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Fragile X Syndrome Patient-Derived Neurons Developing in the Mouse Brain Show FMR1-Dependent Phenotypes
Marine A Krzisch1, Hao Wu2, Bingbing Yuan1
1Whitehead Institute for Biomedical Research, Cambridge, Massachusetts.
Background:
Fragile X syndrome (FXS) is characterized by physical abnormalities, anxiety, intellectual disability, hyperactivity, autistic behaviors, and seizures. Abnormal neuronal development in FXS is poorly understood. Data on patients with FXS remain scarce, and FXS animal models have failed to yield successful therapies. In vitro models do not fully recapitulate the morphology and function of human neurons.
Methods:
To mimic human neuron development in vivo, we coinjected neural precursor cells derived from FXS patient-derived induced pluripotent stem cells and neural precursor cells derived from corrected isogenic control induced pluripotent stem cells into the brain of neonatal immune-deprived mice.
Results:
The transplanted cells populated the brain and a proportion differentiated into neurons and glial cells. Immunofluorescence and single and bulk RNA sequencing analyses showed accelerated maturation of FXS neurons after an initial delay. Additionally, we found increased percentages of Arc- and Egr-1-positive FXS neurons and wider dendritic protrusions of mature FXS striatal medium spiny neurons.
Conclusions:
This transplantation approach provides new insights into the alterations of neuronal development in FXS by facilitating physiological development of cells in a 3-dimensional context.
Insights
This study used a novel in vivo model to investigate Fragile X syndrome (FXS) neuronal development. FXS neurons showed accelerated maturation and altered dendritic structures, offering new insights into this complex neurodevelopmental disorder.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Genetics
Background:
- Fragile X syndrome (FXS) presents with intellectual disability, autistic behaviors, and seizures, linked to poorly understood abnormal neuronal development.
- Existing FXS models, including animal and in vitro systems, have limitations in fully recapitulating human neuronal morphology and function.
- Scarcity of patient data and therapeutic failures highlight the need for improved FXS research models.
Purpose of the Study:
- To develop a more accurate in vivo model for studying human neuronal development in Fragile X syndrome.
- To investigate the cellular and molecular changes in FXS neurons within a physiologically relevant environment.
- To gain insights into the mechanisms underlying altered neuronal development in FXS.
Main Methods:
- Coinjection of patient-derived induced pluripotent stem cell (iPSC)-neural precursor cells and isogenic control iPSC-neural precursor cells into neonatal mouse brains.
- Utilizing immune-deprived mice to allow for successful engraftment and survival of human cells.
- Employing immunofluorescence and RNA sequencing (single and bulk) to analyze cell differentiation and gene expression.
Main Results:
- Transplanted cells successfully integrated and differentiated into neurons and glial cells within the mouse brain.
- Fragile X syndrome neurons exhibited accelerated maturation following an initial developmental delay.
- Increased expression of Arc and Egr-1, along with wider dendritic protrusions, was observed in mature FXS neurons.
Conclusions:
- This in vivo transplantation model offers a unique platform for studying human neuronal development in FXS.
- The findings provide novel insights into the specific alterations in neuronal maturation and morphology characteristic of FXS.
- The 3D physiological context of the brain facilitates a better understanding of FXS pathophysiology.
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