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Ex Utero Electroporation and Organotypic Slice Culture of Mouse Hippocampal Tissue
Published on: March 4, 2015
MeCP2 dysfunction prevents proper BMP signaling and neural progenitor expansion in brain organoid
Hyowon Hong1, Sae-Bom Yoon1, Jung Eun Park1
1Therapeutics & Biotechnology Division, Korea Research Institute of Chemical Technology, 141 Gajeong-ro, Yuseong-gu, Daejeon, Republic of Korea.
Objectives:
Sporadic mutations in MeCP2 are a hallmark of Rett syndrome (RTT). Many RTT brain organoid models have exhibited pathogenic phenotypes such as decreased spine density and small size of soma with altered electrophysiological signals. However, previous models are mainly focused on the phenotypes observed in the late phase and rarely provide clues for the defect of neural progenitors which generate different types of neurons and glial cells.
Methods:
We newly established the RTT brain organoid model derived from MeCP2-truncated iPS cells which were genetically engineered by CRISPR/Cas9 technology. By immunofluorescence imaging, we studied the development of NPC pool and its fate specification into glutamatergic neurons or astrocytes in RTT organoids. By total RNA sequencing, we investigated which signaling pathways were altered during the early brain development in RTT organoids.
Results:
Dysfunction of MeCP2 caused the defect of neural rosette formation in the early phase of cortical development. In total transcriptome analysis, BMP pathway-related genes are highly associated with MeCP2 depletion. Moreover, levels of pSMAD1/5 and BMP target genes are excessively increased, and treatment of BMP inhibitors partially rescues the cell cycle progression of neural progenitors. Subsequently, MeCP2 dysfunction reduced the glutamatergic neurogenesis and induced overproduction of astrocytes. Nevertheless, early inhibition of BMP pathway rescued VGLUT1 expression and suppressed astrocyte maturation.
Interpretation:
Our results demonstrate that MeCP2 is required for the expansion of neural progenitor cells by modulating BMP pathway at early stages of development, and this influence persists during neurogenesis and gliogenesis at later stages of brain organoid development.
Insights
Mutations in MeCP2 disrupt early brain development in Rett syndrome (RTT) models. Modulating the BMP pathway in RTT organoids can rescue neural progenitor cell expansion and differentiation, offering new therapeutic targets.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Rett syndrome (RTT) is a neurodevelopmental disorder caused by sporadic mutations in the Methyl-CpG-binding protein 2 (MeCP2) gene.
- Existing RTT brain organoid models primarily focus on late-stage phenotypes, neglecting early neural progenitor defects.
Purpose of the Study:
- To investigate the early developmental defects in neural progenitor cells in a novel RTT brain organoid model.
- To identify the molecular pathways affected by MeCP2 dysfunction during early cortical development.
Main Methods:
- Established a Rett syndrome brain organoid model using CRISPR/Cas9 engineered MeCP2-truncated induced pluripotent stem cells (iPSCs).
- Utilized immunofluorescence imaging to assess neural progenitor cell (NPC) pool development and fate specification.
- Performed total RNA sequencing to analyze altered signaling pathways in RTT organoids.
Main Results:
- MeCP2 dysfunction impaired neural rosette formation and reduced glutamatergic neurogenesis, leading to overproduction of astrocytes.
- Transcriptome analysis revealed dysregulation of the Bone Morphogenetic Protein (BMP) signaling pathway, with increased pSMAD1/5 and BMP target genes.
- Inhibition of the BMP pathway partially rescued NPC cell cycle progression, VGLUT1 expression, and suppressed astrocyte maturation.
Conclusions:
- MeCP2 is crucial for neural progenitor cell expansion during early brain development by modulating the BMP pathway.
- The identified BMP pathway dysregulation and its impact on neurogenesis and gliogenesis provide insights into RTT pathogenesis.
- Targeting the BMP pathway in early developmental stages may offer therapeutic potential for Rett syndrome.
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