Guo Yirui, Cooper Matthew M, Bromberg Raquel, Marletta Michael A
California Institute for Quantitative Biosciences , University of California, Berkeley , Berkeley , California 94720 , United States.
Department of Molecular and Cell Biology , University of California, Berkeley , Berkeley , California 94720 , United States.
Biochemistry. 2018 Nov 27;57(47):6570-6580. doi: 10.1021/acs.biochem.8b01058. Epub 2018 Nov 13.
Nitric oxide (NO) is a critical signaling molecule involved in the regulation of a wide variety of physiological processes across every domain of life. In most aerobic and facultative anaerobic bacteria, heme-nitric oxide/oxygen binding (H-NOX) proteins selectively sense NO and inhibit the activity of a histidine kinase (HK) located on the same operon. This NO-dependent inhibition of the cognate HK alters the phosphorylation of the downstream response regulators. In the marine bacterium Saccharophagus degradans ( Sde), in addition to a typical H-NOX ( Sde 3804)/HK ( Sde 3803) pair, an orphan H-NOX ( Sde 3557) with no associated signaling protein has been identified distant from the H-NOX/HK pair in the genome. The characterization reported here elucidates the function of both H-NOX proteins. Sde 3557 exhibits a weaker binding affinity with the kinase, yet both Sde 3804 and Sde 3557 are functional H-NOXs with proper gas binding properties and kinase inhibition activity. Additionally, Sde 3557 has an NO dissociation rate that is significantly slower than that of Sde 3804, which may confer prolonged kinase inhibition in vivo. While it is still unclear whether Sde 3557 has another signaling partner or shares the histidine kinase with Sde 3804, Sde 3557 is the only orphan H-NOX characterized to date. S. degradans is likely using a dual-H-NOX system to fine-tune the downstream response of NO signaling.
一氧化氮(NO)是一种关键的信号分子,参与调节生命各个领域的多种生理过程。在大多数需氧和兼性厌氧细菌中,血红素一氧化氮/氧气结合(H-NOX)蛋白选择性地感知NO,并抑制位于同一操纵子上的组氨酸激酶(HK)的活性。这种依赖NO的同源HK抑制作用会改变下游响应调节因子的磷酸化。在海洋细菌食糖嗜纤维菌(Saccharophagus degradans,Sde)中,除了典型的H-NOX(Sde 3804)/HK(Sde 3803)对之外,在基因组中远离H-NOX/HK对的位置还鉴定出了一种没有相关信号蛋白的孤儿H-NOX(Sde 3557)。此处报道的表征阐明了这两种H-NOX蛋白的功能。Sde 3557与激酶的结合亲和力较弱,但Sde 3804和Sde 3557都是具有适当气体结合特性和激酶抑制活性的功能性H-NOX。此外,Sde 3557的NO解离速率明显慢于Sde 3804,这可能在体内赋予延长的激酶抑制作用。虽然尚不清楚Sde 3557是否有另一个信号伴侣或与Sde 3804共享组氨酸激酶,但Sde 3557是迄今为止唯一被表征的孤儿H-NOX。食糖嗜纤维菌可能正在使用双H-NOX系统来微调NO信号的下游反应。