Development and Challenges of Nanotherapeutic Formulations for Targeting Mitochondrial Cell Death Pathways in Lung and Brain Degenerative Diseases.

Q3 Engineering
Marko Manevski, Dinesh Devadoss, Ruben Castro, Lauren Delatorre, Adriana Yndart, Rahul D Jayant, Madhavan Nair, Hitendra S Chand
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引用次数: 3

Abstract

Mitochondria are among the most dynamic organelles regulating a wide array of cellular processes. They are the cellular hub for oxidative phosphorylation, energy production, and cellular metabolism, and they are important determinants of cell fate, as they control cell death/survival pathways. The mitochondrial network plays a critical role in cellular inflammatory responses, and mitochondria are central in many pathologic conditions such as chronic inflammatory and aging-associated degenerative diseases. Recent advancements in our understanding of the pathogenic pathways and the role of mitochondria therein have identified highly specific therapeutic targets in order to develop personalized nanomedicine approaches for treatment. A wide array of nanoparticle-based formulations has been employed for potential usage in both diagnosing and treating chronic and fatal conditions, with gold nanoparticles and liposomal encapsulation being of particular interest. In this review, we highlight and summarize the advantages and challenges of developing these nanoformulations for targeted and spatiotemporally controlled drug delivery. We discuss the potential of nanotherapy in neoplasms to target the mitochondrial regulated cell death pathways and recent seminal developments in liposomal nanotherapy against chronic inflammatory lung diseases. The need for further development of nanoparticle-based treatment options for neuroinflammatory and neurodegenerative conditions, such as Alzheimer's disease (AD), is also discussed.

针对肺和脑退行性疾病线粒体细胞死亡途径的纳米治疗配方的发展和挑战。
线粒体是调节多种细胞过程的最具活力的细胞器之一。它们是细胞氧化磷酸化、能量产生和细胞代谢的中枢,也是细胞命运的重要决定因素,因为它们控制着细胞死亡/生存途径。线粒体网络在细胞炎症反应中起着至关重要的作用,线粒体在许多病理条件中起着中心作用,如慢性炎症和衰老相关的退行性疾病。最近我们对致病途径和线粒体在其中的作用的理解取得了进展,已经确定了高度特异性的治疗靶点,以便开发个性化的纳米医学治疗方法。广泛的基于纳米颗粒的配方已被用于诊断和治疗慢性和致命疾病的潜在用途,其中金纳米颗粒和脂质体包封特别令人感兴趣。在这篇综述中,我们强调并总结了开发这些纳米制剂用于靶向和时空控制药物递送的优势和挑战。我们讨论了纳米疗法在肿瘤中的潜力,以线粒体调节的细胞死亡途径为目标,以及最近在脂质体纳米疗法治疗慢性炎症性肺部疾病方面的重大进展。本文还讨论了进一步开发基于纳米颗粒的神经炎症和神经退行性疾病(如阿尔茨海默病(AD))治疗方案的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Critical Reviews in Biomedical Engineering
Critical Reviews in Biomedical Engineering Engineering-Biomedical Engineering
CiteScore
1.80
自引率
0.00%
发文量
25
期刊介绍: Biomedical engineering has been characterized as the application of concepts drawn from engineering, computing, communications, mathematics, and the physical sciences to scientific and applied problems in the field of medicine and biology. Concepts and methodologies in biomedical engineering extend throughout the medical and biological sciences. This journal attempts to critically review a wide range of research and applied activities in the field. More often than not, topics chosen for inclusion are concerned with research and practice issues of current interest. Experts writing each review bring together current knowledge and historical information that has led to the current state-of-the-art.
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