Volumetric imaging of the 3D orientation of cellular structures with a polarized fluorescence light-sheet microscope

T Talon Chandler (Chan Zuckerberg Biohub San Francisco) M Min Guo Y Yijun Su J Jiji Chen (Advanced Imaging and Microscopy Resource) Y Yicong Wu (Laboratory of High Resolution Optical Imaging) J Junyu Liu (National Engineering Research Center of Lower-Carbon Catalysis Technology, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials), Dalian Institute of Chemical Physics) A Atharva Agashe (Department of Mechanical Engineering, Virginia Tech) R Robert S. Fischer (Cell Biology and Physiology Center) S Shalin B. Mehta (Chan Zuckerberg Biohub San Francisco) A Abhishek Kumar T Tobias I. Baskin (Department of Biology) V Valentin Jaumouillé (Department of Molecular Biology and Biochemistry) H Huafeng Liu (State Key Laboratory of Extreme Photonics and Instrumentation) V Vinay Swaminathan (Department of Clinical Sciences) A Amrinder S. Nain (Department of Mechanical Engineering, Virginia Tech) R Rudolf Oldenbourg (Bell Center) P Patrick J. La Riviere (Department of Radiology) H Hari Shroff

Abstract

Polarized fluorescence microscopy is a valuable tool for measuring molecular orientations in biological samples, but techniques for recovering three-dimensional orientations and positions of fluorescent ensembles are limited. We report a polarized dual-view light-sheet system for determining the diffraction-limited three-dimensional distribution of the orientations and positions of ensembles of fluorescent dipoles that label biological structures. We share a set of visualization, histogram, and profiling tools for interpreting these positions and orientations. We model the distributions based on the polarization-dependent efficiency of excitation and detection of emitted fluorescence, using coarse-grained representations we call orientation distribution functions (ODFs). We apply ODFs to create physics-informed models of image formation with spatio-angular point-spread and transfer functions. We use theory and experiment to conclude that light-sheet tilting is a necessary part of our design for recovering all three-dimensional orientations. We use our system to extend known two-dimensional results to three dimensions in FM1-43-labeled giant unilamellar vesicles, fast-scarlet-labeled cellulose in xylem cells, and phalloidin-labeled actin in U2OS cells. Additionally, we observe phalloidin-labeled actin in mouse fibroblasts grown on grids of labeled nanowires and identify correlations between local actin alignment and global cell-scale orientation, indicating cellular coordination across length scales.

Article Details

Volume / Issue Vol. 122, Issue 8
Published February 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (18)

T

Talon Chandler

Chan Zuckerberg Biohub San Francisco

M

Min Guo

Y

Yijun Su

J

Jiji Chen

Advanced Imaging and Microscopy Resource

Y

Yicong Wu

Laboratory of High Resolution Optical Imaging

J

Junyu Liu

National Engineering Research Center of Lower-Carbon Catalysis Technology, Dalian National Laboratory for Clean Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials), Dalian Institute of Chemical Physics

A

Atharva Agashe

Department of Mechanical Engineering, Virginia Tech

R

Robert S. Fischer

Cell Biology and Physiology Center

S

Shalin B. Mehta

Chan Zuckerberg Biohub San Francisco

A

Abhishek Kumar

T

Tobias I. Baskin

Department of Biology

V

Valentin Jaumouillé

Department of Molecular Biology and Biochemistry

H

Huafeng Liu

State Key Laboratory of Extreme Photonics and Instrumentation

V

Vinay Swaminathan

Department of Clinical Sciences

A

Amrinder S. Nain

Department of Mechanical Engineering, Virginia Tech

R

Rudolf Oldenbourg

Bell Center

P

Patrick J. La Riviere

Department of Radiology

H

Hari Shroff