Multifunctional Regulation of 3D Cell-Laden Microsphere Culture on an Integrated Microfluidic Device.
Yajing ZhengZengnan WuMashooq KhanSifeng MaoKesavan ManibalanNan LiJin-Ming LinLing LinPublished in: Analytical chemistry (2019)
Three-dimensional (3D) hydrogel microspheres have aroused increasing attention as an in vitro cell culture model. Yet the preservation of cells' original biological properties has been overlooked during model construction. Here we present an integrated microfluidic device to accomplish the overall process including cell-laden microsphere generation, online extraction, and dynamic-culture. The method extends the noninvasive and nonsuppression capabilities of the droplet preparation system and provides a constant microenvironment, which reduces intracellular oxidative stress damage and the accumulation of mitochondria. Compared to the conventional preparation method, the coculture model of tumor-endothelial construction on an integrated platform displays high-level angiogenic protein expression. We believe that this versatile and biocompatible platform will provide a more reliable analysis tool for tissue engineering and cancer therapy.
Keyphrases
- single cell
- high throughput
- oxidative stress
- cancer therapy
- tissue engineering
- drug delivery
- induced apoptosis
- molecularly imprinted
- cell therapy
- healthcare
- social media
- working memory
- reactive oxygen species
- dna damage
- ionic liquid
- cell proliferation
- signaling pathway
- mass spectrometry
- ischemia reperfusion injury
- label free
- endoplasmic reticulum
- simultaneous determination