Might the kinetic behavior of hormone-sensitive lipase reflect the absence of the lid domain?

被引:32
作者
Ben Ali, Y
Chahinian, H
Petry, S
Muller, G
Carrière, F
Verger, R
Abousalham, A
机构
[1] CNRS, UPR 9025, F-13402 Marseille 20, France
[2] Aventis Germany, D-65926 Frankfurt, Germany
关键词
D O I
10.1021/bi049479o
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Hormone-sensitive lipase (HSL) is thought to contribute importantly to the mobilization of fatty acids from the triacylglycerols (TAGs) stored in adipocytes, providing the main source of energy in mammals. To investigate the HSL substrate specificity more closely, we systematically assessed the lipolytic activity of recombinant human HSL on solutions and emulsions of various vinyl esters and TAG substrates, using the pH-stat assay technique. Recombinant human HSL activity on solutions of partly soluble vinyl esters or TAG was found to range from 35 to 90% of the maximum activity measured with the same substrates in the emulsified state. The possible existence of a lipid-water interface due to the formation of small aggregates of vinyl esters or TAG in solution may account for the HSL activity observed below the solubility limit of the substrate. Recombinant human HSL also hydrolyzes insoluble medium- and long-chain acylglycerols such as trioctanoylglycerol, dioleoylglycerol, and olive oil, and can therefore be classified as a true lipase. Preincubation of the recombinant HSL with a serine esterase inhibitor such as diethyl p-nitrophenyl phosphate in 1: 100 molar excess leads to complete HSL inhibition within 15 min. This result indicates that the catalytic serine of HSL is highly reactive and that it is readily accessible. Similar behavior was also observed with lipases with no lid domain covering their active site, or with a deletion in the lid domain. The 3-D structure of HSL, which still remains to be determined, may therefore lack the lid domain known to exist in various other lipases.
引用
收藏
页码:9298 / 9306
页数:9
相关论文
共 60 条
[1]   Free fatty acids and pathogenesis of type 2 diabetes mellitus [J].
Bergman, RN ;
Ader, M .
TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2000, 11 (09) :351-356
[2]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[3]   A SERINE PROTEASE TRIAD FORMS THE CATALYTIC CENTER OF A TRIACYLGLYCEROL LIPASE [J].
BRADY, L ;
BRZOZOWSKI, AM ;
DEREWENDA, ZS ;
DODSON, E ;
DODSON, G ;
TOLLEY, S ;
TURKENBURG, JP ;
CHRISTIANSEN, L ;
HUGEJENSEN, B ;
NORSKOV, L ;
THIM, L ;
MENGE, U .
NATURE, 1990, 343 (6260) :767-770
[4]   SUBSTRATE SPECIFICITY OF PANCREATIC LIPASE [J].
BROCKERHOFF, H .
BIOCHIMICA ET BIOPHYSICA ACTA, 1968, 159 (02) :296-+
[6]   Structural origins of the interfacial activation in Thermomyces (Humicola) lanuginosa lipase [J].
Brzozowski, AM ;
Savage, H ;
Verma, CS ;
Turkenburg, JP ;
Lawson, DM ;
Svendsen, A ;
Patkar, S .
BIOCHEMISTRY, 2000, 39 (49) :15071-15082
[7]   Pancreatic lipase structure-function relationships by domain exchange [J].
Carriere, F ;
Thirstrup, K ;
Hjorth, S ;
Ferrato, F ;
Nielsen, PF ;
WithersMartinez, C ;
Cambillau, C ;
Boel, E ;
Thim, L ;
Verger, R .
BIOCHEMISTRY, 1997, 36 (01) :239-248
[8]   Distinction between esterases and lipases:: A kinetic study with vinyl esters and TAG [J].
Chahinian, H ;
Nini, L ;
Boitard, E ;
Dubès, JP ;
Comeau, LC ;
Sarda, L .
LIPIDS, 2002, 37 (07) :653-662
[9]   Kinetic properties of Penicillium cyclopium lipases studied with vinyl esters [J].
Chahinian, H ;
Nini, L ;
Boitard, E ;
Dubès, JP ;
Sarda, L ;
Comeau, LC .
LIPIDS, 2000, 35 (08) :919-925
[10]  
CHRISTOPHER JA, 1998, SPOCK STRUCTURAL PRO