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Biology subjects

Vidwath, V. S.

Publications and source records attributed to Vidwath, V. S..

2 recordsLinked to original sources

Proximity-based super-resolution imaging enabled by DNA base-stacking interactions

Super-resolution imaging has gained significant traction in recent years due to its unprecedented ability to visualize target biomolecules at nanometer resolution. Here, we demonstrate the capability to detect target pairs that are in close proximity by exploiting base-stacking interactions between two DNA strands, each labelling one target. Our DNA probes hybridize transiently with the each other only when both target molecules are proximal, thus creating a hybridization site for fluorophore-conjugated DNA strand, called imager. In this design, hybridization and co-axial base-stacking act synergistically to enable imager binding, with stacking interactions providing essential stabilization that allows for transient hybridization. This synergy generates the stochastic binding events required for DNA-PAINT imaging, which we call Stack-Proximity-PAINT (Stack-pPAINT). To gain mechanistic insights into hybridization of our probe, we performed atomistic equilibrium and steered molecular dynamics (MD) simulations. The simulations reveal that DNA base-stacking and fluorophore stacking together stabilize the imager. We utilized programmable DNA nanostructures to benchmark the applicability of Stack-pPAINT. As a cellular proof of concept, we visualized microtubular structures using Stack-pPAINT with antibodies targeting both alpha- and beta-tubulin molecules. This probe technology offers promising applications in cell biology research aimed at elucidating spatial interactomes at high resolution within cells.

biophysics↗

High-speed 10-plex DNA-PAINT with a larger sequence repertoire

DNA-Points Accumulation for Imaging in Nanoscale Topography (DNA-PAINT) enables multiplexed super-resolution imaging of biological samples. We expand the repertoire of speed-optimized DNA sequences for DNA-PAINT imaging to drive visualization of as many as twelve targets in a sequential manner with molecular resolution. By implementing Exchange-PAINT protocol, we demonstrate 12-plex super-resolved imaging of docking strand patterned DNA origami nanostructures within four hours with a localization precision of 3 to 5 nm. Using these sequences, we demonstrate 9-plex super-resolution imaging of diverse nuclear targets within four hours. Further, we present a comprehensive analysis pipeline to quantify nanoscale chromatin in single cells. The combination of multiplexed imaging and analysis pipeline enabled us to reveal the loss of chromatin contacts with nuclear speckles upon global transcription inhibition. This work highlights the versatility of our approach to simultaneously image multiple targets at accelerated speeds while maintaining precise spatial localization for each target, enabling in depth mapping of the nuclear landscape. These speed-optimized imager sequences for high multiplexed super-resolution imaging will drive its further adoption for diverse cellular imaging applications.

biophysics↗