Small Methods· 2026Q1· Review
Emerging Nanoscale Platforms for Precision Glycan Analysis: Molecular Fingerprinting, Nanopore Sensing, and Spatial Readouts
- 0citations
- Q1SCImago
- 2026year
Short summary
Five nanoscale platforms—tip-enhanced Raman spectroscopy, nanopore sensing, cryo-electron microscopy, Ångström-resolution fluorescence imaging, and scanning tunneling microscopy—enable precision analysis of glycans at the single-molecule level, resolving details from glycosidic linkages to spatial arrangements.
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Key points
- Glycans require nanoscale analysis due to their microheterogeneity and high structural information density.
- Tip-enhanced Raman spectroscopy resolves single glycosidic linkages through vibrational fingerprints.
- Engineered nanopores generate linkage- and modification-specific ionic-current signatures from single-molecule translocations.
- High-resolution cryo-electron microscopy and Ångström-resolution fluorescence imaging place glycans within higher-order assemblies and on cell surfaces, respectively.
- These platforms enable the conversion of glycan structure from inventory to mechanism.
AI-generated from the title and abstract; the full text is not read.
Abstract
Glycans present two intrinsic properties that make nanoscale analysis a necessity rather than a refinement: a microheterogeneity that arises from non-templated biosynthesis, and a structural information density that surpasses that of nucleic acids and proteins by orders of magnitude. Both demand readout at the level of the individual molecule, on scales from the chemical bond to the residue to the spatial register. Five emerging platforms now meet these requirements along complementary dimensions. Tip-enhanced Raman spectroscopy reads single glycosidic linkages through vibrational fingerprints. Electrospray ion beam deposition coupled to low-temperature scanning tunneling microscopy resolves connectivity, stereochemistry, and intact glycoconjugate architecture on individual molecules. Engineered nanopores translate single-molecule translocations into linkage- and modification-specific ionic-current signatures in solution. High-resolution cryo-electron microscopy places glycans within hydrated higher-order assemblies as explicit atomic models. Ångström-resolution fluorescence imaging resolves individual glycans on intact cell surfaces. This Review examines each platform from the standpoint of its working principle, the structural variables it resolves, and the methodological boundary it currently defines, with attention to the recurring trade-offs they negotiate across chemistry, physiology, ensemble, and interpretation. The mature contribution of these platforms will be the conversion of glycan structure from inventory into mechanism.
The authors' abstract, as published at the source. Small Methods, 2026 · DOI ↗
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