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Published on: July 20, 2022
Altered synaptic connectivity in an in vitro human model of STXBP1 encephalopathy
Faye McLeod1, Anna Dimtsi1, Amy C Marshall1
1Biosciences Institute, Newcastle University, Newcastle upon Tyne NE2 4HH, UK.
Insights
Researchers developed a novel in vitro model using human brain tissue to study genetic disorders affecting early brain development. This method revealed how STXBP1 gene variants impair synaptic function in developing cortical networks.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Early infantile developmental and epileptic encephalopathies are severe genetic disorders with poorly understood mechanisms.
- Studying human cortical development in utero presents significant research challenges.
Purpose of the Study:
- To establish a novel in vitro model for investigating the impact of gene variants on human cortical development.
- To provide a platform for studying the pathological mechanisms of genetic brain disorders.
Main Methods:
- Utilized organotypic cultures of human subplate and cortical regions (14-17 post-conception weeks).
- Maintained cultures for extended periods to observe neuronal development and network formation.
- Induced STXBP1 haploinsufficiency using shRNA interference.
Main Results:
- The in vitro model preserved human cortical structures and allowed for neuronal maturation and synaptic network formation.
- STXBP1 haploinsufficiency led to impaired synaptic function.
- A reduced density of glutamatergic synapses was observed in STXBP1-deficient cultures.
Conclusions:
- This study provides a proof-of-principle for an in vitro human cortical development model.
- The model enables the study of genetic manipulations and their effects on intact human cortical networks.
- This approach is valuable for understanding gene variants in developmental and epileptic encephalopathies.
Abstract:
Early infantile developmental and epileptic encephalopathies are devastating conditions, generally of genetic origin, but the pathological mechanisms often remain obscure. A major obstacle in this field of research is the difficulty of studying cortical brain development in humans, at the relevant time period in utero. To address this, we established an in vitro assay to study the impact of gene variants on the developing human brain by using living organotypic cultures of the human subplate and neighbouring cortical regions, prepared from ethically sourced, 14-17 post-conception week brain tissue (www.hdbr.org). We were able to maintain cultures for several months, during which time the gross anatomical structures of the cortical plate, subplate and marginal zone persisted, while neurons continued to develop morphologically and form new synaptic networks. This preparation thus permits the study of genetic manipulations and their downstream effects on an intact developing human cortical network. We focused on STXBP1 haploinsufficiency, which is among the most common genetic causes of developmental and epileptic encephalopathy. This was induced using shRNA interference, leading to impaired synaptic function and a reduced density of glutamatergic synapses. We thereby provide a critical proof-of-principle for how to study the impact of any gene of interest on the development of the human cortex.
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