Unknown

Dataset Information

0

Generation of human brain region-specific organoids using a miniaturized spinning bioreactor.


ABSTRACT: Human brain organoids, 3D self-assembled neural tissues derived from pluripotent stem cells, are important tools for studying human brain development and related disorders. Suspension cultures maintained by spinning bioreactors allow for the growth of large organoids despite the lack of vasculature, but commercially available spinning bioreactors are bulky in size and have low throughput. Here, we describe the procedures for building the miniaturized multiwell spinning bioreactor Spin? from 3D-printed parts and commercially available hardware. We also describe how to use Spin? to generate forebrain, midbrain and hypothalamus organoids from human induced pluripotent stem cells (hiPSCs). These organoids recapitulate key dynamic features of the developing human brain at the molecular, cellular and structural levels. The reduction in culture volume, increase in throughput and reproducibility achieved using our bioreactor and region-specific differentiation protocols enable quantitative modeling of brain disorders and compound testing. This protocol takes 14-84 d to complete (depending on the type of brain region-specific organoids and desired developmental stages), and organoids can be further maintained over 200 d. Competence with hiPSC culture is required for optimal results.

SUBMITTER: Qian X 

PROVIDER: S-EPMC6241211 | biostudies-literature | 2018 Mar

REPOSITORIES: biostudies-literature

altmetric image

Publications

Generation of human brain region-specific organoids using a miniaturized spinning bioreactor.

Qian Xuyu X   Jacob Fadi F   Song Mingxi Max MM   Nguyen Ha Nam HN   Song Hongjun H   Ming Guo-Li GL  

Nature protocols 20180222 3


Human brain organoids, 3D self-assembled neural tissues derived from pluripotent stem cells, are important tools for studying human brain development and related disorders. Suspension cultures maintained by spinning bioreactors allow for the growth of large organoids despite the lack of vasculature, but commercially available spinning bioreactors are bulky in size and have low throughput. Here, we describe the procedures for building the miniaturized multiwell spinning bioreactor SpinΩ from 3D-p  ...[more]

Similar Datasets

2016-04-22 | GSE80073 | GEO
| S-EPMC7451502 | biostudies-literature
| S-EPMC4900885 | biostudies-literature
2024-08-28 | GSE251680 | GEO
| S-EPMC9701612 | biostudies-literature
| S-EPMC10320313 | biostudies-literature
2024-08-28 | GSE251678 | GEO
2024-08-28 | GSE251679 | GEO
| S-EPMC7580078 | biostudies-literature
| PRJNA1055044 | ENA