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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Is histidine dissociation a critical component of the NO/H-NOX signaling mechanism? Insights from X-ray absorption spectroscopy
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Is histidine dissociation a critical component of the NO/H-NOX signaling mechanism? Insights from X-ray absorption spectroscopy

机译:组氨酸解离是NO / H-NOX信号传导机制的关键组成部分吗? X射线吸收光谱的见解

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The H-NOX (Heme-Nitric oxide/OXygen binding) family of diatomic gas sensing hemoproteins has attracted great interest. Soluble guanylate cyclase (sGC), the well-characterized eukaryotic nitric oxide (NO) sensor is an H-NOX family member. When NO binds sGC at the ferrous histidine-ligated protoporphyrin-IX, the proximal histidine ligand dissociates, resulting in a 5-coordinate (5c) complex; formation of this 5c complex is viewed as necessary for activation of sGC. Characterization of other H-NOX family members has revealed that while most also bind NO in a 5c complex, some bind NO in a 6-coordinate (6c) complex or as a 5c/6c mixture. To gain insight into the heme pocket structural differences between 5c and 6c Fe(ii)-NO H-NOX complexes, we investigated the extended X-ray absorption fine structure (EXAFS) of the Fe(ii)-unligated and Fe(ii)-NO complexes of H-NOX domains from three species, Thermoanaerobacter tengcongensis, Shewanella woodyi, and Pseudoalteromonas atlantica. Although the Fe(ii)-NO complex of TtH-NOX is formally 6c, we found the Fe-N _(His) bond is substantially lengthened. Furthermore, although NO binds to SwH-NOX and PaH-NOX as a 5c complex, consistent with histidine dissociation, the EXAFS data do not exclude a very weakly associated histidine. Regardless of coordination number, upon NO-binding, the Fe-N _(porphyrin) bond lengths in all three H-NOXs contract by ~0.07 ?. This study reveals that the overall heme structure of 5c and 6c Fe(ii)-NO H-NOX complexes are substantially similar, suggesting that formal histidine dissociation may not be required to trigger NO/H-NOX signal transduction. The study has refined our understanding of the molecular mechanisms underlying NO/H-NOX signaling.
机译:双原子气体感测血红蛋白的H-NOX(血红一氧化氮/氧结合)家族引起了极大的兴趣。可溶性鸟苷酸环化酶(sGC)是特征明确的真核一氧化氮(NO)传感器,是H-NOX家族成员。当NO在组氨酸亚铁连接的原卟啉IX处结合sGC时,近端组氨酸配体解离,形成5坐标(5c)络合物;该5c复合物的形成被认为是激活sGC所必需的。对其他H-NOX家族成员的表征表明,尽管大多数H-NOX家族还以5c配合物的形式结合NO,但有些还以6坐标(6c)配合物或以5c / 6c的混合物形式结合NO。为了深入了解5c和6c Fe(ii)-NO H-NOX络合物之间的血红素口袋结构差异,我们研究了未结合Fe(ii)和Fe(ii)的扩展X射线吸收精细结构(EXAFS) -来自腾格热嗜热厌氧杆菌,Shewanella woodyi和Pseudoalteromonas atlantica三种物种的H-NOX域的-NO配合物。尽管TtH-NOX的Fe(ii)-NO配合物的形式为6c,但我们发现Fe-N_(His)键已大大延长。此外,尽管NO与SwH-NOX和PaH-NOX结合为5c配合物,与组氨酸解离一致,但EXAFS数据并未排除非常弱的组氨酸结合。不论配位数如何,在NO结合后,所有三个H-NOX中的Fe-N _(卟啉)键长均收缩约0.07?。这项研究表明,5c和6c Fe(ii)-NO H-NOX络合物的总体血红素结构基本相似,这表明可能不需要正式的组氨酸解离来触发NO / H-NOX信号转导。这项研究完善了我们对NO / H-NOX信号传导潜在分子机制的理解。

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