Department of Chemistry, Graduate School of Science Kyoto University, Kitashirakawa-Oiwaketyo, Sakyo, Kyoto, 606-8502 (Japan), Fax: (+81) 75-753-3670.
Chemistry. 2014 Jan 13;20(3):752-9. doi: 10.1002/chem.201302482. Epub 2013 Dec 11.
Pyrrole-imidazole (PI) polyamides bind to the minor groove of the DNA duplex in a sequence-specific manner and thus have the potential to regulate gene expression. To date, various types of PI polyamides have been designed as sequence-specific DNA binding ligands. One of these, cysteine cyclic PI polyamides containing two β-alanine molecules, were designed to recognize a 7 bp DNA sequence with high binding affinity. In this study, an efficient cyclization reaction between a cysteine and a chloroacetyl residue was used for dimerization in the synthesis of a unit that recognizes symmetrical DNA sequences. To evaluate specific DNA binding properties, dimeric PI polyamide binding was measured by using a surface plasmon resonance (SPR) method. Extending this molecular design, we synthesized a large dimeric PI polyamide that can recognize a 14 bp region in duplex DNA.
吡咯并咪唑(PI)聚酰胺以序列特异性方式结合到 DNA 双链体的小沟中,因此具有调节基因表达的潜力。迄今为止,已经设计了各种类型的 PI 聚酰胺作为序列特异性 DNA 结合配体。其中,含有两个 β-丙氨酸分子的半胱氨酸环化 PI 聚酰胺被设计为识别具有高结合亲和力的 7bp DNA 序列。在这项研究中,在合成识别对称 DNA 序列的单元时,使用半胱氨酸和氯乙酰基残基之间的有效环化反应进行二聚化。为了评估特定的 DNA 结合特性,通过表面等离子体共振(SPR)方法测量二聚体 PI 聚酰胺的结合。通过扩展这种分子设计,我们合成了一种可以识别双链 DNA 中 14bp 区域的大型二聚体 PI 聚酰胺。