Dynamic DNA Nanotubes: Reversible Switching between Single and Double-Stranded Forms, and Effect of Base Deletions

被引:38
|
作者
Rahbani, Janane F. [1 ]
Hariri, Amani A.
Cosa, Gonzalo
Sleiman, Hanadi F.
机构
[1] McGill Univ, Dept Chem, Montreal, PQ H3A 0B8, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
DNA nanotechnology; nanotubes; dynamic behavior; stimuli responsive; single-molecule fluorescence; STRUCTURAL BASIS; ORIGAMI; NANOSTRUCTURES; PROTEINS; KINETICS; 6-HELIX; RELEASE; BINDING; GROWTH;
D O I
10.1021/acsnano.5b04387
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
DNA nanotubes hold great potential as drug delivery vehicles and as programmable templates for the organization of materials and biomolecules. Existing methods for their construction produce assemblies that are entirely double-stranded and rigid, and thus have limited intrinsic dynamic character, or they rely on chemically modified and ligated DNA structures. Here, we report a simple and efficient synthesis of DNA nanotubes from 11 short unmodified strands, and the study of their dynamic behavior by atomic force microscopy and in situ single molecule fluorescence microscopy. This method allows the programmable introduction of DNA structural changes within the repeat units of the tubes. We generate and study fully double-stranded nanotubes, and convert them to nanotubes with one, two and three single-stranded sides, using strand displacement strategies. The nanotubes can be reversibly switched between these forms without compromising their stability and micron-scale lengths. We then site-specifically introduce DNA strands that shorten two sides of the nanotubes, while keeping the length of the third side. The nanotubes undergo bending with increased length mismatch between their sides, until the distortion is significant enough to shorten them, as measured by AFM and single-molecule fluorescence photobleaching experiments. The method presented here produces dynamic and robust nanotubes that can potentially behave as actuators, and allows their site-specific addressability while using a minimal number of component strands.
引用
收藏
页码:11898 / 11908
页数:11
相关论文
共 50 条
  • [1] Reversible photopadlocking on double-stranded DNA
    Fujimoto, Kenzo
    Matsuda, Shigeo
    Yoshimura, Yoshinaga
    Ami, Takehiro
    Saito, Isao
    CHEMICAL COMMUNICATIONS, 2007, (28) : 2968 - 2970
  • [2] Thermal denaturation of double-stranded DNA: Effect of base stacking
    Kohandel, M
    Ha, BY
    PHYSICAL REVIEW E, 2006, 73 (01)
  • [3] Double-Stranded DNA Matrix for Photosensitization Switching
    Wang, Yanying
    Hu, Hao
    Dong, Tianyu
    Mansour, Hayam
    Zhang, Xinfeng
    Li, Feng
    Wu, Peng
    CCS CHEMISTRY, 2021, 3 (09): : 2394 - 2404
  • [4] Transitions of Double-Stranded DNA Between the A- and B-Forms
    Waters, James T.
    Lu, Xiang-Jun
    Galindo-Murillo, Rodrigo
    Gumbart, James C.
    Kim, Harold D.
    Cheatham, Thomas E., III
    Harvey, Stephen C.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2016, 120 (33): : 8449 - 8456
  • [5] MOLECULAR MECHANISMS OF DELETIONS INDUCED BY DOUBLE-STRANDED DNA BREAKS
    SALGANIK, RI
    TIMCHENKO, TV
    DIANOV, GL
    DOKLADY AKADEMII NAUK SSSR, 1987, 296 (01): : 226 - 230
  • [6] REVERSIBLE ACCUMULATION OF DOUBLE-STRANDED AND SINGLE-STRANDED-DNA BREAKS IN DNA IN GROWTH-ARRESTED CELLS
    SYAKSTE, NI
    SYAKSTE, TG
    ZALESKAYA, ND
    BULLETIN OF EXPERIMENTAL BIOLOGY AND MEDICINE, 1986, 102 (08) : 1059 - 1061
  • [7] Reversible electrical denaturation of double-stranded DNA.
    Hsieh, HV
    Purvis, DR
    Walker, GT
    BIOPHYSICAL JOURNAL, 1999, 76 (01) : A455 - A455
  • [8] Interaction of double-stranded DNA inside single-walled carbon nanotubes
    Alshehri, Mansoor H.
    Cox, Barry J.
    Hill, James M.
    JOURNAL OF MATHEMATICAL CHEMISTRY, 2012, 50 (09) : 2512 - 2526
  • [9] Interaction of double-stranded DNA inside single-walled carbon nanotubes
    Mansoor H. Alshehri
    Barry J. Cox
    James M. Hill
    Journal of Mathematical Chemistry, 2012, 50 : 2512 - 2526
  • [10] Fractionation of nucleic acids into single-stranded and double-stranded forms
    Beld, M
    Sol, C
    Goudsmit, J
    Boom, R
    NUCLEIC ACIDS RESEARCH, 1996, 24 (13) : 2618 - 2619