TY - JOUR
T1 - Hierarchical propagation of structural features in protein nanomaterials
AU - Kamada, Ayaka
AU - Herneke, Anja
AU - Lopez-Sanchez, Patricia
AU - Harder, Constantin
AU - Ornithopoulou, Eirini
AU - Wu, Qiong
AU - Wei, Xinfeng
AU - Schwartzkopf, Matthias
AU - Mueller-Buschbaum, Peter
AU - Roth, Stephan
AU - Hedenqvist, Mikael S.
AU - Langton, Maud
AU - Lendel, Christofer
PY - 2022
Y1 - 2022
N2 - Natural high-performance materials have inspired the exploration of novel materials from protein building blocks. The ability of proteins to self-organize into amyloid-like nanofibrils has opened an avenue to new materials by hierarchical assembly processes. As the mechanisms by which proteins form nanofibrils are becoming clear, the challenge now is to understand how the nanofibrils can be designed to form larger structures with defined order. We here report the spontaneous and reproducible formation of ordered microstructure in solution cast films from whey protein nanofibrils. The structural features are directly connected to the nanostructure of the protein fibrils, which is itself determined by the molecular structure of the building blocks. Hence, a hierarchical assembly process ranging over more than six orders of magnitude in size is described. The fibril length distribution is found to be the main determinant of the microstructure and the assembly process originates in restricted capillary flow induced by the solvent evaporation. We demonstrate that the structural features can be switched on and off by controlling the length distribution or the evaporation rate without losing the functional properties of the protein nanofibrils.
AB - Natural high-performance materials have inspired the exploration of novel materials from protein building blocks. The ability of proteins to self-organize into amyloid-like nanofibrils has opened an avenue to new materials by hierarchical assembly processes. As the mechanisms by which proteins form nanofibrils are becoming clear, the challenge now is to understand how the nanofibrils can be designed to form larger structures with defined order. We here report the spontaneous and reproducible formation of ordered microstructure in solution cast films from whey protein nanofibrils. The structural features are directly connected to the nanostructure of the protein fibrils, which is itself determined by the molecular structure of the building blocks. Hence, a hierarchical assembly process ranging over more than six orders of magnitude in size is described. The fibril length distribution is found to be the main determinant of the microstructure and the assembly process originates in restricted capillary flow induced by the solvent evaporation. We demonstrate that the structural features can be switched on and off by controlling the length distribution or the evaporation rate without losing the functional properties of the protein nanofibrils.
UR - https://res.slu.se/id/publ/116096
U2 - 10.1039/d1nr05571b
DO - 10.1039/d1nr05571b
M3 - Journal article
SN - 2040-3364
VL - 14
SP - 2502
EP - 2510
JO - Nanoscale
JF - Nanoscale
IS - 6
ER -