Natural strategies for the molecular engineer
- 11 September 2002
- journal article
- tutorial
- Published by IOP Publishing in Nanotechnology
- Vol. 13 (5) , R15-R28
- https://doi.org/10.1088/0957-4484/13/5/201
Abstract
The idea of nature as engineer is an old one, but the realization that this metaphor can be extended (should we say retracted?) to the molecular scale has become common currency only over the past two decades or so. Two reasons for this are perhaps paramount. First, the picture of the cell has been transformed from that of a 'wet chemical' melange—'a vessel, filled with a homogeneous solution, in which all chemical processes take place', as Franz Hofmeister put it in 1901—into an image of a sort of fluid factory, a production plant in which molecular machinery works in near-fantastic orchestration to generate complex products from raw materials. This mechanism is self-assembling, self-repairing and self-replicating. The concept of proteins and nucleic acids as 'molecular machines' is now a mainstream one in cell biology. Second, technological advances have made us accustomed to the idea that engineering can be conducted at scales too small to see with the naked eye, yet employing principles—mechanical, electrical, hydraulic, optical, tribological—familiar from the macroscopic world. Molecular electronics and computing, microelectromechanical devices and nanotechnology, are now mainstream concepts, and are validated by at least some degree of physical realization. In this article I shall briefly review some of nature's principles and practices at the molecular, supramolecular and submicrometre scales, and attempt to illustrate how these can be adapted for developing synthetic chemical and materials systems sharing the kind of superior properties and special functions that natural systems exhibit.Keywords
This publication has 72 references indexed in Scilit:
- The first successful investigation into a cyclodextrin-based enzyme model as an efficient catalyst for luminol chemiluminescent reactionChemical Communications, 2002
- Millisecond-timescale motions contribute to the function of the bacterial response regulator protein Spo0FNature, 1999
- Enzyme dynamics and hydrogen tunnelling in a thermophilic alcohol dehydrogenaseNature, 1999
- Tailorable, visible light emission from silicon nanocrystalsApplied Physics Letters, 1999
- Biomimetic Reactions Catalyzed by Cyclodextrins and Their DerivativesChemical Reviews, 1998
- The conformation of membranesNature, 1991
- Molecular Architecture and Function of Polymeric Oriented Systems: Models for the Study of Organization, Surface Recognition, and Dynamics of BiomembranesAngewandte Chemie International Edition in English, 1988
- A cobalt oxygen carrier in zeolite Y. A molecular "ship in a bottle"Inorganic Chemistry, 1986
- .beta.-Cyclodextrinylbisimidazole, a model for ribonucleaseJournal of the American Chemical Society, 1978
- Selective aromatic substitution within a cyclodextrin mixed complexJournal of the American Chemical Society, 1969