{"title":"线粒体功能障碍的靶向治疗策略:与神经系统疾病的相关性。","authors":"Rishav Sharma, Rishabha Malviya, Saurabh Srivastava, Irfan Ahmad, Safia Obaidur Rab, Prerna Uniyal","doi":"10.2174/0113894501303824240604103732","DOIUrl":null,"url":null,"abstract":"<p><p>Mitochondria are an essential intracellular organelle for medication targeting and delivery since they seem to create energy and conduct many other cellular tasks, and mitochondrial dysfunctions and malfunctions lead to many illnesses. Many initiatives have been taken to detect, diagnose, and image mitochondrial abnormalities, and to transport and accumulate medicines precisely to mitochondria, all because of special mitochondrial aspects of the pathophysiology of cancer. In addition to the negative membrane potential and paradoxical mitochondrial dynamics, they include high temperatures, high levels of reactive oxygen species, high levels of glutathione, and high temperatures. Neurodegenerative diseases represent a broad spectrum of debilitating illnesses. They are linked to the loss of certain groups of neurons based on an individual's physiology or anatomy. The mitochondria in a cell are generally accepted as the authority with respect to ATP production. Disruption of this system is linked to several cellular physiological issues. The development of neurodegenerative disorders has been linked to mitochondrial malfunction, according to pathophysiological studies. There seems to be substantial evidence connecting mitochondrial dysfunction and oxidative stress to the development of neurodegenerative disorders. It has been extensively observed that mitochondrial malfunction triggers autophagy, which plays a role in neurodegenerative disorders. In addition, excitotoxicity and mitochondrial dysfunction have been linked to the development of neurodegenerative disorders. The pathophysiology of neurodegenerative illnesses has been linked to increased apoptosis and necrosis, as well as mitochondrial malfunction. A variety of synthetic and natural treatments have shown efficacy in treating neurodegenerative illnesses caused by mitochondrial failure. Neurodegenerative illnesses can be effectively treated with existing drugs that target mitochondria, although their precise formulations are poorly understood. Therefore, there is an immediate need to focus on creating drug delivery methods specifically targeted at mitochondria in the treatment and diagnosis of neurodegenerative disorders.</p>","PeriodicalId":10805,"journal":{"name":"Current drug targets","volume":" ","pages":"683-699"},"PeriodicalIF":3.0000,"publicationDate":"2024-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Targeted Treatment Strategies for Mitochondria Dysfunction: Correlation with Neurological Disorders.\",\"authors\":\"Rishav Sharma, Rishabha Malviya, Saurabh Srivastava, Irfan Ahmad, Safia Obaidur Rab, Prerna Uniyal\",\"doi\":\"10.2174/0113894501303824240604103732\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Mitochondria are an essential intracellular organelle for medication targeting and delivery since they seem to create energy and conduct many other cellular tasks, and mitochondrial dysfunctions and malfunctions lead to many illnesses. Many initiatives have been taken to detect, diagnose, and image mitochondrial abnormalities, and to transport and accumulate medicines precisely to mitochondria, all because of special mitochondrial aspects of the pathophysiology of cancer. In addition to the negative membrane potential and paradoxical mitochondrial dynamics, they include high temperatures, high levels of reactive oxygen species, high levels of glutathione, and high temperatures. Neurodegenerative diseases represent a broad spectrum of debilitating illnesses. They are linked to the loss of certain groups of neurons based on an individual's physiology or anatomy. The mitochondria in a cell are generally accepted as the authority with respect to ATP production. Disruption of this system is linked to several cellular physiological issues. The development of neurodegenerative disorders has been linked to mitochondrial malfunction, according to pathophysiological studies. There seems to be substantial evidence connecting mitochondrial dysfunction and oxidative stress to the development of neurodegenerative disorders. It has been extensively observed that mitochondrial malfunction triggers autophagy, which plays a role in neurodegenerative disorders. In addition, excitotoxicity and mitochondrial dysfunction have been linked to the development of neurodegenerative disorders. The pathophysiology of neurodegenerative illnesses has been linked to increased apoptosis and necrosis, as well as mitochondrial malfunction. A variety of synthetic and natural treatments have shown efficacy in treating neurodegenerative illnesses caused by mitochondrial failure. Neurodegenerative illnesses can be effectively treated with existing drugs that target mitochondria, although their precise formulations are poorly understood. 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引用次数: 0
摘要
线粒体是细胞内靶向给药的重要细胞器,因为线粒体似乎创造能量并执行许多其他细胞任务,而线粒体功能障碍和失调会导致许多疾病。由于线粒体在癌症病理生理学中的特殊地位,人们已经采取了许多措施来检测、诊断和成像线粒体异常,并精确地向线粒体输送和积聚药物。除了负膜电位和矛盾的线粒体动力学外,还包括高温、高水平的活性氧、高水平的谷胱甘肽和高温。神经退行性疾病是一种范围广泛的使人衰弱的疾病。根据个人的生理或解剖结构,它们与某些神经元群的丧失有关。细胞中的线粒体被公认为是产生 ATP 的权威。这一系统的破坏与多个细胞生理问题有关。病理生理学研究表明,神经退行性疾病的发生与线粒体功能失调有关。似乎有大量证据表明,线粒体功能障碍和氧化应激与神经退行性疾病的发生有关。据广泛观察,线粒体功能失调会引发自噬,而自噬在神经退行性疾病中发挥着作用。此外,兴奋性毒性和线粒体功能障碍也与神经退行性疾病的发生有关。神经退行性疾病的病理生理学与细胞凋亡和坏死增加以及线粒体功能失调有关。各种人工合成和天然疗法对治疗线粒体功能失调引起的神经退行性疾病都有疗效。现有的针对线粒体的药物可以有效治疗神经退行性疾病,但对其精确配方的了解还很不够。因此,在治疗和诊断神经退行性疾病时,迫切需要重点研究专门针对线粒体的给药方法。
Targeted Treatment Strategies for Mitochondria Dysfunction: Correlation with Neurological Disorders.
Mitochondria are an essential intracellular organelle for medication targeting and delivery since they seem to create energy and conduct many other cellular tasks, and mitochondrial dysfunctions and malfunctions lead to many illnesses. Many initiatives have been taken to detect, diagnose, and image mitochondrial abnormalities, and to transport and accumulate medicines precisely to mitochondria, all because of special mitochondrial aspects of the pathophysiology of cancer. In addition to the negative membrane potential and paradoxical mitochondrial dynamics, they include high temperatures, high levels of reactive oxygen species, high levels of glutathione, and high temperatures. Neurodegenerative diseases represent a broad spectrum of debilitating illnesses. They are linked to the loss of certain groups of neurons based on an individual's physiology or anatomy. The mitochondria in a cell are generally accepted as the authority with respect to ATP production. Disruption of this system is linked to several cellular physiological issues. The development of neurodegenerative disorders has been linked to mitochondrial malfunction, according to pathophysiological studies. There seems to be substantial evidence connecting mitochondrial dysfunction and oxidative stress to the development of neurodegenerative disorders. It has been extensively observed that mitochondrial malfunction triggers autophagy, which plays a role in neurodegenerative disorders. In addition, excitotoxicity and mitochondrial dysfunction have been linked to the development of neurodegenerative disorders. The pathophysiology of neurodegenerative illnesses has been linked to increased apoptosis and necrosis, as well as mitochondrial malfunction. A variety of synthetic and natural treatments have shown efficacy in treating neurodegenerative illnesses caused by mitochondrial failure. Neurodegenerative illnesses can be effectively treated with existing drugs that target mitochondria, although their precise formulations are poorly understood. Therefore, there is an immediate need to focus on creating drug delivery methods specifically targeted at mitochondria in the treatment and diagnosis of neurodegenerative disorders.
期刊介绍:
Current Drug Targets aims to cover the latest and most outstanding developments on the medicinal chemistry and pharmacology of molecular drug targets e.g. disease specific proteins, receptors, enzymes, genes.
Current Drug Targets publishes guest edited thematic issues written by leaders in the field covering a range of current topics of drug targets. The journal also accepts for publication mini- & full-length review articles and drug clinical trial studies.
As the discovery, identification, characterization and validation of novel human drug targets for drug discovery continues to grow; this journal is essential reading for all pharmaceutical scientists involved in drug discovery and development.