{"title":"神经回路映射和基于神经治疗的策略。","authors":"Hany E Marei","doi":"10.1007/s10571-025-01595-5","DOIUrl":null,"url":null,"abstract":"<p><p>Recent developments in neural circuit mapping and neurotherapy are changing our understanding of the dynamic network structure of the brain and offering new treatment options. In many neurological and psychiatric diseases, targeted control of specific brain circuits has proven to be a successful strategy to reduce cognitive, behavioral, and motor abnormalities. Sophisticated retrograde tracing techniques, transcranial magnetic stimulation (TMS), chemogenetics, optogenetics, and other technologies have greatly improved our ability to outline, observe, and control neuronal circuits with remarkable accuracy. These sophisticated techniques have revealed crucial information on neuroplasticity, circuit remodeling following injury, and the therapeutic potential of neuromodulatory interventions. Disorders include depression, anxiety, stroke, and neurodegenerative diseases are treated using techniques such as optogenetic stimulation, chemogenetic activation, and non-invasive brain stimulation to restore circuit function. Emerging multifunctional probes like Tetracysteine Display of Optogenetic Elements (Tetro-DOpE) provide real-time monitoring and modification of neuronal populations, improving circuit-level interventions' precision. At the same time, especially following severe brain injury and neurodegeneration, stem cell treatments combined with neurogenesis-promoting strategies show great promise in increasing circuit repair and functional recovery. The development of drug delivery methods like tailored nanoparticle systems and multifunctional probes is helping to improve the accuracy and safety of treatments by reducing off-target effects. These developments taken together draw attention to a notable shift toward precision neuromedicine. These techniques are meant to offer more efficient, focused, and specialized treatments for various neurological and psychiatric diseases by combining sophisticated circuit mapping with tailored therapeutic interventions.</p>","PeriodicalId":9742,"journal":{"name":"Cellular and Molecular Neurobiology","volume":"45 1","pages":"75"},"PeriodicalIF":4.8000,"publicationDate":"2025-07-26","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12297084/pdf/","citationCount":"0","resultStr":"{\"title\":\"Neural Circuit Mapping and Neurotherapy-Based Strategies.\",\"authors\":\"Hany E Marei\",\"doi\":\"10.1007/s10571-025-01595-5\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Recent developments in neural circuit mapping and neurotherapy are changing our understanding of the dynamic network structure of the brain and offering new treatment options. 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Emerging multifunctional probes like Tetracysteine Display of Optogenetic Elements (Tetro-DOpE) provide real-time monitoring and modification of neuronal populations, improving circuit-level interventions' precision. At the same time, especially following severe brain injury and neurodegeneration, stem cell treatments combined with neurogenesis-promoting strategies show great promise in increasing circuit repair and functional recovery. The development of drug delivery methods like tailored nanoparticle systems and multifunctional probes is helping to improve the accuracy and safety of treatments by reducing off-target effects. These developments taken together draw attention to a notable shift toward precision neuromedicine. 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引用次数: 0
摘要
神经回路制图和神经疗法的最新发展正在改变我们对大脑动态网络结构的理解,并提供新的治疗选择。在许多神经和精神疾病中,有针对性地控制特定的脑回路已被证明是减少认知、行为和运动异常的成功策略。复杂的逆行追踪技术、经颅磁刺激(TMS)、化学遗传学、光遗传学和其他技术极大地提高了我们以惊人的精度勾勒、观察和控制神经元回路的能力。这些复杂的技术揭示了神经可塑性、损伤后的电路重塑以及神经调节干预的治疗潜力的重要信息。包括抑郁、焦虑、中风和神经退行性疾病在内的疾病,使用光遗传刺激、化学发生激活和非侵入性脑刺激等技术来恢复电路功能。新兴的多功能探针如Tetracysteine Display of Optogenetic Elements (Tetro-DOpE)提供了对神经元群的实时监测和修改,提高了电路级干预的精度。同时,特别是在严重的脑损伤和神经变性后,干细胞治疗结合神经发生促进策略在增加电路修复和功能恢复方面显示出很大的希望。量身定制的纳米颗粒系统和多功能探针等药物输送方法的发展,通过减少脱靶效应,有助于提高治疗的准确性和安全性。这些进展加在一起,引起了人们对精确神经医学的显著转变的关注。这些技术旨在通过将复杂的电路测绘与量身定制的治疗干预相结合,为各种神经和精神疾病提供更有效、更集中和更专业的治疗。
Neural Circuit Mapping and Neurotherapy-Based Strategies.
Recent developments in neural circuit mapping and neurotherapy are changing our understanding of the dynamic network structure of the brain and offering new treatment options. In many neurological and psychiatric diseases, targeted control of specific brain circuits has proven to be a successful strategy to reduce cognitive, behavioral, and motor abnormalities. Sophisticated retrograde tracing techniques, transcranial magnetic stimulation (TMS), chemogenetics, optogenetics, and other technologies have greatly improved our ability to outline, observe, and control neuronal circuits with remarkable accuracy. These sophisticated techniques have revealed crucial information on neuroplasticity, circuit remodeling following injury, and the therapeutic potential of neuromodulatory interventions. Disorders include depression, anxiety, stroke, and neurodegenerative diseases are treated using techniques such as optogenetic stimulation, chemogenetic activation, and non-invasive brain stimulation to restore circuit function. Emerging multifunctional probes like Tetracysteine Display of Optogenetic Elements (Tetro-DOpE) provide real-time monitoring and modification of neuronal populations, improving circuit-level interventions' precision. At the same time, especially following severe brain injury and neurodegeneration, stem cell treatments combined with neurogenesis-promoting strategies show great promise in increasing circuit repair and functional recovery. The development of drug delivery methods like tailored nanoparticle systems and multifunctional probes is helping to improve the accuracy and safety of treatments by reducing off-target effects. These developments taken together draw attention to a notable shift toward precision neuromedicine. These techniques are meant to offer more efficient, focused, and specialized treatments for various neurological and psychiatric diseases by combining sophisticated circuit mapping with tailored therapeutic interventions.
期刊介绍:
Cellular and Molecular Neurobiology publishes original research concerned with the analysis of neuronal and brain function at the cellular and subcellular levels. The journal offers timely, peer-reviewed articles that describe anatomic, genetic, physiologic, pharmacologic, and biochemical approaches to the study of neuronal function and the analysis of elementary mechanisms. Studies are presented on isolated mammalian tissues and intact animals, with investigations aimed at the molecular mechanisms or neuronal responses at the level of single cells. Cellular and Molecular Neurobiology also presents studies of the effects of neurons on other organ systems, such as analysis of the electrical or biochemical response to neurotransmitters or neurohormones on smooth muscle or gland cells.