All News
Logo

Notification Center

No messages!

Notification Center

No messages!

Categories

    • •All “Technologies” Subcategories
    • •Gadgets
    • •Artificial Intelligence
    • •Cars
    • •Internet
    • •Space
    • •New Energy
    • •All “Science” Subcategories
    • •Medicine & Biology
    • •Astronomy & Astrophysics
    • •History & Archeology
    • •Sun
    • •Physics & Chemistry
    • •Quantum physics
    • •Genetics
    • •All “Planet” Subcategories
    • •Animals
    • •Oceans
    • •Flora
    • •Discovery
    • •Weather & Ecology
    • •Unusual Phenomena
    • •Antarctica
    • •All “Society” Subcategories
    • •Records
    • •Art
    • •Music
    • •Disclosure
    • •Films
    • •Architecture
    • •Fashion
    • •Gossip
    • •Food & Kitchen
    • •All “Money” Subcategories
    • •Auctions
    • •Taxes
    • •Banks & Currency
    • •Cryptocurrency
    • •Stock Market
    • •Showbiz
    • •Companies
    • •All “World Events” Subcategories
    • •Summary
    • •International Organizations
    • •Breaking news
    • •Summit Meetings
    • •Upcoming global events
    • •Trump U.S.
    • •All “Human” Subcategories
    • •Meow and woof
    • •Consciousness
    • •Psychology
    • •Youth
    • •Education
    • •Trips
    • •Design
    • •Languages

Follow us

  • •Technologies
  • •Science
  • •Planet
  • •Society
  • •Money
  • •World Events
  • •Human

Share

  • •Medicine & Biology
  • •Astronomy & Astrophysics
  • •History & Archeology
  • •Sun
  • •Physics & Chemistry
  • •Quantum physics
  • •Genetics
  • About us
  • Terms of Use
  • Privacy Policy
  • Home
  • Science
  • Genetics

Advancements in Heart Cell Development from Human Embryonic Stem Cells

08:50, 29 July

Edited by: Katia Remezova Cath

Recent scientific research has focused on understanding the differentiation of human embryonic stem cells (hESCs) into cardiomyocytes, the muscle cells responsible for heart contractions. This process is crucial for developing regenerative therapies for heart diseases.

Studies have demonstrated that hESCs can differentiate into cardiomyocytes exhibiting structural and functional properties characteristic of early-stage cardiac tissue. These findings are significant for advancing regenerative medicine and understanding heart development at the cellular level.

Additionally, research has explored the use of hESC-derived cardiomyocytes in non-human primate models. These studies have shown that transplantation of these cells can lead to remuscularization of infarcted heart tissue, indicating potential applications in heart regeneration therapies. However, the occurrence of ventricular arrhythmias in these models highlights the need for further research to ensure the safety and efficacy of such treatments.

These advancements contribute to the growing body of knowledge on heart cell development and the potential applications of stem cell-derived cardiomyocytes in regenerative medicine.

Sources

  • Nature

  • Transcriptome-wide RNA 5-methylcytosine profiles of human iPSCs and iPSC-derived cardiomyocytes

  • Single-cell RNA sequencing reveals maturation trajectory in human pluripotent stem cell-derived cardiomyocytes in engineered tissues

  • Integrated multi-omics analysis identifies features that predict human pluripotent stem cell-derived progenitor differentiation to cardiomyocytes

Read more news on this topic:

25 June

LINE-1 Elements: Key Players in Early Embryo Development and Stem Cell Biology

17 April

Histone Chaperones CAF-1 and SPT6 Orchestrate Adult Stem Cell Regeneration, New Study Reveals

27 January

Human Cell Atlas Reports Significant Progress in Understanding Human Cells

Did you find an error or inaccuracy?

We will consider your comments as soon as possible.