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Biology subjects

Pergament, M.

Publications and source records attributed to Pergament, M..

2 recordsLinked to original sources

Multiplexed Brain and Visceral Two-Photon Imaging Using a Simulation-Guided Ultrafast Three-Color Fiber Laser

Multicolor two-photon microscopy is an essential tool in modern life sciences, enabling simultaneous, high-resolution imaging of multiple cellular structures and dynamic processes within complex biomedical systems. Realizing its full potential demands light sources that combine multiplexed spectral flexibility, high pulse quality, and practical implementation for efficient excitation of diverse cellular targets. Here, we present a novel ultrafast fiber laser platform that enables efficient three-color multiplexed two-photon imaging through numerically optimized nonlinear spectral shaping in a photonic crystal fiber (PCF). The system is driven by a nonlinear Yb-doped fiber amplifier with tailored dispersion and gain characteristics to generate clean sub-50 fs pulses at 1030 nm with over 40 nJ pulse energy. Subsequent, simulation-guided PCF-based spectral broadening enables controlled formation of three distinct high-energy bands centered at 940 nm, 1,080 nm, and 1,175 nm, overlapping with key fluorescent probes and biomolecular markers. The resulting pulses, isolated with high spectral and time-domain pulse quality, provide sub-115 fs duration and 2.5 - 6 nJ energy per channel. Multiplexed imaging is validated in labeled mouse brain, kidney, and liver tissue slices using spectrally independent multi-fluorophore targeting to visualize e.g., astrocytes, neuronal structures, and nuclei in triple-stained mouse hippocampus. The demonstrated fiber-optic laser platform provides a practical alternative to conventional single-color sources and more complex multi-laser systems, supporting robust and high-resolution three-color two-photon imaging for a range of biomedical applications.

biophysics↗

Deep-Tissue Two-Photon Brain Imaging Enabled by a Tunable Fiber-Optic Dispersive Wave Generator

Here, we present a fiber-optic dispersive wave generator for highly-efficient, wavelength-tunable ultrashort pulse generation, enabling multicolor deep-tissue two-photon imaging of neuronal and vascular structures in labeled mouse brain. Guided by comprehensive numerical simulations, a compact Yb:fiber laser-driven system is constructed that utilizes precisely parameter- and phase-matching-controlled dispersive wave generation in a photonic crystal fiber. The system delivers sub-100 fs pulses with over [~]6.7 nJ of energy across a continuously tunable spectral range of 880-950 nm, achieving a record-high optical conversion efficiency of up to 65%. Optimizing the output for two-photon excitation of enhanced Green Fluorescent Protein and SYTOX Orange enables high-resolution structural imaging in mouse hippocampus and cerebellum at depths exceeding 450 {micro}m. This technique for wavelength-tunable, high-energy and ultrashort pulse generation with record optical efficiency represents a significant advancement in ultrafast fiber laser technology for versatile biomedical two-photon imaging applications.

bioengineering↗