Resolving protein organization in cells with nanometer resolution

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The paper develops a double-homogenized expansion microscopy method that works with direct stochastic optical reconstruction microscopy (Ex-dSTORM) to visualize endogenous multiprotein complexes at nanometer resolution, using immunolabeling in cells. By expanding samples 7–8-fold and increasing effective labeling density, the authors resolve an 8 nm spacing between neighboring α-tubulin molecules in microtubules and characterize the polyhedral lattice in clathrin-coated pits; they also use two-color Ex-dSTORM in hippocampal neurons to map RIM and Munc13-1 into ring-like structures at presynaptic sites. A stated caveat is that the method depends on immunolabeling and the optimized combination of expansion and dSTORM to achieve the reported resolution gains. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Advances in super-resolution microscopy have outpaced molecular labeling methods, impeding nanometer-scale imaging of endogenous multiprotein complexes in cells. To overcome these limitations, we developed an expansion microscopy (ExM) approach based on double-homogenized hydrogels that enables direct stochastic optical reconstruction microscopy ( d STORM) of 7-8-fold expanded immunolabeled samples. The resulting ∼4-fold increase in effective immunolabeling density resolved the 8 nm distance between neighboring α-tubulin molecules in microtubules and the polyhedral lattice in clathrin-coated pits with nanometer precision in cells. Two-color Ex- d STORM further revealed the molecular organization of RIM scaffolding protein and Munc13-1, an essential synaptic vesicle priming protein, in ring-like structures with diameters of 40-45 nm at the presynapse in hippocampal neurons. Our results demonstrate that Ex- d STORM resolves the molecular organization of endogenous multiprotein complexes with nanometer spatial resolution in genetically unmodified cells. Thus, it provides a versatile method for the investigation of molecular protein distributions in their physiologically relevant context. One-Sentence Summary The optimized combination of dSTORM and double TREx ExM resolves previously unresolvable protein assemblies in cells
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Abstract Advances in super-resolution microscopy have outpaced molecular labeling methods, impeding nanometer-scale imaging of endogenous multiprotein complexes in cells. To overcome these limitations, we developed an expansion microscopy (ExM) approach based on double-homogenized hydrogels that enables direct stochastic optical reconstruction microscopy (dSTORM) of 7-8-fold expanded immunolabeled samples. The resulting ∼4-fold increase in effective immunolabeling density resolved the 8 nm distance between neighboring α-tubulin molecules in microtubules and the polyhedral lattice in clathrin-coated pits with nanometer precision in cells. Two-color Ex-dSTORM further revealed the molecular organization of RIM scaffolding protein and Munc13-1, an essential synaptic vesicle priming protein, in ring-like structures with diameters of 40-45 nm at the presynapse in hippocampal neurons. Our results demonstrate that Ex-dSTORM resolves the molecular organization of endogenous multiprotein complexes with nanometer spatial resolution in genetically unmodified cells. Thus, it provides a versatile method for the investigation of molecular protein distributions in their physiologically relevant context. One-Sentence Summary The optimized combination of dSTORM and double TREx ExM resolves previously unresolvable protein assemblies in cells Competing Interest Statement The authors have declared no competing interest. Footnotes New Figure with NPC data added

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License: CC-BY-NC-4.0