Cell-type-specific functionality encoded within the intrinsically disordered regions of OCT4
Abstract
Abstract The cell-type-specific function of transcription factors (TFs) is crucial for determining cellular identity. However, it is unclear how a single TF can function specifically in different cell types. Here, we define the molecular features that enable OCT4 to reprogram somatic cells into pluripotent or trophoblast stem cells, maintain the self-renewal of embryonic stem cells (ESCs), and drive lineage commitment during early embryonic development. Embedded within the intrinsically disordered regions (IDRs) of OCT4, we uncover short linear peptides that are essential for reprogramming (SLiPERs) but dispensable for ESC self-renewal. SLiPERs adopt a quasi-ordered state and, during reprogramming, recruit a unique set of proteins to closed chromatin that are unnecessary for ESC self-renewal. Interestingly, SLiPERs are essential for embryos to develop beyond late gastrulation. Removing SLiPERs leads to aberrant OCT4 binding, derailing the regular transition of ESCs out of pluripotency. Our findings identify modules within IDRs that contribute to the functional versatility and specificity of TFs.
Article Details
Authors (20)
Burak Özkan
Mitzy Rios de Anda
Elisa Hall-Ponsele
Maria Rosa Portero Migueles
Amani Alshaikh
Marta Hanzevacki
Moriyah Naama
Katharine Furlong
Gareth A. Roberts
Meryam Beniazza
My Linh Huynh
Michael R. O’Dwyer
Sonia Yiakoumi
Christos Spanos
Hazar Yassen
Keisuke Kaji
Hitoshi Niwa
Department of Pluripotent Stem Cell Biology, Institute of Molecular Embryology and Genetics, Kumamoto University
Yosef Buganim
Sally Lowell
Abdenour Soufi