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Biology subjects

Barella, M.

Publications and source records attributed to Barella, M..

2 recordsLinked to original sources

Single Objective Light Sheet Microscopy allows high-resolution in vivo brain imaging of Drosophila.

In vivo imaging of dynamic sub-cellular brain structures in Drosophila melanogaster is key to understanding several phenomena in neuroscience. However, its implementation has been hindered by a trade-off between spatial resolution, speed, photobleaching, phototoxicity, and setup complexity required to access the specific target regions of the small brain of Drosophila. Here, we present a single objective light-sheet microscope, customized for in vivo imaging of adult flies and optimized for maximum resolution. With it, we imaged the axonal projections of small lateral ventral neurons (known as s-LNvs) in intact adult flies. We imaged the plasma membrane, mitochondria, and dense-core vesicles with high spatial resolution up to 370 nm, ten times lower photobleaching than confocal microscopy, lower invasiveness and complexity in sample mounting than alternative light-sheet technologies, and without relying on phototoxic pulsed infrared lasers. This unique set of features paves the way for new long-term, dynamic studies in the brains of living flies.

neuroscience↗

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↗