4d Cell Tracking

4D cell tracking is an imaging and analysis approach that follows individual cells through three-dimensional space over time, revealing how their position, shape, and behavior change. It typically combines time-lapse microscopy with image segmentation and trajectory linking to identify cells in successive frames and reconstruct their movements as continuous paths. In neuroscience, this method can characterize neuronal migration, axon extension, neural progenitor behavior, and interactions among developing brain cells. By quantifying movement, directionality, speed, and persistence, 4D cell tracking connects dynamic cellular behavior with neural development, organization, and disease-related changes.

4d Cell Tracking - Related Videos

Research

JoVE Journal - Biology
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4D Imaging of Protein Aggregation in Live Cells

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Cited by 4 •

2013

Cellular viability depends on timely and efficient management of protein misfolding. Here we describe a method for visualizing the different potential fates of a misfolded protein: refolding, degradation, or sequestration in inclusions. We demonstrate the use of a folding sensor, Ubc9ts, for monitoring proteostasis and aggregation quality control in live cells using 4D microscopy.

Research

JoVE Journal - Biology

4D Microscopy of Yeast

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Cited by 12 •

2019

This protocol describes the analysis of fluorescently labeled intracellular compartments in budding yeast using multi-color 4D (time-lapse 3D) confocal microscopy. The imaging parameters are chosen to capture adequate signals while limiting photodamage. Custom ImageJ plugins allow labeled structures to be tracked and quantitatively analyzed.

Tracking Cells in GFP-transgenic Zebrafish Using the Photoconvertible PSmOrange System

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Cited by 2 •

2016

We established the photoconvertible PSmOrange system as a powerful, straight-forward and cost inexpensive tool for in vivo cell tracking in GFP transgenic backgrounds. This protocol describes its application in the zebrafish model system.

Cell Tracking Using Photoconvertible Proteins During Zebrafish Development

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Cited by 17 •

2012

Here, we present a method for the photoactivated switch of photoconvertible fluorescent proteins (PCFPs) in the living zebrafish embryo and further tracking of photoconverted protein at specific time points during development. This methodology allows monitoring of cell biological events underlying different developmental processes in a live vertebrate organism.

Research

JoVE Journal - Biology
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Optimized Staining and Proliferation Modeling Methods for Cell Division Monitoring using Cell Tracking Dyes

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Cited by 45 •

2012

Successful use of cell tracking dyes to monitor immune cell function and proliferation involves several critical steps. We describe methods for: 1) obtaining bright, uniform, reproducible label-ing with membrane dyes; 2) selecting fluorochromes and data acquisition conditions; and 3) choosing a model to quantify cell proliferation based on dye dilution.

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