Footprint-free Ipsc

Footprint-free induced pluripotent stem cell (iPSC) technology generates pluripotent cells without leaving permanent vector sequences or other genetic footprints in the reprogrammed genome. It works by delivering reprogramming factors transiently, so their expression can reset differentiated cells to a pluripotent state while the delivery materials are subsequently cleared or degraded. In bioengineering, footprint-free iPSCs provide a flexible starting material for disease modeling, drug evaluation, tissue engineering, and regenerative medicine. Their reduced risk of unintended genomic modification supports more controlled studies and strengthens their potential for developing clinically relevant cell-based therapies.

Footprint-free Ipsc - Related Videos

Research

JoVE Journal - Environment
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Spotting Cheetahs: Identifying Individuals by Their Footprints

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Cited by 25 •

2016

The cheetah (Acinonyx jubatus) is an iconic, endangered species, but conservation efforts are challenged by habitat shrinkage and conflict with commercial farmers. The footprint identification technique, a robust, accurate and cost-effective image classification system, is a new approach to monitoring cheetahs.

Research

JoVE Journal - Bioengineering

Efficient Generation and Editing of Feeder-free IPSCs from Human Pancreatic Cells Using the CRISPR-Cas9 System

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Cited by 4 •

2017

This protocol describes in detail the generation of footprint-free induced pluripotent stem cells (iPSCs) from human pancreatic cells in feeder-free conditions, followed by editing using CRISPR/Cas9 ribonucleoproteins and characterization of the modified single-cell clones.

Assessing Gait by Footprint Analysis: A Method to Test Motor Coordination in Mice

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2023

In this video, we describe the footprint testing procedure and related analysis to assess gait and motor coordination in mice.

Monitoring Equilibrium Changes in RNA Structure by 'Peroxidative' and 'Oxidative' Hydroxyl Radical Footprinting

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Cited by 4 •

2011

This protocol describes how to quantify the Mg(II)-dependent formation of RNA tertiary structure by two methods of hydroxyl radical footprinting.

PiggyBac Transposon-Mediated Gene Editing in Human iPSCs: A Procedure to Integrate Gene of Interest in Human iPSCs Using PiggyBac Transposon System

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2025

This video demonstrates the procedure to generate motor neurons by transfection of human iPSCs with PiggyBac transposon system by the ectopic expression of lineage-specific transcription factors.

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