A review on the role of nanoparticles for targeted brain drug delivery: synthesis, characterization, and applications.

IF 3.8 3区 生物学 Q1 BIOLOGY
EXCLI Journal Pub Date : 2025-01-03 eCollection Date: 2025-01-01 DOI:10.17179/excli2024-7163
Payam Nawzad Mohammed, Narmin Hamaamin Hussen, Aso Hameed Hasan, Hozan Jaza Hama Salh, Joazaizulfazli Jamalis, Sumeer Ahmed, Ajmal R Bhat, Mohammad Amjad Kamal
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引用次数: 0

Abstract

Unfortunately, nowadays, brain disorders, which include both neurological and mental disorders, are the main cause of years spent living with a disability worldwide. There are serious diseases with a high prevalence and a high mortality rate. However, the outmoded technical infrastructure makes their treatment difficult. The blood-brain barrier (BBB) serves as a protective mechanism for the central nervous system (CNS) and regulates its homeostatic processes. The brain is protected against injury and illness by an extremely complex system that precisely regulates the flow of ions, very few tiny molecules, and an even smaller number of macromolecules from the blood to the brain. Nevertheless, the BBB also considerably inhibits the delivery of medications to the brain, making it impossible to treat a variety of neurological diseases. Several strategies are now being studied to enhance the transport of drugs over the BBB. According to this research, nanoparticles are one of the most promising agents for brain disease treatment while many conventional drugs are also capable of crossing this barrier but there are amazing facts about nanoparticles in brain drug delivery. For example, 1. Precision Targeting: Through mechanisms such as receptor-mediated transport, ligand attachment, or the use of external stimuli (e.g., magnetic or thermal guidance), nanoparticles can deliver drugs specifically to diseased areas of the brain while minimizing exposure to healthy tissues. This targeted approach reduces side effects and enhances therapeutic outcomes. 2. Improved Drug Stability: Drugs can be encapsulated by nanoparticles, which keeps them stable and shields them from deterioration while being transported to the brain. 3. Therapeutic Payload: Nanoparticles possess a high surface-area-to-volume ratio, enabling them to encapsulate a substantial quantity of therapeutic agents relative to their size. This allows for enhanced drug delivery efficiency, maximizing therapeutic outcomes while potentially reducing the required dosage to achieve the desired effect. 4. Imaging Properties: Certain nanoparticles can also act as contrast agents for magnetic resonance imaging (MRI), allowing for the real-time visualization of drug distribution and administration in the brain. 5. Combination Therapy Possibility: Nanoparticles can be designed to co-deliver multiple medications or therapeutic agents, which could enhance synergistic effects. There have been in vivo studies where nanoparticles were successfully used for combination therapies, demonstrating potential for personalized treatments. One notable example is in cancer treatment, where nanoparticles have been designed to co-deliver multiple chemotherapeutic agents. In general, brain medication delivery by nanoparticles is a novel strategy that has the potential to revolutionize neurological disease therapy and enhance patient outcomes. The study furthermore includes a concise depiction of the structural and physiological characteristics of the BBB, and it also provides an overview of the nanoparticles that are most often used in medicine. A brief overview of the structural and physiochemical characteristics of the NPs, as well as the most popular nanoparticles used in medicine, is also included in the review.

纳米粒子在脑部靶向给药中的作用综述:合成、表征和应用。
不幸的是,如今,脑部疾病,包括神经和精神疾病,是全世界残疾生活年数的主要原因。有些严重的疾病发病率高,死亡率高。然而,过时的技术基础设施使其治疗变得困难。血脑屏障(BBB)作为中枢神经系统(CNS)的保护机制并调节其稳态过程。大脑受到一个极其复杂的系统的保护,免受伤害和疾病。这个系统精确地调节着从血液到大脑的离子、极少量的微小分子和更少量的大分子的流动。然而,血脑屏障也在很大程度上抑制了药物向大脑的输送,使得治疗各种神经系统疾病变得不可能。目前正在研究几种策略,以加强药物在血脑屏障上的运输。根据这项研究,纳米颗粒是治疗脑部疾病最有前途的药物之一,而许多传统药物也能够跨越这一屏障,但纳米颗粒在脑部药物输送方面有一些惊人的事实。例如:1。精确靶向:通过受体介导的转运、配体附着或使用外部刺激(如磁或热引导)等机制,纳米颗粒可以将药物特异性地递送到大脑病变区域,同时最大限度地减少对健康组织的暴露。这种有针对性的方法减少了副作用,提高了治疗效果。2. 提高药物的稳定性:药物可以被纳米颗粒包裹,这可以保持它们的稳定性,并在运送到大脑的过程中保护它们不变质。3. 治疗有效载荷:纳米颗粒具有高表面积体积比,使其能够封装相对于其大小的大量治疗剂。这可以提高药物输送效率,最大限度地提高治疗效果,同时潜在地减少所需剂量以达到预期效果。4. 成像特性:某些纳米颗粒也可以作为磁共振成像(MRI)的造影剂,允许药物在大脑中的分布和给药的实时可视化。5. 联合治疗的可能性:纳米颗粒可以被设计成联合递送多种药物或治疗剂,这可以增强协同效应。已经有体内研究成功地将纳米颗粒用于联合治疗,证明了个性化治疗的潜力。一个值得注意的例子是在癌症治疗中,纳米粒子被设计用于共同递送多种化疗药物。总的来说,通过纳米颗粒给脑药物是一种新颖的策略,有可能彻底改变神经系统疾病的治疗并提高患者的预后。该研究还包括对血脑屏障结构和生理特征的简明描述,并提供了最常用于医学的纳米颗粒的概述。简要概述了纳米粒子的结构和物理化学特征,以及医学上最常用的纳米粒子。
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
EXCLI Journal
EXCLI Journal BIOLOGY-
CiteScore
8.00
自引率
2.20%
发文量
65
审稿时长
6-12 weeks
期刊介绍: EXCLI Journal publishes original research reports, authoritative reviews and case reports of experimental and clinical sciences. The journal is particularly keen to keep a broad view of science and technology, and therefore welcomes papers which bridge disciplines and may not suit the narrow specialism of other journals. Although the general emphasis is on biological sciences, studies from the following fields are explicitly encouraged (alphabetical order): aging research, behavioral sciences, biochemistry, cell biology, chemistry including analytical chemistry, clinical and preclinical studies, drug development, environmental health, ergonomics, forensic medicine, genetics, hepatology and gastroenterology, immunology, neurosciences, occupational medicine, oncology and cancer research, pharmacology, proteomics, psychiatric research, psychology, systems biology, toxicology
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