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构建一种新型噬菌粒以生产定制的DNA折纸支架。

Construction of a novel phagemid to produce custom DNA origami scaffolds.

作者信息

Nafisi Parsa M, Aksel Tural, Douglas Shawn M

机构信息

Department of Cellular and Molecular Pharmacology, University of California, San Francisco, San Francisco, CA, USA.

出版信息

Synth Biol (Oxf). 2018 Jan;3(1). doi: 10.1093/synbio/ysy015. Epub 2018 Aug 9.

Abstract

DNA origami, a method for constructing nanoscale objects, relies on a long single strand of DNA to act as the 'scaffold' to template assembly of numerous short DNA oligonucleotide 'staples'. The ability to generate custom scaffold sequences can greatly benefit DNA origami design processes. Custom scaffold sequences can provide better control of the overall size of the final object and better control of low-level structural details, such as locations of specific base pairs within an object. Filamentous bacteriophages and related phagemids can work well as sources of custom scaffold DNA. However, scaffolds derived from phages require inclusion of multi-kilobase DNA sequences in order to grow in host bacteria, and those sequences cannot be altered or removed. These fixed-sequence regions constrain the design possibilities of DNA origami. Here, we report the construction of a novel phagemid, pScaf, to produce scaffolds that have a custom sequence with a much smaller fixed region of 393 bases. We used pScaf to generate new scaffolds ranging in size from 1512 to 10 080 bases and demonstrated their use in various DNA origami shapes and assemblies. We anticipate our pScaf phagemid will enhance development of the DNA origami method and its future applications.

摘要

DNA折纸术是一种构建纳米级物体的方法,它依靠一条长的单链DNA作为“支架”,用于众多短DNA寡核苷酸“钉状物”的模板组装。生成定制支架序列的能力可极大地有益于DNA折纸术的设计过程。定制支架序列能够更好地控制最终物体的整体尺寸,并能更好地控制低层次的结构细节,比如物体内特定碱基对的位置。丝状噬菌体及相关噬菌粒可作为定制支架DNA的良好来源。然而,源自噬菌体的支架需要包含多千碱基的DNA序列才能在宿主细菌中生长,并且这些序列无法被改变或去除。这些固定序列区域限制了DNA折纸术的设计可能性。在此,我们报告了一种新型噬菌粒pScaf的构建,以产生具有定制序列且固定区域仅393个碱基的小得多的支架。我们使用pScaf生成了大小从1512到10080个碱基不等的新支架,并展示了它们在各种DNA折纸形状和组装中的应用。我们预计我们的pScaf噬菌粒将促进DNA折纸术方法的发展及其未来应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d225/7445877/644cec78040d/ysy015f1.jpg

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