Direct neuronal reprogramming can be achieved using different approaches: by expressing neuronal transcription factors or microRNAs; and by knocking down neuronal repressive elements. However, there still exists a high variability in terms of the quality and maturity of the induced neurons obtained, depending on the reprogramming strategy employed. Here, we evaluate different long-term culture conditions and study the effect of expressing the neuronal-specific microRNAs, miR124 and miR9/9*, while reprogramming with forced expression of the transcription factors Ascl1, Brn2, and knockdown of the neuronal repressor REST. We show that the addition of microRNAs supports neuronal maturation in terms of gene and protein expression, as well as in ...
Fine-tuning of gene expression is a fundamental requirement for development and function of cells an...
Non-coding RNAs regulate many biological processes including neurogenesis. The brain-enriched miR-12...
Neurogenesis in the nervous system is regulated by both protein coding genes and non-coding RNA mole...
Induced neurons (iNs) are somatic cells that are directly converted to change their fate into neuro...
Direct conversion of human fibroblasts into mature and functional neurons, termed induced neurons (i...
Direct conversion of human fibroblasts into mature and functional neurons, termed induced neurons (i...
The loss of neurons due to injury and disease results in a wide spectrum of highly disabling neurolo...
SummaryThe promise of using reprogrammed human neurons for disease modeling and regenerative medicin...
Only a few decades ago, it was generally believed that gene expression was controlled in a unidirect...
MicroRNAs (miRNAs) are evolutionarily conserved non-coding RNAs of,22 nucleotides that regulate gene...
MicroRNAs (miRNAs) constitute a class of small, non-coding RNAs that act as post-transcriptional reg...
In the past few years, the understanding of microRNA (miRNA) biogenesis, the molecular mechanisms by...
<div><p>MicroRNAs are key regulators of neural cell proliferation, differentiation and fate choice. ...
The use of transcriptional factors as cell fate regulators are often the primary focus in the direct...
The crucial role of microRNAs (miRNAs) in brain development is demonstrated by the dramatic apoptoti...
Fine-tuning of gene expression is a fundamental requirement for development and function of cells an...
Non-coding RNAs regulate many biological processes including neurogenesis. The brain-enriched miR-12...
Neurogenesis in the nervous system is regulated by both protein coding genes and non-coding RNA mole...
Induced neurons (iNs) are somatic cells that are directly converted to change their fate into neuro...
Direct conversion of human fibroblasts into mature and functional neurons, termed induced neurons (i...
Direct conversion of human fibroblasts into mature and functional neurons, termed induced neurons (i...
The loss of neurons due to injury and disease results in a wide spectrum of highly disabling neurolo...
SummaryThe promise of using reprogrammed human neurons for disease modeling and regenerative medicin...
Only a few decades ago, it was generally believed that gene expression was controlled in a unidirect...
MicroRNAs (miRNAs) are evolutionarily conserved non-coding RNAs of,22 nucleotides that regulate gene...
MicroRNAs (miRNAs) constitute a class of small, non-coding RNAs that act as post-transcriptional reg...
In the past few years, the understanding of microRNA (miRNA) biogenesis, the molecular mechanisms by...
<div><p>MicroRNAs are key regulators of neural cell proliferation, differentiation and fate choice. ...
The use of transcriptional factors as cell fate regulators are often the primary focus in the direct...
The crucial role of microRNAs (miRNAs) in brain development is demonstrated by the dramatic apoptoti...
Fine-tuning of gene expression is a fundamental requirement for development and function of cells an...
Non-coding RNAs regulate many biological processes including neurogenesis. The brain-enriched miR-12...
Neurogenesis in the nervous system is regulated by both protein coding genes and non-coding RNA mole...