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Chromatin Modification in iPS Cells01:32

Chromatin Modification in iPS Cells

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Chromatin modification alters gene expression; therefore, scientists can add histone-modifying enzymes, histone variants, and chromatin remodeling complexes to somatic cells to aid reprogramming into pluripotent stem (iPS) cells.
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
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Maintenance of the ES Cell State01:14

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The cells of the blastocyst inner cell mass only remain pluripotent for a short time. This state of pluripotency and self-renewal can be maintained in embryonic stem (ES) cell culture by adding specific chemicals or growth factors to ensure the cells can continue dividing and later differentiate into different cell types. In some cases, the cells are grown on a feeder layer of differentiated cells, which provides the growth factors and extracellular matrix components necessary for stem cell...
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Induced Pluripotent Stem Cells01:06

Induced Pluripotent Stem Cells

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Stem cells are undifferentiated cells that divide and produce different cell types. Ordinarily, cells that have differentiated into a specific cell type are terminally differentiated; however, scientists have found a way to reprogram these mature cells so that they dedifferentiate and return to an unspecialized, proliferative state. These cells are pluripotent like embryonic stem cells—able to produce all cell types—and are called induced pluripotent stem cells (iPSCs).
Somatic...
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Stem Cell Culture01:17

Stem Cell Culture

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Stem cell research aims to find ways to use stem cells to regenerate and repair cellular damage. Over time, most adult cells undergo the wear and tear of aging and lose their ability to divide and repair themselves. Stem cells do not display a particular morphology or function. Adult stem cells, which exist as a small subset of cells in most tissues, keep dividing and can differentiate into a number of specialized cells generally formed by that tissue. These cells enable the body to renew and...
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Embryonic Stem Cells00:57

Embryonic Stem Cells

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Embryonic stem (ES) cells were first discovered in mice in 1981 by Martin Evans. In 1998, James Thomson identified a method to isolate embryonic stem cells from humans. Human embryonic stem cells (hESCs) are obtained from 3-5 day old embryos that remain unused after an in vitro fertilization procedure.
ES cells are grown in a culture medium where they can divide indefinitely, creating ES cell lines. Under certain conditions, ES cells can differentiate, either spontaneously into a variety of...
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Source And Potency Of Stem Cells01:27

Source And Potency Of Stem Cells

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Stem cells are undifferentiated cells with extensive self-renewal properties that help them maintain their population during the fetal and adult stages of life. They can specialize in all cell types of the human body. However, their differential potential may vary and can be classified into five types. Stem cells can be (1) Totipotent, (2) Pluripotent, (3) Multipotent, (4) Oligopotent, and (5) Unipotent. Each stem cell has a specific origin; the fertilized egg or zygote is a totipotent cell and...
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Related Experiment Video

Updated: Oct 21, 2025

Profiling Individual Human Embryonic Stem Cells by Quantitative RT-PCR
09:03

Profiling Individual Human Embryonic Stem Cells by Quantitative RT-PCR

Published on: May 29, 2014

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Single cell heterogeneity in human pluripotent stem cells.

Seungbok Yang1, Yoonjae Cho1, Jiwon Jang2

  • 1Department of Life Sciences, Pohang University of Science and Technology (POSTECH), Pohang 37673, Korea.

BMB Reports
|September 7, 2021
PubMed
Summary

Single cell heterogeneity in human pluripotent stem cells (hPSCs) presents both risks and opportunities. While some variations are detrimental, others are crucial for differentiation and development.

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Area of Science:

  • Stem Cell Biology
  • Developmental Biology
  • Genetics

Background:

  • Human pluripotent stem cells (hPSCs), including embryonic stem cells (hESCs) and induced pluripotent stem cells (hiPSCs), are vital for research and therapy.
  • Historically viewed as uniform, hPSCs exhibit significant single-cell heterogeneity.
  • This variability arises from genetic/epigenetic changes during culture or reprogramming, and intrinsic cellular processes.

Purpose of the Study:

  • To explore the dual role of single-cell heterogeneity in human pluripotent stem cells.
  • To differentiate between detrimental and beneficial heterogeneity in hPSC applications.
  • To propose strategies for managing heterogeneity in hPSC research and therapy.

Main Methods:

  • Review of recent advances in single-cell technologies applied to hPSCs.
  • Analysis of genetic and epigenetic factors contributing to hPSC heterogeneity.
  • Examination of intrinsic cellular mechanisms driving heterogeneity and their role in differentiation.

Main Results:

  • Single-cell heterogeneity in hPSCs can stem from culture-induced abnormalities or intrinsic biological processes.
  • Certain variations, particularly cancer-related ones, can confer growth advantages and pose risks for hPSC applications.
  • Intrinsic heterogeneity, linked to cell cycle and adhesion, appears essential for lineage production during differentiation.

Conclusions:

  • Single-cell heterogeneity in hPSCs is a complex, "Janus-faced" phenomenon with both harmful and beneficial aspects.
  • Minimizing detrimental heterogeneity through improved culture and screening is essential for safe hPSC use.
  • Harnessing intrinsic heterogeneity offers potential for controlling hPSC proliferation and differentiation for therapeutic purposes.