The Applications of Microphysiological Systems in Biomedicine: Impact on Urologic and Orthopaedic Research
Definition
:1. Introduction
2. Microphysiological Systems and Their Applications
2.1. Perspective on MPS Applications in Drug Development
2.2. Perspective on MPS Applications in Biomedical Research
3. Conclusions and Prospects
Author Contributions
Funding
Conflicts of Interest
References
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Organ/Tissue | Cell Type | MPS Model | Stimulus | Purpose | Ref |
---|---|---|---|---|---|
Kidney | Human renal epithelial proximal tubule cells | Nortis a ParVivo Dual-chip | Continuous flow | Improve renal drug secretion studies in vitro | [23,31,59] |
Human renal epithelial proximal tubule cells | Emulate a Organ-Chip | Continuous flow | Improve nephrotoxicity evaluation in vitro | [60] | |
Prostate | Human benign epithelial prostate cells | Bespoke b | Continuous flow | Evaluate prostate paracrine secretion in vitro | [61] |
Kidney Cancer | Human renal cell carcinoma/endothelial cells | Nortis a ParVivo Single-chip | Continuous flow | Recapitulate kidney cancer derived angiogenesis in vitro | [33] |
Bladder | Human bladder epithelial and endothelial cells/E. coli | Emulate a Organ-Chip | Continuous flow/cyclic compression | Recreate bladder infections conditions and recapitulate immune response in vitro | [62] |
Bone | Human mesenchymal stromal cells/osteoblasts/bone marrow mononuclear cells | TissUse a Humimic-Chip 2 | Pulsating cyclic flow | Study heavy metal nanotoxicity derived from medical bone implants | [43] |
Human bone marrow mononuclear cells | Bespoke b | Continuous flow | Recapitulate osteoarthritis in vitro | [63] | |
Human bone marrow mononuclear cells | Bespoke b | Cyclic compression | Improve the study of the bone healing process in vitro | [54] | |
Human osteoblasts/osteoclasts | NASA-Synthecon b | Rotating centrifugal force (artificial gravity) | Study bone loss in a microgravity environment | [64] | |
Bone marrow | Human bone marrow mononuclear cells/hematopoietic stem cells | Emulate a | Continuous flow | Improve the study of hematopoietic defects | [65] |
Skeletal muscle | Mouse myoblast cell line C2C12 | Bespoke b | Tension | Recreate muscle injury in vitro | [66] |
Mouse myoblast cell line C2C12 | Bespoke b | Continuous flow | Improve muscle metabolic studies in vitro | [67] |
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Caetano-Pinto, P.; Schoon, J. The Applications of Microphysiological Systems in Biomedicine: Impact on Urologic and Orthopaedic Research. Encyclopedia 2022, 2, 1128-1137. https://doi.org/10.3390/encyclopedia2020075
Caetano-Pinto P, Schoon J. The Applications of Microphysiological Systems in Biomedicine: Impact on Urologic and Orthopaedic Research. Encyclopedia. 2022; 2(2):1128-1137. https://doi.org/10.3390/encyclopedia2020075
Chicago/Turabian StyleCaetano-Pinto, Pedro, and Janosch Schoon. 2022. "The Applications of Microphysiological Systems in Biomedicine: Impact on Urologic and Orthopaedic Research" Encyclopedia 2, no. 2: 1128-1137. https://doi.org/10.3390/encyclopedia2020075