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Updated: Jul 24, 2025

A Semi-Automated and Reproducible Biological-Based Method to Quantify Calcium Deposition In Vitro
Published on: June 2, 2022
Tools for Quantitative Analysis of Calcium Signaling Data Using Jupyter-Lab Notebooks
John Rugis1, James Chaffer2, James Sneyd1
1Department of Mathematics, University of Auckland, New Zealand.
Abstract:
Calcium signaling data analysis has become increasing complex as the size of acquired datasets increases. In this paper we present a Ca2+ signaling data analysis method that employs custom written software scripts deployed in a collection of Jupyter-Lab "notebooks" which were designed to cope with this complexity. The notebook contents are organized to optimize data analysis workflow and efficiency. The method is demonstrated through application to several different Ca2+ signaling experiment types.

