Monomer control for error tolerance in DNA self-assembly

被引:0
|
作者
Jang, Byunghyun [1 ]
Kim, Yong-Bin [1 ]
Lombardi, Fabrizio [1 ]
机构
[1] NE Univ, Dept Elect & Comp Engn, Boston, MA 02115 USA
来源
JOURNAL OF ELECTRONIC TESTING-THEORY AND APPLICATIONS | 2008年 / 24卷 / 1-3期
关键词
DNA self-assembly; error tolerance; molecular manufacturing; tiling;
D O I
10.1007/s10836-007-5016-4
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper proposes the control of monomer concentration as a novel improvement of the kinetic Tile Assembly Model (kTAM) to reduce the error rate in DNA self-assembly. Tolerance to errors in this process is very important for manufacturing scaffolds for highly dense ICs; the proposed technique significantly decreases error rates (i.e. it increases error tolerance) by controlling the concentration of the monomers (tiles) for a specific pattern to be assembled. By profiling, this feature is shown to be applicable to different tile sets. A stochastic analysis based on a new state model is presented. The analysis is extended to the cases of single, double and triple bondings. The kinetic trap model is modified to account for the different monomer concentrations. Different scenarios (such as dynamic and adaptive) for monomer control are proposed: in the dynamic (adaptive) control case, the concentration of each tile is assessed based on the current (average) demand during growth as found by profiling the pattern. Significant error rate reductions are found by evaluating the proposed schemes compared to a scheme with constant concentration. One of the significant advantages of the proposed schemes is that it doesn't entail an overhead such as increase in size and a slow growth, while still achieving a significant reduction in error rate. Simulation results are provided.
引用
收藏
页码:271 / 284
页数:14
相关论文
共 50 条
  • [21] DNA Self-Assembly Optimization by Betaine and Its Analogs
    Sun, Zhengyang
    Shen, Yue
    Wang, Wen
    Wei, Bryan
    SMALL, 2024, 20 (36)
  • [22] Chiral plasmonic nanostructures via DNA self-assembly
    Wang, Meng
    Dong, Jinyi
    Wang, Qiangbin
    CHINESE SCIENCE BULLETIN-CHINESE, 2019, 64 (10): : 1001 - 1007
  • [23] Application of DNA Self-assembly on Maximum Clique Problem
    Cui, Guangzhao
    Li, Cuiling
    Li, Haobin
    Zhang, Xuncai
    Li, Xiaoguan
    ADVANCES IN COMPUTATIONAL INTELLIGENCE, 2009, 61 : 359 - +
  • [24] DNA-programmed self-assembly of photonic nanoarchitectures
    Xiang Lan
    Qiangbin Wang
    NPG Asia Materials, 2014, 6 : e97 - e97
  • [25] A 'tile' tale: Hierarchical self-assembly of DNA lattices
    Chandrasekaran, Arun Richard
    Zhuo, Rebecca
    APPLIED MATERIALS TODAY, 2016, 2 : 7 - 16
  • [26] DNA-programmed self-assembly of photonic nanoarchitectures
    Lan, Xiang
    Wang, Qiangbin
    NPG ASIA MATERIALS, 2014, 6 : e97 - e97
  • [27] Multiobjective Genetic Algorithm for Optimized DNA Sequences for DNA Self-assembly
    Zhang, Kai
    Yi, Jiaren
    Liu, Jun
    Hu, Wei
    BIO-INSPIRED COMPUTING - THEORIES AND APPLICATIONS, BIC-TA 2014, 2014, 472 : 591 - 597
  • [28] Error tolerant DNA self-assembly using (2k-1) x (2k-1) snake tile sets
    Ma, Xiaojun
    Huang, Jing
    Lombardi, Fabrizio
    IEEE TRANSACTIONS ON NANOBIOSCIENCE, 2008, 7 (01) : 56 - 64
  • [29] DNA Self-Assembly for the Design of Advanced Functional Materials and Nanocomposites
    Calais, Theo
    Bancaud, Aurelien
    Esteve, Alain
    Rossi, Carole
    2019 IEEE 9TH INTERNATIONAL NANOELECTRONICS CONFERENCES (INEC), 2019,
  • [30] Self-Assembly of DNA Rings from Scaffold-Free DNA Tiles
    Yang, Yang
    Zhao, Zhao
    Zhang, Fei
    Nangreave, Jeanette
    Liu, Yan
    Yan, Hao
    NANO LETTERS, 2013, 13 (04) : 1862 - 1866