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590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates

BACKGROUND: Early detection and identification of pathogenic bacteria is an important public health issue. Conventional methods of culturing specimens on agar plates usually take overnight to obtain definitive results. Here, we developed and verified the performance of a new thin-film transistor (TF...

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Autores principales: Nakada, Mitsutaka, Inagaki, Tsubasa, Ariizumi, Reiichi, Maeta, Shogo, Ozaki, Hiroaki, Fujisawa, Akihiko, Tezen, Tomoya, Tsunashima, Takanori, Ito, Kaoru, Abe, Daichi, Yamaguchi, Kazunori, Nakajima, Masakazu, Taketani, Makoto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10677316/
http://dx.doi.org/10.1093/ofid/ofad500.659
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author Nakada, Mitsutaka
Inagaki, Tsubasa
Ariizumi, Reiichi
Maeta, Shogo
Ozaki, Hiroaki
Fujisawa, Akihiko
Tezen, Tomoya
Tsunashima, Takanori
Ito, Kaoru
Abe, Daichi
Yamaguchi, Kazunori
Nakajima, Masakazu
Taketani, Makoto
author_facet Nakada, Mitsutaka
Inagaki, Tsubasa
Ariizumi, Reiichi
Maeta, Shogo
Ozaki, Hiroaki
Fujisawa, Akihiko
Tezen, Tomoya
Tsunashima, Takanori
Ito, Kaoru
Abe, Daichi
Yamaguchi, Kazunori
Nakajima, Masakazu
Taketani, Makoto
author_sort Nakada, Mitsutaka
collection PubMed
description BACKGROUND: Early detection and identification of pathogenic bacteria is an important public health issue. Conventional methods of culturing specimens on agar plates usually take overnight to obtain definitive results. Here, we developed and verified the performance of a new thin-film transistor (TFT) image sensor for estimating bacterial colony species on agar plates. This system uses transmitted light, unlike conventional image analysis using reflected light. METHODS: To demonstrate the efficacy of this colony species estimation system, a lens-free imaging modality was built using the TFT image sensor consisting of a control printed circuit board, an image sensor array (542 x 872 pixels, pixel size = 80 μm) and flat surface illuminating module. The field of view (FOV) of 44 x 70 mm can cover 55% of the area of the 90 mm petri dish. Each pixel measures the intensity of light passing through the agar medium. Verification of the sensor was conducted using Enterobacter cloacae (GTC21793), Escherichia coli (ATCC BAA-2452), and Klebsiella pneumoniae (ATCC BAA-1705) spread on chromogenic agar medium. Images of bacterial colonies cultured on agar plates were automatically collected at 5 min intervals. Triplicate experiments were conducted on each of the bacteria. One was used as the test dataset and the other two as the correct labels dataset. Colony images were produced by removing the background (medium region) and extracting only the bacterial regions. The color histograms of the test data and the correct data were compared, and the labels of the correct data with the highest similarity (correlation coefficient) were used as inferred labels for the test data (Fig 1). [Figure: see text] RESULTS: Comparisons using RGB channels showed 100% accuracy (Fig 2). In comparisons using HSV-transformed H (Hue) and S (Saturation) channels, the accuracy was also 100% (Fig 3). [Figure: see text] The vertical axis shows test data and the horizontal axis shows correct data. The numbers indicate the correlation coefficient between the test data and the correct label data. Red boxes indicate those with the highest similarity to the correct dataset. [Figure: see text] The vertical axis shows test data and the horizontal axis shows correct data. The numbers indicate the correlation coefficient between the test data and the correct label data. Red boxes indicate those with the highest similarity to the correct dataset. Conclusions: The new TFT image sensor was able to estimate bacterial colony species on agar plates. Furthermore, it was shown that a simple rule-based algorithm of comparing color histograms can be used to estimate the bacterial species of colonies on agar media without the use of complex systems such as deep learning. We will also work to conduct experiments on other media and bacterial species. DISCLOSURES: Masakazu Nakajima, B. Engineering, Soiken Holdings: Board Member|Welby Inc.: Board Member|Welby Inc.: Ownership Interest|Welby Inc.: Stocks/Bonds
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spelling pubmed-106773162023-11-27 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates Nakada, Mitsutaka Inagaki, Tsubasa Ariizumi, Reiichi Maeta, Shogo Ozaki, Hiroaki Fujisawa, Akihiko Tezen, Tomoya Tsunashima, Takanori Ito, Kaoru Abe, Daichi Yamaguchi, Kazunori Nakajima, Masakazu Taketani, Makoto Open Forum Infect Dis Abstract BACKGROUND: Early detection and identification of pathogenic bacteria is an important public health issue. Conventional methods of culturing specimens on agar plates usually take overnight to obtain definitive results. Here, we developed and verified the performance of a new thin-film transistor (TFT) image sensor for estimating bacterial colony species on agar plates. This system uses transmitted light, unlike conventional image analysis using reflected light. METHODS: To demonstrate the efficacy of this colony species estimation system, a lens-free imaging modality was built using the TFT image sensor consisting of a control printed circuit board, an image sensor array (542 x 872 pixels, pixel size = 80 μm) and flat surface illuminating module. The field of view (FOV) of 44 x 70 mm can cover 55% of the area of the 90 mm petri dish. Each pixel measures the intensity of light passing through the agar medium. Verification of the sensor was conducted using Enterobacter cloacae (GTC21793), Escherichia coli (ATCC BAA-2452), and Klebsiella pneumoniae (ATCC BAA-1705) spread on chromogenic agar medium. Images of bacterial colonies cultured on agar plates were automatically collected at 5 min intervals. Triplicate experiments were conducted on each of the bacteria. One was used as the test dataset and the other two as the correct labels dataset. Colony images were produced by removing the background (medium region) and extracting only the bacterial regions. The color histograms of the test data and the correct data were compared, and the labels of the correct data with the highest similarity (correlation coefficient) were used as inferred labels for the test data (Fig 1). [Figure: see text] RESULTS: Comparisons using RGB channels showed 100% accuracy (Fig 2). In comparisons using HSV-transformed H (Hue) and S (Saturation) channels, the accuracy was also 100% (Fig 3). [Figure: see text] The vertical axis shows test data and the horizontal axis shows correct data. The numbers indicate the correlation coefficient between the test data and the correct label data. Red boxes indicate those with the highest similarity to the correct dataset. [Figure: see text] The vertical axis shows test data and the horizontal axis shows correct data. The numbers indicate the correlation coefficient between the test data and the correct label data. Red boxes indicate those with the highest similarity to the correct dataset. Conclusions: The new TFT image sensor was able to estimate bacterial colony species on agar plates. Furthermore, it was shown that a simple rule-based algorithm of comparing color histograms can be used to estimate the bacterial species of colonies on agar media without the use of complex systems such as deep learning. We will also work to conduct experiments on other media and bacterial species. DISCLOSURES: Masakazu Nakajima, B. Engineering, Soiken Holdings: Board Member|Welby Inc.: Board Member|Welby Inc.: Ownership Interest|Welby Inc.: Stocks/Bonds Oxford University Press 2023-11-27 /pmc/articles/PMC10677316/ http://dx.doi.org/10.1093/ofid/ofad500.659 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of Infectious Diseases Society of America. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Abstract
Nakada, Mitsutaka
Inagaki, Tsubasa
Ariizumi, Reiichi
Maeta, Shogo
Ozaki, Hiroaki
Fujisawa, Akihiko
Tezen, Tomoya
Tsunashima, Takanori
Ito, Kaoru
Abe, Daichi
Yamaguchi, Kazunori
Nakajima, Masakazu
Taketani, Makoto
590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title_full 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title_fullStr 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title_full_unstemmed 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title_short 590. A New Thin-Film Transistor Image Sensor for Estimation of Bacterial Colony Species on Agar Plates
title_sort 590. a new thin-film transistor image sensor for estimation of bacterial colony species on agar plates
topic Abstract
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10677316/
http://dx.doi.org/10.1093/ofid/ofad500.659
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