Related Experiment Video
Updated: Jan 28, 2026

Longitudinal Two-Photon Imaging of Dorsal Hippocampal CA1 in Live Mice
Published on: June 19, 2019
Enhanced photon collection enables four dimensional fluorescence nanoscopy of living systems
Luciano A Masullo1, Andreas Bodén1, Francesca Pennacchietti1
1Department of Applied Physics and Science for Life Laboratory, KTH Royal Institute of Technology, 100 44, Stockholm, Sweden.
Abstract:
The theoretically unlimited spatial resolution of fluorescence nanoscopy often comes at the expense of time, contrast and increased dose of energy for recording. Here, we developed MoNaLISA, for Molecular Nanoscale Live Imaging with Sectioning Ability, a nanoscope capable of imaging structures at a scale of 45-65 nm within the entire cell volume at low light intensities (W-kW cm-2). Our approach, based on reversibly switchable fluorescent proteins, features three distinctly modulated illumination patterns crafted and combined to gain fluorescence ON-OFF switching cycles and image contrast. By maximizing the detected photon flux, MoNaLISA enables prolonged (40-50 frames) and large (50 × 50 µm2) recordings at 0.3-1.3 Hz with enhanced optical sectioning ability. We demonstrate the general use of our approach by 4D imaging of organelles and fine structures in epithelial human cells, colonies of mouse embryonic stem cells, brain cells, and organotypic tissues.
Related Concept Videos
Bioavailability Enhancement: Drug Solubility Enhancement
Self-Evaluation: Self-Enhancement and Self-Verification
Second Order systems II
Dimensional Analysis
Conversion Factors and Dimensional Analysis
The unit...
First Order Systems
When a first-order system is subjected to a unit-step input, its response is characterized by its transfer function. By applying the Laplace transform of the unit-step input to the transfer function, expanding the...
Second Order systems I
By reinterpreting the system, one can derive the closed-loop transfer function, which...

