Abstract How cells respond to mechanical forces by converting them into biological signals underlie crucial cellular processes. Our understanding of mechanotransduction has been hindered by technical barriers, including limitations in our ability to effectively apply low range piconewton forces to specific mechanoreceptors on cell membranes without laborious and repetitive trials. To overcome these challenges we introduce the Nano-winch, a robust, easily assembled, programmable DNA origami-based molecular actuator. The Nano-winch is designed to manipulate multiple mechanoreceptors in parallel by exerting fine-tuned, low- piconewton forces in autonomous and remotely activated modes via adjustable single- and double-stranded DNA linkages, res...
In living cells and organisms there is a myriad of biomolecules that are able to activate specific c...
Biomaterial substrates can be engineered to present topographical signals to cells which, through in...
How proteins respond to pulling forces, or protein nanomechanics, is a key contributor to the form a...
International audienceAbstract How cells respond to mechanical forces by converting them into biolog...
Progress in our understanding of mechanotransduction events requires noninvasive methods for the man...
Forces in biological systems are typically investigated at the single-molecule level with atomic for...
Mechanical signaling involved in molecular interactions lies at the heart of materials science and b...
Beyond the more common chemical delivery strategies, several physical techniques are used to open th...
Mechanical forces are central to most, if not all, biological processes, including cell development,...
Engineering: 1st Place (The Ohio State University Edward F. Hayes Graduate Research Forum)Biological...
The design of dynamic, reconfigurable devices is crucial for the bottom-up construction of artificia...
Biomaterial substrates can be engineered to present topographical signals to cells which, through in...
Tissues morphogenesis and homeostasis involve the spatiotemporal regulation of mechanics at multiple...
Spatiotemporal interrogation of signal transduction at the single-cell level is necessary to answer ...
The majority of (mammalian) cells in our body are sensitive to mechanical forces, but little work ha...
In living cells and organisms there is a myriad of biomolecules that are able to activate specific c...
Biomaterial substrates can be engineered to present topographical signals to cells which, through in...
How proteins respond to pulling forces, or protein nanomechanics, is a key contributor to the form a...
International audienceAbstract How cells respond to mechanical forces by converting them into biolog...
Progress in our understanding of mechanotransduction events requires noninvasive methods for the man...
Forces in biological systems are typically investigated at the single-molecule level with atomic for...
Mechanical signaling involved in molecular interactions lies at the heart of materials science and b...
Beyond the more common chemical delivery strategies, several physical techniques are used to open th...
Mechanical forces are central to most, if not all, biological processes, including cell development,...
Engineering: 1st Place (The Ohio State University Edward F. Hayes Graduate Research Forum)Biological...
The design of dynamic, reconfigurable devices is crucial for the bottom-up construction of artificia...
Biomaterial substrates can be engineered to present topographical signals to cells which, through in...
Tissues morphogenesis and homeostasis involve the spatiotemporal regulation of mechanics at multiple...
Spatiotemporal interrogation of signal transduction at the single-cell level is necessary to answer ...
The majority of (mammalian) cells in our body are sensitive to mechanical forces, but little work ha...
In living cells and organisms there is a myriad of biomolecules that are able to activate specific c...
Biomaterial substrates can be engineered to present topographical signals to cells which, through in...
How proteins respond to pulling forces, or protein nanomechanics, is a key contributor to the form a...