Budiarta Made, Xu Wenjing, Schubert Lukas, Meledina Maria, Meledin Alexander, Wöll Dominik, Pich Andrij, Beck Tobias
RWTH Aachen University, Institute of Inorganic Chemistry, Landoltweg 1, 52074 Aachen, Germany.
DWI- Leibniz Institute for Interactive Materials e.V., Forckenbeckstraße 50, 52074 Aachen, Germany; RWTH Aachen University, Institute of Technical and Molecular Chemistry, Woringer Weg 2, 52074 Aachen, Germany.
J Colloid Interface Sci. 2021 Jun;591:451-462. doi: 10.1016/j.jcis.2021.01.072. Epub 2021 Feb 1.
The application of ferritin containers as a promising drug delivery vehicle is limited by their low bioavailability in blood circulation due to unfavorable environments, such as degradation by protease. The integration of ferritin containers into the polymeric network of microgels through electrostatic interactions is expected to be able to protect ferritin against degradation by protease. Furthermore, a stimuli-responsive microgel system can be designed by employing an acid-degradable crosslinker during the microgel synthesis. This should enable ferritin release in an acidic environment, which will be useful for future drug delivery applications.
Nanoparticle/fluorophores-loaded ferritin was integrated into microgels during precipitation polymerization. The integration was monitored by transmission electron microscopy (TEM) and fluorescence microscopy, respectively. After studying ferritin release in acidic solutions, we investigated the stability of ferritin inside microgels against degradation by chymotrypsin.
About 80% of the applied ferritin containers were integrated into microgels and around 85% and 50% of them could be released in buffer pH 2.5 and 4.0, respectively. Total degradation of the microgels was not achieved due to the self-crosslinking of N-isopropylacrylamide (NIPAM). Finally, we prove that microgels could protect ferritin against degradation by chymotrypsin at 37 °C.
由于诸如蛋白酶降解等不利环境,铁蛋白容器作为一种有前景的药物递送载体在血液循环中的低生物利用度限制了其应用。通过静电相互作用将铁蛋白容器整合到微凝胶的聚合物网络中有望能够保护铁蛋白免受蛋白酶降解。此外,在微凝胶合成过程中采用酸可降解交联剂可以设计出一种刺激响应性微凝胶系统。这应该能够使铁蛋白在酸性环境中释放,这将对未来的药物递送应用有用。
在沉淀聚合过程中将负载纳米颗粒/荧光团的铁蛋白整合到微凝胶中。分别通过透射电子显微镜(TEM)和荧光显微镜监测整合情况。在研究了铁蛋白在酸性溶液中的释放后,我们研究了微凝胶中铁蛋白对胰凝乳蛋白酶降解的稳定性。
约80%的应用铁蛋白容器被整合到微凝胶中,其中约85%和50%分别可以在pH 2.5和4.0的缓冲液中释放。由于N-异丙基丙烯酰胺(NIPAM)的自交联,未实现微凝胶的完全降解。最后,我们证明微凝胶可以在37°C下保护铁蛋白免受胰凝乳蛋白酶的降解。