BACKGROUND: Schizophrenia (SCZ) is a debilitating psychiatric disorder with a large genetic contribution; however, its neurodevelopmental substrates remain largely unknown. Modeling pathogenic processes in SCZ using human induced pluripotent stem cell-derived neurons (iNs) has emerged as a promising strategy. Copy number variants confer high genetic risk for SCZ, with duplication of the 16p11.2 locus increasing the risk 14.5-fold. METHODS: To dissect the contribution of induced excitatory neurons (iENs) versus GABAergic (gamma-aminobutyric acidergic) neurons (iGNs) to SCZ pathophysiology, we induced iNs from CRISPR (clustered regularly interspaced short palindromic repeats)-Cas9 isogenic and SCZ patient-derived induced pluripotent stem cells and analyzed SCZ-related phenotypes in iEN monocultures and iEN/iGN cocultures. RESULTS: In iEN/iGN cocultures, neuronal firing and synchrony were reduced at later, but not earlier, stages of in vitro development. These were fully recapitulated in iEN monocultures, indicating a primary role for iENs. Moreover, isogenic iENs showed reduced dendrite length and deficits in calcium handling. iENs from 16p11.2 duplication-carrying patients with SCZ displayed overlapping deficits in network synchrony, dendrite outgrowth, and calcium handling. Transcriptomic analysis of both iEN cohorts revealed molecular markers of disease related to the glutamatergic synapse, neuroarchitecture, and calcium regulation. CONCLUSIONS: Our results indicate the presence of 16p11.2 duplication-dependent alterations in SCZ patient-derived iENs. Transcriptomics and cellular phenotyping reveal overlap between isogenic and patient-derived iENs, suggesting a central role of glutamatergic, morphological, and calcium dysregulation in 16p11.2 duplication-mediated pathogenesis. Moreover, excitatory dysfunction during early neurodevelopment is implicated as the basis of SCZ pathogenesis in 16p11.2 duplication carriers. Our results support network synchrony and calcium handling as outcomes directly linked to this genetic risk variant.
Excitatory Dysfunction Drives Network and Calcium Handling Deficits in 16p11.2 Duplication Schizophrenia Induced Pluripotent Stem Cell-Derived Neurons.
16p11.2重复精神分裂症诱导的多能干细胞衍生神经元中兴奋性功能障碍导致网络和钙处理缺陷
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作者:Parnell Euan, Culotta Lorenza, Forrest Marc P, Jalloul Hiba A, Eckman Blair L, Loizzo Daniel D, Horan Katherine K E, Dos Santos Marc, Piguel Nicolas H, Tai Derek J C, Zhang Hanwen, Gertler Tracy S, Simkin Dina, Sanders Alan R, Talkowski Michael E, Gejman Pablo V, Kiskinis Evangelos, Duan Jubao, Penzes Peter
| 期刊: | Biological Psychiatry | 影响因子: | 9.000 |
| 时间: | 2023 | 起止号: | 2023 Jul 15; 94(2):153-163 |
| doi: | 10.1016/j.biopsych.2022.11.005 | 研究方向: | 发育与干细胞、神经科学、细胞生物学 |
| 疾病类型: | 精神分裂症 | ||
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