CaPTure: Calcium PeakToolbox for analysis of in vitro calcium imaging data.

Background: Calcium imaging is a powerful technique for recording cellular activity across large populations of neurons. However, analysis methods capable of single-cell resolution in cultured neurons, especially for cultures derived from human induced pluripotent stem cells (hiPSCs), are lacking. E...

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Detalles Bibliográficos
Publicado en:BMC Neuroscience Vol. 23; no. 1; pp. 1 - 15
Autores principales: Tippani, Madhavi, Pattie, Elizabeth A., Davis, Brittany A., Nguyen, Claudia V., Wang, Yanhong, Sripathy, Srinidhi Rao, Maher, Brady J., Martinowich, Keri, Jaffe, Andrew E., Page, Stephanie Cerceo
Formato: pictorial research tables/charts tracings Journal Article
Publicado: BioMed Central 11/30/2022
Acceso en línea:Ver este registro en EBSCOhost
Descripción
Sumario:Background: Calcium imaging is a powerful technique for recording cellular activity across large populations of neurons. However, analysis methods capable of single-cell resolution in cultured neurons, especially for cultures derived from human induced pluripotent stem cells (hiPSCs), are lacking. Existing methods lack scalability to accommodate high-throughput comparisons between multiple lines, across developmental timepoints, or across pharmacological manipulations.Results: To address this need we developed CaPTure, a scalable, automated Ca2+ imaging analysis pipeline ( https://github.com/LieberInstitute/CaPTure ). CaPTuredetects neurons, classifies and quantifies spontaneous activity, quantifies synchrony metrics, and generates cell- and network-specific metrics that facilitate phenotypic discovery. The method is compatible with parallel processing on computing clusters without requiring significant user input or parameter modification.Conclusion: CaPTure allows for rapid assessment of neuronal activity in cultured cells at cellular resolution, rendering it amenable to high-throughput screening and phenotypic discovery. The platform can be applied to both human- and rodent-derived neurons and is compatible with many imaging systems.