Affiliation:
1. Laboratory of Soft Matter Physics, Institute of Physics Chinese Academy of Sciences Beijing China
2. Physical Sciences Division Pacific Northwest National Laboratory Richland Washington USA
3. Department of Materials Science and Engineering University of Washington Seattle Washington USA
Abstract
AbstractProteins play a vital role in different biological processes by forming complexes through precise folding with exclusive inter‐ and intra‐molecular interactions. Understanding the structural and regulatory mechanisms underlying protein complex formation provides insights into biophysical processes. Furthermore, the principle of protein assembly gives guidelines for new biomimetic materials with potential applications in medicine, energy, and nanotechnology. Atomic force microscopy (AFM) is a powerful tool for investigating protein assembly and interactions across spatial scales (single molecules to cells) and temporal scales (milliseconds to days). It has significantly contributed to understanding nanoscale architectures, inter‐ and intra‐molecular interactions, and regulatory elements that determine protein structures, assemblies, and functions. This review describes recent advancements in elucidating protein assemblies with in situ AFM. We discuss the structures, diffusions, interactions, and assembly dynamics of proteins captured by conventional and high‐speed AFM in near‐native environments and recent AFM developments in the multimodal high‐resolution imaging, bimodal imaging, live cell imaging, and machine‐learning‐enhanced data analysis. These approaches show the significance of broadening the horizons of AFM and enable unprecedented explorations of protein assembly for biomaterial design and biomedical research.
Funder
National Natural Science Foundation of China
U.S. Department of Energy
Office of Science
Basic Energy Sciences
Pacific Northwest National Laboratory
Energy Frontier Research Centers