首页> 美国卫生研究院文献>Chemical Science >Determination of a complex crystal structure in the absence of single crystals: analysis of powder X-ray diffraction data guided by solid-state NMR and periodic DFT calculations reveals a new 2′-deoxyguanosine structural motif
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Determination of a complex crystal structure in the absence of single crystals: analysis of powder X-ray diffraction data guided by solid-state NMR and periodic DFT calculations reveals a new 2′-deoxyguanosine structural motif

机译:在没有单晶的情况下确定复杂的晶体结构:在固态NMR和定期DFT计算的指导下对粉末X射线衍射数据进行分析揭示了新的2-脱氧鸟苷结构基序

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摘要

Derivatives of guanine exhibit diverse supramolecular chemistry, with a variety of distinct hydrogen-bonding motifs reported in the solid state, including ribbons and quartets, which resemble the G-quadruplex found in nucleic acids with sequences rich in guanine. Reflecting this diversity, the solid-state structural properties of 3′,5′-bis-O-decanoyl-2′-deoxyguanosine, reported in this paper, reveal a hydrogen-bonded guanine ribbon motif that has not been observed previously for 2′-deoxyguanosine derivatives. In this case, structure determination was carried out directly from powder XRD data, representing one of the most challenging organic molecular structures (a 90-atom molecule) that has been solved to date by this technique. While specific challenges were encountered in the structure determination process, a successful outcome was achieved by augmenting the powder XRD analysis with information derived from solid-state NMR data and with dispersion-corrected periodic DFT calculations for structure optimization. The synergy of experimental and computational methodologies demonstrated in the present work is likely to be an essential feature of strategies to further expand the application of powder XRD as a technique for structure determination of organic molecular materials of even greater complexity in the future.
机译:鸟嘌呤的衍生物表现出不同的超分子化学,在固态中报道了各种不同的氢键基序,包括带和四重体,它们类似于在富含鸟嘌呤的核酸中发现的G-四链体。反映了这种多样性,本文报道的3',5'-双-O-癸酰基-2'-脱氧鸟苷的固态结构性质揭示了氢键鸟嘌呤带基序,这是以前在2'中未观察到的-脱氧鸟苷衍生物。在这种情况下,直接从粉末XRD数据中进行结构确定,该数据代表了迄今为止由该技术解决的最具挑战性的有机分子结构之一(90原子分子)。虽然在结构确定过程中遇到了特定的挑战,但通过使用从固态NMR数据中获得的信息以及用于结构优化的色散校正的周期性DFT计算来增强粉末XRD分析,从而获得了成功的结果。在本工作中展示的实验和计算方法的协同作用可能是未来进一步扩展粉末XRD作为一种用于确定结构更复杂的有机分子材料的技术的策略的基本特征。

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