首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >NMR studies of internal dynamics of serine proteinase protein inhibitors: Binding region mobilities of intact and reactive-site hydrolyzed Cucurbita maxima trypsin inhibitor (CMTI)-III of the squash family and comparison with those of counterparts of CMTI-V of the potato I family.
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NMR studies of internal dynamics of serine proteinase protein inhibitors: Binding region mobilities of intact and reactive-site hydrolyzed Cucurbita maxima trypsin inhibitor (CMTI)-III of the squash family and comparison with those of counterparts of CMTI-V of the potato I family.

机译:丝氨酸蛋白酶蛋白抑制剂内部动力学的NMR研究:壁球家族完整和反应位点水解南瓜最大胰蛋白酶抑制剂(CMTI)-III的结合区迁移率并与马铃薯I家族的CMTI-V对应物进行比较。

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摘要

Serine proteinase protein inhibitors follow the standard mechanism of inhibition (Laskowski M Jr, Kato I, 1980, Annu Rev Biochem 49:593-626), whereby an enzyme-catalyzed equilibrium between intact (I) and reactive-site hydrolyzed inhibitor (I*) is reached. The hydrolysis constant, Khyd, is defined as [I*]/[I]. Here, we explore the role of internal dynamics in the resynthesis of the scissile bond by comparing the internal mobility data of intact and cleaved inhibitors belonging to two different families. The inhibitors studied are recombinant Cucurbita maxima trypsin inhibitor III (rCMTI-III; Mr 3 kDa) of the squash family and rCMTI-V (Mr approximately 7 kDa) of the potato I family. These two inhibitors have different binding loop-scaffold interactions and different Khyd values--2.4 (CMTI-III) and 9 (CMTI-V)--at 25 degrees C. The reactive-site peptide bond (P1-P1') is that between Arg5 and Ile6 in CMTI-III, and that between Lys44 and Asp45 in CMTI-V. The order parameters (S2) of backbone NHs of uniformly 15N-labeled rCMTI-III and rCMTI-III* were determined from measurements of 15N spin-lattice and spin-spin relaxation rates, and [1H]-15N steady-state heteronuclear Overhauser effects, using the model-free formalism, and compared with the data reported previously for rCMTI-V and rCMTI-V*. The backbones of rCMTI-III [(S2) = 0.71] and rCMTI-III* [(S2) = 0.63] are more flexible than those of rCMTI-V [(S2) = 0.83] and rCMTI-V* [(S2) = 0.85]. The binding loop residues, P4-P1, in the two proteins show the following average order parameters: 0.57 (rCMTI-III) and 0.44 (rCMTI-III*); 0.70 (rCMTI-V) and 0.40 (rCMTI-V*). The P1'-P4' residues, on the other hand, are associated with (S2) values of 0.56 (rCMTI-III) and 0.47 (rCMTI-III*); and 0.73 (rCMTI-V) and 0.83 (rCMTI-V*). The newly formed C-terminal (Pn residues) gains a smaller magnitude of flexibility in rCMTI-III* due to the Cys3-Cys20 crosslink. In contrast, the newly formed N-terminal (Pn' residues) becomes more flexible only in rCMTI-III*, most likely due to lack of an interaction between the P1' residue and the scaffold in rCMTI-III. Thus, diminished flexibility gain of the Pn residues and, surprisingly, increased flexibility of the Pn' residues seem to facilitate the resynthesis of the P1-P1' bond, leading to a lower Khyd value.
机译:丝氨酸蛋白酶蛋白抑制剂遵循标准的抑制机理(Laskowski M Jr,Kato I,1980,Annu Rev Biochem 49:593-626),从而在完整酶(I)和活性位点水解抑制剂(I * ) 到达了。水解常数Khyd定义为[I *] / [I]。在这里,我们通过比较属于两个不同家族的完整抑制剂和裂解抑制剂的内部迁移率数据,探索了内部动力学在可断裂键的再合成中的作用。研究的抑制剂是南瓜家族的重组南瓜南瓜胰蛋白酶抑制剂III(rCMTI-III; Mr 3 kDa)和马铃薯I家族的rCMTI-V(Mr约为7 kDa)。这两种抑制剂在25摄氏度时具有不同的结合环-支架相互作用和不同的Khyd值-2.4(CMTI-III)和9(CMTI-V)。反应位点肽键(P1-P1')是CMTI-III中的Arg5和Ile6之间,以及CMTI-V中的Lys44和Asp45之间。通过15N自旋晶格和自旋自旋弛豫率的测量以及[1H] -15N稳态异核Overhauser效应确定了15N标记的rCMTI-III和rCMTI-III *的骨架NH的有序参数(S2) ,使用无模型形式主义,并与先前针对rCMTI-V和rCMTI-V *报告的数据进行比较。 rCMTI-III [(S2)= 0.71]和rCMTI-III * [(S2)= 0.63]的主干比rCMTI-V [[S2] = 0.83]和rCMTI-V * [(S2)的主干更灵活。 = 0.85]。两种蛋白质中的结合环残基P4-P1显示以下平均顺序参数:0.57(rCMTI-III)和0.44(rCMTI-III *); 0.70(rCMTI-V)和0.40(rCMTI-V *)。另一方面,P1'-P4'残基的(S2)值分别为0.56(rCMTI-III)和0.47(rCMTI-III *);和0.73(rCMTI-V)和0.83(rCMTI-V *)。由于Cys3-Cys20交联,新形成的C末端(Pn残基)在rCMTI-III *中获得了较小的柔韧性。相反,新形成的N末端(Pn'残基)仅在rCMTI-III *中才更具柔性,最可能的原因是rCMTI-III中P1'残基与支架之间缺乏相互作用。因此,Pn残基的柔韧性增加减少,并且令人惊讶地,Pn′残基的柔韧性增加似乎促进了P1-P1′键的再合成,导致较低的Khyd值。

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