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神经传递中的分子连接性研究:一项范围综述

Molecular connectivity studies in neurotransmission: a scoping review.

作者信息

Severino Mario, Peretti Débora Elisa, Bardiau Marjorie, Cavaliere Carlo, Doyen Matthieu, Gonzalez-Escamilla Gabriel, Horowitz Tatiana, Nørgaard Martin, Perez Jhony Alejandro Mejia, Perovnik Matej, Rullmann Michael, Steenken Dilara, Talmasov Daniel, Tang Chunmeng, Volpi Tommaso, Xu Zhilei, Bertoldo Alessandra, Calhoun Vince D, Caminiti Silvia Paola, Di Xin, Habeck Christian, Jamadar Sharna, Perani Daniela, Sala Arianna, Sossi Vesna, Yakushev Igor, Pereira Joana B, Veronese Mattia

机构信息

Department of Information Engineering, University of Padua, Padua, Italy.

Laboratory of Neuroimaging and Innovative Molecular Tracers, University of Geneva, Geneva, Switzerland.

出版信息

Imaging Neurosci (Camb). 2025 Apr 4;3. doi: 10.1162/imag_a_00530. eCollection 2025.

Abstract

Positron emission tomography (PET) and single photon emission computed tomography (SPECT) are essential molecular imaging tools for the in vivo investigation of neurotransmission. Traditionally, PET and SPECT images are analysed in a univariate manner, testing for changes in radiotracer binding in regions or voxels of interest independently of each other. Over the past decade, there has been an increasing interest in the so-calledapproach that captures relationships of molecular imaging measures in different brain regions. Targeting these inter-regional interactions within a neuroreceptor system may allow to better understand complex brain functions. In this article, we provide a comprehensive review of molecular connectivity studies in the field of neurotransmission. We examine the expanding use of molecular connectivity approaches, highlighting their applications, advantages over traditional methods, and contributions to advancing neuroscientific knowledge. A systematic search in three bibliographic databases MEDLINE, EMBASE, and Scopus on July 14, 2023 was conducted. A second search was rerun on April 4, 2024. Molecular imaging studies examining functional interactions across brain regions were included based on predefined inclusion and exclusion criteria. Thirty-nine studies were included in the scoping review. Studies were categorised based on the primary neurotransmitter system being targeted: dopamine, serotonin, opioid, muscarinic, glutamate, and synaptic density. The most investigated system was the dopaminergic and the most investigated disease was Parkinson's disease (PD). This review highlighted the diverse applications and methodologies in molecular connectivity research, particularly for neurodegenerative diseases and psychiatric disorders. Molecular connectivity research offers significant advantages over traditional methods, providing deeper insights into brain function and disease mechanisms. As the field continues to evolve, embracing these advanced methodologies will be essential to understand the complexities of the human brain and improve the robustness and applicability of research findings in clinical settings.

摘要

正电子发射断层扫描(PET)和单光子发射计算机断层扫描(SPECT)是用于神经传递体内研究的重要分子成像工具。传统上,PET和SPECT图像是以单变量方式进行分析的,独立地测试感兴趣区域或体素中放射性示踪剂结合的变化。在过去十年中,人们对所谓的捕捉不同脑区分子成像测量之间关系的方法越来越感兴趣。针对神经受体系统内的这些区域间相互作用可能有助于更好地理解复杂的脑功能。在本文中,我们对神经传递领域的分子连接性研究进行了全面综述。我们研究了分子连接性方法的广泛应用,强调了它们的应用、相对于传统方法的优势以及对推进神经科学知识的贡献。于2023年7月14日在三个文献数据库MEDLINE、EMBASE和Scopus中进行了系统检索。2024年4月4日重新进行了第二次检索。根据预定义的纳入和排除标准,纳入了研究脑区之间功能相互作用的分子成像研究。范围综述纳入了39项研究。根据所针对的主要神经递质系统对研究进行了分类:多巴胺、血清素、阿片类、毒蕈碱、谷氨酸和突触密度。研究最多的系统是多巴胺能系统,研究最多的疾病是帕金森病(PD)。本综述强调了分子连接性研究中的多种应用和方法,特别是对于神经退行性疾病和精神疾病。分子连接性研究相对于传统方法具有显著优势,能更深入地洞察脑功能和疾病机制。随着该领域的不断发展,采用这些先进方法对于理解人类大脑的复杂性以及提高临床环境中研究结果的稳健性和适用性至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/161e/12319898/82c47e11cab6/imag_a_00530_fig1.jpg

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