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Biology subjects

Kolataj, K.

Publications and source records attributed to Kolataj, K..

2 recordsLinked to original sources

Super-Resolution Simplified: Sub-10nm Imaging Over Large Areas and Deep Penetration via SDC-OPR and DNA-PAINT

Single Molecule Localization Microscopy (SMLM) has traditionally faced challenges to optimize signal-to-noise ratio, penetration depth, field-of-view (FOV), and spatial resolution simultaneously. Here, we show that DNA-PAINT imaging on a Spinning Disk Confocal with Optical Photon Reassignment (SDC-OPR) system overcomes these trade-offs, enabling high-resolution imaging across multiple cellular layers and large FOVs. We demonstrate the systems capability with DNA origami constructs and biological samples, including nuclear pore complexes, mitochondria, and microtubules, achieving a spatial resolution of 6 nm in the basal plane and sub-10 nm localization precision at depths of 9 {micro}m within a 53 x 53 {micro}m{superscript 2} FOV. Additionally, imaging of the developing Drosophila eye epithelium at depths up to 9 {micro}m with sub-13 nm average localization precision, reveals distinct E-cadherin populations in adherens junctions. Quantitative analysis of Collagen IV deposition in this epithelium indicated an average of 46 {+/-} 27 molecules per secretory vesicle. These results underscore the versatility of DNA-PAINT on an SDC-OPR for advancing super-resolution imaging in complex biological systems.

biophysics↗

Direct single-molecule detection and super-resolution imaging with a low-cost portable smartphone-based microscope

We present a novel, low-cost, portable smartphone-based fluorescence microscope capable of directly detecting single molecules without signal amplification. The setup leverages the image sensors and data handling capacity of mass-produced smartphones, making it adaptable to any smartphone and capable of detecting single molecules across the visible spectral range. We showcase this capability through single-molecule measurements on DNA origami models and super-resolution microscopy of biological cells by single-molecule localization microscopy. This development paves the way for biotechnology innovations making use of massively distributed or personalized assays with single-molecule sensitivity with the potential to revolutionize digital bioassays, point-of-care diagnostics, field expeditions, STEM outreach, and life science education.

biophysics↗