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Biology subjects

Budiarta, M.

Publications and source records attributed to Budiarta, M..

2 recordsLinked to original sources

Programmable protein reference standards for benchmarking sub-10-nm fluorescence microscopy

Fluorescence microscopy is increasingly used to measure molecular organization at length scales where labeling, photophysics and sample preparation can dominate quantitative accuracy. Reference standards are therefore needed that combine defined nanoscale geometry with a protein-like environment and compatibility with biological imaging. Here we introduce circular tandem repeat protein as programmable protein standards for benchmarking sub-10-nm fluorescence microscopy. Using genetic code expansion and bioorthogonal labeling, we generated compact protein rings carrying up to six labeling sites. Photoswitching fingerprint analysis revealed geometry-dependent localization accumulation and blinking kinetics, demonstrating that short-range fluorophore interactions can be assessed as measurable benchmark parameters. DNA-PAINT confirmed accessible docking sites and programmed valency at the single-particle level. We further established recombinant tethering and genetically encoded membrane display, extending the standards to cellular environments. cTRP PicoRulers were also compatible with expansion microscopy. Together, cTRPs provide a modular protein-based platform for evaluating molecular-scale imaging performance in purified and cellular environments.

biophysics↗

Nanoscale imaging of expanded cells and proteins with spontaneously blinking dyes

Expansion microscopy (ExM) enables nanoscale imaging on standard microscopes, but combining ExM with single-molecule localization microscopy (SMLM) remains difficult, owing to the incompatibility of expanded hydrogels with photoswitching buffers. Here, we introduce a single-step expansion microscopy method that allows SMLM with spontaneously blinking dyes in 6-14x expanded samples, without re-embedding. We demonstrate nanometer-resolution imaging by resolving the organization of the nuclear pore complex (NPC) and the molecular structure of recombinant homotrimeric proliferating cell nuclear antigen (PCNA).

biophysics↗