纳米颗粒递送AMPK激活剂991可防止其毒性并改善杜氏肌营养不良患者的肌肉稳态。

IF 4.7 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Molecular Therapy-Methods & Clinical Development Pub Date : 2025-08-14 eCollection Date: 2025-09-11 DOI:10.1016/j.omtm.2025.101564
Ilaria Andreana, Ananga Ghosh, Mathieu Repellin, Anita Kneppers, Sabrina Ben Larbi, Federica Tifni, Aurélie Fessard, Marion Martin, Jacqueline Sidi-Boumedine, David Kryza, Barbara Stella, Silvia Arpicco, Claire Bordes, Yves Chevalier, Julien Gondin, Bénédicte Chazaud, Rémi Mounier, Giovanna Lollo, Gaëtan Juban
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引用次数: 0

摘要

肌营养不良症,如杜氏肌营养不良症(DMD),是由永久性肌肉损伤导致慢性炎症引起的,巨噬细胞通过分泌转化生长因子β1 (TGF-β1)改变了炎症特征,从而导致纤维化。我们之前在DMD小鼠模型中发现,amp激活的蛋白激酶(AMPK)激活可减少巨噬细胞分泌TGF-β1,改善肌肉稳态和肌肉力。然而,像化合物991这样的直接AMPK激活剂在体内表现出强烈的副作用。为了克服这种毒性,我们将991包裹在可生物降解的聚乳酸-羟基乙酸(PLGA)纳米颗粒中,以便在体内给药。我们发现,在体外和体内,装载991的PLGA纳米颗粒在纤维化巨噬细胞上保持了药物活性。在D2-mdx DMD小鼠模型中,静脉注射的PLGA纳米颗粒到达腓肠肌和膈肌的巨噬细胞,这两个肌肉在该模型中受到严重影响,但没有到达心脏和股四头肌。慢性静脉注射装载991的PLGA纳米颗粒可减少腓肠肌和膈肌的炎症,这与TGF-β1水平和腓肠肌纤维化减少、肌纤维大小和肌肉质量增加有关,无毒性。这些结果表明,纳米药物是一种有效的策略,可以在体内递送AMPK激活剂来靶向炎症并改善腓肠肌营养不良的肌肉表型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanoparticle delivery of AMPK activator 991 prevents its toxicity and improves muscle homeostasis in Duchenne muscular dystrophy.

Muscular dystrophies, such as Duchenne muscular dystrophy (DMD), are caused by permanent muscle injuries leading to chronic inflammation, with macrophages harboring an altered inflammatory profile contributing to fibrosis through the secretion of transforming growth factor β1 (TGF-β1). We previously showed that AMP-activated protein kinase (AMPK) activation reduces TGF-β1 secretion by macrophages and improves muscle homeostasis and muscle force in a DMD mouse model. However, direct AMPK activators like compound 991 show strong adverse effects in vivo. To overcome this toxicity, we encapsulated 991 into biodegradable polymeric poly(lactic-co-glycolic) acid (PLGA) nanoparticles for in vivo delivery. We show that 991-loaded PLGA nanoparticles retained drug activity on fibrotic macrophages in vitro and in vivo. In the D2-mdx DMD mouse model, intravenously injected PLGA nanoparticles reached macrophages in gastrocnemius and diaphragm muscles, two severely affected muscles in this model, but not in heart and quadriceps. Chronic intravenous injections of 991-loaded PLGA nanoparticles decreased inflammation in both gastrocnemius and diaphragm, which was associated with TGF-β1 level and fibrosis reduction and increase in myofiber size and muscle mass in the gastrocnemius, without toxicity. These results demonstrate that nanomedicine is an efficient strategy to deliver AMPK activators in vivo to target inflammation and improve the dystrophic muscle phenotype in the gastrocnemius.

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来源期刊
Molecular Therapy-Methods & Clinical Development
Molecular Therapy-Methods & Clinical Development Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
9.90
自引率
4.30%
发文量
163
审稿时长
12 weeks
期刊介绍: The aim of Molecular Therapy—Methods & Clinical Development is to build upon the success of Molecular Therapy in publishing important peer-reviewed methods and procedures, as well as translational advances in the broad array of fields under the molecular therapy umbrella. Topics of particular interest within the journal''s scope include: Gene vector engineering and production, Methods for targeted genome editing and engineering, Methods and technology development for cell reprogramming and directed differentiation of pluripotent cells, Methods for gene and cell vector delivery, Development of biomaterials and nanoparticles for applications in gene and cell therapy and regenerative medicine, Analysis of gene and cell vector biodistribution and tracking, Pharmacology/toxicology studies of new and next-generation vectors, Methods for cell isolation, engineering, culture, expansion, and transplantation, Cell processing, storage, and banking for therapeutic application, Preclinical and QC/QA assay development, Translational and clinical scale-up and Good Manufacturing procedures and process development, Clinical protocol development, Computational and bioinformatic methods for analysis, modeling, or visualization of biological data, Negotiating the regulatory approval process and obtaining such approval for clinical trials.
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