Tanaka Naoki, Kajimoto Sachie, Mitani Daisuke, Kunugi Shigeru
Department of Polymer Science and Engineering, Kyoto Institute of Technology, Matsugasaki, Sakyo, 606-8585, Kyoto, Japan.
Biochim Biophys Acta. 2002 Apr 29;1596(2):318-25. doi: 10.1016/s0167-4838(02)00217-0.
We investigated the effects of guanidine hydrochloride (GuHCl) and high pressure on the conformational flexibility of the active site of sweet potato beta-amylase by monitoring the sulfhydryl reaction and the enzymatic activity. The reactivity of Cys345 at the active site, one of six inert half cystine residues of this enzyme, was enhanced by GuHCl at concentrations below 0.5 M. A GuHCl-induced change of the active site was also observed through an intensity change in the near-UV circular dichroism (CD) spectrum. On the other hand, the native conformation of sweet potato beta-amylase observed through fluorescence polarization, far-UV CD spectrum and intrinsic fluorescence was not influenced by GuHCl at concentrations below 0.5 M. Therefore, Cys345 reaction caused by GuHCl was due to an alteration of the local conformation of the active site. GuHCl-induced reaction of Cys345, located in the vicinity of subsites 3 and 4, is attributed to enhanced subsite flexibility, which is responsible for substrate slipping in a single-chain attack mechanism. Due to the flexible conformation, the local region of the subsite is more susceptible to GuHCl perturbation than the molecule overall. The enzymatic activity of sweet potato beta-amylase was reversibly inhibited by GuHCl at concentrations below 0.5 M, and kinetic analysis of the enzymatic mechanism showed that GuHCl decreases the kcat value. High pressure below 400 MPa also inactivated sweet potato beta-amylase with an increase in Cys345 reactivity. These findings indicated that excessively enhanced subsite flexibility reduced the enzymatic activity of sweet potato beta-amylase.
我们通过监测巯基反应和酶活性,研究了盐酸胍(GuHCl)和高压对甘薯β-淀粉酶活性位点构象灵活性的影响。在该酶六个惰性半胱氨酸残基之一的活性位点处,Cys345的反应性在GuHCl浓度低于0.5 M时增强。通过近紫外圆二色性(CD)光谱强度变化也观察到了GuHCl诱导的活性位点变化。另一方面,通过荧光偏振、远紫外CD光谱和内源荧光观察到的甘薯β-淀粉酶天然构象在GuHCl浓度低于0.5 M时不受影响。因此,GuHCl引起的Cys345反应是由于活性位点局部构象的改变。位于亚位点3和4附近的Cys345的GuHCl诱导反应归因于亚位点灵活性增强,这是单链攻击机制中底物滑动的原因。由于构象灵活,亚位点的局部区域比整个分子更容易受到GuHCl的扰动。甘薯β-淀粉酶的酶活性在GuHCl浓度低于0.5 M时被可逆抑制,酶促机制的动力学分析表明GuHCl降低了kcat值。400 MPa以下的高压也使甘薯β-淀粉酶失活,同时Cys345反应性增加。这些发现表明,亚位点灵活性过度增强会降低甘薯β-淀粉酶的酶活性。