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Determination of the Maturation Status of Dendritic Cells by Applying Pattern Recognition to High-Resolution Images

Authors :
Fu-Tong Liu
Ted A. Laurence
Michael F. Lohrer
Gang-yu Liu
Darrin M. Hanna
Kang Hsin Wang
Yang Liu
Source :
The Journal of Physical Chemistry B. 124:8540-8548
Publication Year :
2020
Publisher :
American Chemical Society (ACS), 2020.

Abstract

The maturation or activation status of dendritic cells (DCs) directly correlates with their behavior and immunofunction. A common means to determine the maturity of dendritic cells is from high-resolution images acquired via scanning electron microscopy (SEM) or atomic force microscopy (AFM). While direct and visual, the determination has been made by directly looking at the images by researchers. This work reports a machine learning approach using pattern recognition in conjunction with cellular biophysical knowledge of dendritic cells to determine the maturation status of dendritic cells automatically. The determination from AFM images reaches 100% accuracy. The results from SEM images reaches 94.9%. The results demonstrate the accuracy of using machine learning for accelerating data analysis, extracting information, and drawing conclusions from high-resolution cellular images, paving the way for future applications requiring high-throughput and automation, such as cellular sorting and selection based on morphology, quantification of cellular structure, and DC-based immunotherapy.

Details

ISSN :
15205207 and 15206106
Volume :
124
Database :
OpenAIRE
Journal :
The Journal of Physical Chemistry B
Accession number :
edsair.doi.dedup.....a34af76aa755918f7b2e1d5467319fe4