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William S Sheridan

Showing results (1-10 of 7) with videos related to

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Tissue Engineering. Part C, Methods|April 26, 2013
Optimum parameters for freeze-drying decellularized arterial scaffoldsWilliam S Sheridan, Garry P Duffy, Bruce P Murphy
Journal of Biomechanics|October 15, 2014
The effect of a thermal renal denervation cycle on the mechanical properties of the arterial wallAlan A Hopkins, William S Sheridan, Faisal Sharif, et al.
Journal of Biomedical Materials Research. Part B, Applied Biomaterials|March 26, 2014
The application of a thermoresponsive chitosan/β-GP gel to enhance cell repopulation of decellularized vascular scaffoldsWilliam S Sheridan, Orna B Grant, Garry P Duffy, et al.
Annals of Biomedical Engineering|July 3, 2014
An experimental investigation of the effect of mechanical and biochemical stimuli on cell migration within a decellularized vascular constructWilliam S Sheridan, Alan J Ryan, Garry P Duffy, et al.
Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference|December 3, 2025
A Novel Implantable Inferior Vena Cava Sensor: Validation of Remote Monitoring Derived Area with Computerized TomographyTeresa Buxo, Barry R Greene, Fiachra Sweeney, et al.
Journal of Cardiac Failure|September 30, 2024
Safety and Feasibility of an Implanted Inferior Vena Cava Sensor for Accurate Volume Assessment: FUTURE-HF2 TrialNir Uriel, Kunjan Bhatt, Rami Kahwash, et al.
JACC. Heart Failure|April 10, 2025
First-in-Human Implantable Inferior Vena Cava Sensor for Remote Care in Heart Failure: FUTURE-HFPaul R Kalra, Irakli Gogorishvili, George Khabeishvili, et al.
Pageof 1

Showing results (1-10 of 7) with videos related to

Sort By:
Pageof 1
Tissue Engineering. Part C, Methods|April 26, 2013
Optimum parameters for freeze-drying decellularized arterial scaffoldsWilliam S Sheridan, Garry P Duffy, Bruce P Murphy
Journal of Biomechanics|October 15, 2014
The effect of a thermal renal denervation cycle on the mechanical properties of the arterial wallAlan A Hopkins, William S Sheridan, Faisal Sharif, et al.
Journal of Biomedical Materials Research. Part B, Applied Biomaterials|March 26, 2014
The application of a thermoresponsive chitosan/β-GP gel to enhance cell repopulation of decellularized vascular scaffoldsWilliam S Sheridan, Orna B Grant, Garry P Duffy, et al.
Annals of Biomedical Engineering|July 3, 2014
An experimental investigation of the effect of mechanical and biochemical stimuli on cell migration within a decellularized vascular constructWilliam S Sheridan, Alan J Ryan, Garry P Duffy, et al.
Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference|December 3, 2025
A Novel Implantable Inferior Vena Cava Sensor: Validation of Remote Monitoring Derived Area with Computerized TomographyTeresa Buxo, Barry R Greene, Fiachra Sweeney, et al.
Journal of Cardiac Failure|September 30, 2024
Safety and Feasibility of an Implanted Inferior Vena Cava Sensor for Accurate Volume Assessment: FUTURE-HF2 TrialNir Uriel, Kunjan Bhatt, Rami Kahwash, et al.
JACC. Heart Failure|April 10, 2025
First-in-Human Implantable Inferior Vena Cava Sensor for Remote Care in Heart Failure: FUTURE-HFPaul R Kalra, Irakli Gogorishvili, George Khabeishvili, et al.
Pageof 1