Targeted PERK inhibition with biomimetic nanoclusters confers preventative and interventional benefits to elastase-induced abdominal aortic aneurysms

腹主动脉瘤 医学 未折叠蛋白反应 发病机制 癌症研究 动脉瘤 体内 药品 药理学 内质网 病理 外科 生物 细胞生物学 生物技术
作者
Nisakorn Yodsanit,Takuro Shirasu,Yitao Huang,Yin Li,Zain Husain Islam,Alexander Gregg,Alessandra Marie Riccio,Runze Tang,Eric William Kent,Yuyuan Wang,Ruosen Xie,Yi Zhao,Mingzhou Ye,Jingcheng Zhu,Yi Huang,Nicholas Hoyt,Mengxue Zhang,John A. Hossack,Morgan Salmon,K. Craig Kent
出处
期刊:Bioactive Materials [Elsevier]
卷期号:26: 52-63 被引量:17
标识
DOI:10.1016/j.bioactmat.2023.02.009
摘要

Abdominal aortic aneurysm (AAA) is a progressive aortic dilatation, causing ∼80% mortality upon rupture. Currently, there is no approved drug therapy for AAA. Surgical repairs are invasive and risky and thus not recommended to patients with small AAAs which, however, account for ∼90% of the newly diagnosed cases. It is therefore a compelling unmet clinical need to discover effective non-invasive strategies to prevent or slow down AAA progression. We contend that the first AAA drug therapy will only arise through discoveries of both effective drug targets and innovative delivery methods. There is substantial evidence that degenerative smooth muscle cells (SMCs) orchestrate AAA pathogenesis and progression. In this study, we made an exciting finding that PERK, the endoplasmic reticulum (ER) stress Protein Kinase R-like ER Kinase, is a potent driver of SMC degeneration and hence a potential therapeutic target. Indeed, local knockdown of PERK in elastase-challenged aorta significantly attenuated AAA lesions in vivo. In parallel, we also conceived a biomimetic nanocluster (NC) design uniquely tailored to AAA-targeting drug delivery. This NC demonstrated excellent AAA homing via a platelet-derived biomembrane coating; and when loaded with a selective PERK inhibitor (PERKi, GSK2656157), the NC therapy conferred remarkable benefits in both preventing aneurysm development and halting the progression of pre-existing aneurysmal lesions in two distinct rodent models of AAA. In summary, our current study not only establishes a new intervention target for mitigating SMC degeneration and aneurysmal pathogenesis, but also provides a powerful tool to facilitate the development of effective drug therapy of AAA.
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