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Binding of hydrogen sulfide to biologically relevant scaffolds: Metal systems and non-covalent binding

机译:硫化氢与生物相关支架的结合:金属系统和非共价结合

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摘要

Hydrogen Sulfide (H2S) is an important biologically produced gasotransmitter along with carbon monoxide (CO) and nitric oxide (NO). Unlike CO and NO, the bioinorganic chemistry of H2S reactivity with biologically relevant metal centers remains underinvestigated. To address this gap, several model bio(in)organic complexes were used to understand the ligation and reaction chemistry of H2S, including phthalocyanine, protoporphyrin IX, tetraphenyl porphyrin, and a pyridine diimine zinc complex. In addition to being a reactive gasotransmitter, the hydrosulfide anion (HS-- ) has been found to be an important biological anion.;Studies with readily available cobalt and zinc phthalocyanines in organic solution illustrated the importance of protonation state in the ligation and redox chemistry of H2S and highlighted the need for an organic-soluble source of HS--. To address this need, we developed a simple method to prepare tetrabutylammonium hydrosulfide (NBu4SH). Using NBu4SH, we expanded the knowledge of H2S reaction chemistry to encompass a significantly larger set of biologically relevant metals beyond iron using the protoporphyrin IX scaffold, revealing three principle reaction pathways: binding, no response, or reduction and binding.;Iron in biology is of particular importance given its role in oxygen transport in hemoglobin. The swamp-dwelling bivalve L. Pectinata hemoglobin 1 (Hb1) transports H2S, via ligation to heme, to symbiotic bacteria. The stabilization of H2S in Hb1 is believed to be from one of the following: a protected pocket, hydrogen bonding with a proximal glutamate residue, or a complex combination of these or other factors. By using Collman's "Picket-Fence" porphyrin to isolate the protected pocket model, we determined that a protected pocket alone as insufficient to account for H2S stabilization on Hb1. This realization led to an examination of hydrogen bonding in the secondary coordination sphere of a zinc complex.;Finally, we explored the role of HS-- as a biologically relevant anion using a bis(ethynylaniline) supramolecular receptor. We determined that rather than covalently modifying the receptor molecule, HS-- was bound in the pocket, similar to bacterial anion transport channel. This dissertation includes previously published co-authored material.
机译:硫化氢(H2S)与一氧化碳(CO)和一氧化氮(NO)一样,是一种重要的生物产生的气体递质。与一氧化碳和一氧化氮不同,硫化氢与生物相关金属中心的生物无机化学反应仍未得到充分研究。为了解决这个空白,使用了几种模型生物(无机)有机配合物来了解H2S的连接和反应化学,包括酞菁,原卟啉IX,四苯基卟啉和吡啶二亚胺锌配合物。氢硫化物阴离子(HS--)除了是一种活性的气体传递剂外,还被发现是一种重要的生物阴离子。有机钴溶液中容易获得的钴和酞菁锌的研究表明,质子化状态在连接和氧化还原化学中非常重要。并强调需要有机可溶的HS--来源。为了满足这一需求,我们开发了一种简单的方法来制备四丁基氢硫化铵(NBu4SH)。使用NBu4SH,我们使用原卟啉IX支架扩展了H2S反应化学的知识,以涵盖铁以外的大量更大的生物学相关金属,揭示了三个主要反应途径:结合,无反应或还原与结合。鉴于其在血红蛋白中氧转运中的作用,这一点尤其重要。居住在沼泽地的双壳类L. Pectinata血红蛋白1(Hb1)通过与血红素的连接将H2S转运至共生细菌。据信Hb1中H2S的稳定来自以下一种:受保护的口袋,与近端谷氨酸残基的氢键结合或这些或其他因素的复杂组合。通过使用Collman的“ Picket-Fence”卟啉分离受保护的口袋模型,我们确定仅受保护的口袋不足以说明Hb1对H2S的稳定作用。这一认识导致检查了锌络合物的二级配位域中的氢键。最后,我们探索了HS--作为使用双(乙炔基苯胺)超分子受体的生物学相关阴离子的作用。我们确定,不是共价修饰受体分子,而是在口袋中结合了HS--,类似于细菌阴离子转运通道。本论文包括以前发表的合著材料。

著录项

  • 作者

    Hartle, Matthew David.;

  • 作者单位

    University of Oregon.;

  • 授予单位 University of Oregon.;
  • 学科 Biochemistry.;Organic chemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 253 p.
  • 总页数 253
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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