Jia Huizhen, Ding Ling, Yu Ao, Tang Weimin, Tang Siyuan, Zhang Chuhan, Oupický David
Center for Drug Delivery and Nanomedicine, Department of Pharmaceutical Sciences, College of Pharmacy, University of Nebraska Medical Center, Omaha, NE, 68198, USA.
Bioact Mater. 2022 Aug 2;25:569-579. doi: 10.1016/j.bioactmat.2022.07.018. eCollection 2023 Jul.
Crosstalk between Kupffer cells (KCs) and hepatic stellate cells (HSCs) plays an important role in multiple liver disease conditions, including the formation of liver fibrosis in alcohol-associated liver disease (AALD). Therapeutic targeting of the KC-HSC crosstalk is a prime target for therapeutic interventions. Herein, a novel modular nanosystem was designed and prepared through the self-assembly utilizing boric acid and catechol interactions to prepare polymers modified with a CXCR4-inhibiting moieties. The polymers were used to encapsulate anti-miR-155 and to block the undesirable crosstalk between HSCs and KCs by downregulating miR-155 expression in KCs with the parallel inhibition of CXCR4 signaling in activated HSCs. The combined inhibition of miR-155 and CXCR4 at two different liver cell types achieved improved antifibrosis effects in a mouse model of AALD fibrosis. Our finding highlights the key role that blocking the undesirable crosstalk between HSCs and KCs plays in reversing AALD fibrosis as well as demonstrates a proof-of-concept approach for designing and constructing multifunctional delivery nanosystems using orthogonal functional modules based on the understanding of disease mechanisms.
库普弗细胞(KCs)与肝星状细胞(HSCs)之间的串扰在多种肝脏疾病中发挥重要作用,包括酒精性肝病(AALD)中肝纤维化的形成。针对KC-HSC串扰进行治疗靶向是治疗干预的主要目标。在此,通过利用硼酸和儿茶酚相互作用进行自组装,设计并制备了一种新型模块化纳米系统,以制备用CXCR4抑制部分修饰的聚合物。这些聚合物用于封装抗miR-155,并通过下调KC中的miR-155表达以及同时抑制活化HSCs中的CXCR4信号传导来阻断HSCs与KCs之间不良的串扰。在两种不同肝细胞类型中对miR-155和CXCR4的联合抑制在AALD纤维化小鼠模型中实现了更好的抗纤维化效果。我们的发现突出了阻断HSCs与KCs之间不良串扰在逆转AALD纤维化中所起的关键作用,同时基于对疾病机制的理解,展示了一种使用正交功能模块设计和构建多功能递送纳米系统的概念验证方法。