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Structure and function of microplasminogen: II. Determinants of activation by urokinase and by the bacterial activator streptokinase.微纤溶酶原的结构与功能:II. 尿激酶和细菌激活剂链激酶激活的决定因素
Protein Sci. 1995 Sep;4(9):1768-79. doi: 10.1002/pro.5560040912.

本文引用的文献

1
Structure and function of microplasminogen: II. Determinants of activation by urokinase and by the bacterial activator streptokinase.微纤溶酶原的结构与功能:II. 尿激酶和细菌激活剂链激酶激活的决定因素
Protein Sci. 1995 Sep;4(9):1768-79. doi: 10.1002/pro.5560040912.
2
Plasminogen: purification from human plasma by affinity chromatography.纤溶酶原:通过亲和色谱法从人血浆中纯化。
Science. 1970 Dec 4;170(3962):1095-6. doi: 10.1126/science.170.3962.1095.
3
Chymotrypsinogen: 2.5-angstrom crystal structure, comparison with alpha-chymotrypsin, and implications for zymogen activation.胰凝乳蛋白酶原:2.5埃晶体结构、与α-胰凝乳蛋白酶的比较及对酶原激活的意义
Biochemistry. 1970 Apr 28;9(9):1997-2009. doi: 10.1021/bi00811a022.
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Structure of crystalline -chymotrypsin. V. The atomic structure of tosyl- -chymotrypsin at 2 A resolution.结晶胰凝乳蛋白酶的结构。V. 对甲苯磺酰基-胰凝乳蛋白酶在2埃分辨率下的原子结构
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Isolation and characterization of microplasminogen. A low molecular weight form of plasminogen.微纤溶酶原的分离与鉴定。一种低分子量形式的纤溶酶原。
J Biol Chem. 1988 Nov 15;263(32):17071-5.
6
Expression of human plasminogen cDNA in a baculovirus vector-infected insect cell system.人纤溶酶原cDNA在杆状病毒载体感染昆虫细胞系统中的表达。
Arch Biochem Biophys. 1989 Jun;271(2):390-9. doi: 10.1016/0003-9861(89)90288-9.
7
Plasminogen activator activities of equimolar complexes of streptokinase with variant recombinant plasminogens.链激酶与变体重组纤溶酶原等摩尔复合物的纤溶酶原激活剂活性
Biochemistry. 1990 Apr 10;29(14):3585-90. doi: 10.1021/bi00466a023.
8
Synthesis of the membrane fusion and hemagglutinin proteins of measles virus, using a novel baculovirus vector containing the beta-galactosidase gene.利用一种含有β-半乳糖苷酶基因的新型杆状病毒载体合成麻疹病毒的膜融合蛋白和血凝素蛋白。
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Enhancing protein engineering capabilities by combining mutagenesis and semisynthesis.通过结合诱变和半合成提高蛋白质工程能力。
J Biol Chem. 1991 Nov 15;266(32):21355-7.
10
Dissection of an enzyme by protein engineering. The N and C-terminal fragments of barnase form a native-like complex with restored enzymic activity.
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微纤溶酶原的结构与功能:I. 甲硫氨酸重排、化学蛋白酶解及酶原激活

Structure and function of microplasminogen: I. Methionine shuffling, chemical proteolysis, and proenzyme activation.

作者信息

Wang J, Brdar B, Reich E

机构信息

Department of Pharmacological Sciences, SUNY at Stony Brook 11794-8651, USA.

出版信息

Protein Sci. 1995 Sep;4(9):1758-67. doi: 10.1002/pro.5560040911.

DOI:10.1002/pro.5560040911
PMID:8528074
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2143206/
Abstract

We have cloned and expressed microplasminogen (mPlg), consisting of the N-terminal undecapeptide of human glu-Plg spliced to its proenzyme domain. This truncated (approximately 28 kDa) proenzyme retained the distinctive catalytic activities of the larger parent. Replacement of M residues followed by M shuffling permitted subsequent scission by site-directed chemical proteolysis (in CNBr/formic acid) without impairing any of the protein's characteristic properties. Activation of chymotrypsinogen-related zymogens occurs by limited proteolysis; the newly liberated, highly conserved N-terminus (VVGG) forms a salt bridge with an aspartyl residue immediately upstream of the active site serine. The role of both of these elements in mPlg activation was probed using protein engineering and site-directed proteolysis to alter the length and amino acid composition of the N-terminus, and to replace the aspartate. All modifications affected both Km and Kcat. The results identify some structural parameters of the N-terminus required for proenzyme activation.

摘要

我们已经克隆并表达了微纤溶酶原(mPlg),它由人谷氨酰胺纤溶酶原(glu-Plg)的N端十一肽与其酶原结构域拼接而成。这种截短的(约28 kDa)酶原保留了较大亲本的独特催化活性。替换M残基并进行M改组后,可通过定点化学蛋白酶解(在溴化氰/甲酸中)进行后续切割,而不会损害该蛋白质的任何特性。糜蛋白酶原相关酶原的激活通过有限的蛋白酶解发生;新释放的、高度保守的N端(VVGG)与活性位点丝氨酸上游紧邻的一个天冬氨酰残基形成盐桥。利用蛋白质工程和定点蛋白酶解来改变N端的长度和氨基酸组成,并替换天冬氨酸,探讨了这两个元件在mPlg激活中的作用。所有修饰均影响Km和Kcat。结果确定了酶原激活所需的N端的一些结构参数。