Transcription Factor 4 loss-of-function is associated with deficits in progenitor proliferation and cortical neuron content.
Fabio PapesAntonio Pedro CamargoJanaina Sena de SouzaVinicius M A CarvalhoRyan A SzetoErin LaMontagneJosé Ricardo Teixeira JúniorAlysson R MuotriSandra M Sánchez-SánchezThiago S NakaharaCarolina N SantoWei WuHang YaoBarbara M P AraújoPaulo Eduardo Neves Ferreira VelhoGabriel G HaddadAlysson Renato MuotriPublished in: Nature communications (2022)
Transcription Factor 4 (TCF4) has been associated with autism, schizophrenia, and other neuropsychiatric disorders. However, how pathological TCF4 mutations affect the human neural tissue is poorly understood. Here, we derive neural progenitor cells, neurons, and brain organoids from skin fibroblasts obtained from children with Pitt-Hopkins Syndrome carrying clinically relevant mutations in TCF4. We show that neural progenitors bearing these mutations have reduced proliferation and impaired capacity to differentiate into neurons. We identify a mechanism through which TCF4 loss-of-function leads to decreased Wnt signaling and then to diminished expression of SOX genes, culminating in reduced progenitor proliferation in vitro. Moreover, we show reduced cortical neuron content and impaired electrical activity in the patient-derived organoids, phenotypes that were rescued after correction of TCF4 expression or by pharmacological modulation of Wnt signaling. This work delineates pathological mechanisms in neural cells harboring TCF4 mutations and provides a potential target for therapeutic strategies for genetic disorders associated with this gene.
Keyphrases
- transcription factor
- poor prognosis
- signaling pathway
- genome wide
- genome wide identification
- endothelial cells
- spinal cord
- stem cells
- autism spectrum disorder
- induced pluripotent stem cells
- young adults
- dna binding
- traumatic brain injury
- binding protein
- cell proliferation
- blood brain barrier
- white matter
- cell cycle arrest
- oxidative stress
- climate change
- extracellular matrix
- resting state
- cell fate