Department of Chemistry, Emory University, Atlanta, Georgia 30322, United States.
Paul Scherrer Institut, CH-5232 Villigen, Switzerland.
J Am Chem Soc. 2020 Nov 25;142(47):19956-19968. doi: 10.1021/jacs.0c08174. Epub 2020 Nov 10.
The fabrication of dynamic, transformable biomaterials that respond to environmental cues represents a significant step forward in the development of synthetic materials that rival their highly functional, natural counterparts. Here, we describe the design and synthesis of crystalline supramolecular architectures from charge-complementary heteromeric pairs of collagen-mimetic peptides (CMPs). Under appropriate conditions, CMP pairs spontaneously assemble into either 1D ultraporous (pore diameter >100 nm) tubes or 2D bilayer nanosheets due to the structural asymmetry that arises from heteromeric self-association. Crystalline collagen tubes represent a heretofore unobserved morphology of this common biomaterial. In-depth structural characterization from a suite of biophysical methods, including TEM, AFM, high-resolution cryo-EM, and SAXS/WAXS measurements, reveals that the sheet and tube assemblies possess a similar underlying lattice structure. The experimental evidence suggests that the tubular structures are a consequence of the self-scrolling of incipient 2D layers of collagen triple helices and that the scrolling direction determines the formation of two distinct structural isoforms. Furthermore, we show that nanosheets and tubes can spontaneously interconvert through manipulation of the assembly pH and systematic adjustment of the CMP sequence. Altogether, we establish initial guidelines for the construction of dynamically responsive 1D and 2D assemblies that undergo a structurally programmed morphological transition.
制备对环境刺激做出响应的动态、可变形生物材料,代表着在合成材料的发展方面向前迈出了重要的一步,这些材料可与具有高度功能性的天然材料相媲美。在这里,我们描述了由电荷互补的胶原模拟肽(CMP)异质二聚体设计和合成的结晶超分子结构。在适当的条件下,由于异质自组装产生的结构不对称性,CMP 对会自发组装成一维超多孔(孔径>100nm)管或二维双层纳米片。结晶胶原管代表了这种常见生物材料以前未观察到的形态。一系列生物物理方法,包括 TEM、AFM、高分辨率 cryo-EM 和 SAXS/WAXS 测量的深入结构表征表明,片层和管组装具有相似的基本晶格结构。实验证据表明,管状结构是胶原三螺旋初始二维层自卷曲的结果,并且卷曲方向决定了两种不同结构异构体的形成。此外,我们表明纳米片和管可以通过操纵组装 pH 值和系统调整 CMP 序列而自发相互转化。总的来说,我们为构建经历结构编程形态转变的动态响应的 1D 和 2D 组装体建立了初步的指导原则。