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首页> 外文期刊>Nucleic acids research >DNA assembly using bis-peptide nucleic acids (bisPNAs)
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DNA assembly using bis-peptide nucleic acids (bisPNAs)

机译:使用双肽核酸(bisPNA)进行DNA组装

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DNA nanostructures are ordered oligonucleotide arrangements that have applications for DNA computers, crystallography, diagnostics and material sciences. Peptide nucleic acid (PNA) is a DNA/RNA mimic that offers many advantages for hybridization, but its potential for application in the field of DNA nanotechnology has yet to be thoroughly examined. We report the synthesis and characterization of tethered PNA molecules (bisPNAs) designed to assemble two individual DNA molecules through Watson–Crick base pairing. The spacer regions linking the PNAs were varied in length and contained amino acids with different electrostatic properties. We observed that bisPNAs effectively assembled oligonucleotides that were either the exact length of the PNA or that contained overhanging regions that projected outwards. In contrast, DNA assembly was much less efficient if the oligonucleotides contained overhanging regions that projected inwards. Surprisingly, the length of the spacer region between the PNA sequences did not greatly affect the efficiency of DNA assembly. Reasons for inefficient assembly of inward projecting DNA oligonucleotides include non-sequence-specific intramolecular interactions between the overhanging region of the bisPNA and steric conflicts that complicate simultaneous binding of two inward projecting strands. These results suggest that bisPNA molecules can be used for self-assembling DNA nanostructures provided that the arrangement of the hybridizing DNA oligonucleotides does not interfere with simultaneous hybridization to the bisPNA molecule.
机译:DNA纳米结构是有序的寡核苷酸排列,可用于DNA计算机,晶体学,诊断学和材料科学。肽核酸(PNA)是一种DNA / RNA模拟物,具有许多杂交优势,但是其在DNA纳米技术领域的应用潜力尚未得到充分检验。我们报告了通过Watson-Crick碱基配对组装2个单独的DNA分子的束缚PNA分子(bisPNA)的合成和表征。连接PNA的间隔区的长度是变化的,并且包含具有不同静电特性的氨基酸。我们观察到bisPNA有效组装了寡核苷酸,该寡核苷酸要么是PNA的确切长度,要么包含向外突出的突出区域。相反,如果寡核苷酸包含向内突出的突出区域,则DNA组装的效率将大大降低。令人惊讶的是,PNA序列之间的间隔区的长度并没有很大地影响DNA装配的效率。向内突出的DNA寡核苷酸组装效率低下的原因包括bisPNA的突出区域之间的非序列特异性分子内相互作用和使两个向内突出的链的同时结合复杂化的空间冲突。这些结果表明,只要杂交DNA寡核苷酸的排列不干扰与bisPNA分子的同时杂交,就可以将bisPNA分子用于自组装DNA纳米结构。

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