Unveiling the ultrastructural landscape of native extracellular matrix via lift-out cryo-FIBSEM and cryo-ET
Zens, B.; Faessler, F.; Hansen, J. M.; Hauschild, R.; Datler, J.; Hodirnau, V.-V.; Zheden, V.; Alanko, J.; Sixt, M.; Schur, F. K.
Show abstract
The extracellular matrix (ECM) is a highly hydrated, three-dimensional network composed of various macromolecules and signaling factors. It serves as a structural scaffold for cells and plays an essential role in the regulation of numerous cellular processes, including cell migration, adhesion, and proliferation. Despite its importance in metazoans, structural knowledge is rudimentary on how the components of the matrisome are secreted, remodeled, and interact with each other and with surrounding cells. Specifically, the exact molecular assembly of important ECM fibers, such as fibronectin fibrils, fibrillin microfibrils, or Collagen-VI filaments has remained enigmatic. This is largely due to methodological limitations in specimen preparation for conventional room-temperature electron microscopy (EM). To overcome these limitations, we have developed a cell culture-based 3D-ECM platform compatible with sample thinning by cryo-lift out focused ion beam (FIB) milling and cryo-electron tomography (cryo-ET). Our workflow involves the implementation of cell-derived matrices (CDMs) grown on EM grids, resulting in a highly adaptable and versatile tool to closely mimic ECM environments. This allows us to visualize native ECM and its components for the first time in their fully hydrated, cellular context. Our data reveals an intricate network of ECM fibers and their positioning with respect to matrix-secreting cells. In addition to D-spaced collagen fibers, we visualize previously unresolved fibrous structures, and an amorphous matrix co-assembling in proximity to ECM fibers and delineating the boundary between ECM and empty extra-cellular space. Intra- and extracellular granules presumably represent assembly intermediates of the ECM. Our results add to the structural atlas of the ECM and provide novel insights into ECM secretion, assembly and maintenance.
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