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溶酶体磷脂酶A1催化底物的物理化学要求。

Physical-chemical requirements for the catalysis of substrates by lysosomal phospholipase A1.

作者信息

Robinson M, Waite M

出版信息

J Biol Chem. 1983 Dec 10;258(23):14371-8.

PMID:6643488
Abstract

The catalytic properties of a 1440-fold purified preparation of lysosomal phospholipase A1 were examined. The preparation was at least 95% specific for the sn-1 position of neat phosphatidylethanolamine (PE). The apparent specificity of the enzyme toward substrates was affected by three factors: the physical arrangement of molecules in the substrate aggregate, the charge on the lipid-water interface and the chemical structure of the substrate as it relates to the active site of the enzyme. Of various phospholipids tested in the absence of detergent PE was the preferred substrate, phosphatidylcholine (PC) was hydrolyzed at one-fifth the rate of PE, while phosphatidylinositol (PI), phosphatidylserine (PS), and phosphatidylglycerol (PG) were degraded very slowly. Triton WR1339 stimulated the hydrolysis of PC, PI, PS, and PG but inhibited the hydrolysis of PE, with PG the preferred substrate at a 6:1 Triton/phospholipid ratio. The preference for PC over PE in detergent mixtures was attributed to the active site fit of the chemical structures of the substrate molecules. The enzyme preferentially hydrolyzed neat PE containing palmitic and oleic acids at position 1. A negative surface charge was required for the hydrolysis of PC and PE. Ca2+ stimulated the hydrolysis of PI, PS, and PG but inhibited the hydrolysis of PE. The inhibition of PE hydrolysis by Ca2+ was the result of an alteration in the surface charge of the PE vesicle. Chromatography of phospholipase A1 on concanavalin A-Sepharose resulted in a loss of activity toward acidic phospholipids which could be restored with Ca2+. Plasmalogen PE was found to inhibit the hydrolysis of diacyl-PE at the level of interfacial binding but not by competition for the active site of the enzyme. These results suggest that the hexagonal structure of PE represents a preferred physical form for catalysis by phospholipase A1, while the bilayer form is less readily attacked. Dispersion of the substrate in the inert detergent enhanced the activity of those substrates normally forming bilayer structures. We demonstrate the importance of the "quality of interface" in regulating the activity of the enzyme.

摘要

对溶酶体磷脂酶A1 1440倍纯化制剂的催化特性进行了研究。该制剂对纯磷脂酰乙醇胺(PE)的sn-1位的特异性至少为95%。酶对底物的表观特异性受三个因素影响:底物聚集体中分子的物理排列、脂质-水界面的电荷以及与酶活性位点相关的底物化学结构。在无去污剂的情况下测试的各种磷脂中,PE是首选底物,磷脂酰胆碱(PC)的水解速率是PE的五分之一,而磷脂酰肌醇(PI)、磷脂酰丝氨酸(PS)和磷脂酰甘油(PG)的降解非常缓慢。Triton WR1339刺激PC、PI、PS和PG的水解,但抑制PE的水解,在Triton/磷脂比例为6:1时,PG是首选底物。在去污剂混合物中PC比PE更受青睐归因于底物分子化学结构与活性位点的契合。该酶优先水解1位含有棕榈酸和油酸的纯PE。PC和PE的水解需要负表面电荷。Ca2+刺激PI、PS和PG的水解,但抑制PE的水解。Ca2+对PE水解的抑制是PE囊泡表面电荷改变的结果。磷脂酶A1在伴刀豆球蛋白A-琼脂糖上进行色谱分离导致对酸性磷脂的活性丧失,加入Ca2+后活性可以恢复。发现缩醛磷脂PE在界面结合水平抑制二酰基-PE的水解,但不是通过竞争酶的活性位点。这些结果表明,PE的六边形结构是磷脂酶A1催化的首选物理形式,而双层形式较难被攻击。底物在惰性去污剂中的分散增强了那些通常形成双层结构的底物的活性。我们证明了“界面质量”在调节酶活性中的重要性。

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