Aryssa Simpson , Emily P. Mihalko , Caroline Fox , Smriti Sridharan , Manasi Krishnakumar , Ashley C. Brown
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引用次数: 0
摘要
心脏纤维化的特点是 ECM 蛋白过度积累和沉积。心脏纤维化通常与多种心血管疾病有关,包括心肌梗塞(MI)后。我们之前开发了一种双重递送纳米凝胶疗法,用于递送组织纤溶酶原激活剂(tPA)和 Y-27632(一种 ROCK 抑制剂),以解决与 MI 相关的冠状动脉闭塞问题,并下调细胞收缩力介导的纤维化反应。最初的体外研究是在玻璃基质上进行的。本文介绍的研究采用聚丙烯酰胺(PA)凝胶和微凝胶薄膜来模拟健康和纤维化的心脏组织力学。利用柔软和坚硬的聚丙烯酰胺基底或高和低损耗切线微凝胶薄膜来研究细胞-基底相互作用对双载荷纳米凝胶疗效的影响。在含有 Y-27632 的纳米凝胶存在的情况下,模拟健康和纤维化心脏组织力学的传统 PA 凝胶上的纤维化标志物表达减少。这些发现在与生理更相关的微凝胶薄膜上有所不同,在微凝胶薄膜上,ROCK 抑制剂的早期处理会加强纤维化相关反应。
Biomaterial systems for evaluating the influence of ECM mechanics on anti-fibrotic therapeutic efficacy
Cardiac fibrosis is characterized by excessive accumulation and deposition of ECM proteins. Cardiac fibrosis is commonly implicated in a variety of cardiovascular diseases, including post-myocardial infarction (MI). We have previously developed a dual-delivery nanogel therapeutic to deliver tissue plasminogen activator (tPA) and Y-27632 (a ROCK inhibitor) to address MI-associated coronary artery occlusion and downregulate cell-contractility mediated fibrotic responses. Initial in vitro studies were conducted on glass substrates. The study presented here employs the use of polyacrylamide (PA) gels and microgel thin films to mimic healthy and fibrotic cardiac tissue mechanics. Soft and stiff polyacrylamide substrates or high and low loss tangent microgel thin films were utilized to examine the influence of cell-substrate interactions on dual-loaded nanogel therapeutic efficacy. In the presence of Y-27632 containing nanogels, a reduction of fibrotic marker expression was noted on traditional PA gels mimicking healthy and fibrotic cardiac tissue mechanics. These findings differed on more physiologically relevant microgel thin films, where early treatment with the ROCK inhibitor intensified the fibrotic related responses.