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Related Experiment Video

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Automated integrated system for stained neuron detection: An end-to-end framework with a high negative predictive

Ji-Seok Yoon1, Eun Young Choi2, Maliazurina Saad1

  • 1School of Mechatronics, Gwangju Institute of Science and Technology, 123 Cheomdan-gwagiro, Buk-gu, Gwangju 61005, Republic of Korea.

Computer Methods and Programs in Biomedicine
|August 23, 2019
PubMed
Summary

This study presents an automated system for rapid brain tissue analysis, improving neuron detection accuracy. The integrated hardware and software system automates image acquisition and processing for high-throughput brain mapping.

Keywords:
Convolutional neural networks (CNN)Histological image analysisMachine learningMarker-controlled-watershed transformation (MCWT)Maximally stable extremal regions (MSERs)Monkey brain tissueStained neurons

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Area of Science:

  • Neuroscience
  • Computational Biology
  • Histology

Background:

  • Brain architecture mapping is crucial for understanding neural computations influencing behavior.
  • Traditional histology methods for neuron identification are manual, time-consuming, and labor-intensive.
  • Automated systems are needed for high-throughput analysis of brain tissue.

Purpose of the Study:

  • To develop an integrated hardware and software system for automated image acquisition, processing, and neuron detection in brain slices.
  • To enable rapid, high-throughput analysis for comprehensive brain mapping.

Main Methods:

  • An automated system was developed to detect retrogradely labeled neurons in monkey brain slices.
  • Image pre-processing involved adaptive histogram equalization.
  • Neuron candidates were segmented using marker-controlled watershed transformation (MCWT) with maximally stable extremal regions (MSERs).
  • Deep transfer learning with pre-trained convolutional neural networks (CNNs) was used for neuron classification.

Main Results:

  • The automated system achieved a 0.918 F1-score and an 86.6% negative prediction value.
  • Precision, recall, and F-scores exceeded 90%, surpassing conventional methods.
  • The MCWT algorithm and CNN-based classification demonstrated high performance compared to existing tools and classifiers.

Conclusions:

  • A fully automated system for rapid image acquisition and neuron identification from stained brain slices was successfully demonstrated.
  • The system's adaptability allows for the identification of stained features in various biological tissues.
  • This technology significantly advances high-throughput tissue analysis for neuroscience research.