3D-Suspension culture platform for high throughput screening of neurotoxic chemicals using LUHMES dopaminergic neurons

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-01-26 DOI:10.1016/j.slasd.2024.01.004
Zhi-Bin Tong, Ruili Huang, John Braisted, Pei-Hsuan Chu, Anton Simeonov, David L. Gerhold
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Abstract

Three-dimensional (3D) cell culture in vitro promises to improve representation of neuron physiology in vivo. This inspired development of a 3D culture platform for LUHMES (Lund Human Mesencephalic) dopaminergic neurons for high-throughput screening (HTS) of chemicals for neurotoxicity. Three culture platforms, adhesion (2D-monolayer), 3D-suspension, and 3D-shaken, were compared to monitor mRNA expression of seven neuronal marker genes, DCX, DRD2, ENO2, NEUROD4, SYN1, TH, and TUBB3. These seven marker genes reached similar maxima in all three formats, with the two 3D platforms showing similar kinetics, whereas several markers peaked earlier in 2D adhesion compared to both 3D culture platforms. The differentiated LUHMES (dLUHMES) neurons treated with ziram, methylmercury or thiram dynamically increased expression of metallothionein biomarker genes MT1G, MT1E and MT2A at 6 h. These gene expression increases were generally more dynamic in 2D adhesion cultures than in 3D cultures, but were generally comparable between 3D-suspension and 3D-u plate (low binding) platforms. Finally, we adapted 3D-suspension culture of dLUHMES and neural stem cells to 1536 well plates with a HTS cytotoxicity assay. This HTS assay revealed that cytotoxicity IC50 values were not significantly different between adhesion and 3D-suspension platforms for 31 of 34 (91%) neurotoxicants tested, whereas IC50 values were significantly different for at least two toxicants. In summary, the 3D-suspension culture platform for LUHMES dopaminergic neurons supported full differentiation and reproducible assay results, enabling quantitative HTS (qHTS) for cytotoxicity in 1536 well format with a Robust Z’ score of 0.68.

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利用 LUHMES 多巴胺能神经元高通量筛选神经毒性化学品的三维悬浮培养平台。
体外三维(3D)细胞培养有望改善神经元在体内的生理表现。因此,我们开发了一种 LUHMES(隆德人间脑)多巴胺能神经元三维培养平台,用于高通量筛选(HTS)化学物质的神经毒性。比较了粘附(二维单层)、三维悬浮和三维摇动三种培养平台,以监测七种神经元标记基因(DCX、DRD2、ENO2、NEUROD4、SYN1、TH 和 TUBB3)的 mRNA 表达。这七个标记基因在所有三种格式中都达到了相似的最大值,两种三维平台显示出相似的动力学,而与两种三维培养平台相比,二维粘附中的几个标记基因更早达到峰值。经齐拉姆、甲基汞或硫拉姆处理的分化 LUHMES(dLUHMES)神经元在 6 小时内动态增加了金属硫蛋白生物标记基因 MT1G、MT1E 和 MT2A 的表达。这些基因表达的增加在二维粘附培养物中通常比在三维培养物中更具动态性,但在三维悬浮平台和三维 U 型板(低结合力)平台中一般具有可比性。最后,我们将三维悬浮培养的 dLUHMES 和神经干细胞移植到 1536 孔板上,并进行了 HTS 细胞毒性试验。这项 HTS 试验表明,在所测试的 34 种神经毒剂中,有 31 种(91%)的细胞毒性 IC50 值在粘附平台和三维悬浮平台之间没有显著差异,而至少有两种毒剂的 IC50 值有显著差异。总之,用于 LUHMES 多巴胺能神经元的三维悬浮培养平台支持完全分化和可重复的检测结果,可在 1536 孔格式中进行细胞毒性定量 HTS(qHTS),稳健 Z'评分为 0.68。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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