Genetically encoded sensors illuminate in vivo detection for neurotransmission: Development, application, and optimization strategies

IF 2.9 Q3 NEUROSCIENCES IBRO Neuroscience Reports Pub Date : 2025-06-01 Epub Date: 2025-03-13 DOI:10.1016/j.ibneur.2025.03.003
Xiaoyu Zhong , Hengyu Gu , Juyao Lim , Peng Zhang , Guangfu Wang , Kun Zhang , Xiaowan Li
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Abstract

Limitations in existing tools have hindered neuroscientists from achieving a deeper understanding of complex behaviors and diseases. The recent development and optimization of genetically encoded sensors offer a powerful solution for investigating intricate dynamics such as calcium influx, membrane potential, and the release of neurotransmitters and neuromodulators. In contrast, traditional methods are constrained by insufficient spatial and/or temporal resolution, low sensitivity, and stringent application conditions. Genetically encoded sensors have gained widespread popularity due to their advantageous features, which stem from their genetic encoding and optical imaging capabilities. These include broad applicability, tissue specificity, and non-invasive operation. When combined with advanced microscopic techniques, optogenetics, and machine learning approaches, these sensors have become versatile tools for studying neuronal circuits in intact living systems, providing millisecond-scale temporal resolution and spatial resolution ranging from nanometers to micrometers. In this review, we highlight the advantages of genetically encoded sensors over traditional methods in the study of neurotransmission. We also discuss their recent advancements, diverse applications, and optimization strategies.
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基因编码传感器阐明了神经传递的体内检测:发展、应用和优化策略
现有工具的局限性阻碍了神经科学家对复杂行为和疾病的更深入理解。基因编码传感器的最新发展和优化为研究复杂的动力学(如钙内流、膜电位、神经递质和神经调节剂的释放)提供了强有力的解决方案。相比之下,传统的方法受到空间和/或时间分辨率不足、灵敏度低和应用条件严格的限制。遗传编码传感器由于其遗传编码和光学成像能力的优势而获得了广泛的普及。这些包括广泛的适用性、组织特异性和非侵入性操作。当与先进的显微技术、光遗传学和机器学习方法相结合时,这些传感器已经成为研究完整生命系统中神经元电路的通用工具,提供毫秒级的时间分辨率和从纳米到微米的空间分辨率。在这篇综述中,我们强调了遗传编码传感器在神经传递研究中相对于传统方法的优势。我们还讨论了它们的最新进展、各种应用和优化策略。
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来源期刊
IBRO Neuroscience Reports
IBRO Neuroscience Reports Neuroscience-Neuroscience (all)
CiteScore
2.80
自引率
0.00%
发文量
99
审稿时长
14 weeks
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