Prasad Swati, Mitra Samaresh
Department of Chemical Sciences, Tata Institute of Fundamental Research, Homi Bhabha Road, Colaba, Mumbai-400005, India.
Biochemistry. 2002 Dec 10;41(49):14499-508. doi: 10.1021/bi026379e.
The role of protein structural flexibility and substrate dynamics in catalysis by cytochrome P450 enzymes is an area of current interest. We have addressed these in cytochrome P450(cam) (P450(cam)) and its Y96A mutant with camphor and its related compounds using fluorescence spectroscopy. Previously [Prasad et al. (2000) FEBS Lett. 477, 157-160], we provided experimental support to dynamic fluctuations in P450(cam), and substrate access into the active site region via the channel next to the flexible F-G helix-loop-helix segment. In the investigation described here, we show that the dynamic fluctuations in the enzyme are substrate dependent as reflected by tryptophan fluorescence quenching experiments. The orientation of tryptophan relative to heme (kappa(2)) for W42 obtained from time-resolved tryptophan fluorescence measurements show variation with type of substrate bound to P450(cam) suggesting regions distant from heme-binding site are affected by physicochemical and steric characteristics/protein-substrate interactions of P450(cam) active site. We monitored substrate dynamics in the active site region of P450(cam) by time-resolved substrate anisotropy measurements. The anisotropy decay of substrates bound to P450(cam) indicate that mobility of substrates is modulated by physicochemical and steric characteristics/protein-substrate interactions of local active site structure, and provides an understanding of factors controlling observed hydroxylated products for substrate bound P450(cam) complexes. The present study shows that P450(cam) local and peripheral structural flexibility and heterogeneity along with substrate mobility play an important role in regulating substrate binding orientation during catalysis and accommodating diverse range of substrates within P450(cam) heme pocket.
蛋白质结构灵活性和底物动力学在细胞色素P450酶催化中的作用是当前备受关注的领域。我们利用荧光光谱法,研究了细胞色素P450(cam)(P450(cam))及其Y96A突变体与樟脑及其相关化合物的这些作用。此前[普拉萨德等人(2000年),《欧洲生物化学学会联合会快报》477卷,第157 - 160页],我们为P450(cam)中的动态波动以及底物通过柔性F - G螺旋 - 环 - 螺旋片段旁的通道进入活性位点区域提供了实验支持。在本文所述的研究中,我们表明,色氨酸荧光猝灭实验反映出酶中的动态波动是底物依赖性的。从时间分辨色氨酸荧光测量中获得的W42色氨酸相对于血红素的取向(κ₂)显示,与结合到P450(cam)的底物类型有关,这表明远离血红素结合位点的区域受到P450(cam)活性位点的物理化学和空间特征/蛋白质 - 底物相互作用的影响。我们通过时间分辨底物各向异性测量监测了P450(cam)活性位点区域的底物动力学。与P450(cam)结合的底物的各向异性衰减表明,底物的流动性受局部活性位点结构的物理化学和空间特征/蛋白质 - 底物相互作用调节,并有助于理解控制结合底物的P450(cam)复合物中观察到的羟基化产物的因素。本研究表明,P450(cam)的局部和外围结构灵活性及异质性以及底物流动性在催化过程中调节底物结合取向和在P450(cam)血红素口袋内容纳多种底物方面发挥着重要作用。