Brindley Amanda A, Pickersgill Richard W, Partridge Julian C, Dunstan David J, Hunt David M, Warren Martin J
Department of Biosciences, University of Kent, Canterbury, Kent, United Kingdom.
PLoS One. 2008 Apr 30;3(4):e2042. doi: 10.1371/journal.pone.0002042.
The cDNAs of lactate dehydrogenase b (LDH-b) from both deep-sea and shallow living fish species, Corphaenoides armatus and Gadus morhua respectively, have been isolated, sequenced and their encoded products overproduced as recombinant enzymes in E. coli. The proteins were characterised in terms of their kinetic and physical properties and their ability to withstand high pressures. Although the two proteins are very similar in terms of their primary structure, only 21 differences at the amino acid level exist between them, the enzyme from the deep-sea species has a significantly increased tolerance to pressure and a higher thermostability. It was possible to investigate whether the changes in the N-terminal or C-terminal regions played a greater role in barophilic adaptation by the construction of two chimeric enzymes by use of a common restriction site within the cDNAs. One of these hybrids was found to have even greater pressure stability than the recombinant enzyme from the deep-living fish species. It was possible to conclude that the major adaptive changes to pressure tolerance must be located in the N-terminal region of the protein. The types of changes that are found and their spatial location within the protein structure are discussed. An analysis of the kinetic parameters of the enzymes suggests that there is clearly a trade off between K(m) and k(cat) values, which likely reflects the necessity of the deep-sea enzyme to operate at low temperatures.
分别从深海鱼类铠平鲉和浅海鱼类大西洋鳕鱼中分离出乳酸脱氢酶b(LDH-b)的互补DNA(cDNA),进行测序,并在大肠杆菌中作为重组酶过量表达其编码产物。对这些蛋白质的动力学和物理性质以及它们承受高压的能力进行了表征。尽管这两种蛋白质在一级结构上非常相似,在氨基酸水平上仅存在21处差异,但来自深海物种的酶对压力的耐受性显著提高,热稳定性也更高。通过利用cDNA内的一个共同限制性位点构建两种嵌合酶,有可能研究N端或C端区域的变化在嗜压适应性中是否起更大作用。发现其中一种杂种酶的压力稳定性甚至比来自深海鱼类的重组酶更高。可以得出结论,对压力耐受性的主要适应性变化一定位于蛋白质的N端区域。讨论了所发现的变化类型及其在蛋白质结构中的空间位置。对这些酶的动力学参数分析表明,在米氏常数(K(m))和催化常数(k(cat))值之间显然存在权衡,这可能反映了深海酶在低温下运作的必要性。