DNA Tile Self-Assembly for 3D-Surfaces: Towards Genus Identification

Florent Becker, Shahrzad Heydarshahi
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引用次数: 1

Abstract

We introduce a new DNA tile self-assembly model: the Surface Flexible Tile Assembly Model (SFTAM), where 2D tiles are placed on host 3D surfaces made of axis-parallel unit cubes glued together by their faces, called polycubes. The bonds are flexible, so that the assembly can bind on the edges of the polycube. We are interested in the study of SFTAM self-assemblies on 3D surfaces which are not always embeddable in the Euclidean plane, in order to compare their different behaviors and to compute the topological properties of the host surfaces. We focus on a family of polycubes called cuboids. Order-0 cuboids are polycubes that have six rectangular faces, and order-1 cuboids are made from two order-0 cuboids by substracting one from the other. Thus, order-1 cuboids can be of genus 0 or of genus 1 (then they contain a tunnel). We are interested in the genus of these structures, and we present a SFTAM tile assembly system that determines the genus of a given order-1 cuboid. The SFTAM tile assembly system which we design, contains a specific set $Y$ of tile types with the following properties. If the assembly is made on a host order-1 cuboid $C$ of genus 0, no tile of $Y$ appears in any producible assembly, but if $C$ has genus 1, every terminal assembly contains at least one tile of $Y$. Thus, we are able to distinguish the host surfaces according to their genus, by the tiles used in the assembly. This system is specific to order-1 cuboids but the techniques we use should be generalizable to other families of shapes.
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用于三维表面的DNA瓦片自组装:朝向属属识别
我们介绍了一种新的DNA瓦片自组装模型:表面柔性瓦片组装模型(SFTAM),其中2D瓦片被放置在主体3D表面上,该表面由轴平行的单元立方体通过其表面粘合在一起,称为聚立方体。这种结合是柔性的,因此组件可以结合在聚管的边缘上。我们感兴趣的是研究三维表面上的SFTAM自组装,这些表面并不总是可嵌入欧几里得平面中,以便比较它们的不同行为并计算主表面的拓扑性质。我们关注的是一个叫做长方体的多立方体家族。0阶长方体是具有六个矩形面的多边形,1阶长方体由两个0阶长方形体通过将一个从另一个减去而制成。因此,1阶长方体可以是0属或1属(那么它们包含一个隧道)。我们对这些结构的亏格感兴趣,并且我们提出了一个SFTAM瓦片组装系统,该系统确定给定的1阶长方体的亏格。我们设计的SFTAM瓷砖组装系统包含一组特定的瓷砖类型$Y$,具有以下特性。如果该组件是在属0的主订单-1长方体$C$上制作的,则在任何可生产组件中都不会出现$Y$的瓦片,但如果$C$具有属1,则每个终端组件至少包含一个$Y$瓦片。因此,我们能够通过组装中使用的瓷砖,根据主体表面的属来区分主体表面。这个系统是特定于1阶长方体的,但我们使用的技术应该可以推广到其他形状族。
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