Fluorescence microscopy is the method of choice in biology for its molecular specificity and super-resolution capabilities. However, it is limited to a narrow range around one observation plane. Here, we report an imaging approach that recovers the full electric field of fluorescent light with single-molecule sensitivity. We expand the principle of digital holography to fast fluorescent detection by eliminating the need for phase cycling and enable three-dimensional (3D) tracking of individual nanoparticles with an in-plane resolution of 15 nm and a -range of 8 mm. As a proof-of-concept biological application, we image the 3D motion of extracellular vesicles (EVs) inside live cells. At short time scales (<4 s), we resolve near-isotropic 3D diffusion and directional transport. For longer lag times, we observe a transition toward anisotropic motion with the EVs being transported over long distances in the axial plane while being confined in the horizontal dimension.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7673696PMC
http://dx.doi.org/10.1126/sciadv.abc2508DOI Listing

Publication Analysis

Top Keywords

extracellular vesicles
8
tracking extracellular
4
vesicles holographic
4
holographic fluorescence
4
fluorescence imaging
4
imaging fluorescence
4
fluorescence microscopy
4
microscopy method
4
method choice
4
choice biology
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!