Price Mark S, Chao Lily Y, Marletta Michael A
Department of Molecular and Cell Biology, University of California, Berkeley, Berkeley, California 94720-1460, USA.
Biochemistry. 2007 Dec 4;46(48):13677-83. doi: 10.1021/bi7019035. Epub 2007 Nov 8.
Nitric oxide (NO) signaling in animals controls processes such as smooth muscle relaxation and neurotransmission by activation of soluble guanylate cyclase (sGC). Prokaryotic homologues of the sGC heme domain, called H-NOX domains, have been identified and are generally found in a predicted operon in conjunction with a histidine kinase. Here, we show that an H-NOX protein (SO2144) from Shewanella oneidensis directly interacts with the sensor histidine kinase (SO2145), binds NO in a 5-coordinate complex similar to mammalian sGC, and in that form inhibits the activity of a histidine kinase (SO2145). We also describe the first account of NO formation by S. oneidensis under anaerobic growth conditions derived from nitrate and nitrite. These observations suggest that the S. oneidensis H-NOX and histidine kinase pair function as part of a novel two-component signaling pathway that is responsive to NO formation from higher nitrogen oxides used as electron acceptors when oxygen is low and thereby functioning as an environmental sensor.
动物体内的一氧化氮(NO)信号传导通过激活可溶性鸟苷酸环化酶(sGC)来控制平滑肌舒张和神经传递等过程。已鉴定出sGC血红素结构域的原核同源物,称为H-NOX结构域,通常与组氨酸激酶一起存在于预测的操纵子中。在这里,我们表明来自希瓦氏菌的一种H-NOX蛋白(SO2144)与传感组氨酸激酶(SO2145)直接相互作用,以类似于哺乳动物sGC的五配位复合物形式结合NO,并以该形式抑制组氨酸激酶(SO2145)的活性。我们还首次描述了希瓦氏菌在厌氧生长条件下由硝酸盐和亚硝酸盐产生NO的情况。这些观察结果表明,希瓦氏菌的H-NOX和组氨酸激酶对作为一种新型双组分信号通路的一部分发挥作用,该信号通路对低氧时用作电子受体的高价氮氧化物产生的NO有反应,从而作为一种环境传感器发挥作用。