Establishment of human cerebral organoid systems to model early neural development and assess the central neurotoxicity of environmental toxins

被引:0
|
作者
Daiyu Hu [1 ,2 ,3 ,4 ]
Yuanqing Cao [1 ,2 ,3 ,4 ]
Chenglin Cai [1 ,4 ]
Guangming Wang [1 ,4 ]
Min Zhou [2 ,3 ]
Luying Peng [4 ]
Yantao Fan [1 ,2 ,3 ]
Qiong Lai [2 ,3 ]
Zhengliang Gao [1 ,2 ,3 ]
机构
[1] Fundamental Research Center,Shanghai Yangzhi Rehabilitation Hospital(Shanghai Sunshine Rehabilitation Center),School of Medicine,Tongji University
[2] Institute of Geriatrics(Shanghai University),Affiliated Nantong Hospital of Shanghai University(The Sixth People's Hospital of Nantong),Shanghai University School of Medicine
[3] Shanghai Engineering Research Center of Organ Repair,Shanghai University School of Medicine
[4] Key Laboratory of Arrhythmias,Ministry of Education,Shanghai East Hospital,School of Medicine,Tongji University
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
D O I
暂无
中图分类号
R338 [神经生理学];
学科分类号
0710 ; 071006 ;
摘要
Human brain development is a complex process, and animal models often have significant limitations. To address this, researchers have developed pluripotent stem cell-derived three-dimensional structures, known as brain-like organoids, to more accurately model early human brain development and disease. To enable more consistent and intuitive reproduction of early brain development, in this study, we incorporated forebrain organoid culture technology into the traditional unguided method of brain organoid culture. This involved embedding organoids in matrigel for only 7 days during the rapid expansion phase of the neural epithelium and then removing them from the matrigel for further cultivation, resulting in a new type of human brain organoid system. This cerebral organoid system replicated the temporospatial characteristics of early human brain development, including neuroepithelium derivation, neural progenitor cell production and maintenance, neuron differentiation and migration, and cortical layer patterning and formation, providing more consistent and reproducible organoids for developmental modeling and toxicology testing. As a proof of concept, we applied the heavy metal cadmium to this newly improved organoid system to test whether it could be used to evaluate the neurotoxicity of environmental toxins. Brain organoids exposed to cadmium for 7 or 14 days manifested severe damage and abnormalities in their neurodevelopmental patterns, including bursts of cortical cell death and premature differentiation. Cadmium exposure caused progressive depletion of neural progenitor cells and loss of organoid integrity, accompanied by compensatory cell proliferation at ectopic locations. The convenience, flexibility, and controllability of this newly developed organoid platform make it a powerful and affordable alternative to animal models for use in neurodevelopmental, neurological, and neurotoxicological studies.
引用
收藏
页码:242 / 252
页数:11
相关论文
共 25 条
  • [21] Shaping early neural development by timed elevated tissue oxygen tension: Insights from multiomic analysis on human cerebral organoids
    Liu, Yuan-Hsuan
    Chung, Meng-Ting
    Lin, Hsi-Chieh
    Lee, Tse-Ang
    Cheng, Ya-Jen
    Huang, Chien-Chang
    Wu, Hsiao-Mei
    Tung, Yi-Chung
    SCIENCE ADVANCES, 2025, 11 (11):
  • [22] Integrative genome-scale analyses reveal post-transcriptional signatures of early human small intestinal development in a directed differentiation organoid model
    Yu-Han Hung
    Meghan Capeling
    Jonathan W. Villanueva
    Matt Kanke
    Michael T. Shanahan
    Sha Huang
    Rebecca Cubitt
    Vera D. Rinaldi
    John C. Schimenti
    Jason R. Spence
    Praveen Sethupathy
    BMC Genomics, 24
  • [23] Integrative genome-scale analyses reveal post-transcriptional signatures of early human small intestinal development in a directed differentiation organoid model
    Hung, Yu-Han
    Capeling, Meghan
    Villanueva, Jonathan W.
    Kanke, Matt
    Shanahan, Michael T.
    Huang, Sha
    Cubitt, Rebecca
    Rinaldi, Vera D.
    Schimenti, John C.
    Spence, Jason R.
    Sethupathy, Praveen
    BMC GENOMICS, 2023, 24 (01)
  • [24] Syndromes of sustainability of development for assessing the vulnerability of coupled human-environmental systems.: The case of hydrometeorological disasters in Central America and the Caribbean
    Manuel-Navarrete, David
    Gomez, Jose Javier
    Gallopin, Gilberto
    GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS, 2007, 17 (02): : 207 - 217
  • [25] The Role of FGF9 in the Production of Neural Retina and RPE in a Pluripotent Stem Cell Model of Early Human Retinal Development
    Gamm, David M.
    Clark, Eric
    Capowski, Elizabeth E.
    Singh, Ruchira
    AMERICAN JOURNAL OF OPHTHALMOLOGY, 2019, 206 : 113 - 131