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The axon initial segment (AIS) is a short, uniquely specialized region of the proximal axon of vertebrate neurons1. The AIS comprises a transport filter and diffusion barrier essential in maintaining neuronal polarity by sorting somato-dendritic cargo2,3,4,5,6,7. In addition, the unique structure of the AIS allows it to accommodate clusters of voltage-gated ion channels that facilitate its function as the site of action potential initiation8. A highly stable structural complex underlies the unique functions of the AIS. Research within the last decade has revealed the presence of a membrane periodic skeleton (MPS) containing actin rings connected by spectrin and providing a scaffold for anchoring various AIS proteins9,10.
The distance between actin rings in the MPS (~190 nm)9,10 is under the resolution limit of conventional light microscopy. Early attempts to use electron microscopy to visualize the MPS were not successful, as the harsh preparation procedures involved failed to preserve the structure of the MPS. Thus, super-resolution microscopy techniques have proven invaluable in elucidating some of the structural details of the MPS11. However, the understanding of the AIS structural complex, the identity and functions of its components, and its spatiotemporal regulation are still incomplete. Recent proteomic studies succeeded in creating a sizeable list of proteins that localize to the AIS close to structural components of the AIS12,13. Still, details of their function and precise place in the AIS complex are lacking. Thus, super-resolution microscopy techniques serve as an essential tool to examine the accurate positions of these proteins relative to other MPS components and investigate their functions. Several light microscopy techniques can achieve resolutions higher than the diffraction limit of light, some even capable of localizing single molecules. However, many of these techniques typically require specialized fluorophores or imaging buffers, and image acquisition is often time-intensive14.
3D structured illumination microscopy (3D-SIM), owing to its ease of use and simple sample preparation requirements, requires no special reagents for imaging or sample preparation, works well with a wide array of fluorophores and samples, can be readily implemented in multiple colors, and is capable of live-cell imaging15. While the best possible resolution SIM offers (~120 nm) is low compared to many other super-resolution techniques, it is sufficient for many applications (for example, for resolving the components of the MPS in neurons). Thus, it is crucial to consider the requirement for specific applications to determine if SIM is a suitable choice or if an even higher resolution is necessary. Here, a protocol is described for using cultured hippocampal neurons and 3D-structured illumination microscopy (3D-SIM) to examine the position and organization of putative AIS proteins relative to actin rings in the MPS, as implemented in Abouelezz et al.16