| Literature DB >> 28670476 |
Jie Zhang1,1, Xiaofeng Wei1,1, Rui Zeng1,1, Feng Xu2,2, XiuJun Li1,3,4,1,3,4.
Abstract
Microfluidic lab-on-a-chip provides a new platform with unique advantages to mimic complex physiological microenvironments in vivo and has been increasingly exploited to stem cell research. In this review, we highlight recent advances of microfluidic devices for stem cell culture and differentiation toward the development of organ-on-a-chip, especially with an emphasis on vital innovations within the last 2 years. Various aspects for improving on-chip stem-cell culture and differentiation, particularly toward organ-on-a-chip, are discussed, along with microenvironment control, surface modification, extracellular scaffolds, high throughput and stimuli. The combination of microfluidic technologies and stem cells hold great potential toward versatile systems of 'organ-on-a-chip' as desired. Adapted with permission from [1-8].Entities:
Keywords: microfluidic devices; organ-on-a-chip; stem cell; stem cell culture; stem cell differentiation
Year: 2017 PMID: 28670476 PMCID: PMC5481871 DOI: 10.4155/fsoa-2016-0091
Source DB: PubMed Journal: Future Sci OA ISSN: 2056-5623
Summary of recent stem cell culture works in microfluidic devices.
| Microenvironment control for stem cell culture | hiPSCs | Perfusion culture increased the growth rate of hiPSCs | [ |
| hiPSCs | Control shear stress on stem cells | [ | |
| hNSCs | Low oxygen and 3D extracellular matrices | [ | |
| mESCs | Membrane separated co-culture of mESCs and mEFs | [ | |
| | hMSCs | Enhanced cryopreservation of MSC monolayer in microfluidic channels | [ |
| Surface modification | hBMMSCs | PDMS substrates with varying hydrophobicity, stiffness and roughness | [ |
| hMSCs | Polydopamine coating on PDMS | [ | |
| mHSCs | SCF covalently immobilized within GelMA | [ | |
| Porcine MSCs | Immobilize collagen type 1 on PDMS | [ | |
| | hMSCs | Single hMSC differentiation on PAAc | [ |
| Scaffolds | hADMSCs, hBMMSCs | MAP gels | [ |
| mNSCs | Alignment in ECM components in 3D hydrogels | [ | |
| hASCs, hTMSCs | dECM bioink for bioprinting of cell-laden constructs | [ | |
| hMSCs | Hydrogel microbeads based on telechelic POx cross-linkers and the methacrylate monomers (HEMA: METAC: SPMA) | [ | |
| | mESCs | Core–shell structure to mimic prehatching embryos | [ |
| High throughput | hBMMSCs | hBMMSC condensation and 3D micromass culture | [ |
| hBMMSCs | 625 microcavities for co-culture of hBMMSCs and HPCs | [ | |
| hHSCs | 800 chambers to monitor single hHSCs | [ | |
| hPSCs | 8100 culture chambers for combinatorial screening of bio-factors | [ |
dECM: Decellularized extracellular matrix; ECM: Extracellular matrix; GelMA: Methacrylamide-functionalized gelatin; hADMSC: Human adipose-derived mesenchymal stem cell; hASC: Human adipose-derived stem cell; hBMMSC: Human bone-marrow-derived mesenchymal stem cell; HEMA: 2-hydroxyethyl methacrylate; hHSC: Human hematopoietic stem cell; hiPSC: Human-induced pluripotent stem cell; hMSC: Human mesenchymal stem cell; hNSC: Human neural stem cell; HPC: Hematopoietic progenitor cell; hPSC: Human pluripotent stem cell; hTMSC: Human inferior turbinate-tissue-derived mesenchymal stromal cell; MAP: Microporous annealed particle; mEF: Mouse embryonic fibroblast; mESC: Mouse embryonic stem cell; METAC: [2-(methacryloyloxy)ethyl]trimethylammonium chloride; mHSC: Murine hematopoietic stem cell; MSC: Mesenchymal stem cell; mNSC: Mouse neural stem cell; PAAc: Poly(acrylic acid); PDMS: Polydimethylsiloxane; POx: Poly(2-oxazoline); SCF: Stem cell factor; SPAM: sulfopropyl methacrylate.
Stem cell culture in microfluidic platforms.
(A) Precise control of shear stress on a single stem cell in a microfluidic device, which established a clonality validated stem cell line after tracing its growth at the single cell level. Reproduced with permission from [1] © Elsevier (2014). (B) Polydopamine coating on PDMS for stabilized MSC adhesion and multipotency. Reproduced with permission from [2] © Nature Publishing Group (2015). (C) Imparting alignment in ECM components in 3D hydrogels to orient outgrowth of neuronal processes. Reproduced with permission from [3] © Nature Publishing Group (2015). (D) A high-throughput microfluidic array containing 8100 culture chambers for hPSC culture and screening of candidate biologicals. Reproduced with permission from [4] © Nature Publishing Group (2016).
ECM: Extracellular matrix; HDMA: High-density microbioreactor array; hPSC: Human pluripotent stem cell; MSC: Mesenchymal stem cell; PDMS: Polydimethylsiloxane.
Summary of recent stem cell differentiation works in microfluidic devices.
| Microenvironment control for stem cell differentiation | hiPSCs | Aligned PDMS microgrooves as physical guidance cues for hiPSC neural differentiation | [ |
| mNSC | MF (defined as the volume of stem cell culture medium divided by the total number of cells at seeding and number of hours between medium replacement) relationship with mNSC differentiation | [ | |
| mESCs | Heparin hydrogel droplets containing nodal and FGF-2 to direct mESC differentiation | [ | |
| hNSCs | Alginate hollow hydrogel spheres internally coated with Matrigel layers for hNSC differentiation | [ | |
| | mESCs | Simultaneous or sequential orthogonal gradient | [ |
| Stimulus | hMSCs | Co-cultured of hNSCs with genetically engineered hMSCs overexpressing GDNF for neuronal differentiation | [ |
| hMSCs | Extremely low shear stress enhanced osteogenic differentiation with TAZ as the mediator | [ | |
| ADMSCs | Stretchable PDA-coated parafilm providing mechanical, chemical, biological and topographic cues for osteogenic differentiation | [ | |
| hPDMCs | Combining chemical stimulation and sheer stress to promote stem cell differentiation | [ | |
| | hMSCs | Controlled and simultaneous mechanical, electrical and biochemical stimulations | [ |
| Tissue engineering | hiPSCs | Differentiation of hiPSC-derived human neuroepithelial cells into functional dopaminergic neurons | [ |
| hiPSCs | Heart-on-chip for modeling BTHS | [ | |
| mESCs | Different cell encapsulation in hydrogel microbeads at different ratios | [ | |
| hBMMSCs | 3D functional, perfusable microvascular networks composed of human endothelial cells and hBMMSCs | [ | |
| mHSCs | Bone-marrow-on-a-chip | [ |
ADMSC: Adipose-derived mesenchymal stem cell; BTHS: Cardiomyopathy of Barth syndrome; GDNF: Glial cell-derived neurotrophic factor; hBMMSC: Human bone-marrow-derived mesenchymal stem cell; hiPSC: Human-induced pluripotent stem cell; hMSC: Human mesenchymal stem cell; hNSC: Human neural stem cell; hPDMC: Human placenta-derived multipotent stem cell; mESC: Mouse embryonic stem cell; MF: Medium factor; mHSC: Murine hematopoietic stem cell; mNSC: Mouse neural stem cell; PDA: Polydopamine; PDMS: Polydimethylsiloxane; TAZ: Transcriptional coactivator with PDZ-binding motif.
Stem cell differentiation on microfluidic devices.
(A) Core–shell hydrogel droplets for culture and differentiation of hNSCs. Matrigel was coated on the inside surface to mimic the basal membrane. Reproduced with permission from [5] © The Royal Society of Chemistry (2016). (B) Combined mechanical, electrical and biochemical stimulations for hMSC differentiation. Reproduced with permission from [6] © the Nature Publishing Group (2015).
hMSC: Human mesenchymal stem cell; hNSC: Human neural stem cell.
Stem cell-based organ-on-a-chip construction.
(A) Differentiation of hiPSC-derived human neuroepithelial cells into functional dopaminergic neurons in microchannels.
Reproduced with permission from [7] © The Royal Society of Chemistry (2015). (B) Generation of 3D functional microvascular networks with hMSCs in a microfluidic system. Reproduced with permission from [8] © The Royal Society of Chemistry (2014).
hiPSC: Human-induced pluripotent stem cell; hMSC: Human mesenchymal stem cell.