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  • Human In Vitro Model Mimicking Material-Driven Vascular Regeneration Reveals How Cyclic Stretch and Shear Stress Differentially Modulate Inflammation and Matrix Deposition.

Human In Vitro Model Mimicking Material-Driven Vascular Regeneration Reveals How Cyclic Stretch and Shear Stress Differentially Modulate Inflammation and Matrix Deposition.

Advanced biosystems (2020-05-12)
Eline E van Haaften, Tamar B Wissing, Nicholas A Kurniawan, Anthal I P M Smits, Carlijn V C Bouten
摘要

Resorbable synthetic scaffolds designed to regenerate living tissues and organs inside the body have emerged as a clinically attractive technology to replace diseased blood vessels. However, mismatches between scaffold design and in vivo hemodynamic loading (i.e., cyclic stretch and shear stress) can result in aberrant inflammation and adverse tissue remodeling, leading to premature graft failure. Yet, the underlying mechanisms remain elusive. Here, a human in vitro model is presented that mimics the transient local inflammatory and biomechanical environments that drive scaffold-guided tissue regeneration. The model is based on the coculture of human (myo)fibroblasts and macrophages in a bioreactor platform that decouples cyclic stretch and shear stress. Using a resorbable supramolecular elastomer as the scaffold material, it is revealed that cyclic stretch initially reduces proinflammatory cytokine secretion and, especially when combined with shear stress, stimulates IL-10 secretion. Moreover, cyclic stretch stimulates downstream (myo)fibroblast proliferation and matrix deposition. In turn, shear stress attenuates cyclic-stretch-induced matrix growth by enhancing MMP-1/TIMP-1-mediated collagen remodeling, and synergistically alters (myo)fibroblast phenotype when combined with cyclic stretch. The findings suggest that shear stress acts as a stabilizing factor in cyclic stretch-induced tissue formation and highlight the distinct roles of hemodynamic loads in the design of resorbable vascular grafts.

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2-巯基乙醇, Molecular Biology, suitable for electrophoresis, suitable for cell culture, BioReagent, 99% (GC/titration)
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抗坏血酸磷酸酯镁 倍半镁盐 水合物, ≥95%
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凝血酶 来源于牛血浆, lyophilized powder, 40-500 NIH units/mg protein (biuret)
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戊二醛 溶液, Grade I, 25% in H2O, specially purified for use as an electron microscopy fixative
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木瓜蛋白酶 来源于木瓜乳液, lyophilized powder, ≥10 units/mg protein
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乙二胺四乙酸 二钠盐 二水合物, reagent grade, 98.5-101.5% (titration)