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Nucleobase pairing and photodimerization in a biologically derived metal-organic framework nanoreactor

机译:生物衍生金属 - 有机骨架纳米反应器中的核碱酶配对和光二聚体

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Biologically derived metal-organic frameworks (bio-MOFs) are of great importance as they can be used as models for bio-mimicking and in catalysis, allowing us to gain insights into how large biological molecules function. Through rational design, here we report the synthesis of a novel bio-MOF featuring unobstructed Watson-Crick faces of adenine (Ade) pointing towards the MOF cavities. We show, through a combined experimental and computational approach, that thymine (Thy) molecules diffuse through the pores of the MOF and become base-paired with Ade. The Ade-Thy pair binding at 40–45% loading reveals that Thy molecules are packed within the channels in a way that fulfill both the Woodward-Hoffmann and Schmidt rules, and upon UV irradiation, Thy molecules dimerize into Thy Thy. This study highlights the utility of accessible functional groups within the pores of MOFs, and their ability to ‘lock’ molecules in specific positions that can be subsequently dimerized upon light irradiation, extending the use of MOFs as nanoreactors for the synthesis of molecules that are otherwise challenging to isolate.
机译:生物衍生的金属 - 有机框架(BIO-MOFS)非常重要,因为它们可以用作生物模仿和催化的模型,使我们能够深入了解大型生物分子功能。通过理性的设计,在这里,我们报告了一种新的生物MOF,其具有指向MOF腔的腺嘌呤(ADE)的无障碍Watson-Crick面。我们通过组合的实验和计算方法显示胸腺嘧啶(THY)分子通过MOF的孔扩散并与ADE进行碱配对。在40-45%的荷载作用载体的结合表明,您的分子在通道内填充,以满足伍德沃德 - 霍夫曼和施密特规则,并且在紫外线辐照上,您的分子将其分成你的Thy。该研究突出了MOFS孔内可偏转官能团的效用,以及它们在可以随后在光照射时分三聚集的特定位置中的“锁定”分子的能力,将MOF作为纳米反应器延伸用于合成否则的分子挑战孤立。

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