3 NEW CRYSTAL-STRUCTURES OF POINT MUTATION VARIANTS OF MONOTIM - CONFORMATIONAL FLEXIBILITY OF LOOP-1, LOOP-4 AND LOOP-8

被引:40
作者
BORCHERT, TV
KISHAN, KVR
ZEELEN, JP
SCHLIEBS, W
THANKI, N
ABAGYAN, R
JAENICKE, R
WIERENGA, RK
机构
[1] EUROPEAN MOLEC BIOL LAB, D-69012 HEIDELBERG, GERMANY
[2] UNIV REGENSBURG, INST BIOPHYS & PHYS BIOCHEM, D-93040 REGENSBURG, GERMANY
关键词
ASSEMBLY; FLEXIBILITY; LOOPS; SUBUNIT; TRIOSEPHOSPHATE ISOMERASE (TIM);
D O I
10.1016/S0969-2126(01)00202-7
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
Background: Wild-type triosephosphate isomerase (TIM) is a very stable dimeric enzyme. This dimer can be converted into a stable monomeric protein (monoTIM) by replacing the 15-residue interface loop (loop-3) by a shorter, 8-residue, loop. The crystal structure of monoTIM shows that two active-site loops (loop-1 and loop-4), which are at the dimer interface in wild-type TIM, have acquired rather different structural properties. Nevertheless, monoTIM has residual catalytic activity. Results: Three new structures of variants of monoTIM are presented, a double-point mutant crystallized in the presence and absence of bound inhibitor, and a single-point mutant in the presence of a different inhibitor. These new structures show large structural variability for the active-site loops, loop-1, loop-4 and loop-8. In the structures with inhibitor bound, the catalytic lysine (Lys13 in loop-1) and the catalytic histidine (His95 in loop-4) adopt conformations similar to those observed in wild-type TIM, but very different from the monoTIM structure. Conclusions: The residual catalytic activity of monoTIM can now be rationalized. In the presence of substrate analogues the active-site loops, loop-1, loop-4 and loop-8, as well as the catalytic residues, adopt conformations similar to those seen in the wild-type protein. These loops lack conformational flexibility in wild-type TIM. The data suggest that the rigidity of these loops in wildtype TIM, resulting from subunit-subunit contacts at the dimer interface, is important for optimal catalysis.
引用
收藏
页码:669 / 679
页数:11
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