Panitz N, Rieke E, Morr M, Wagner K G, Roesler G, Jastorff B
Eur J Biochem. 1975 Jul 1;55(2):415-22. doi: 10.1111/j.1432-1033.1975.tb02177.x.
The sensitivity for recognition of adenosine 3:5'-monophosphate (cAMP) by its coordinate proteins towards chemical changes in the six-membered cyclic phosphate ring has been investigated. A comparison of the interaction parameters of the 3' and 5'-amido analogues (I, II) and of unsubstituted cAMP has been made using two different protein kinases and the phosphodiesterase from bovine heart. Binding affinity and the capacity of the amido analogues to stimulate the phosphotransferase activity of the kinases is greatly reeuced relative to cAMP, the 3'-position being more sensitive towards the modification than the 5'-position. The coordinate noncyclic derivatives, 3'-deoxy-3'-amino-5'-AMP (IV) and 5'-deoxy-5'-amino-3'-amp (iii), were also tested. Surprisingly activity towards protein kinases was found to be considerable for the 5'-deoxy-5'-amino-3'-AMP (III), while the 3'-deoxy-3'-amino-5'-AMP (IV) is practically inactive. A possible reason for this is that the noncylic 5'-analogue (III) may be able to assume a cyclic structure maintained by internal salt formation. The phosphodiesterase splits both cyclic amido analogues but with reduced rates compared to that of natural cAMP. Kinetic data obtained from different methods reveal a stronger affinity for the 5'-analogue (I) than the 3'-analogue (II) for the active site, although the reaction rate at saturated substrate concentration is significantly higher with II than with I. The properties of the amido and the noncyclic amino analogues are discussed with available data from chemotaxis of the cellular slime moulds. Furthermore data of the respective methylene cyclic derivatives are used for a more comprehensive comparison. The above is interpreted in terms of the electronic features of the substitutions and of the changes in bond distances or angles upon replacement of O by NH or CH2 in the cyclic phosphate ring (obtained from X-ray work).
研究了其配位蛋白对3':5'-环磷酸腺苷(cAMP)六元环磷酸酯环化学变化的识别敏感性。使用两种不同的蛋白激酶和牛心磷酸二酯酶,对3'和5'-酰胺类似物(I、II)与未取代的cAMP的相互作用参数进行了比较。与cAMP相比,酰胺类似物的结合亲和力和刺激激酶磷酸转移酶活性的能力大大降低,3'-位比5'-位对修饰更敏感。还测试了配位非环状衍生物3'-脱氧-3'-氨基-5'-AMP(IV)和5'-脱氧-5'-氨基-3'-AMP(III)。令人惊讶的是,发现5'-脱氧-5'-氨基-3'-AMP(III)对蛋白激酶具有相当大的活性,而3'-脱氧-3'-氨基-5'-AMP(IV)实际上无活性。其一个可能的原因是,非环状5'-类似物(III)可能能够呈现通过内盐形成维持的环状结构。磷酸二酯酶可裂解两种环状酰胺类似物,但与天然cAMP相比,裂解速率降低。从不同方法获得的动力学数据表明,活性位点对5'-类似物(I)的亲和力强于3'-类似物(II),尽管在底物浓度饱和时,II的反应速率明显高于I。结合细胞黏菌趋化性的现有数据,讨论了酰胺和非环状氨基类似物的性质。此外,还使用了相应亚甲基环状衍生物的数据进行更全面的比较。以上内容根据取代基的电子特征以及在环磷酸酯环中用NH或CH2取代O后键长或键角的变化(从X射线研究获得)进行了解释。