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Xueli Chen, Ph.D., Professor

Director of Biomedical-photonics & Molecular Imaging Lab

Affiliation: School of Life Science and Technology, Xidian University

Contact Information

Address: 266 Xinglong Section of Xifeng Road, Xi'an, Shaanxi 710126, China

Email: xlchen at xidian.edu.cn

Tel: 86-29-81891070

Teachning

Course for Undergraduate

  • Medical Instrumentation
  • Calculation Method

Course for Graduate

  • Biomedical Photonics
  • Advanced Medical Instumentation
Awards & Honors
  1. Second Prize of Natural Science Award of Shaanxi Province
  2. Young Investigator Award of the Nature Conference on Translational Imaging (with ISMI 2019)
  3. First Prize of Science & Technology Award in Shaanxi Universities
  4. Young Top-notch Talent of Special Support Plan in Shaanxi Province
  5. Young Teacher Fund of Fok Ying-Tong Education Foundation of China
  6. Young Star of Science and Technology of Shaanxi Province
Introduction

Xueli Chen, Professor of Xidian University, Director of Biomedical-photonics & Molecular Imaging Lab,Director of Advanced Diagnostic-Therapy Technology and Equipment Key Laboratory of Higher Education Institutions in Shaanxi Province,Director of Xi’an Key Laboratory of Intelligent Sensing and Regulation of trans-Scale Life Information. Chen carried out his undergraduate and doctoral studies at Xidian University of China from 2003 to 2012. Chen received his Bachelor degree in Biomedical Engineering and PhD degree in Pattern Recognition and Intelligent System in 2007 and 2012 respectively. His doctoral dissertation was selected as the Excellent Doctoral Dissertation of Xidian University. Chen joined Xidian University in 2012 as Assistant Professor in School of Life Science and Technology, promoted to Associate Professor in 2014 and Full Professor in 2017. During 2015 to 2017, he worked as a research postdoctoral fellow at Purdue University (Ji-Xin Cheng\'s group) on stimulated Raman scattering microscopy. Chen and his team have been constantly at the most forefront of multiscale biomedical photonics imaging in innovation, application, and clinical translation. Professor Chen has co-led the development of Cerenkov luminescence endoscope and further explored the application in early detection of clinical gastrointestinal tumors. Professor Chen has also developed the stimulated Raman projection tomography technology which can perform the volumetric imaging of single cells in a label-free manner. Professor Chen has served as the member of SPIE, OSA, IEEE (senior member), Vice president of Shaanxi Society of Biomedical Engineering, and as a committee member of theComputational Imaging Committee of the Chinese Society of Optical Engineering, Branch of Biomedical Imaging Technology in China Medicinal Biotech Association,Micro and Nano Committee of the Chinese Society of Optical Engineering, Microscopic Instrument Branch of China Instrument and Control Society, Biomedical Photonics Committee of the Chinese Society of Optics, Medical Image and Device Committee of the China Graphics Society, etcl..


Selected representative papers

  1. Nan Wang, Xinyu Wang, Tianyu Yan, Hui Xie*, Lin Wang, Feng Ren, Dan Chen, Dongjie Zhang, Qi Zeng, Shouping Zhu*, and Xueli Chen*, “Label-free structural and functional volumetric imaging by dual-modality optical-Raman projection tomography,” Science Advances 2023, 9(12), eadf3504. DOI: 10.1126/sciadv.adf3504 (Raman)
  2. Xueli Chen#, Chi Zhang#, Peng Lin, Kai-Chih Huang, Jimin Liang, Jie Tian, and Ji-Xin Cheng*, “Volumetric chemical imaging by stimulated Raman projection microscopy and tomography,” Nature Communications 2017, 8, 15117. DOI: 10.1038/ncomms15117. (SCI Citation: >50) (Raman)
  3. Xueli Chen#,*, Xinyu Wang#, Lin Wang#, Peng Lin, Yonghua Zhan, and Ji-Xin Cheng, “Stimulated Raman scattering signal generation in scattering medium using self-reconstructing Bessel beams,” Photonics Research 2020,8(6), 929-939. DOI: 10.1364/PRJ.384604. (Raman)
  4. Xueli Chen#,*, Shouping Zhu#, Huiyuan Wang, Cuiping Bao, Defu Yang, Chi Zhang, Peng Lin, Ji-Xin Cheng, Yonghua Zhan, Jimin Liang, and Jie Tian, “Accelerated stimulated Raman projection tomography by sparse reconstruction from sparse-view data,” IEEE Transactions on Biomedical Engineering 2020,67(5), 1293-1302. DOI: 10.1109/TBME.2019.2935301 (Raman)
  5. Qi Zeng#, Zhaoyang Cheng#, Li Li, Huhang Yang, Yangyao Peng, Xianzhen Zhou, Dongjie Zhang, Xiaojia Hu, Chunyu Liu, and Xueli Chen*, “Quantitative analysis of the quality constituents of Lonicera japonica Thunberg based on Raman spectroscopy,” Food Chemistry 2024, 443, 138513. DOI: 10.1016/j.foodchem.2024.138513 (Raman: Chinese medicine)
  6. Qi Zeng, Yangyao Peng, Xianzhen Zhou, Jiaojiao Zhang, Yuhang Yang, Xinyi Xu, Bin Guan, Yuntian Zhang, Xiaojia Hu*, and Xueli Chen*, “Label-free Raman imaging for screening of anti-inflammatory function food,” Food Chemistry: X 2024, 22, 101297. DOI: 10.1016/j.fochx.2024.101297 (Raman: Chinese medicine)
  7. Tianyu Yan, Xinyu Wang, Siting Liu, Dawei Fan, Xinyi Xu*, Qi Zeng, Hui Xie, Xiaoli Yang, Shouping Zhu, Xiaopeng Ma*, Zhen Yuan, and Xueli Chen*, “Confocal laser scanning microscopy based on a silicon photomultiplier for multicolor in vivo imaging in near-infrared regions I and II,” Small Methods 2022, 6(12), 2201105. DOI: 10.1002/smtd.202201105. (Microscopy: fluorescence)
  8. Zhong Ji, Yujin Liu*, and Xueli Chen*, “Mosaic-free compound eye camera based on multidirectional photodetectors and single-pixel imaging,” Optics Letters 2022, 47(24), 6349-6352. DOI: 10.1364/OL.478591 (Microscopy: fluorescence)
  9. Wangting Zhou, Jiangshan He, Yu Li, Zhiyuan Sun, Jiangbo Chen, Lidai Wang, Hui Hui*, and Xueli Chen*, “Multi-focus image fusion with enhancement filtering for robust vascular quantification using photoacoustic microscopy,” Optics Letters 2022, 47(15), 3732-3735. DOI: 10.1364/OL.459629. (Microscopy: Photoacoustics)
  10. Xin Cao#, Xueli Chen#, Fei Kang#, Yonghua Zhan, Xu Cao, Jing Wang*, Jimin Liang*, and Jie Tian*, “Intensity enhanced Cerenkov luminescence imaging using terbium-doped Gd2O2S microparticles,” ACS Applied Materials & Interfaces 2015, 7(22), 11775-11782. DOI: 10.1021/acsami.5b00432. (Cerenkov endoscope)
  11. Hao Hu#, Xin Cao#, Fei Kang#, Min Wang, Yenan Lin, Muhan Liu, Shujun Li, Liping Yao, Jie Liang, Jimin Liang, Yongzhan Nie, Xueli Chen*, Jing Wang*, Kaichun Wu*, “Feasibility study of novel endoscopic Cerenkov luminescence imaging system in detecting and quantifying gastrointestinal disease: first human results,” European Radiology 2015, 25(6), 1814-1822. (SCI Citation: >50) (Cerenkov endoscope)
  12. Yunpeng Dai#, Guodong Wang#, Duofang Chen, Jipeng Yin, Yonghua Zhan, Yongzhan Nie, Kaichun Wu, Jimin Liang*, and Xueli Chen*, “Intravenous administration-oriented pharmacokinetic model for dynamic bioluminescence imaging,” IEEE Transactions on Biomedical Engineering 2019, 66(3), 843-847. (Quantification)
  13. Xueli Chen#, Defu Yang#, Fangfang Sun, Xu Cao, and Jimin Liang*, “Adaptively alternative light-transport-model-based three-dimensional optical imaging for longitudinal and quantitative monitoring of gastric cancer in live animal,” IEEE Transactions on Biomedical Engineering 2016, 63(10), 2095-2107. (Quantification)
  14. Xueli Chen, Xinbo Gao*, Duofang Chen, Xiaopeng Ma, Xiaohui Zhao, Man Shen, Xiangsi Li, Xiaochao Qu, Jimin Liang, Jorge Ripoll, and Jie Tian*, “3D reconstruction of light flux distribution on arbitrary surfaces from 2D multi-photographic images,” Optics Express 2010, 18(19), 19876-19893. (SCI Citation: >50) (Quantification)
Research Interests

We develop multiscale, quantitative optical imaging technologies from micro to macro scale at cell-animal-human level, and apply these technologies to enable early detectionand accurate diagnosis of cancers. With integrated expertise in engineering, electronic information, optics, chemistry, biology, and medicine, our lab focuses on:

  1. Raman-based high resolution, label-free dynamic imaging technology
  • Multiscale, multimodality optical-Raman projection tomography/Raman sheet-projection tomography
  • Fast, high-resolution coherent Raman scattering microscopic imaging
  • Raman probe-based CW stimulated Raman scattering microscopy
  • Bessel beam excited porable Raman spectroscopic imaging
  1. Len-free mode-based computational microscopic imaging technology (Flow cytometry imaging)
  2. Fluorescence-based high resolution microscopic imaging technology
  • Confocal based microscopic imaging (endoscopy, super resolution, confocal)
  • Super resolution optical projection tomography
  • Gene coding fluorescent probe and its applications
  1. Quantitative and highly-sensitive optical imaging technology for small animals
  • Theory and method of quantitative optical imaging for specific gastric cancer
  • Quantification software of dynamic fluorescence/radioluminescence imaging
  • highly-sensitive weak signal detection techniques for optical imaging
  • Multimodality, multifunctional molecular imaging probes and their applications
  • In vivo quantitative visualization of tumor hypoxia
  • Intelligent nano-drug delivery system and in vivo quantitative visualization technology
  1. Translational study of multimodal optical imaging for detection of cancers
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