Nakka Manjula, Iyer Ramesh B, Bachas Leonidas G
Department of Chemistry, University of Kentucky, Lexington, KY 40506-0055, USA.
Protein J. 2006 Jan;25(1):17-21. doi: 10.1007/s10930-006-0015-3.
Proteins from thermophilic microorganisms are stabilized by various mechanisms to preserve their native folded states at higher temperatures. A thermostable glucose-6-phosphate dehydrogenase (tG6PDH) from the hyperthermophilic bacterium Aquifex aeolicus was expressed as a recombinant protein in Escherichia coli. The A. aeolicus G6PDH is a homodimer exhibiting remarkable thermostability (t1/2 = 24 hr at 90 degrees C). Based on homology modeling and upon comparison of its structure with human G6PDH, it was predicted that cysteine 184 of one subunit could form a disulfide bond with cysteine 352 of the other subunit resulting in reinforced intersubunit interactions that hold the dimer together. Site-directed mutagenesis was performed on tG6PDH to convert C184 and C352 to serines. The tG6PDH double mutant exhibited a dramatic decrease in the half-life from 24 hr to 3 hr at 90 degrees C. The same decrease in half-life was also found when either C184 or C352 was mutated to serine. The result indicates that C184 and C352 may play a crucial role in strengthening the dimer interface through disulfide bond formation, thereby contributing to the thermal stability of the enzyme.
嗜热微生物的蛋白质通过各种机制得以稳定,从而在较高温度下保持其天然折叠状态。来自嗜热细菌嗜热栖热菌的一种耐热葡萄糖-6-磷酸脱氢酶(tG6PDH)在大肠杆菌中作为重组蛋白表达。嗜热栖热菌G6PDH是一种同型二聚体,具有显著的热稳定性(在90℃下t1/2 = 24小时)。基于同源建模并将其结构与人类G6PDH进行比较,预测一个亚基的半胱氨酸184可与另一个亚基的半胱氨酸352形成二硫键,从而增强亚基间相互作用,使二聚体保持稳定。对tG6PDH进行定点诱变,将C184和C352转换为丝氨酸。tG6PDH双突变体在90℃下的半衰期从24小时急剧降至3小时。当C184或C352突变为丝氨酸时,也发现半衰期有同样程度的降低。结果表明,C184和C352可能通过形成二硫键在加强二聚体界面方面发挥关键作用,从而有助于酶的热稳定性。