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Bitbow Enables Highly Efficient Neuronal Lineage Tracing and Morphology Reconstruction in Single Drosophila Brains.

Frontiers in neural circuits (2021-11-09)
Ye Li, Logan A Walker, Yimeng Zhao, Erica M Edwards, Nigel S Michki, Hon Pong Jimmy Cheng, Marya Ghazzi, Tiffany Y Chen, Maggie Chen, Douglas H Roossien, Dawen Cai
RESUMEN

Identifying the cellular origins and mapping the dendritic and axonal arbors of neurons have been century old quests to understand the heterogeneity among these brain cells. Current Brainbow based transgenic animals take the advantage of multispectral labeling to differentiate neighboring cells or lineages, however, their applications are limited by the color capacity. To improve the analysis throughput, we designed Bitbow, a digital format of Brainbow which exponentially expands the color palette to provide tens of thousands of spectrally resolved unique labels. We generated transgenic Bitbow Drosophila lines, established statistical tools, and streamlined sample preparation, image processing, and data analysis pipelines to conveniently mapping neural lineages, studying neuronal morphology and revealing neural network patterns with unprecedented speed, scale, and resolution.

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Persulfato de amonio, for molecular biology, suitable for electrophoresis, ≥98%
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N,N,N′,N′-Tetrametiletilendiamina, BioReagent, for molecular biology, ≥99% (GC)
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4-Hydroxy-TEMPO, 95%
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Sodium acrylate, 97%
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N,N′-Methylenebisacrylamide, powder, for molecular biology, suitable for electrophoresis, ≥99.5%
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Acrilamida, for molecular biology, ≥99% (HPLC)
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Paraformaldehyde, reagent grade, crystalline
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Anti-Guinea Pig IgG (H+L), highly cross-adsorbed, CF 633 antibody produced in donkey, ~2 mg/mL, affinity isolated antibody
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Anti-Mouse IgG (H+L), highly cross-adsorbed, CF 555 antibody produced in donkey, ~2 mg/mL, affinity isolated antibody