Unbiased Stereology

Unbiased stereology is a quantitative framework for estimating three-dimensional characteristics of biological structures from two-dimensional tissue sections without relying on assumptions about their shape, size, or orientation. It uses systematic uniform random sampling, defined counting probes, and geometric rules such as point, line, or area sampling to derive estimates of cell number, volume, length, or surface area. By controlling sampling and counting procedures, the method reduces systematic bias and supports statistically defensible comparisons between tissues, experimental groups, or disease states. In biology, unbiased stereology is applied to quantify neurons, glial cells, blood vessels, tumors, and other complex structures in histological and microscopic specimens.

Unbiased Stereology - Related Videos

Research

JoVE Journal - Biology

Knowing What Counts: Unbiased Stereology in the Non-human Primate Brain

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Cited by 22 •

2009

The anatomical organization of the primate brain can provide important insights into normal and pathological conditions in humans. Unbiased stereology is a method for accurately and efficiently estimating the total neuron number (or other cell type) in a given reference space1.

Stereological Estimation of Dopaminergic Neuron Number in the Mouse Substantia Nigra Using the Optical Fractionator and Standard Microscopy Equipment

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Cited by 45 •

2017

This work presents a step-by-step protocol for the unbiased stereological estimation of dopaminergic neuronal cell numbers in the mouse substantia nigra using standard microscopy equipment (i.e., a light microscope, a motorized object table (x, y, z plane), and public domain software for digital image analysis.

Research

JoVE Journal - Medicine
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Unbiased Deep Sequencing of RNA Viruses from Clinical Samples

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Cited by 50 •

2016

This protocol describes a rapid and broadly applicable method for unbiased RNA-sequencing of viral samples from human clinical isolates.

Large-scale Reconstructions and Independent, Unbiased Clustering Based on Morphological Metrics to Classify Neurons in Selective Populations

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Cited by 3 •

2017

This protocol describes large-scale reconstructions of selective neuronal populations, labeled following retrograde infection with a modified rabies virus expressing fluorescent markers, and independent, unbiased cluster analyses that enable comprehensive characterization of morphological metrics among distinct neuronal subclasses.

Research

JoVE Journal - Neuroscience
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The Optical Fractionator Technique to Estimate Cell Numbers in a Rat Model of Electroconvulsive Therapy

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Cited by 24 •

2017

Here, we present a stereological method, the optical fractionator, used to quantify the formation of new neurons, and their survival, in the rat hippocampus following electroconvulsive stimulation. When correctly implemented, the sensitivity and efficiency of stereological methods ensures accurate estimates with a fixed and predetermined precision.

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