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Updated: Sep 5, 2026

Functional Characterization of Individual Pre- and Postsynaptic Partners In the Drosophila Larval Central Nervous System Using CaMPARI
Published on: June 16, 2026
Spatially resolved synaptic connectome mapping with FISH-decodable CASS barcodes
Yi-Jun Zhu1, Ya-Qian Wang2, Hua-Tai Xu2
1Institute of Neuroscience and State Key Laboratory of Neuroscience, CAS Center for Excellence in Brain Science and Intelligence Technology, Chinese Academy of Sciences, Shanghai 200031, China; Lingang Laboratory, Shanghai Center for Brain Science and Brain-Inspired Intelligence Technology, Shanghai 201210, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Mapping neuronal connectivity is essential for understanding the structure and function of neural circuits. While high-throughput, cost-effective methods using barcoded rabies viruses provide valuable cellular-level insights, they are limited by the spatial resolution of barcode sequencing. To provide a fluorescent in situ hybridization (FISH)-compatible alternative for spatial barcode readout, we developed the CASS (combination of artificial short sequences) barcode, an error-robust and in situ-hybridization-detectable tool. By combining CASS barcoding with rabies virus monosynaptic tracing, we enable in situ connectome mapping through FISH-based barcode decoding. Using this approach, we identified 1,532 synaptic pairs connected to neurons in the primary visual cortex with spatial precision across three mice, demonstrating its efficiency and scalability. This method provides a FISH-based approach for identifying neuronal connectivity with spatial context and may facilitate future integration of connectivity mapping with molecular profiling, thereby advancing our understanding of neural circuits.

