The Effect of Hypothermic and Cryogenic Preservation on Engineered Neural Tissue

The Effect of Hypothermic and Cryogenic Preservation on Engineered Neural Tissue

Day AGE, Bhangra KS, Murray-Dunning C, Stevanato L, Phillips JB (2017) The Effect of Hypothermic and Cryogenic Preservation on Engineered Neural Tissue. Tissue Engineering Part C Methods, 23, 575-582

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Low frequency oscillating gradient spin-echo sequences improve sensitivity to axon diameter: An experimental study in viable nerve tissue

Kakkar LS, Bennett OF, Siow B, Richardson S, Ianuş A, Quick T, Atkinson D, Phillips JB & Drobnjak I (2017) Low frequency oscillating gradient spin-echo sequences improve sensitivity to axon diameter: An experimental study in viable nerve tissue. NeuroImage https://doi.org/10.1016/j.neuroimage.2017.07.060

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Could clinical photochemical internalisation be optimised to avoid neuronal toxicity?

C. O’Rourke, C. Hopper, A.J. MacRobert, J.B. Phillips & J.H. Woodhams (2017) Could clinical photochemical internalisation be optimised to avoid neuronal toxicity? International Journal of Pharmaceutics 528, 133-143

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Stabilization, rolling and addition of other ECM proteins to collagen hydrogels improves regeneration in chitosan guides for long peripheral nerve gaps in rats

F. Gonzalez-Perez, S. Cobianchi, C. Heimann, J.B. Phillips, E. Udina, X. Navarro (2017) Stabilization, rolling and addition of other ECM proteins to collagen hydrogels improves regeneration in chitosan guides for long peripheral nerve gaps in rats. Neurosurgery 80, 465-474

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Adapting tissue-engineered in vitro CNS models for high-throughput study of neurodegeneration

Caitriona O’Rourke, Charlotte Lee-Reeves, Rosemary AL Drake, Grant WW Cameron, A Jane Laughlin & James B Phillips (2017) Adapting tissue-engineered in vitro CNS models for high-throughput study of neurodegeneration. Journal of Tissue Engineering 8, 1-9.

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Combining Gene and Stem Cell Therapy for Peripheral Nerve Tissue Engineering

Francesca Busuttil, Ahad A. Rahim and James B. Phillips (2017) Combining gene and stem cell therapy for peripheral nerve tissue engineering. Stem Cells and Development 26(4):231-238

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Engineered neural tissue with Schwann cell differentiated human dental pulp stem cells: potential for peripheral nerve repair?

K. Sanen, W. Martens, M. Georgiou, M. Ameloot, I. Lambrichts & J.B. Phillips (2017) Engineered neural tissue with Schwann cell differentiated human dental pulp stem cells: potential for peripheral nerve repair? Journal of Tissue Engineering and Regenerative Medicine doi: 10.1002/term.2249

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An integrated theoretical-experimental approach to accelerate translational tissue engineering

R.H. Coy, O.R. Evans, J.B. Phillips & R.J. Shipley (2016). An integrated theoretical-experimental approach to accelerate translational tissue engineering. Journal of Tissue Engineering and Regenerative Medicine doi: 10.1002/term.2346

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Biomechanical properties of the spinal cord: implications for tissue engineering and clinical translation.

R.D. Bartlett, D. Choi & J.B. Phillips (2016). Biomechanical properties of the spinal cord: implications for tissue engineering and clinical translation. Regenerative Medicine, (doi:10.2217/rme-2016-0065)

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Using Stem Cells to Grow Artificial Tissue for Peripheral Nerve Repair

K.S. Bhangra, F. Busuttil, J.B. Phillips & A.A. Rahim (2016). Using Stem Cells to Grow Artificial Tissue for Peripheral Nerve Repair. Stem Cells International, ID 7502178

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