Department of Structural Biology, University of Pittsburgh Medical School 1036 BST3, 3501 Fifth Avenue, Pittsburgh, Pennsylvania 15260, USA.
J Am Chem Soc. 2010 Aug 11;132(31):10717-27. doi: 10.1021/ja907225d.
We have determined the structure of a PNA-DNA duplex to 1.7 A resolution by multiple-wavelength anomalous diffraction phasing method on a zinc derivative. This structure represents the first high-resolution 3D view of a hybrid duplex containing a contiguous chiral PNA strand with complete gamma-backbone modification ("gammaPNA"). Unlike the achiral counterpart, which adopts a random-fold, this particular gammaPNA is already preorganized into a right-handed helix as a single strand. The new structure illustrates the unique characteristics of this modified PNA, possessing conformational flexibility while maintaining sufficient structural integrity to ultimately adopt the preferred P-helical conformation upon hybridization with DNA. The unusual structural adaptability found in the gammaPNA strand is crucial for enabling the accommodation of backbone modifications while constraining conformational states. In conjunction with NMR analysis characterizing the structures and substructures of the individual building blocks, these results provide unprecedented insights into how this new class of chiral gammaPNA is preorganized and stabilized, before and after hybridization with a cDNA strand. Such knowledge is crucial for the future design and development of PNA for applications in biology, biotechnology, and medicine.
我们通过多波长反常衍射相位测定法,在锌衍生物上解析了一个 PNA-DNA 双链体至 1.7Å 的分辨率。该结构代表了第一个包含连续手性 PNA 链的杂交双链体的高分辨率 3D 结构,其完整的γ-主链被修饰(“γPNA”)。与无手性对应物不同,该手性 PNA 已经预先组织成右手螺旋单链。新结构说明了这种修饰 PNA 的独特特征,其具有构象灵活性,同时保持足够的结构完整性,最终在与 DNA 杂交时采用首选的 P 螺旋构象。γPNA 链中发现的不寻常的结构适应性对于在容纳主链修饰的同时约束构象状态至关重要。与 NMR 分析相结合,这些结果描述了单个构建块的结构和亚结构,为这种新型手性γPNA 在与 cDNA 链杂交之前和之后的预组织和稳定方式提供了前所未有的见解。这些知识对于未来 PNA 的设计和开发在生物学、生物技术和医学中的应用至关重要。