SOX2 and p53 Expression Control Converges in PI3K/AKT Signaling with Versatile Implications for Stemness and Cancer.
Thorsten SchaeferRebekah SteinerClaudia LengerkePublished in: International journal of molecular sciences (2020)
Stemness and reprogramming involve transcriptional master regulators that suppress cell differentiation while promoting self-renewal. A distinguished example thereof is SOX2, a high mobility group (HMG)-box transcription factor (TF), whose subcellular localization and turnover regulation in embryonic, induced-pluripotent, and cancer stem cells (ESCs, iPSCs, and CSCs, respectively) is mediated by the PI3K/AKT/SOX2 axis, a stem cell-specific branch of the PI3K/AKT signaling pathway. Further effector functions associated with PI3K/AKT induction include cell cycle progression, cellular (mass) growth, and the suppression of apoptosis. Apoptosis, however, is a central element of DNA damage response (DDR), where it provides a default mechanism for cell clearance when DNA integrity cannot be maintained. A key player in DDR is tumor suppressor p53, which accumulates upon DNA-damage and is counter-balanced by PI3K/AKT enforced turnover. Accordingly, stemness sustaining SOX2 expression and p53-dependent DDR mechanisms show molecular-functional overlap in PI3K/AKT signaling. This constellation proves challenging for stem cells whose genomic integrity is a functional imperative for normative ontogenesis. Unresolved mutations in stem and early progenitor cells may in fact provoke transformation and cancer development. Such mechanisms are also particularly relevant for iPSCs, where genetic changes imposed through somatic cell reprogramming may promote DNA damage. The current review aims to summarize the latest advances in the understanding of PI3K/AKT/SOX2-driven stemness and its intertwined relations to p53-signaling in DDR under conditions of pluripotency, reprogramming, and transformation.
Keyphrases
- pi k akt
- stem cells
- cell cycle arrest
- transcription factor
- signaling pathway
- dna damage
- cell proliferation
- cancer stem cells
- cell cycle
- cell therapy
- oxidative stress
- dna damage response
- epithelial mesenchymal transition
- poor prognosis
- papillary thyroid
- dna repair
- single cell
- dna binding
- induced apoptosis
- copy number
- bone mineral density
- endoplasmic reticulum stress
- diabetic rats
- cell death
- squamous cell
- binding protein
- gene expression
- regulatory t cells
- circulating tumor
- single molecule
- dendritic cells
- lymph node metastasis
- induced pluripotent stem cells
- genome wide identification
- squamous cell carcinoma
- functional connectivity
- genome wide
- bone marrow
- resting state