Engineered Tissues Made from Human iPSC-Derived Schwann Cells for Investigating Peripheral Nerve Regeneration In Vitro

Engineered Tissues Made from Human iPSC-Derived Schwann Cells for Investigating Peripheral Nerve Regeneration In Vitro

R. Powell & J.B. Phillips (2021) Engineered Tissues Made from Human iPSC-Derived Schwann Cells for Investigating Peripheral Nerve Regeneration In Vitro. In: Stock P., Christ B. (eds) In Vitro Models for Stem Cell Therapy. Methods in Molecular Biology, vol 2269. Humana, New York, NY. https://doi.org/10.1007/978-1-0716-1225-5_17

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The molecular profile of nerve repair: humans mirror rodents

Wilcox MB, Jessen KR, Quick TJ & Phillips JB (2020). The molecular profile of nerve repair: humans mirror rodents. Neural Regeneration Research, 16, 1440-1441

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Strategies for Peripheral Nerve Repair

Wilcox M, Gregory H, Powell R, Quick TJ & Phillips JB (2020). Strategies for Peripheral Nerve Repair. Current Tissue Microenvironment Reports 1, 49-59

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Three-dimensional culture systems in central nervous system research

Onuwaje I & Phillips JB (2020). Three-dimensional culture systems in central nervous system research. Handbook of Innovations in Central Nervous System Regenerative Medicine, 571-601

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A Tenon’s capsule/bulbar conjunctiva interface biomimetic to model fibrosis and local drug delivery

Kozdon, K, Caridi B, Duru I, Ezra DG, Phillips JB & Bailly M (2020). A Tenon’s capsule/bulbar conjunctiva interface biomimetic to model fibrosis and local drug delivery. PLoS ONE, 15(11): e0241569

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Perspective on Schwann Cells Derived from Induced Pluripotent Stem Cells in Peripheral Nerve Tissue Engineering

Huang Z, Powell R, Phillips JB & Haastert-Talini K (2020). Perspective on Schwann Cells Derived from Induced Pluripotent Stem Cells in Peripheral Nerve Tissue Engineering. Cells, 9, 2497

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Microscopic biophysical model of self-organization in tissue due to feedback between cell- and macroscopic-scale forces

Hague JP, Mieczkowski PW, O’Rourke C, Loughlin AJ & Phillips JB (2020). Microscopic biophysical model of self-organization in tissue due to feedback between cell- and macroscopic-scale forces. Physical Review Research, 2, 043217

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Mechanical properties of the spinal cord and brain: Comparison with clinical-grade biomaterials for tissue engineering and regenerative medicine

Bartlett RD, Eleftheriadou D, Evans R, Choi D & Phillips JB (2020). Mechanical properties of the spinal cord and brain: Comparison with clinical-grade biomaterials for tissue engineering and regenerative medicine. Biomaterials 258, 120303

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Rapidly formed stable and aligned dense collagen gels seeded with Schwann cells support peripheral nerve regeneration

Muangsanit P, Day A, Dimiou S, Ataç A, Kayal C, Park H, Nazhat SN & Phillips JB (2020). Rapidly formed stable and aligned dense collagen gels seeded with Schwann cells support peripheral nerve regeneration. Journal of Neural Engineering https://doi.org/10.1088/1741-2552/abaa9c

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Controlled local release of PPARγ agonists from biomaterials to treat peripheral nerve injury

Rayner MLD, Grillo A, Williams G, Tawfik E, Zhang T, Volitaki C, Craig DQM, Healy J & Phillips JB (2020) Controlled local release of PPARγ agonists from biomaterials to treat peripheral nerve injury. Journal of Neural Engineering https://doi.org/10.1088/1741-2552/aba7cc

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