首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Unprecedented oxidation of a biologically active aroylhydrazone chelator catalysed by iron(III): serendipitous identification of diacylhydrazine ligands with high iron chelation efficacy
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Unprecedented oxidation of a biologically active aroylhydrazone chelator catalysed by iron(III): serendipitous identification of diacylhydrazine ligands with high iron chelation efficacy

机译:铁(III)催化的生物活性芳酰hydr螯合剂的空前氧化:偶发鉴定具有高铁螯合功效的二酰基肼配体

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摘要

Ligands of the 2-pyridylcarbaldehyde isonicotinoylhydrazone class show high iron (Fe) sequestering efficacy and have potential as agents for the treatment of Fe overload disease. We have investigated the mechanisms responsible for their high activity. X-ray crystallography studies show that the tridentate chelate 2-pyridylcarbaldehyde isonicotinoylhydrazone undergoes an unexpected oxidation to isonicotinoyl(picolinoyl)hydrazine when complexed with Fe~(III). In contrast, in the absence of Fe~(III), the parent hydrazone is not oxidized in aerobic aqueous solution. To examine whether the diacylhydrazine could be responsible for the biological effects of 2-pyridylcarbaldehyde isonicotinoylhydrazone, their Fe chelation efficacy was compared. In contrast to its parent hydrazone, the diacylhydrazine showed little Fe chelation activity. Potentiometric titrations suggested that this might be because the diacylhydrazine was charged at physiological pH, hindering its access across membranes to intracellular Fe pools. In contrast, the Fe complex of this diacylhydrazine was charge neutral, which may allow facile movement through membranes. These data allow a model of Fe chelation for this compound to be proposed: the parent aroylhydrazone diffuses through cell membranes to bind Fe and is subsequently oxidized to the diacylhydrazine complex which then diffuses from the cell. Other diacylhydrazine analogues that were charge neutral at physiological pH demonstrated high Fe chelation efficacy. Thus, for this class of ligands, the charge of the chelator appears to be an important factor for determining their ability to access intracellular Fe. The results of this study are significant for understanding the biological activity of 2-pyridylcarbaldehyde isonicotinoylhydrazone and for the design of novel diacylhydrazine chelators for clinical use.
机译:2-吡啶基甲醛的异烟酰酰hydr类的配体显示出高的螯合铁(Fe)的功效,并有潜力作为治疗Fe超载疾病的药物。我们研究了导致其高活性的机制。 X射线晶体学研究表明,三齿螯合物2-吡啶基甲醛甲醛异烟酰yl与Fe〜(III)络合时,会意外地氧化为异烟酰酰(吡啶基)肼。相反,在不存在Fe〜(III)的情况下,母体在好氧水溶液中不会被氧化。为了检查二酰基肼是否可能对2-吡啶基甲醛异烟酰yl的生物学效应负责,比较了它们的Fe螯合效果。与它的母相反,二酰基肼显示出很少的铁螯合活性。电位滴定表明,这可能是因为二酰基肼在生理pH下带电,阻碍了其跨膜进入细胞内Fe池的通道。相反,该二酰基肼的Fe络合物是电荷中性的,这可能使它们容易通过膜运动。这些数据允许提出该化合物的铁螯合模型:母体芳酰hydr通过细胞膜扩散以结合铁,随后被氧化成二酰肼配合物,然后从细胞扩散。在生理pH下呈中性电荷的其他二酰基肼类似物表现出高Fe螯合功效。因此,对于这类配体,螯合剂的电荷似乎是决定其进入细胞内铁的能力的重要因素。这项研究的结果对于理解2-吡啶基甲醛醛异烟酰hydr的生物活性和设计用于临床的新型二酰基肼螯合剂具有重要意义。

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