Ford H, Dai F, Mu L, Siddiqui M A, Nicklaus M C, Anderson L, Marquez V E, Barchi J J
Laboratory of Medicinal Chemistry, Division of Basic Sciences, National Cancer Institute, Bethesda, Maryland 20892-4255, USA.
Biochemistry. 2000 Mar 14;39(10):2581-92. doi: 10.1021/bi992112c.
Several recent X-ray crystal structures of adenosine deaminase (ADA) in complex with various adenosine surrogates have illustrated the preferred mode of substrate binding for this enzyme. To define more specific structural details of substrate preferences for binding and catalysis, we have studied the ADA binding efficiencies and deamination kinetics of several synthetic adenosine analogues in which the furanosyl ring is biased toward a particular conformation. NMR solution studies and pseudorotational analyses were used to ascertain the preferred furanose ring puckers (P, nu(MAX)) and rotamer distributions (chi and gamma) of the nucleoside analogues. It was shown that derivatives which are biased toward a "Northern" (3'-endo, N) sugar ring pucker were deaminated up to 65-fold faster and bound more tightly to the enzyme than those that preferred a "Southern" (2'-endo, S) conformation. This behavior, however, could be modulated by other structural factors. Similarly, purine riboside inhibitors of ADA that prefer the N hemisphere were more potent inhibitors than S analogues. These binding propensities were corroborated by detailed molecular modeling studies. Docking of both N- and S-type analogues into the ADA crystal structure coordinates showed that N-type substrates formed a stable complex with ADA, whereas for S-type substrates, it was necessary for the sugar pucker to adjust to a 3'-endo (N-type) conformation to remain in the ADA substrate binding site. These data outline the intricate structural details for optimum binding in the catalytic cleft of ADA.
最近有几篇关于腺苷脱氨酶(ADA)与各种腺苷替代物复合物的X射线晶体结构的研究,阐明了该酶底物结合的偏好模式。为了更明确底物结合和催化偏好的具体结构细节,我们研究了几种合成腺苷类似物的ADA结合效率和脱氨动力学,这些类似物的呋喃糖环倾向于特定构象。利用核磁共振溶液研究和假旋转分析来确定核苷类似物的首选呋喃糖环褶皱(P,ν(MAX))和旋转异构体分布(χ和γ)。结果表明,倾向于“Northern”(3'-内型,N)糖环褶皱的衍生物脱氨速度比倾向于“Southern”(2'-内型,S)构象的衍生物快65倍,且与酶的结合更紧密。然而,这种行为可能会受到其他结构因素的调节。同样,偏好N半球的ADA嘌呤核糖苷抑制剂比S类似物更有效。详细的分子模拟研究证实了这些结合倾向。将N型和S型类似物对接至ADA晶体结构坐标显示,N型底物与ADA形成稳定复合物,而对于S型底物,糖环褶皱有必要调整为3'-内型(N型)构象,以保留在ADA底物结合位点。这些数据概述了ADA催化裂隙中最佳结合的复杂结构细节。