Quantum Imaging of Bone Tissue Using Entangled Two-Photon Microscopy

Abstract Tracking the progression of the bone resorption process is important for clinical research and development of pharmaceuticals for bone-related diseases. Although fluorescence imaging is found to be one of the powerful tools for studying bone, conventional fluorescence microscopy relies on extremely high excitation powers that induce photobleaching and phototoxic effects on biological samples, preventing long-term observations. To overcome these limitations, we propose a quantum light-based approach using entangled two-photon fluorescence microscopy (ETPFM). We demonstrate ETPFM for imaging fixed demineralized unstained and Hoechst- and DAPI-stained bone sections at photon fluxes nearly 6 orders of magnitude lower than classical two-photon excitation. This quantum-correlated light preserves tissue integrity, eliminates photobleaching, and reveals microstructures with high contrast. Endogenous fluorescence is detected without exogenous dyes, and osteoclast cells are clearly resolved in the stained bone sections. ETPFM thus provides a minimally invasive, quantum-enhanced approach for long-term imaging of bone microenvironments.

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Publication Details

Journal
The Journal of Physical Chemistry B
Published
2026-09-04
DOI
https://doi.org/10.1021/acs.jpcb.6c03858
Primary Topic
Advanced Fluorescence Microscopy Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Quantum Imaging of Bone Tissue Using Entangled Two-Photon Microscopy

Merjem Mededovic, Theodore Goodson, David H. Kohn, Paloma Johnson et al.
The Journal of Physical Chemistry B
Advanced Fluorescence Microscopy Techniques
article

Quantum Imaging of Bone Tissue Using Entangled Two-Photon Microscopy

Merjem Mededovic, Theodore Goodson, David H. Kohn, Paloma Johnson, Bishal Saha, Oleg Varnavski
article en

Abstract

Abstract Tracking the progression of the bone resorption process is important for clinical research and development of pharmaceuticals for bone-related diseases. Although fluorescence imaging is found to be one of the powerful tools for studying bone, conventional fluorescence microscopy relies on extremely high excitation powers that induce photobleaching and phototoxic effects on biological samples, preventing long-term observations. To overcome these limitations, we propose a quantum light-based approach using entangled two-photon fluorescence microscopy (ETPFM). We demonstrate ETPFM for imaging fixed demineralized unstained and Hoechst- and DAPI-stained bone sections at photon fluxes nearly 6 orders of magnitude lower than classical two-photon excitation. This quantum-correlated light preserves tissue integrity, eliminates photobleaching, and reveals microstructures with high contrast. Endogenous fluorescence is detected without exogenous dyes, and osteoclast cells are clearly resolved in the stained bone sections. ETPFM thus provides a minimally invasive, quantum-enhanced approach for long-term imaging of bone microenvironments.

The Journal of Physical Chemistry B
University of Michigan (US)
Air Force Office of Scientific Research
Openalex Percentile: Top 12%
Advanced Fluorescence Microscopy Techniques
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Quantum Imaging of Bone Tissue Using Entangled Two-Photon Microscopy — Merjem Mededovic, Theodore Goodson, et al. · The Journal of Physical Chemistry B (2026) | TGRS Research Map | TGRS