Department of Biology, Institute of Biochemistry, Carleton University, 1125 Colonel By Drive, Ottawa, ON, K1S 5B6, Canada.
J Comp Physiol B. 2012 Apr;182(3):331-40. doi: 10.1007/s00360-011-0629-4. Epub 2011 Nov 11.
Glutamate dehydrogenase (GDH) (EC 1.4.1.3) is a crucial enzyme involved in bridging two metabolic pathways, gating the use of glutamate for either amino acid metabolism, or carbohydrate metabolism. The present study investigated GDH from tail muscle of the freshwater crayfish Orconectes virilis exploring changes to kinetic properties, phosphorylation levels and structural stability between two forms of the enzyme (aerobic control and 20-h severe hypoxic). Evidence indicated that GDH was converted to a high phosphate form under oxygen limitation. ProQ Diamond phosphoprotein staining showed a 42% higher bound phosphate content on GDH from muscle of severely hypoxic crayfish compared with the aerobic form, and treatment of this GDH with commercial phosphatase (alkaline phosphatase), and treatments that stimulated the activities of different endogenous protein phosphatases (stimulating PP1 + PP2A, PP2B, and PP2C) yielded significant increases in the fold activation by ADP of GDH from both control and severe hypoxic conditions. By contrast, stimulation of the activities of endogenous protein kinases (AMPK, PKA or CaMK) significantly reduced the ADP fold activation from control animals. The physiological consequence of severe hypoxia-induced GDH phosphorylation may be to suppress GDH activity under low oxygen, shutting off this critical bridge point between two metabolic pathways.
谷氨酸脱氢酶(GDH)(EC 1.4.1.3)是一种参与连接两条代谢途径的关键酶,控制着谷氨酸用于氨基酸代谢或碳水化合物代谢。本研究探索了淡水小龙虾 Orconectes virilis 尾部肌肉中的 GDH,研究了在两种酶形式(有氧对照和 20 小时严重缺氧)之间,动力学特性、磷酸化水平和结构稳定性的变化。有证据表明,在氧气限制下,GDH 转化为高磷酸形式。ProQ Diamond 磷酸蛋白染色显示,与有氧形式相比,严重缺氧小龙虾肌肉中的 GDH 结合的磷酸含量高 42%,用商业磷酸酶(碱性磷酸酶)处理该 GDH,以及用刺激不同内源性蛋白磷酸酶(刺激 PP1+PP2A、PP2B 和 PP2C)活性的处理方法,均显著增加了来自对照和严重缺氧条件下的 GDH 对 ADP 的倍数激活。相比之下,刺激内源性蛋白激酶(AMPK、PKA 或 CaMK)的活性显著降低了来自对照动物的 ADP 倍数激活。严重缺氧诱导的 GDH 磷酸化的生理后果可能是抑制低氧下的 GDH 活性,关闭两条代谢途径之间的这个关键桥接点。