Designer Self-Assembling Peptide Materials
Understanding of macromolecular materials at the molecular level is becoming increasingly important for a new generation of nanomaterials for nanobiotechnology and other disciplines, namely, the design, synthesis, and fabrication of nanodevices at the molecular scale from bottom up. Basic engineerin...
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Published in | Macromolecular bioscience Vol. 7; no. 1; pp. 13 - 22 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
Weinheim
WILEY-VCH Verlag
05.01.2007
WILEY‐VCH Verlag Wiley-VCH |
Subjects | |
Online Access | Get full text |
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Summary: | Understanding of macromolecular materials at the molecular level is becoming increasingly important for a new generation of nanomaterials for nanobiotechnology and other disciplines, namely, the design, synthesis, and fabrication of nanodevices at the molecular scale from bottom up. Basic engineering principles for microfabrication can be learned through fully grasping the molecular self‐assembly and programmed assembly phenomena. Self‐ and programmed‐assembly phenomena are ubiquitous in nature. Two key elements in molecular macrobiological material productions are chemical complementarity and structural compatibility, both of which require weak and non‐covalent interactions that bring building blocks together during self‐assembly. Significant advances have been made during the 1990s at the interface of materials chemistry and biology. They include the design of helical ribbons, peptide nanofiber scaffolds for three‐dimensional cell cultures and tissue engineering, peptide surfactants for solubilizing and stabilizing diverse types of membrane proteins and their complexes, and molecular ink peptides for arbitrary printing and coating surfaces as well as coiled‐coil helical peptides for multi‐length scale fractal structures. These designer self‐assembling peptides have far reaching implications in a broad spectrum of applications in biology, medicine, nanobiotechnology, and nanobiomedical technology, some of which are beyond our current imaginations. |
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Bibliography: | ArticleID:MABI200600230 ONR ark:/67375/WNG-6B7NN7SG-M DARPA (BioComputing) DARPA/AFOSR NIH NSF - No. CCR-0122419 NSF-MIT BPEC ARO MURI/AFO istex:147FB839ACD8528E13A516C4A726C48A0A7E766D DARPA/Naval Research Labs ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23 |
ISSN: | 1616-5187 1616-5195 |
DOI: | 10.1002/mabi.200600230 |