STRUCTURAL FEATURES OF NEUTRAL PROTEASE FROM BACILLUS-SUBTILIS DEDUCED FROM MODEL-BUILDING AND LIMITED PROTEOLYSIS EXPERIMENTS

被引:38
作者
SIGNOR, G
VITA, C
FONTANA, A
FRIGERIO, F
BOLOGNESI, M
TOMA, S
GIANNA, R
DEGREGORIIS, E
GRANDI, G
机构
[1] UNIV PADUA,CNR,BIOPOLYMER RES CTR,DEPT ORGAN CHEM,VIA MARZOLO 1,I-35131 PADUA,ITALY
[2] UNIV PAVIA,DEPT GENET,CRYSTALLOG SECT,I-27100 PAVIA,ITALY
[3] ENIRIC,MOLEC BIOL & BIOSCI LABS,MILAN,ITALY
来源
EUROPEAN JOURNAL OF BIOCHEMISTRY | 1990年 / 189卷 / 02期
关键词
D O I
10.1111/j.1432-1033.1990.tb15480.x
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
The overall folding of neutral protease from Bacillus subtilis has been predicted by computer‐aided modelling, taking as a basis the known three‐dimensional structure of thermolysin. As expected from the 50% similarity of sequence between the two proteins, the structure of B. subtilis protease is similar to that of thermolysin, including the two‐domain topology and location of elements of regular secondary structure (helices and strands), whereas specific differences were predicted in loop region. A protruding and loose loop predicted in B. subtilis has been detected also experimentally by a limited proteolysis approach. Incubation of B. subtilis protease at pH 9.0 for 24 h at room temperature with trypsin at 20:1 ratio (by mass) leads to a specific and almost quantitative fission of the Arg214‐Asn215 peptide bond located in a highly exposed, and thus probably flexible, loop of the protease. On the other hand, thermolysin was completely resistant to tryptic hydrolysis when reacted under identical conditions. The ‘nicked’B. subtilis protease can be isolated by gel filtration chromatography at neutral pH, whereas the two constituting fragments 1–214 and 215–300 are separated under protein‐denaturing conditions. Overall, these results indicate that the limited proteolysis approach can pinpoint a peculiar difference in surface structure between the two similar protein molecules of B. subtilis neutral protease and thermolysin and emphasize the potential use of proteolytic enzymes as structural probes of globular proteins. Copyright © 1990, Wiley Blackwell. All rights reserved
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页码:221 / 227
页数:7
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