Hu X, Zhang J, Rydström J
Department of Biochemistry and Biophysics, Göteborg University and Chalmers University of Technology, Box 462, SE-405 30 Göteborg, Sweden.
Biochim Biophys Acta. 1998 Oct 5;1367(1-3):134-8. doi: 10.1016/s0005-2728(98)00141-8.
The interaction of reduced nicotinamide mononucleotide (NMNH), constituting one half of NADH, with the wild-type and alphaD195E proton-pumping nicotinamide nucleotide transhydrogenase from Escherichia coli was investigated. Reduction of thio-NADP+ by NMNH was catalysed at approximately 30% of the rate with NADH. Other activities including proton pumping and the cyclic reduction of 3'-acetyl-pyridine-NAD+ by NMNH in the presence of NADP+ were more strongly inhibited. The alphaD195 residue is assumed to interact with the 2'-OH moiety of the adenosine-5'-phosphate, i.e., the second nucleotide of NADH. Mutation of this residue to alphaD195E resulted in a 90% decrease in activity with NMNH as well as NADH as substrate, suggesting that it produced global structural changes of the NAD(H) binding site. The results suggest that the NMN moiety of NADH is a substrate of transhydrogenase, and that the adenine nucleotide is not required for catalysis or proton pumping.
研究了还原型烟酰胺单核苷酸(NMNH,它是NADH的一半组成部分)与来自大肠杆菌的野生型和αD195E质子泵烟酰胺核苷酸转氢酶之间的相互作用。NMNH催化硫代-NADP+还原的速率约为NADH的30%。其他活性,包括质子泵作用以及在NADP+存在下NMNH对3'-乙酰基吡啶-NAD+的循环还原作用,受到的抑制更强。假定αD195残基与腺苷-5'-磷酸的2'-OH部分相互作用,即NADH的第二个核苷酸。该残基突变为αD195E导致以NMNH以及NADH作为底物时活性降低90%,这表明它引起了NAD(H)结合位点的整体结构变化。结果表明,NADH的NMN部分是转氢酶的底物,并且腺嘌呤核苷酸对于催化或质子泵作用并非必需。