Kenichi Kitanishi*, Nao Aoyama and Motoyuki Shimonaka,
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The amino acid sequence encoded by the <i>AL536_01530</i> gene from <i>V. fluvialis</i> indicated the presence of an N-terminal globin domain and a C-terminal HD-GYP domain, with HD-GYP domains shown previously to display phosphodiesterase activity toward bis(3′,5′)-cyclic dimeric guanosine monophosphate (c-di-GMP), a bacterial second messenger that regulates numerous important physiological functions in bacteria, including in bacterial pathogens. Optical absorption spectral properties of GCS-HD-GYP were found to be similar to those of myoglobin and hemoglobin and of other bacterial globin-coupled sensors. The binding of O<sub>2</sub> to the Fe(II) heme iron complex of GCS-HD-GYP promoted the catalysis of the hydrolysis of c-di-GMP to its linearized product, 5′-phosphoguanylyl-(3′,5′)-guanosine (pGpG), whereas CO and NO binding did not enhance the catalysis, indicating a strict discrimination of these gaseous ligands. These results shed new light on the molecular mechanism of gas-selective catalytic regulation by globin-coupled sensors, with these advances apt to lead to a better understanding of the family of globin-coupled sensors, a still growing family of heme-based gas sensors. In addition, given the importance of c-di-GMP in infection and virulence, our results suggested that GCS-HD-GYP could play an important role in the ability of <i>V. fluvialis</i> to sense O<sub>2</sub> and NO in the context of host–pathogen interactions.</p>","PeriodicalId":28,"journal":{"name":"Biochemistry Biochemistry","volume":"63 4","pages":"523–532"},"PeriodicalIF":3.0000,"publicationDate":"2024-01-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.acs.org/doi/epdf/10.1021/acs.biochem.3c00484","citationCount":"0","resultStr":"{\"title\":\"Gas-Selective Catalytic Regulation by a Newly Identified Globin-Coupled Sensor Phosphodiesterase Containing an HD-GYP Domain from the Human Pathogen Vibrio fluvialis\",\"authors\":\"Kenichi Kitanishi*, Nao Aoyama and Motoyuki Shimonaka, \",\"doi\":\"10.1021/acs.biochem.3c00484\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Globin-coupled sensors constitute an important family of heme-based gas sensors, an emerging class of heme proteins. 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引用次数: 0
摘要
球蛋白耦合传感器是血红素气体传感器的一个重要家族,是一类新兴的血红素蛋白。在这项研究中,我们从人类病原体弗氏弧菌中鉴定并鉴定了一种含有 HD-GYP 结构域的球蛋白偶联传感器磷酸二酯酶(GCS-HD-GYP)。来自弗氏弧菌的 AL536_01530 基因编码的氨基酸序列表明,该基因存在一个 N 端球蛋白结构域和一个 C 端 HD-GYP 结构域,HD-GYP 结构域以前曾显示出对二(3',5')环二聚体鸟苷单磷酸(c-di-GMP)的磷酸二酯酶活性。研究发现,GCS-HD-GYP 的光学吸收光谱特性与肌红蛋白和血红蛋白以及其他细菌球蛋白耦合传感器相似。O2 与 GCS-HD-GYP 的铁(II)血红素铁复合物的结合促进了 c-di-GMP 向其线性化产物 5'-phosphoguanylyl-(3',5')-guanosine (pGpG) 的水解催化,而与 CO 和 NO 的结合则没有促进催化,这表明这些气体配体之间存在严格的区别。这些结果对球蛋白偶联传感器气体选择性催化调节的分子机理有了新的认识,有望使人们更好地了解球蛋白偶联传感器这一仍在不断壮大的血红素气体传感器家族。此外,鉴于 c-di-GMP 在感染和毒力方面的重要性,我们的研究结果表明,GCS-HD-GYP 可能在 V. fluvialis 感知宿主-病原体相互作用中的 O2 和 NO 的能力方面发挥重要作用。
Gas-Selective Catalytic Regulation by a Newly Identified Globin-Coupled Sensor Phosphodiesterase Containing an HD-GYP Domain from the Human Pathogen Vibrio fluvialis
Globin-coupled sensors constitute an important family of heme-based gas sensors, an emerging class of heme proteins. In this study, we have identified and characterized a globin-coupled sensor phosphodiesterase containing an HD-GYP domain (GCS-HD-GYP) from the human pathogen Vibrio fluvialis, which is an emerging foodborne pathogen of increasing public health concern. The amino acid sequence encoded by the AL536_01530 gene from V. fluvialis indicated the presence of an N-terminal globin domain and a C-terminal HD-GYP domain, with HD-GYP domains shown previously to display phosphodiesterase activity toward bis(3′,5′)-cyclic dimeric guanosine monophosphate (c-di-GMP), a bacterial second messenger that regulates numerous important physiological functions in bacteria, including in bacterial pathogens. Optical absorption spectral properties of GCS-HD-GYP were found to be similar to those of myoglobin and hemoglobin and of other bacterial globin-coupled sensors. The binding of O2 to the Fe(II) heme iron complex of GCS-HD-GYP promoted the catalysis of the hydrolysis of c-di-GMP to its linearized product, 5′-phosphoguanylyl-(3′,5′)-guanosine (pGpG), whereas CO and NO binding did not enhance the catalysis, indicating a strict discrimination of these gaseous ligands. These results shed new light on the molecular mechanism of gas-selective catalytic regulation by globin-coupled sensors, with these advances apt to lead to a better understanding of the family of globin-coupled sensors, a still growing family of heme-based gas sensors. In addition, given the importance of c-di-GMP in infection and virulence, our results suggested that GCS-HD-GYP could play an important role in the ability of V. fluvialis to sense O2 and NO in the context of host–pathogen interactions.
期刊介绍:
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