Highly Polyvalent DNA Motors Generate 100+pN of Force via Autochemophoresis

被引:42
作者
Blanchard, Aaron T. [1 ,2 ]
Bazrafshan, Alisina S. [3 ]
Yi, Jacob [3 ]
Eisman, Julia T. [3 ]
Yehl, Kevin M. [3 ,5 ]
Bian, Teng [4 ]
Mugler, Andrew [4 ]
Salaita, Khalid [1 ,2 ,3 ]
机构
[1] Georgia Inst Technol, Wallace H Coulter Dept Biomed Engn, Atlanta, GA 30322 USA
[2] Emory Univ, Atlanta, GA 30322 USA
[3] Emory Univ, Dept Chem, Atlanta, GA 30322 USA
[4] Purdue Univ, Dept Phys, W Lafayette, IN 47907 USA
[5] MIT, Dept Biol Engn, 77 Massachusetts Ave, Cambridge, MA 02139 USA
基金
美国国家科学基金会;
关键词
Nanomachines; DNA nanotechnology; chemophoresis; artificial motors; DNA walkers; DNA mechanotechnology; SINGLE; WALKER; TRANSPORT; WALKING; DESIGN; MECHANISM; INTEGRIN;
D O I
10.1021/acs.nanolett.9b02311
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Motor proteins such as myosin, kinesin, and dynein are essential to eukaryotic life and power countless processes including muscle contraction, wound closure, cargo transport, and cell division. The design of synthetic nanomachines that can reproduce the functions of these motors is a longstanding goal in the field of nanotechnology. DNA walkers, which are programmed to "walk" along defined tracks via the burnt bridge Brownian ratchet mechanism, are among the most promising synthetic mimics of these motor proteins. While these DNA-based motors can perform useful tasks such as cargo transport, they have not been shown to be capable of cooperating to generate large collective forces for tasks akin to muscle contraction. In this work, we demonstrate that highly polyvalent DNA motors (HPDMs), which can be viewed as cooperative teams of thousands of DNA walkers attached to a microsphere, can generate and sustain substantial forces in the 100+ pN regime. Specifically, we show that HPDMs can generate forces that can unzip and shear DNA duplexes (similar to 12 and similar to 50 pN, respectively) and rupture biotin-streptavidin bonds (similar to 100-150 pN). To help explain these results, we present a variant of the burnt-bridge Brownian ratchet mechanism that we term autochemophoresis, wherein many individual force generating units generate a self-propagating chemomechanical gradient that produces large collective forces. In addition, we demonstrate the potential of this work to impact future engineering applications by harnessing HPDM autochemophoresis to deposit "molecular ink" via mechanical bond rupture. This work expands the capabilities of synthetic DNA motors to mimic the force-generating functions of biological motors. Our work also builds upon previous observations of autochemophoresis in bacterial transport processes, indicating that autochemophoresis may be a fundamental mechanism of pN-scale force generation in living systems.
引用
收藏
页码:6977 / 6986
页数:10
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