Acta Photonica Sinica, Volume. 52, Issue 6, 0617001(2023)

Research and Design of Bacterial Autofluorescence Detection Device

Jiayun ZHENG1,2, Yikun WANG2,3, Jingshu NI2, Yang ZHANG2, Yao HUANG2,3, Yuanzhi ZHANG2,3, Quanfu WANG2, Xia WANG2, Yong LUI2,3、*, Jinhua ZHOU1、**, and Meili DONG2、***
Author Affiliations
  • 1School of Biomedical Engineering, Anhui Medical University, Hefei 230032, China
  • 2Anhui Provincial Engineering Laboratory for Medical Optical Diagnosis & Treatment Technology and Instrument, Anhui Provincial Engineering Technology Research Center for Biomedical Optical Instrument, Anhui Institute of Optics and Fine Mechanics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China
  • 3Wanjiang Center for Development of Emerging Industry Technology, Tongling 244000, China
  • show less
    References(18)

    [1] K OTTOLINO-PERRY, E CHAMMA, K M BLACKMORE et al. Improved detection of clinically relevant wound bacteria using autofluorescence image-guided sampling in diabetic foot ulcers. International Wound Journal, 14, 833-841(2017).

    [2] K J WOJNO, D BAUNOCH, N LUKE et al. Multiplex PCR based Urinary Tract Infection (UTI) analysis compared to traditional urine culture in identifying significant pathogens in symptomatic patients. Urology, 136, 119-126(2020).

    [3] Y L FANG, C H WANG, Y S CHEN et al. An integrated microfluidic system for early detection of sepsis-inducing bacteria. Lab on a Chip, 21, 113-121(2021).

    [4] Yu LIU, Zengwei LI, Zhipeng DENG et al. Rapid detection of food borne pathogens by laser-induced fluorescence spectroscopy. Spectroscopy and Spectral Analysis, 41, 2817-2822(2021).

    [5] H BHATTA, E M GOLDYS, R P LEARMONTH. Use of fluorescence spectroscopy to differentiate yeast and bacterial cells. Applied Microbiology and Biotechnology, 71, 121-126(2006).

    [6] Y C WU, I KULBATSKI, P J MEDEIROS et al. Autofluorescence imaging device for real-time detection and tracking of pathogenic bacteria in a mouse skin wound model: preclinical feasibility studies. Journal of Biomedical Optics, 19, 085002(2014).

    [7] S JEFFERY, T DAI, M X WU et al. The utility of MolecuLight bacterial sensing in the management of burns and traumatic wounds, 10863, 1086304(2019).

    [8] L M JONES, D DUNHAM, M Y RENNIE et al. In vitro detection of porphyrin-producing wound bacteria with real-time fluorescence imaging. Future Microbiology, 15, 319-332(2020).

    [9] W DIETEL, R POTTIER, W PFISTER et al. 5-Aminolaevulinic acid (ALA) induced formation of different fluorescent porphyrins: a study of the biosynthesis of porphyrins by bacteria of the human digestive tract. Journal of Photochemistry and Photobiology B-Biology, 86, 77-86(2007).

    [10] Lin ZENG, Yanyi LU, Min LI et al. Detection of wound bacterial infection in rats by high field asymmetric waveform ion mobility spectroscopy. Journal of Traumatic Surgery, 22, 956-958(2020).

    [11] Yuhao ZHENG, Wenjing CHEN, Lizhen LV. Analysis of common bacterial infection and drug resistance of wound secretion in 996 cases. International Journal of Laboratory Medicine, 32, 1990-1992(2011).

    [12] S GIOUX, H S CHOI, J V FRANGIONI. Image-guided surgery using invisible near-infrared light: fundamentals of clinical translation. Molecular Imaging, 9, 237-255(2010).

    [13] Jun YANG, Cheng WANG, Yunfeng WANG. An imag quality SNR evaluation method based on HVS model. Journal of Hebei University of Science and Technology, 23, 80-85(2002).

    [14] W SHI, W GAO, C CHEN et al. Differential standard deviation of log-scale intensity based optical coherence tomography angiography. Journal of Biophotonics, 10, 1597-1606(2017).

    [15] Chenxia XIE, Wanrong GAO, Yue ZHANG. Image speckle noise suppression method based on OCT imaging signal amplitude difference probability density distribution. Chinese Journal of Lasers, 47, 1207004(2020).

    [16] Wenhui XU, Xiaoling LIN, Ke LI. Research on Signal-to-Noise Ratio (SNR) detection method of quality control image in medical magnetic resonance imaging system. China Medical Equipment, 19, 28-33(2022).

    [17] R DU, D YANG, X YIN. Rapid detection of three common bacteria based on fluorescence spectroscopy. Sensors (Basel), 22, 1168(2022).

    [18] H RANAWAT, N MAZUMDER, T S MURALI et al. Deciphering biophysical signatures for microbiological applications. Lasers in Medical Science, 35, 1493-1501(2020).

    Tools

    Get Citation

    Copy Citation Text

    Jiayun ZHENG, Yikun WANG, Jingshu NI, Yang ZHANG, Yao HUANG, Yuanzhi ZHANG, Quanfu WANG, Xia WANG, Yong LUI, Jinhua ZHOU, Meili DONG. Research and Design of Bacterial Autofluorescence Detection Device[J]. Acta Photonica Sinica, 2023, 52(6): 0617001

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: Dec. 27, 2022

    Accepted: Feb. 27, 2023

    Published Online: Jul. 27, 2023

    The Author Email: LUI Yong (liuyong@aiofm.ac.cn), ZHOU Jinhua (zhoujinhua@ahmu.edu.cn), DONG Meili (dongmeili@aiofm.ac.cn)

    DOI:10.3788/gzxb20235206.0617001

    Topics