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2007 | OriginalPaper | Buchkapitel

39. Mechanics of Biological Nanotechnology

verfasst von : Rob Phillips, Prof., Prashant Purohit, Dr., Jané Kondev, Prof.

Erschienen in: Springer Handbook of Nanotechnology

Verlag: Springer Berlin Heidelberg

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Abstract

One of the most compelling areas to be touched by nanotechnology is biological science. Indeed, we will argue that there is a fascinating interplay between these two subjects, with biology as a key beneficiary of advances in nanotechnology as a result of a new generation of single-molecule experiments that complement traditional assays involving statistical assemblages of molecules. This interplay runs in both directions, with nanotechnology continually receiving inspiration from biology itself. The goal of this chapter is to highlight some representative examples of the exchange between biology and nanotechnology and to illustrate the role of nanomechanics in this field and how mechanical models have arisen in response to the emergence of this new field. Primary attention will be given to the particular example of the processes that attend the life cycle of bacterial viruses. Viruses feature many of the key lessons of biological nanotechnology, including self assembly, as evidenced in the spontaneous formation of the protein shell (capsid) within which the viral genome is packaged, and a motor-mediated biological process, namely the packaging of DNA in this capsid by a molecular motor that pushes the DNA into the capsid. We argue that these processes in viruses are a compelling real-world example of nature's nanotechnology, and they reveal the nanomechanical challenges that will continue to be confronted at the nanotechnology–biology interface.

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Zurück zum Zitat V. S. Reddy, H. A. Giesing, R. T. Morton, A. Kumar, C. B. Post, C. L. Brooks, J. E. Johnson: Energetics of quasiequivalence: Computational analysis of protein-protein interactions in icosahedral viruses, Biophys. J. 74 (1998) 546The parameters can be found at http://www.scripps.edu/pub/olson-web/gmm/autodock/ad305/Using_AutoDock_305.a.html V. S. Reddy, H. A. Giesing, R. T. Morton, A. Kumar, C. B. Post, C. L. Brooks, J. E. Johnson: Energetics of quasiequivalence: Computational analysis of protein-protein interactions in icosahedral viruses, Biophys. J. 74 (1998) 546The parameters can be found at http://​www.​scripps.​edu/​pub/​olson-web/​gmm/​autodock/​ad305/​Using_​AutoDock_​305.​a.​html
39.70.
Zurück zum Zitat V. S. Reddy, P. Natarajan, B. Okerberg, K. Li, K. V. Damodaran, R. T. Morton, C. L. Brooks, J. E. Johnson: Virus Particle Explorer (VIPER), a website for virus capsid structures and their computational analyses, J. Virol. 75 (2001) 11943The website can be found at The Viper website can be found at http://mmtsb.scripps.edu/viper V. S. Reddy, P. Natarajan, B. Okerberg, K. Li, K. V. Damodaran, R. T. Morton, C. L. Brooks, J. E. Johnson: Virus Particle Explorer (VIPER), a website for virus capsid structures and their computational analyses, J. Virol. 75 (2001) 11943The website can be found at The Viper website can be found at http://​mmtsb.​scripps.​edu/​viper
Metadaten
Titel
Mechanics of Biological Nanotechnology
verfasst von
Rob Phillips, Prof.
Prashant Purohit, Dr.
Jané Kondev, Prof.
Copyright-Jahr
2007
Verlag
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/978-3-540-29857-1_39

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