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本文引用的文献

1
Structural analysis of cofactor binding for a prolyl 4-hydroxylase from the pathogenic bacterium Bacillus anthracis.来自致病细菌炭疽芽孢杆菌的脯氨酰4-羟化酶辅因子结合的结构分析
Acta Crystallogr D Struct Biol. 2016 May;72(Pt 5):675-81. doi: 10.1107/S2059798316004198. Epub 2016 Apr 26.
2
Structure and Mechanism of a Viral Collagen Prolyl Hydroxylase.一种病毒胶原脯氨酰羟化酶的结构与机制
Biochemistry. 2015 Oct 6;54(39):6093-105. doi: 10.1021/acs.biochem.5b00789. Epub 2015 Sep 30.
3
OH, the Places You'll Go! Hydroxylation, Gene Expression, and Cancer.哦,你将去的地方!羟化作用、基因表达和癌症。
Mol Cell. 2015 Jun 4;58(5):729-41. doi: 10.1016/j.molcel.2015.05.026.
4
Biochemical, Kinetic, and Spectroscopic Characterization of Ruegeria pomeroyi DddW--A Mononuclear Iron-Dependent DMSP Lyase.普氏鲁杰氏菌DddW的生化、动力学及光谱学特性——一种单核铁依赖性二甲基巯基丙酸内盐裂解酶
PLoS One. 2015 May 19;10(5):e0127288. doi: 10.1371/journal.pone.0127288. eCollection 2015.
5
Structure of the ribosomal oxygenase OGFOD1 provides insights into the regio- and stereoselectivity of prolyl hydroxylases.核糖体加氧酶OGFOD1的结构为脯氨酰羟化酶的区域和立体选择性提供了见解。
Structure. 2015 Apr 7;23(4):639-52. doi: 10.1016/j.str.2015.01.014. Epub 2015 Feb 26.
6
Human oxygen sensing may have origins in prokaryotic elongation factor Tu prolyl-hydroxylation.人类的氧感知可能起源于原核生物延伸因子Tu的脯氨酰羟化作用。
Proc Natl Acad Sci U S A. 2014 Sep 16;111(37):13331-6. doi: 10.1073/pnas.1409916111. Epub 2014 Sep 2.
7
Deciphering key features in protein structures with the new ENDscript server.利用新的 ENDscript 服务器破译蛋白质结构中的关键特征。
Nucleic Acids Res. 2014 Jul;42(Web Server issue):W320-4. doi: 10.1093/nar/gku316. Epub 2014 Apr 21.
8
ZDOCK server: interactive docking prediction of protein-protein complexes and symmetric multimers.ZDOCK 服务器:蛋白质-蛋白质复合物和对称多聚体的交互式对接预测。
Bioinformatics. 2014 Jun 15;30(12):1771-3. doi: 10.1093/bioinformatics/btu097. Epub 2014 Feb 14.
9
The structural motifs for substrate binding and dimerization of the α subunit of collagen prolyl 4-hydroxylase.胶原脯氨酰 4-羟化酶 α 亚基的底物结合和二聚化结构基序。
Structure. 2013 Dec 3;21(12):2107-18. doi: 10.1016/j.str.2013.09.005. Epub 2013 Oct 24.
10
Polyproline-II helix in proteins: structure and function.蛋白质中的聚脯氨酸-II 螺旋:结构与功能。
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炭疽芽孢杆菌脯氨酰4-羟化酶以不对称模式修饰类胶原蛋白底物。

Bacillus anthracis Prolyl 4-Hydroxylase Modifies Collagen-like Substrates in Asymmetric Patterns.

作者信息

Schnicker Nicholas J, Dey Mishtu

机构信息

From the Department of Chemistry, University of Iowa, Iowa City, Iowa 52242-1727.

From the Department of Chemistry, University of Iowa, Iowa City, Iowa 52242-1727

出版信息

J Biol Chem. 2016 Jun 17;291(25):13360-74. doi: 10.1074/jbc.M116.725432. Epub 2016 Apr 21.

DOI:10.1074/jbc.M116.725432
PMID:27129244
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4933245/
Abstract

Proline hydroxylation is the most prevalent post-translational modification in collagen. The resulting product trans-4-hydroxyproline (Hyp) is of critical importance for the stability and thus function of collagen, with defects leading to several diseases. Prolyl 4-hydroxylases (P4Hs) are mononuclear non-heme iron α-ketoglutarate (αKG)-dependent dioxygenases that catalyze Hyp formation. Although animal and plant P4Hs target peptidyl proline, prokaryotes have been known to use free l-proline as a precursor to form Hyp. The P4H from Bacillus anthracis (BaP4H) has been postulated to act on peptidyl proline in collagen peptides, making it unusual within the bacterial clade, but its true physiological substrate remains enigmatic. Here we use mass spectrometry, fluorescence binding, x-ray crystallography, and docking experiments to confirm that BaP4H recognizes and acts on peptidyl substrates but not free l-proline, using elements characteristic of an Fe(II)/αKG-dependent dioxygenases. We further show that BaP4H can hydroxylate unique peptidyl proline sites in collagen-derived peptides with asymmetric hydroxylation patterns. The cofactor-bound crystal structures of BaP4H reveal active site conformational changes that define open and closed forms and mimic "ready" and "product-released" states of the enzyme in the catalytic cycle. These results help to clarify the role of BaP4H as well as provide broader insights into human collagen P4H and proteins with poly-l-proline type II helices.

摘要

脯氨酸羟基化是胶原蛋白中最普遍的翻译后修饰。其产物反式-4-羟基脯氨酸(Hyp)对于胶原蛋白的稳定性及功能至关重要,缺陷会导致多种疾病。脯氨酰4-羟化酶(P4Hs)是单核非血红素铁α-酮戊二酸(αKG)依赖性双加氧酶,催化Hyp的形成。尽管动物和植物的P4Hs作用于肽基脯氨酸,但已知原核生物使用游离的L-脯氨酸作为前体来形成Hyp。炭疽芽孢杆菌的P4H(BaP4H)被推测作用于胶原蛋白肽中的肽基脯氨酸,这使其在细菌类群中显得不同寻常,但其真正的生理底物仍不明确。在这里,我们使用质谱、荧光结合、X射线晶体学和对接实验来证实,BaP4H识别并作用于肽基底物而非游离的L-脯氨酸,采用了Fe(II)/αKG依赖性双加氧酶的特征元件。我们进一步表明,BaP4H可以以不对称的羟基化模式羟基化胶原蛋白衍生肽中独特的肽基脯氨酸位点。BaP4H的辅因子结合晶体结构揭示了活性位点的构象变化,这些变化定义了开放和封闭形式,并模拟了催化循环中酶的“就绪”和“产物释放”状态。这些结果有助于阐明BaP4H的作用,并为人类胶原蛋白P4H以及具有聚-L-脯氨酸II型螺旋的蛋白质提供更广泛的见解。