Geometric Tissue Control

Geometric tissue control is a bioengineering approach that uses tissue shape, architecture, and spatial boundaries to regulate how cells organize and function. By altering confinement, curvature, patterning, or mechanical constraints, researchers can influence cell polarity, adhesion, migration, proliferation, and force transmission through mechanotransduction. This framework links physical form with biological signaling and helps explain how tissues develop, repair damage, and maintain coordinated structure. In bioengineering, geometric tissue control supports the design of patterned cell cultures, engineered tissues, and organoid models, while providing strategies for studying morphogenesis, guiding regeneration, and improving control over tissue function.

Geometric Tissue Control - Related Videos

Education

JoVE Core - Statistics

Geometric Mean

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2023

The mean is a measure of the central tendency of a data set. In some data sets, the data is inherently multiplicative, and the arithmetic mean is not useful. For example, the human population multiplies with time, and so does the credit amount of financial investment, as the interest compounds over successive time intervals. In cases of multiplicative data, the geometric mean is used for statistical analysis. First, the product of all the elements is taken. Then, if there are n elements in the...

Geometric Sequences

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2025

In systems where values diminish by a constant proportion at each stage, the resulting sequence follows a geometric structure. Each new value in the sequence is obtained by applying a fixed multiplier to the preceding term. This regular, proportional decline type is often used to represent processes involving gradual loss, such as energy dissipation or reduction in amplitude over time.When analyzing the total effect of such a process across unlimited iterations, the series of values is referred...

Research

JoVE Journal - Bioengineering

Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

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2025

Here, we present a protocol to fabricate a unique two-layer microfluidic device to study the electromechanical regulation of epithelial tissue homeostasis. The device applies static physiological electric currents perpendicular to the tissue plane, impacting cell-cell adhesion, proliferation, and extrusion. Live-cell imaging and mechanical stress measurements reveal mechanisms of these processes.

Agar-Block Microcosms for Controlled Plant Tissue Decomposition by Aerobic Fungi

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Cited by 6 •

2011

This video demonstrates a controlled environment approach to study degradation of lignocellulosic plant tissues by aerobic fungi. The ability to control nutrient sources and moisture is a key advantage of agar-block microcosms, but the approach often yields mixed success. We address critical pitfalls to yield reproducible, low-variability results.

Preparation of Mitochondria from Ovarian Cancer Tissues and Control Ovarian Tissues for Quantitative Proteomics Analysis

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Cited by 3 •

2019

This article presents a protocol of differential-speed centrifugation in combination with density gradient centrifugation to separate mitochondria from human ovarian cancer tissues and control ovarian tissues for quantitative proteomics analysis, resulting in a high-quality mitochondrial sample and high-throughput and high-reproducibility quantitative proteomics analysis of a human ovarian cancer mitochondrial proteome.

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