Malmström Jenny, Wason Akshita, Roache Fergus, Yewdall N Amy, Radjainia Mazdak, Wei Shanghai, Higgins Michael J, Williams David E, Gerrard Juliet A, Travas-Sejdic Jadranka
MacDiarmid Institute for Advanced Materials and Nanotechnology, New Zealand.
Nanoscale. 2015 Dec 21;7(47):19940-8. doi: 10.1039/c5nr05476a. Epub 2015 Oct 26.
This study explores the use of block copolymer self-assembly to organize Lsmα, a protein which forms stable doughnut-shaped heptameric structures. Here, we have explored the idea that 2-D crystalline arrays of protein filaments can be prepared by stacking doughnut shaped Lsmα protein into the poly(ethylene oxide) blocks of a hexagonal microphase-separated polystyrene-b-polyethylene oxide (PS-b-PEO) block copolymer. We were able to demonstrate the coordinated assembly of such a complex hierarchical nanostructure. The key to success was the choice of solvent systems and protein functionalization that achieved sufficient compatibility whilst still promoting assembly. Unambiguous characterisation of these structures is difficult; however AFM and TEM measurements confirmed that the protein was sequestered into the PEO blocks. The use of a protein that assembles into stackable doughnuts offers the possibility of assembling nanoscale optical, magnetic and electronic structures.
本研究探索了利用嵌段共聚物自组装来组织Lsmα,Lsmα是一种能形成稳定的甜甜圈形状七聚体结构的蛋白质。在此,我们探讨了这样一种想法:通过将甜甜圈形状的Lsmα蛋白堆叠到六方微相分离的聚苯乙烯- b -聚环氧乙烷(PS- b -PEO)嵌段共聚物的聚环氧乙烷嵌段中,可以制备蛋白质丝的二维晶体阵列。我们能够证明这种复杂的分级纳米结构的协同组装。成功的关键在于选择溶剂系统和蛋白质功能化,既要实现足够的相容性,又要促进组装。对这些结构进行明确的表征很困难;然而,原子力显微镜(AFM)和透射电子显微镜(TEM)测量证实蛋白质被隔离到聚环氧乙烷嵌段中。使用能组装成可堆叠甜甜圈的蛋白质为组装纳米级光学、磁性和电子结构提供了可能性。