Manchester Keith L
School of Molecular and Cell Biology, University of the Witwatersrand, Johannesburg, South Africa.
Biochem Biophys Res Commun. 2004 Jan 30;314(1):1-5. doi: 10.1016/j.bbrc.2003.12.072.
An analysis is made of the rate constants for the reactions involving the interactions of EF-Tu, EF-Ts, GDP, and GTP recently derived by Gromadski et al. [Biochemistry 41 (2002) 162]. Though their measured values appear to allow a reasonable rate of nucleotide exchange sufficient to support rates of protein synthesis in vivo, their data underestimate the thermodynamic barrier involved in nucleotide exchange and therefore cannot be considered definitive. A kinetic scheme consistent with the thermodynamic barrier can be achieved by modification of various rate constants, particularly of those involving the release of EF-Ts from EF-Tu.GTP.EF-Ts, but such constants are markedly different from what are experimentally observed. It thus remains impossible at present satisfactorily to model guanine nucleotide exchange on EF-Tu, catalysed by EF-Ts by a double displacement mechanism, with experimentally derived rate constants. Metabolic control analysis has been applied to determine the degree of flux control of the different steps in the pathway.
对格罗马茨基等人[《生物化学》41(2002)162]最近得出的涉及EF - Tu、EF - Ts、GDP和GTP相互作用的反应速率常数进行了分析。尽管他们测得的值似乎允许有足够合理的核苷酸交换速率来支持体内蛋白质合成的速率,但他们的数据低估了核苷酸交换所涉及的热力学屏障,因此不能被视为确定无疑的。通过修改各种速率常数,特别是那些涉及从EF - Tu.GTP.EF - Ts释放EF - Ts的速率常数,可以实现与热力学屏障一致的动力学方案,但这些常数与实验观察到的显著不同。因此,目前仍然不可能用实验得出的速率常数,通过双置换机制令人满意地模拟由EF - Ts催化的EF - Tu上的鸟嘌呤核苷酸交换。代谢控制分析已被用于确定该途径中不同步骤的通量控制程度。