Decellularized Brain Extracellular Matrix Hydrogel Aids the Formation of Human Spinal-Cord Organoids Recapitulating the Complex Three-Dimensional Organization

去细胞化 类有机物 细胞外基质 脊髓 细胞外 基质(化学分析) 解剖 生物医学工程 细胞生物学 材料科学 生物 神经科学 医学 复合材料
作者
Weidong Wu,Youjun Liu,Renfeng Liu,Yuhao Wang,Yuqi Zhao,Hui Li,Botao Lu,Cheng Ju,Xinlin Gao,Hailiang Xu,Yulin Cao,Shixiang Cheng,Zhiyuan Wang,Shuaijun Jia,Chunping Hu,Lei Zhu,Dingjun Hao
出处
期刊:ACS Biomaterials Science & Engineering [American Chemical Society]
卷期号:10 (5): 3203-3217 被引量:26
标识
DOI:10.1021/acsbiomaterials.4c00029
摘要

The intricate electrophysiological functions and anatomical structures of spinal cord tissue render the establishment of in vitro models for spinal cord-related diseases highly challenging. Currently, both in vivo and in vitro models for spinal cord-related diseases are still underdeveloped, complicating the exploration and development of effective therapeutic drugs or strategies. Organoids cultured from human induced pluripotent stem cells (hiPSCs) hold promise as suitable in vitro models for spinal cord-related diseases. However, the cultivation of spinal cord organoids predominantly relies on Matrigel, a matrix derived from murine sarcoma tissue. Tissue-specific extracellular matrices are key drivers of complex organ development, thus underscoring the urgent need to research safer and more physiologically relevant organoid culture materials. Herein, we have prepared a rat decellularized brain extracellular matrix hydrogel (DBECMH), which supports the formation of hiPSC-derived spinal cord organoids. Compared with Matrigel, organoids cultured in DBECMH exhibited higher expression levels of markers from multiple compartments of the natural spinal cord, facilitating the development and maturation of spinal cord organoid tissues. Our study suggests that DBECMH holds potential to replace Matrigel as the standard culture medium for human spinal cord organoids, thereby advancing the development of spinal cord organoid culture protocols and their application in in vitro modeling of spinal cord-related diseases.
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