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Fused deep learning enables 6D single-molecule localization in polarization-resolved microscopy

  • Emil Gillett
  • , Subhojyoti Chatterjee
  • , Jagriti Chatterjee
  • , Nikita Kovalenko
  • , Cong Xu
  • , Dongyu Fan
  • , Yiyang Chen
  • , Yuanxin Qiu
  • , Junyuan Miao
  • , Varun Nelavoy
  • , Matthew D. Lew
  • , Mikael P. Backlund
  • , Christy F. Landes

Research output: Contribution to journalArticlepeer-review

Abstract

Single-molecule orientation localization microscopy (SMOLM) is an optical means to measure complex transport in charged and crowded conditions, such as inside cells or polymer materials. SMOLM extracts time- and space-dependent three-dimensional orientation information from dipole emitters. Achieving simultaneous position-orientation resolution with high photon efficiency remains a central challenge in SMOLM instrument design. We developed an optical fluorescence microscope that uses the double-helix point spread function (DHPSF) to localize dipole emitters in six dimensions (6D), delineated by spatial and dynamic orientational parameters. Furthermore, we developed a fused deep learning approach based on existing neural network architectures to localize dipole emitters in 6D. Our microscope enables simultaneous 6D localization of single fluorophores, achieving a median spatial precision of 10 nm and angular precision below 10° across most of orientation space, except for the azimuthal angle at high polar angles where the DHPSF exhibits known optical degeneracies. We demonstrate our approach by localizing single rhodamine B molecules in poly(methyl methacrylate) films. The recovered orientations show (Formula presented) (Formula presented) near 90° and small wobble angles. We also demonstrate 6D SMOLM of a spherical supported lipid bilayer, where despite the low signal, out-of-training distribution of the experimental data, we observe clearly ordered orientation of Nile red molecules within the membrane.

Original languageEnglish
Article number035006
JournalMethods and Applications in Fluorescence
Volume14
Issue number3
DOIs
StatePublished - Sep 2026

Keywords

  • deep learning
  • double-helix
  • fluorescence
  • optical microscopy
  • orientation
  • phase engineering
  • super-resolution

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