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Published on: June 14, 2020
Reciprocity of Action of Increasing Oct4 and Repressing p53 in Transdifferentiation of Mouse Embryonic Fibroblasts
Hongran Wang1, Shuying Zhao1, Michelle Barton2
11 Department of Pediatrics, Dell Pediatric Research Institute, University of Texas at Austin Dell Medical School , Austin, Texas.
Abstract:
p53 is a barrier to somatic cell reprogramming. Deletion or transient suppression of p53 increases the efficiency of reprogramming of somatic cells into induced pluripotent stem cells. Whether p53 represents an obstacle to a similar process transdifferentiation of somatic cells is unknown. However, it is predicted that inhibition of p53 would promote transdifferentiation of fibroblasts into cardiomyocytes. In this study, the effect of p53 on the capacity of cardiogenic transdifferentiation is evaluated using p53 wild-type (p53+/+), p53 heterozygous mutant (p53+/-), and p53 homozygous mutant (p53-/-) mouse embryonic fibroblasts (MEFs). Repression of p53 in MEFs increases the expression level of mesoderm transcription factors Brachyury (T) and MESP1. The cardiac-specific markers, Myh6 (Myosin, Heavy Chain 6), Myh7 (Myosin, Heavy Chain 7), and cTnI (cardiac muscle troponin I), show elevated expression in p53+/- and p53-/- MEFs compared with wild-type MEFs, but cardiac muscle troponin T (cTnT) showed a lower expression level when p53 was inhibited. After induction to cardiac differentiation, cTnT expression increased and markers of endoderm and ectoderm decreased in p53+/- and p53-/- MEFs. The effect of an important reprogramming factor Oct4 on cardiac transdifferentiation was also evaluated in the allelic series of p53 MEFs. We found that overexpression of Oct4 significantly enhanced Mesp1, Tbx5, and Isl1 expression in p53+/+ and p53+/- MEFs. Oct4 also enhanced cTnT expression in all three cell lines, especially in p53+/- MEFs. Thus, inhibition of p53 expression and viral expression of Oct4 both promote transdifferentiation of MEFs into cardiomyocytes, establishing reciprocity of action in the process.
Insights
Inhibiting p53, a known barrier to cell reprogramming, enhances the transdifferentiation of fibroblasts into cardiomyocytes. Co-expression of Oct4 further boosts this process, highlighting a reciprocal relationship for efficient cardiac cell generation.
Area of Science:
- Cell Biology
- Developmental Biology
- Stem Cell Research
Background:
- p53 acts as a barrier to somatic cell reprogramming.
- Deletion or suppression of p53 improves reprogramming efficiency into induced pluripotent stem cells.
- The role of p53 in somatic cell transdifferentiation remains largely unknown.
Purpose of the Study:
- To investigate the effect of p53 on cardiogenic transdifferentiation.
- To evaluate how p53 inhibition influences the expression of cardiac-specific markers.
- To assess the combined effect of p53 inhibition and Oct4 on transdifferentiation.
Main Methods:
- Utilized p53 wild-type (p53+/+), heterozygous (p53+/-), and homozygous mutant (p53-/-) mouse embryonic fibroblasts (MEFs).
- Analyzed the expression of mesoderm and cardiac-specific markers (T, MESP1, Myh6, Myh7, cTnI, cTnT).
- Assessed the impact of Oct4 overexpression on transdifferentiation in MEFs with varying p53 statuses.
Main Results:
- p53 repression in MEFs upregulated mesoderm transcription factors (T, MESP1).
- Cardiac markers (Myh6, Myh7, cTnI) were elevated in p53+/- and p53-/- MEFs; cTnT was initially lower but increased upon differentiation induction.
- Oct4 overexpression significantly enhanced key cardiac transcription factors (Mesp1, Tbx5, Isl1) and cTnT expression, particularly in p53+/- MEFs.
Conclusions:
- p53 inhibition promotes the transdifferentiation of MEFs into cardiomyocytes.
- Oct4 overexpression enhances cardiac transdifferentiation, especially when p53 is partially inhibited.
- p53 inhibition and Oct4 expression exhibit a reciprocal, synergistic effect on promoting cardiogenic transdifferentiation.
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