Apte Gurunath, Lindenbauer Annerose, Schemberg Jörg, Rothe Holger, Nguyen Thi-Huong
Junior Research Group, Department of Bioprocess Technique, and Department of Biomaterials, Institute for Bioprocessing and Analytical Measurement Techniques (iba), Rosenhof, 37308 Heilbad Heiligenstadt, Germany.
ACS Omega. 2021 Apr 13;6(16):10963-10974. doi: 10.1021/acsomega.1c00764. eCollection 2021 Apr 27.
Platelet-surface interaction is of paramount importance in biomedical applications as well as in vitro studies. However, controlling platelet-surface activation is challenging and still requires more effort as they activate immediately when contacting with any nonphysiological surface. As hydrogels are highly biocompatible, in this study, we developed agarose and gelatin-based hydrogel films to inhibit platelet-surface adhesion. We found promising agarose films that exhibit higher surface wettability, better controlled-swelling properties, and greater stiffness compared to gelatin, resulting in a strong reduction of platelet adhesion. Mechanical properties and surface wettability of the hydrogel films were varied by adding magnetite (FeO) nanoparticles. While all of the films prevented platelet spreading, films formed by agarose and its nanocomposite repelled platelets and inhibited platelet adhesion and activation stronger than those of gelatin. Our results showed that platelet-surface activation is modulated by controlling the properties of the films underneath platelets and that the bioinert agarose can be potentially translated to the development of platelet storage and other medical applications.
血小板-表面相互作用在生物医学应用以及体外研究中至关重要。然而,控制血小板-表面激活具有挑战性,并且仍需付出更多努力,因为它们在与任何非生理表面接触时会立即激活。由于水凝胶具有高度生物相容性,在本研究中,我们开发了基于琼脂糖和明胶的水凝胶薄膜以抑制血小板-表面粘附。我们发现了有前景的琼脂糖薄膜,与明胶相比,其具有更高的表面润湿性、更好的可控溶胀特性和更大的硬度,从而导致血小板粘附显著减少。通过添加磁铁矿(FeO)纳米颗粒来改变水凝胶薄膜的力学性能和表面润湿性。虽然所有薄膜都能防止血小板铺展,但由琼脂糖及其纳米复合材料形成的薄膜比明胶薄膜更能排斥血小板并更强地抑制血小板粘附和激活。我们的结果表明,通过控制血小板下方薄膜的性质可以调节血小板-表面激活,并且生物惰性的琼脂糖有可能转化用于血小板储存和其他医学应用的开发。