteome observed in random urine samples from 25 calcium oxalate stone formers reported previously. Five proteins were prominently enriched in matrix, accounting for a mass fraction of > 30% of matrix protein, but only 3% of urine protein. Many highly abundant urinary proteins, like albumin and uromodulin, were present in matrix at reduced relative abundance compared to urine, likely indicating non-selective inclusion in matrix. Furthermore, grouping proteins by isoelectric point demonstrated that the stone matrix proteome was highly enriched in both strongly anionic (i.e., osteopontin) and strongly cationic (i.e., histone) proteins, most of which are normally found in intracellular or nuclear compartments. The fact that highly anionic and highly cationic proteins aggregate at low concentrations and these aggregates can induce crystal aggregation suggests that protein aggregation may facilitate calcium oxalate stone formation, while cell injury processes are implicated by the presence of many intracellular proteins.

摘要

尿液蛋白被认为可以控制草酸钙结石的形成,但在结石基质中已经报道了超过 1000 种蛋白,掩盖了它们的相对重要性。对于结石形成至关重要的蛋白应该在结石基质中的相对丰度增加,因此与先前的尿液蛋白质组数据相比,我们获得了结石基质与尿液相比的定量蛋白质分布数据。通过晶体溶解从 8 个结石(>90%草酸钙含量)中分离基质蛋白,并通过超滤(>10 kDa 膜)进一步纯化。使用无标记谱计数串联质谱法进行蛋白质组学分析,然后进行严格过滤。平均基质蛋白质组与先前报道的 25 名草酸钙结石形成者的随机尿液样本中的平均尿液蛋白质组进行比较。有 5 种蛋白在基质中明显富集,占基质蛋白质量分数的>30%,而仅占尿液蛋白的 3%。许多高丰度的尿液蛋白,如白蛋白和尿调蛋白,与尿液相比在基质中的相对丰度降低,可能表明它们是非选择性地包含在基质中的。此外,按等电点对蛋白质进行分组表明,结石基质蛋白质组高度富含强阴离子(即骨桥蛋白)和强阳离子(即组蛋白)蛋白,其中大多数蛋白通常存在于细胞内或核内区室中。强阴离子和强阳离子蛋白在低浓度下聚集,这些聚集体可以诱导晶体聚集的事实表明,蛋白聚集可能促进草酸钙结石的形成,而许多细胞内蛋白的存在表明细胞损伤过程的参与。