Image Reconstruction

Image reconstruction is the computational process of creating a clearer or more complete image from incomplete, noisy, or indirectly measured data, making it valuable for studying biological structures that cannot be observed directly. It treats imaging as an inverse problem: algorithms use models of image formation, measured signals, and constraints such as smoothness or sparsity to estimate the most likely underlying structure, often through iterative optimization or deconvolution. In biology, image reconstruction supports microscopy, medical imaging, and three-dimensional visualization of cells, tissues, and organs, helping researchers improve spatial resolution, quantify morphology, and interpret dynamic biological processes.

Image Reconstruction - Related Videos

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.

Research

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 - Neuroscience
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High-resolution Confocal Imaging of the Blood-brain Barrier: Imaging, 3D Reconstruction, and Quantification of Transcytosis

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Cited by 11 •

2017

Here we present a microscopy-based protocol for high-resolution imaging and a three-dimensional reconstruction of the mouse neurovascular unit and blood-brain barrier using brain free-floating sections. This method allows for the visualization, analysis, and quantification of intracellular organelles at the BBB.

Hybrid µCT-FMT imaging and image analysis

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Cited by 34 •

2015

We describe a protocol for hybrid imaging, combining fluorescence-mediated tomography (FMT) with micro computed tomography (µCT). After fusion and reconstruction, we perform interactive organ segmentation to extract quantitative measurements of the fluorescence distribution.

Research

JoVE Journal - Medicine

Coronoid-Temporalis Pedicled Flap for Orbital Floor Defect Reconstruction

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2025

This protocol presents a novel coronoid-temporalis pedicled flap (CTPF) technique for reconstructing small-to-medium orbital floor defects. CTPF avoids microvascular risks while maintaining biomechanical stability. Clinical cases demonstrate effective structural restoration, reduced complications, and preserved facial symmetry, offering a viable alternative to traditional grafts or alloplastic materials.

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