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Molecular, Cellular, and Tissue Engi...
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Wright, Neil T.
Molecular, Cellular, and Tissue Engineering of the Vascular System
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Molecular, Cellular, and Tissue Engineering of the Vascular System/ edited by Bingmei M. Fu, Neil T. Wright.
其他作者:
Fu, Bingmei M.
面頁冊數:
VIII, 334 p. 84 illus., 65 illus. in color.online resource. :
Contained By:
Springer Nature eBook
標題:
Regenerative medicine. -
電子資源:
https://doi.org/10.1007/978-3-319-96445-4
ISBN:
9783319964454
Molecular, Cellular, and Tissue Engineering of the Vascular System
Molecular, Cellular, and Tissue Engineering of the Vascular System
[electronic resource] /edited by Bingmei M. Fu, Neil T. Wright. - 1st ed. 2018. - VIII, 334 p. 84 illus., 65 illus. in color.online resource. - Advances in Experimental Medicine and Biology,10970065-2598 ;. - Advances in Experimental Medicine and Biology,889.
Chapter 1: The Role of Endothelial Surface Glycocalyx in Mechanosensing and Transduction -- Chapter 2: The Molecular Structure Of The Endothelial Gycocalyx Layer (EGL) and Surface Layers (ESL) Modulation of Transvascular Exchange -- Chapter 3: Role of the Glycocalyx as a Barrier to Leukocyte-Endothelium Adhesion -- Chapter 4: Mechanobiology and Vascular Remodeling: from Membrane to Nucleus -- Chapter 5: Endothelial nuclear lamina in mechanotransduction under shear stress -- Chapter 6: Regional heterogeneity in the regulation of vasoconstriction in arteries and its role in vascular mechanics -- Chapter 7: Microcalcifications, their genesis, growth and biomechanical stability in fibrous cap rupture -- Chapter 8: Abdominal Aortic Aneurysm Pathomechanics: Current Understanding and Future Directions -- Chapter 9: Vascular intervention: from angioplasty to bioresorbable vascular scaffold -- Chapter 10: On the physics underlying longitudinal capillary recruitment -- Chapter 11: Tumor Metastasis in the Microcirculation -- Chapter 12: Modelling Cell Adhesion and Extravasation in Microvascular system -- Chapter 13: Transport across the Blood-Brain Barrier -- Chapter 14: Blood-Brain Barrier Integrity and Clearance of Amyloid-β from the BBB -- Chapter 15: Mathematical Models of Cell Response Following Heating -- Chapter 16: Hypothermia Used in Medical Applications for Brain and Spinal Cord Injury Patients -- Chapter 17: Biomechanical Changes of Tympanic Membrane to Blast Waves.
This book introduces the latest research in molecular, cellular, and tissue engineering of the vascular system. Topics covered include the roles of endothelial surface glycocalyx as a mechano-sensor and transducer for blood flow, a barrier to water and solute transport across the vascular wall and to the interaction between circulating cells and the vessel wall, the roles of nuclear envelope proteins and nuclear lamina in regulating vascular functions under blood flow-induced forces, and the roles of smooth muscle cells and extracellular components in arterial vasoconstriction. Other topics covered include non-surgical vascular interventions for coronary artery diseases, genesis and mechanisms of atherosclerotic plaque microcalcifications and human abdominal aortic aneurysms, experiments and modelling for red blood cell and tumor cell movement in microcirculation, transport across the blood-brain barrier and its role in Alzheimer’s disease, mathematical models for cell survival after hyperthermia, application of hypothermia in enhancing treatment for brain and spinal cord injuries, and damage of eardrums due to blast waves. This is an ideal book for biomedical engineers and researchers, medical researchers, and students in biomedical engineering and medical sciences.
ISBN: 9783319964454
Standard No.: 10.1007/978-3-319-96445-4doiSubjects--Topical Terms:
782729
Regenerative medicine.
LC Class. No.: R857.T55
Dewey Class. No.: 612.028
Molecular, Cellular, and Tissue Engineering of the Vascular System
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Chapter 1: The Role of Endothelial Surface Glycocalyx in Mechanosensing and Transduction -- Chapter 2: The Molecular Structure Of The Endothelial Gycocalyx Layer (EGL) and Surface Layers (ESL) Modulation of Transvascular Exchange -- Chapter 3: Role of the Glycocalyx as a Barrier to Leukocyte-Endothelium Adhesion -- Chapter 4: Mechanobiology and Vascular Remodeling: from Membrane to Nucleus -- Chapter 5: Endothelial nuclear lamina in mechanotransduction under shear stress -- Chapter 6: Regional heterogeneity in the regulation of vasoconstriction in arteries and its role in vascular mechanics -- Chapter 7: Microcalcifications, their genesis, growth and biomechanical stability in fibrous cap rupture -- Chapter 8: Abdominal Aortic Aneurysm Pathomechanics: Current Understanding and Future Directions -- Chapter 9: Vascular intervention: from angioplasty to bioresorbable vascular scaffold -- Chapter 10: On the physics underlying longitudinal capillary recruitment -- Chapter 11: Tumor Metastasis in the Microcirculation -- Chapter 12: Modelling Cell Adhesion and Extravasation in Microvascular system -- Chapter 13: Transport across the Blood-Brain Barrier -- Chapter 14: Blood-Brain Barrier Integrity and Clearance of Amyloid-β from the BBB -- Chapter 15: Mathematical Models of Cell Response Following Heating -- Chapter 16: Hypothermia Used in Medical Applications for Brain and Spinal Cord Injury Patients -- Chapter 17: Biomechanical Changes of Tympanic Membrane to Blast Waves.
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This book introduces the latest research in molecular, cellular, and tissue engineering of the vascular system. Topics covered include the roles of endothelial surface glycocalyx as a mechano-sensor and transducer for blood flow, a barrier to water and solute transport across the vascular wall and to the interaction between circulating cells and the vessel wall, the roles of nuclear envelope proteins and nuclear lamina in regulating vascular functions under blood flow-induced forces, and the roles of smooth muscle cells and extracellular components in arterial vasoconstriction. Other topics covered include non-surgical vascular interventions for coronary artery diseases, genesis and mechanisms of atherosclerotic plaque microcalcifications and human abdominal aortic aneurysms, experiments and modelling for red blood cell and tumor cell movement in microcirculation, transport across the blood-brain barrier and its role in Alzheimer’s disease, mathematical models for cell survival after hyperthermia, application of hypothermia in enhancing treatment for brain and spinal cord injuries, and damage of eardrums due to blast waves. This is an ideal book for biomedical engineers and researchers, medical researchers, and students in biomedical engineering and medical sciences.
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