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Updated: Oct 15, 2025

RNA-based Reprogramming of Human Primary Fibroblasts into Induced Pluripotent Stem Cells
Published on: November 26, 2018
Non-coding RNAs: key regulators of reprogramming, pluripotency, and cardiac cell specification with therapeutic
Hannah J Hunkler1, Sonja Groß1, Thomas Thum1,2,3
1Institute of Molecular and Translational Therapeutic Strategies, Hannover Medical School, Carl-Neuberg-Str. 1, 30625 Hannover, Germany.
Insights
Non-coding RNAs regulate key processes in cardiac cell reprogramming and differentiation. Modulating these molecules may improve stem cell therapies for heart failure patients.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Molecular Biology
Background:
- Myocardial infarction leads to cardiomyocyte loss, causing heart failure, a growing global health concern.
- Current treatments like heart transplantation have limitations, driving the need for novel therapeutic strategies.
- Cellular reprogramming and stem cell differentiation offer promising avenues for heart repair.
Purpose of the Study:
- To review the role of non-coding RNAs in cellular reprogramming, pluripotency, and cardiac differentiation.
- To explore how non-coding RNAs can enhance stem cell-based therapies for heart failure.
- To summarize current clinical efforts in cardiac cell therapy.
Main Methods:
- Literature review focusing on non-coding RNAs (microRNAs, long non-coding RNAs, circular RNAs).
- Analysis of molecular mechanisms regulating gene expression in cardiac cell development.
- Synthesis of findings on stem cell differentiation and reprogramming processes.
Main Results:
- Non-coding RNAs are critical regulators of cellular reprogramming, pluripotency, and cardiac differentiation.
- These molecules fine-tune gene expression at transcriptional and post-transcriptional levels.
- Modulation of non-coding RNAs shows potential for improving stem cell therapy efficacy.
Conclusions:
- Non-coding RNAs are key players in cardiac regenerative medicine.
- Targeting non-coding RNAs can enhance the quality and quantity of cells for heart failure treatment.
- Further research into non-coding RNA modulation is crucial for clinical translation.
Abstract:
Myocardial infarction causes a massive loss of cardiomyocytes (CMs), which can lead to heart failure accompanied by fibrosis, stiffening of the heart, and loss of function. Heart failure causes high mortality rates and is a huge socioeconomic burden, which, based on diets and lifestyle in the developed world, is expected to increase further in the next years. At present, the only curative treatment for heart failure is heart transplantation associated with a number of limitations such as donor organ availability and transplant rejection among others. Thus, the development of cellular reprogramming and defined differentiation protocols provide exciting new possibilities for cell therapy approaches and which opened up a new era in regenerative medicine. Consequently, tremendous research efforts were undertaken to gain a detailed molecular understanding of the reprogramming processes and the in vitro differentiation of pluripotent stem cells into functional CMs for transplantation into the patient's injured heart. In the last decade, non-coding RNAs, particularly microRNAs, long non-coding RNAs, and circular RNAs emerged as critical regulators of gene expression that were shown to fine-tune cellular processes both on the transcriptional and the post-transcriptional level. Unsurprisingly, also cellular reprogramming, pluripotency, and cardiac differentiation and maturation are regulated by non-coding RNAs. In here, we review the current knowledge on non-coding RNAs in these processes and highlight how their modulation may enhance the quality and quantity of stem cells and their derivatives for safe and efficient clinical application in patients with heart failure. In addition, we summarize the clinical cell therapy efforts undertaken thus far.
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