Cell-Permeable Oct4 Gene Delivery Enhances Stem Cell-like Properties of Mouse Embryonic Fibroblasts.
Da Hyeon ChoiKyeong Eun LeeJiwon ParkYoon Jeong ParkJue-Yeon LeeYoon Shin ParkPublished in: International journal of molecular sciences (2021)
Direct conversion of one cell type into another is a trans-differentiation process. Recent advances in fibroblast research revealed that epithelial cells can give rise to fibroblasts by epithelial-mesenchymal transition. Conversely, fibroblasts can also give rise to epithelia by undergoing a mesenchymal to epithelial transition. To elicit stem cell-like properties in fibroblasts, the Oct4 transcription factor acts as a master transcriptional regulator for reprogramming somatic cells. Notably, the production of gene complexes with cell-permeable peptides, such as low-molecular-weight protamine (LMWP), was proposed to induce reprogramming without cytotoxicity and genomic mutation. We designed a complex with non-cytotoxic LMWP to prevent the degradation of Oct4 and revealed that the positively charged cell-permeable LMWP helped condense the size of the Oct4-LMWP complexes (1:5 N:P ratio). When the Oct4-LMWP complex was delivered into mouse embryonic fibroblasts (MEFs), stemness-related gene expression increased while fibroblast intrinsic properties decreased. We believe that the Oct4-LMWP complex developed in this study can be used to reprogram terminally differentiated somatic cells or convert them into stem cell-like cells without risk of cell death, improving the stemness level and stability of existing direct conversion techniques.
Keyphrases
- stem cells
- optical coherence tomography
- single cell
- epithelial mesenchymal transition
- cell therapy
- gene expression
- transcription factor
- diabetic retinopathy
- cell death
- cell cycle arrest
- extracellular matrix
- induced apoptosis
- copy number
- dna methylation
- signaling pathway
- bone marrow
- endoplasmic reticulum stress
- transforming growth factor
- mesenchymal stem cells
- dna binding
- heat stress
- amino acid
- heat shock