Engineering nanoscale order into a designed protein fiber

被引:198
作者
Papapostolou, David
Smith, Andrew M.
Atkins, Edward D. T.
Oliver, Seb J.
Ryadnov, Maxim G.
Serpell, Louise C.
Woolfson, Derek N. [1 ]
机构
[1] Univ Bristol, Sch Chem, Bristol BS8 1TS, Avon, England
[2] Univ Sussex, Sch Life Sci, Dept Biochem, Brighton BN1 9QG, E Sussex, England
[3] Univ Bristol, Dept Phys, Bristol BS8 1TL, Avon, England
[4] Univ Bristol, Dept Biochem, Bristol BS8 1TD, Avon, England
[5] Univ Sussex, Dept Phys, Brighton BN1 9QH, E Sussex, England
基金
英国生物技术与生命科学研究理事会;
关键词
bionanoscience; nanofibers; pepticle assembly; rational protein design; self-assembly;
D O I
10.1073/pnas.0700801104
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
We have established a designed system comprising two peptides that coassemble to form long, thickened protein fibers in water. This system can be rationally engineered to alter fiber assembly, stability, and morphology. Here, we show that rational mutations to our original peptide designs lead to structures with a remarkable level of order on the nanoscale that mimics certain natural fibrous assemblies. In the engineered system, the peptides assemble into two-stranded a-helical coiled-coil rods, which pack in axial register in a 3D hexagonal lattice of size 1.824 nm, and with a periodicity of 4.2 nm along the fiber axis. This model is supported by both electron microscopy and x-ray diffraction. Specifically, the fibers display surface striations separated by nanoscale distances that precisely match the 4.2-nm length expected for peptides configured as a-helices as designed. These patterns extend unbroken across the widths (>= 50 nm) and lengths (> 10 mu m) of the fibers. Furthermore, the spacing of the striations can be altered predictably by changing the length of the peptides. These features reflect a high level of internal order within the fibers introduced by the peptide-design process. To our knowledge, this exceptional order, and its persistence along and across the fibers, is unique in a biomimetic system. This work represents a step toward rational bottom-up assembly of nanostructured fibrous biomaterials for potential applications in synthetic biology and nanobiotechnology.
引用
收藏
页码:10853 / 10858
页数:6
相关论文
共 53 条
[11]   Corneal collagen fibril structure in three dimensions: Structural insights into fibril assembly, mechanical properties, and tissue organization [J].
Holmes, DF ;
Gilpin, CJ ;
Baldock, C ;
Ziese, U ;
Koster, AJ ;
Kadler, KE .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (13) :7307-7312
[12]   Novel peptide-based biomaterial scaffolds for tissue engineering [J].
Holmes, TC .
TRENDS IN BIOTECHNOLOGY, 2002, 20 (01) :16-21
[13]   The architectonics of programmable RNA and DNA nanostructures [J].
Jaeger, Luc ;
Chworos, Arkadiusz .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2006, 16 (04) :531-543
[14]   De novo design of α-helical coiled coils and bundles:: models for the development of protein-design principles [J].
Kohn, WD ;
Hodges, RS .
TRENDS IN BIOTECHNOLOGY, 1998, 16 (09) :379-389
[15]  
Lupas A, 1996, TRENDS BIOCHEM SCI, V21, P375, DOI 10.1016/S0968-0004(96)90126-7
[16]   The structure of α-helical coiled coils [J].
Lupas, AN ;
Gruber, M .
FIBROUS PROTEINS: COILED-COILS, COLLAGEN AND ELASTOMERS, 2005, 70 :37-+
[17]   Engineered and designed peptide-based fibrous biomaterials [J].
MacPhee, CE ;
Woolfson, DN .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2004, 8 (02) :141-149
[18]  
MAKIN OS, 2007, IN PRESS J APPL CRYS
[19]   Coiled coil domains: Stability, specificity, and biological implications [J].
Mason, JM ;
Arndt, KM .
CHEMBIOCHEM, 2004, 5 (02) :170-176
[20]   PERIODIC CHARGE-DISTRIBUTION IN THE INTERMEDIATE FILAMENT PROTEINS DESMIN AND VIMENTIN [J].
MCLACHLAN, AD ;
STEWART, M .
JOURNAL OF MOLECULAR BIOLOGY, 1982, 162 (03) :693-698