Isogenic Microcolonies

Isogenic microcolonies are small, spatially organized groups of genetically identical cells, providing a controlled system for studying how cellular behavior changes under defined conditions. They are typically formed by isolating individual cells or clonal progenitors and allowing them to proliferate within microscale compartments or patterned culture environments, while controlling factors such as cell number, geometry, and extracellular cues. In bioengineering, these microcolonies help separate genetic effects from environmental influences when analyzing differentiation, growth, signaling, and tissue organization. Their reproducibility supports quantitative studies of cell interactions, disease modeling, drug responses, and the design of engineered tissues.

Isogenic Microcolonies - Related Videos

Research

JoVE Journal - Biology

High-Throughput Live Imaging of Microcolonies to Measure Heterogeneity in Growth and Gene Expression

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Cited by 7 •

2021

Yeast growth phenotypes are precisely measured through highly parallel time-lapse imaging of immobilized cells growing into microcolonies. Simultaneously, stress tolerance, protein expression, and protein localization can be monitored, generating integrated datasets to study how environmental and genetic differences, as well as gene-expression heterogeneity among isogenic cells, modulate growth.

Isogenic Kidney Glomerulus Chip Engineered from Human Induced Pluripotent Stem Cells

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Cited by 11 •

2022

Presented here is a protocol to engineer a personalized organ-on-a-chip system that recapitulates the structure and function of the kidney glomerular filtration barrier by integrating genetically matched epithelial and vascular endothelial cells differentiated from human induced pluripotent stem cells. This bioengineered system can advance kidney precision medicine and related applications.

Research

JoVE Journal - Bioengineering
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Microfluidic Picoliter Bioreactor for Microbial Single-cell Analysis: Fabrication, System Setup, and Operation

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Cited by 75 •

2013

In this protocol the fabrication, setup and basic operation of a microfluidic picoliter bioreactor (PLBR) for single-cell analysis of prokaryotic microorganisms is introduced. Industrially relevant microorganisms were analyzed as proof of principle allowing insights into growth rate, morphology, and phenotypic heterogeneity over certain time periods, hardly possible with conventional methods.

Extraction of Apoplastic Bacteria Using a Syringe-Based Pressure Method

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2025

Source: Rufián, J. S., et al, Single-Cell Analysis of the Expression of Pseudomonas syringae Genes within the Plant Tissue. J. Vis. Exp. (2022)This video demonstrates a syringe-based pressure method for extracting apoplastic bacteria, which proliferate and form microcolonies within the apoplast, the intercellular space between plant cells. The method yields debris-free bacterial samples suitable for downstream single-cell analysis.

Candida albicans Biofilm Formation in an In Vivo Mouse Model

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2025

This video demonstrates the development of an in vivo mouse model to study the biofilm formation of Candida albicans in subcutaneous tissue. The experiment involves implanting Candida-infected devices in the animal's back region for biofilm development.

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