Biocompatibility and Electrical Stimulation of Skeletal and Smooth Muscle Cells Cultured on Piezoelectric Nanogenerators.
Andreu BlanquerOriol CaretaLaura Anido-VarelaAida ArandaElena IbáñezJaume EsteveCarme NoguésGonzalo MurilloPublished in: International journal of molecular sciences (2021)
Nanogenerators are interesting for biomedical applications, with a great potential for electrical stimulation of excitable cells. Piezoelectric ZnO nanosheets present unique properties for tissue engineering. In this study, nanogenerator arrays based on ZnO nanosheets are fabricated on transparent coverslips to analyse the biocompatibility and the electromechanical interaction with two types of muscle cells, smooth and skeletal. Both cell types adhere, proliferate and differentiate on the ZnO nanogenerators. Interestingly, the amount of Zn ions released over time from the nanogenerators does not interfere with cell viability and does not trigger the associated inflammatory response, which is not triggered by the nanogenerators themselves either. The local electric field generated by the electromechanical nanogenerator-cell interaction stimulates smooth muscle cells by increasing cytosolic calcium ions, whereas no stimulation effect is observed on skeletal muscle cells. The random orientation of the ZnO nanogenerators, avoiding an overall action potential aligned along the muscle fibre, is hypothesised to be the cause of the cell-type dependent response. This demonstrates the need of optimizing the nanogenerator morphology, orientation and distribution according to the potential biomedical use. Thus, this study demonstrates the cell-scale stimulation triggered by biocompatible piezoelectric nanogenerators without using an external source on smooth muscle cells, although it remarks the cell type-dependent response.
Keyphrases
- quantum dots
- induced apoptosis
- skeletal muscle
- reduced graphene oxide
- tissue engineering
- cell cycle arrest
- inflammatory response
- single cell
- room temperature
- cell therapy
- spinal cord injury
- visible light
- signaling pathway
- endoplasmic reticulum stress
- gold nanoparticles
- type diabetes
- stem cells
- oxidative stress
- bone marrow
- insulin resistance
- cell death
- neural network