Childers Christine L, Storey Kenneth B
Department of Biology, Institute of Biochemistry, Carleton University, Ottawa, ON, Canada.
Protein J. 2016 Feb;35(1):61-71. doi: 10.1007/s10930-016-9647-0.
Xenopus laevis endure substantial dehydration which can impose hypoxic stress due to impaired blood flow. Tissues may increase reliance on anaerobic glycolysis for energy production making the regulation of hexokinase (HK) important. We investigated the enzymatic properties and phosphorylation state of purified HK from the muscle of control and dehydrated (30% total body water lost) frogs. Bioinformatic tools were also applied to analyze the structural implication of HK phosphorylation in silico. HK from the muscle of dehydrated frogs showed a significantly higher Vmax (3.4-fold) and Km for glucose (2.4-fold) compared with control HK but the Km for ATP was unaltered. HK from dehydrated frogs also showed greater phosphoserine content (20% increase) and lower phosphothreonine (22% decrease) content compared to control HK. Control HK had a higher melting temperature (Tm = 61.9 °C) than from dehydrated (Tm = 54.2 °C) frogs when thermostability was tested using differential scanning fluorimetry. In silico phosphorylation of a Xenopus HK caused alterations in active site binding, corroborating phosphorylation as the probable mechanism for kinetic regulation. Physiological consequences of dehydration-induced HK phosphorylation appear to facilitate glycolytic metabolism in hypoxic situations. Augmented HK function increases the ability of Xenopus to overcome compromised oxidative phosphorylation associated with ischemia during dehydration.
非洲爪蟾能够承受严重脱水,由于血流受损,脱水会导致缺氧应激。组织可能会增加对无氧糖酵解的依赖以产生能量,因此己糖激酶(HK)的调节变得很重要。我们研究了来自对照和脱水(全身水分损失30%)青蛙肌肉的纯化HK的酶学性质和磷酸化状态。还应用生物信息学工具在计算机上分析HK磷酸化的结构影响。与对照HK相比,脱水青蛙肌肉中的HK对葡萄糖的Vmax显著更高(3.4倍),Km更高(2.4倍),但对ATP的Km未改变。与对照HK相比,脱水青蛙的HK还显示出更高的磷酸丝氨酸含量(增加20%)和更低的磷酸苏氨酸含量(减少22%)。当使用差示扫描荧光法测试热稳定性时,对照HK的解链温度(Tm = 61.9 °C)高于脱水青蛙的(Tm = 54.2 °C)。非洲爪蟾HK的计算机模拟磷酸化导致活性位点结合发生改变,证实磷酸化是动力学调节的可能机制。脱水诱导的HK磷酸化的生理后果似乎是在缺氧情况下促进糖酵解代谢。增强的HK功能增加了非洲爪蟾克服脱水期间与缺血相关的氧化磷酸化受损的能力。