Fluorescence Reconstruction

Fluorescence reconstruction is the computational recovery of molecular, cellular, or tissue-level information from fluorescence measurements, converting emitted-light signals into interpretable images or quantitative maps. It works by modeling how fluorophores are excited and how emitted photons are blurred, scattered, attenuated, and sampled by an imaging system, then applying calibration, image-formation, and inverse-problem methods to estimate the underlying signal from incomplete or noisy data. In bioengineering, these reconstructions can improve spatial resolution, recover three-dimensional or time-dependent patterns, and quantify biomolecule distribution, cell behavior, and tissue structure, supporting microscopy development, diagnostics, and engineered biological systems.

Fluorescence Reconstruction - Related Videos

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JoVE Journal - Biology
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Isolation and Fluorescence Imaging for Single-particle Reconstruction of Chlamydomonas Centrioles

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Cited by 10 •

2018

We have developed a strategy to purify and image a large number of centrioles in different orientations amenable for super-resolution microscopy and single-particle averaging.

Research

JoVE Journal - Biology

Reconstruction of Single-Cell Innate Fluorescence Signatures by Confocal Microscopy

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Cited by 1 •

2020

Here, a protocol is presented for optically extracting and cataloging innate cellular fluorescence signatures (i.e., cellular autofluorescence) from every individual live cell distributed in a three-dimensional space. This method is suitable for studying the innate fluorescence signature of diverse biological systems at a single-cell resolution, including cells from bacteria, fungi, yeasts, plants, and animals.

Analysis of Fluorescent-Stained Lipid Droplets with 3D Reconstruction for Hepatic Steatosis Assessment

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Cited by 5 •

2023

Herein, we demonstrate an optimized BODIPY 493/503 fluorescence-based protocol for lipid droplet characterization in liver tissue. Through the use of orthogonal projections and 3D reconstructions, the fluorophore allows for successful discrimination between microvesicular and macrovesicular steatosis and may represent a complementary approach to the classical histological protocols for hepatic steatosis assessment.

Research

JoVE Journal - Biology
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Imaging and 3D Reconstruction of Cerebrovascular Structures in Embryonic Zebrafish

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Cited by 1 •

2014

Imaging of cerebrovascular development in larval zebrafish is described. Techniques to facilitate 3D imaging and modify cerebrovascular development using chemical treatments are also provided.

Designing CAD/CAM Surgical Guides for Maxillary Reconstruction Using an In-house Approach

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Cited by 7 •

2018

Methods for designing a computer-aided design/computer-aided manufacturing (CAD/CAM) surgical guide are shown. Cutting planes are separated, united, and thickened to easily visualize the necessary bone transfer. These designs can be three-dimensional printed and checked for accuracy.

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