Biomolecular motors in nanoscale materials, devices, and systems

Biomolecular motors are a unique class of intracellular proteins that are fundamental to a considerable number of physiological functions such as DNA replication, organelle trafficking, and cell division. The efficient transformation of chemical energy into useful work by these proteins provides str...

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Veröffentlicht in:Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology 2014-03, Vol.6 (2), p.163-177
Hauptverfasser: Bachand, George D., Bouxsein, Nathan F., VanDelinder, Virginia, Bachand, Marlene
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Sprache:eng
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Zusammenfassung:Biomolecular motors are a unique class of intracellular proteins that are fundamental to a considerable number of physiological functions such as DNA replication, organelle trafficking, and cell division. The efficient transformation of chemical energy into useful work by these proteins provides strong motivation for their utilization as nanoscale actuators in ex vivo, meso‐ and macro‐scale hybrid systems. Biomolecular motors involved in cytoskeletal transport are quite attractive models within this context due to their ability to direct the transport of nano‐/micro‐scale objects at rates significantly greater than diffusion, and in the absence of bulk fluid flow. As in living organisms, biomolecular motors involved in cytoskeletal transport (i.e., kinesin, dynein, and myosin) function outside of their native environment to dissipatively self‐assemble biological, biomimetic, and hybrid nanostructures that exhibit nonequilibrium behaviors such as self‐healing. These systems also provide nanofluidic transport function in hybrid nanodevices where target analytes are actively captured, sorted, and transported for autonomous sensing and analytical applications. Moving forward, the implementation of biomolecular motors will continue to enable a wide range of unique functionalities that are presently limited to living systems, and support the development of nanoscale systems for addressing critical engineering challenges. This article is categorized under: Diagnostic Tools > Biosensing Diagnostic Tools > Diagnostic Nanodevices Nanotechnology Approaches to Biology > Nanoscale Systems in Biology
ISSN:1939-5116
1939-0041
DOI:10.1002/wnan.1252