| Literature DB >> 29065876 |
Min Wei1,2, Song Li1,2, Weidong Le3,4,5.
Abstract
Stem cells are unspecialized cells that have the potential for self-renewal and differentiation into more specialized cell types. The chemical and physical properties of surrounding microenvironment contribute to the growth and differentiation of stem cells and consequently play crucial roles in the regulation of stem cells' fate. Nanomaterials hold great promise in biological and biomedical fields owing to their unique properties, such as controllable particle size, facile synthesis, large surface-to-volume ratio, tunable surface chemistry, and biocompatibility. Over the recent years, accumulating evidence has shown that nanomaterials can facilitate stem cell proliferation and differentiation, and great effort is undertaken to explore their possible modulating manners and mechanisms on stem cell differentiation. In present review, we summarize recent progress in the regulating potential of various nanomaterials on stem cell differentiation and discuss the possible cell uptake, biological interaction and underlying mechanisms.Entities:
Keywords: Differentiation; Nanomaterials; Stem cells
Mesh:
Substances:
Year: 2017 PMID: 29065876 PMCID: PMC5655945 DOI: 10.1186/s12951-017-0310-5
Source DB: PubMed Journal: J Nanobiotechnology ISSN: 1477-3155 Impact factor: 10.435
Fig. 1Sketch map of nanomaterials modulate the differentiation of stem cells in three ways. Nanomaterials could be used as supplements (a), 2D matrix (b) or 3D nano-scaffolds (c) that induce differentiation of stem cells
Fig. 2The physicochemical features of nanomaterials influence cellular uptake and consequently impact their modulating potential on stem cells differentiation
A summary of the applications of nanomaterials in stem cell differentiation
| Nanomaterials | Chemical modifications/components | Cell lineages generated | Cell sources | References |
|---|---|---|---|---|
|
| ||||
| AuNPs | Osteogenic differentiation | mMSCs/hADSCs/hMSCs | [ | |
| AuNPs | Chitosan | Osteogenic differentiation | hADSCs | [ |
| AgNPs | Osteogenic differentiation | mMSCs | [ | |
| AgNPs | Osteogenic differentiation | hUSCs | [ | |
| AgNPs | miR-148b | Osteogenic differentiation | hADSCs | [ |
| GO | Dopamine neurons | mESCs | [ | |
| GQD | Osteoblasts and adipocytes | rBMSCs | [ | |
| Silica nanoparticles | Insulin | Adipogenic differentiation | rMSCs | [ |
| Silica nanoparticles | AA | Cardiac differentiation | hESCs | [ |
| Mesoporous silica nanoparticles | HNF3β plasmid DNA | Hepatocyte-like cells | miPSCs | [ |
| Silica nanoparticles | PEDF siRNA | Self-renewal and differentiation | hCSCs | [ |
| IONPs | Osteogenic differentiation | hBMSCs | [ | |
| IONPs | HSA/FGF2 | Neuronal, adipogenic and osteogenic lineages | hMSCs | [ |
| Barium titanate nanoparticles | Proliferation and differentiation | rMSCs | [ | |
| DNA nanotubes | Peptide RGDS | Neurons | mNSCs | [ |
| Chitosan-based-microRNA nanoparticles | AntimiR-138 | Osteogenic differentiation | rMSCs | [ |
| Polymeric nanoparticles | RA | Neuronal differentiation | mNSCs/hiPSCs/mouse SVZ stem cells | [ |
| Chitosan nanoparticles | Hepatocyte growth factor | Hepatocytes | mBMSCs | [ |
| Polyethyleneimine complex nanoparticles | RA | Neuronal differentiation | mESCs | [ |
| Polymeric nanoparticles | siSOX9 and RA | Neurons | mNSCs | [ |
|
| ||||
| AuNPs-loaded functionalized nanofibers | PCL/SF/AV/VitB12/GNP fibers | Cardiac differentiation | hMSCs | [ |
| AuNPs-loaded hybrid nanofibers | BSA/PVA scaffolds | Cardiac differentiation | hMSCs | [ |
| TiO2 nanotubes | Osteogenic differentiation | hADSCs/rBMSCs | [ | |
| TiO2-coated CoCrMo | Osteogenic differentiation | hMSCs | [ | |
| TiO2 scaffolds | Osteogenic differentiation | hADSCs | [ | |
| GR/TiO2 heterojunction | Neurons | hNSCs | [ | |
| GR | Laminin-coated | Neurons | hNSCs | [ |
| GR | Osteogenic differentiation | hMSCs | [ | |
| GO-PLGA nanofiber scaffolds | Osteogenic differentiation | hMSCs | [ | |
| rGO-collagen hybrid scaffold | Neural cells | rBMSCs | [ | |
| Graphene nanogrids | Osteogenic differentiation | hMSCs | [ | |
| Aligned SWCNTs | Osteogenic differentiation | hMSCs | [ | |
| SWCNTs | Adipogenesis | rMSCs | [ | |
| MWCNTs | Poly(ε-caprolactone) | Cardiac differentiation | hMSCs | [ |
| MWCNTs | Carboxylated | Neural cells | hBMSCs | [ |
| MWCNTs | PEG | Osteogenic differentiation | hMSCs | [ |
| MWCNTs-incorporated nanocomposite scaffolds | Cartilage regeneration | hBMSCs | [ | |
| Xanthan and magnetite nanoparticles hybrid scaffolds | Neurons | mESCs | [ | |
| PLLA/PBLG/collagen nanofibrous | Osteogenic lineages | Rabbits-ADSCs | [ | |