1.Application status of the model organism zebrafish in radiation medicine research
Juancong DONG ; Jingjie WANG ; Jinhuan YU ; Jiao CHENG ; Xuhong DANG ; Guodong YANG
Acta Laboratorium Animalis Scientia Sinica 2025;33(1):141-148
As a model organism that bridges the gap between cells and traditional mammals,the zebrafish has broad application prospects in radiation medicine research.Among its unique advantages are its characteristics of a high homology with human genes,high fertility,short embryonic period,and transparent and easy to observe embryos,making it an important tool in radiation medicine research.Recently,remarkable progress has been made in the application of zebrafish to investigate low-dose radiation biological effects,radiation therapy,and radiation damage prevention and treatment,key areas of radiation medicine.In this paper,these applications are reviewed;we explore the value of zebrafish in radiation medicine research and provide a reference for experimental research in related fields.
2.Application and progress of nanomaterials in the treatment of radiation injury
Jianzhong HUA ; Juancong DONG ; Xuhong DANG ; Xinran JIA ; Jinhuan YU ; Xiaoming LIU
Chinese Journal of Radiological Medicine and Protection 2025;45(10):1032-1040
The applications of nuclear technology in industries, medicine, and other fields have increased the risk of radiation injury. Although some small-molecule drugs for radiation injury treatment have been applied clinically or are in preclinical research, their therapeutic efficacy is significantly limited by short circulation time and rapid metabolism. Nanomaterials have attracted growing attention with their outstanding bioactivity, chemical stability, tissue compatibility, and targeted delivery capabilities, therefore having the promise of offering the potential solutions to the limitations of current small-molecule drugs. However, their biosafety and clinical efficacy require further investigation. This review summarizes the design strategies and classifications of nanomaterials for radiation injury treatment, analyzes current research progress in their therapeutic applications, and introduces nanomaterial-based approaches for enhancing the elimination of internal radionuclide contamination. Finally, the challenges and future prospects of nanomaterials in radiation injury treatment are discussed. This review aims to provide researchers with a comprehensive understanding of recent advances in nanomaterial-based radiation injury therapeutics, thereby promoting further development in this field.
3.Application and progress of nanomaterials in the treatment of radiation injury
Jianzhong HUA ; Juancong DONG ; Xuhong DANG ; Xinran JIA ; Jinhuan YU ; Xiaoming LIU
Chinese Journal of Radiological Medicine and Protection 2025;45(10):1032-1040
The applications of nuclear technology in industries, medicine, and other fields have increased the risk of radiation injury. Although some small-molecule drugs for radiation injury treatment have been applied clinically or are in preclinical research, their therapeutic efficacy is significantly limited by short circulation time and rapid metabolism. Nanomaterials have attracted growing attention with their outstanding bioactivity, chemical stability, tissue compatibility, and targeted delivery capabilities, therefore having the promise of offering the potential solutions to the limitations of current small-molecule drugs. However, their biosafety and clinical efficacy require further investigation. This review summarizes the design strategies and classifications of nanomaterials for radiation injury treatment, analyzes current research progress in their therapeutic applications, and introduces nanomaterial-based approaches for enhancing the elimination of internal radionuclide contamination. Finally, the challenges and future prospects of nanomaterials in radiation injury treatment are discussed. This review aims to provide researchers with a comprehensive understanding of recent advances in nanomaterial-based radiation injury therapeutics, thereby promoting further development in this field.
4.Application status of the model organism zebrafish in radiation medicine research
Juancong DONG ; Jingjie WANG ; Jinhuan YU ; Jiao CHENG ; Xuhong DANG ; Guodong YANG
Acta Laboratorium Animalis Scientia Sinica 2025;33(1):141-148
As a model organism that bridges the gap between cells and traditional mammals,the zebrafish has broad application prospects in radiation medicine research.Among its unique advantages are its characteristics of a high homology with human genes,high fertility,short embryonic period,and transparent and easy to observe embryos,making it an important tool in radiation medicine research.Recently,remarkable progress has been made in the application of zebrafish to investigate low-dose radiation biological effects,radiation therapy,and radiation damage prevention and treatment,key areas of radiation medicine.In this paper,these applications are reviewed;we explore the value of zebrafish in radiation medicine research and provide a reference for experimental research in related fields.
5.Research progress of imaging flow cytometry in automatic analysis of radiation biodosimetric indicators
Xiaoming LIU ; Jiao CHENG ; Shuangshuang CUI ; Xuhong DANG ; Juancong DONG
Chinese Journal of Radiological Health 2023;32(1):62-65
A large number of people would be exposed to irradiation in large-scale nuclear and radiation accidents or nuclear terrorist attacks. Therefore, it is urgent to establish rapid and high-throughput biodosimetry for in triage, providing a basis for emergency management. Imaging flow cytometry (IFC) possesses the high through put advantages of traditional flow cytometry and the sensitivity and specificity of microscope, and has a good application prospect in the research and development of rapid, automated, and high-throughput biological dose estimation technology. This article reviews the application progress of IFC in biodosimetry, and provides a reference for the development of biological dose estimation and detection equipment for large-scale nuclear and radiation accidents.
6.Influencing factors for micronucleus levels of peripheral blood lymphocytes of medical radiation workers
Qianqian MENG ; Ruifeng ZHANG ; Zhongxin ZHANG ; Juancong DONG ; Yayi YUAN ; Chao WANG ; Ting ZHANG ; Xuhong DANG
Chinese Journal of Radiological Health 2022;31(3):273-278
Objective To analyze the micronucleus levels of peripheral blood lymphocytes of medical radiation workers, and to provide a basis for radiation protection to reduce occupational hazards caused by ionizing radiation. Methods A total of 1072 medical radiation workers were selected into radiation group, and 329 healthy adults who underwent pre-employment occupational physical examination and intended to be radiation workers were selected into control group. The micronucleated lymphocyte frequency was determined by whole blood micro-culture. Results There were no significant differences in micronucleated cell frequency and micronucleus frequency between the radiation group and the control group (both P > 0.05). The detection rate of micronucleus abnormalities in the radiation group was significantly higher than that in the control group (P < 0.001). Female radiation workers had significantly higher micronucleated cell frequency, micronucleus frequency, and the detection rate of micronucleus abnormalities than male radiation workers (all P < 0.001). Between different types of work, significant differences were observed in micronucleated cell frequency and micronucleus frequency (both P < 0.05), but not in the detection rate of micronucleus abnormalities (P > 0.05). Radiation workers with different lengths of working showed significant differences in micronucleated cell frequency (P < 0.05), micronucleus frequency (P < 0.05), and the detection rate of micronucleus abnormalities (P < 0.001). Significant differences were observed in micronucleated cell frequency and micronucleus frequency between different age groups (both P < 0.05). The Spearman’s rank correlation analysis showed that micronucleated cell frequency and micronucleus frequency were positively correlated with the age of radiation workers (both P < 0.001). Conclusion The micronucleus frequency of radiation workers was related to the type and length of work, and had a positive correlation with age. Radiation protection should be enhanced for workers engaged in medical radiation for a long period, especially female workers and workers with a long length of service.
7.Research progress on irradiation of seafood
Chao WANG ; Juancong DONG ; Xiaoming LIU ; Xuhong DANG
Chinese Journal of Radiological Health 2022;31(3):367-372
This paper summarizes and discusses the research and achievements in the effect of irradiation on extending the shelf life and quality guarantee period of seafood, on the quality of seafood, and on seafood sterilization, and seafood irradiation biological dosimeter study, and defines the concepts related to seafood irradiation. Moreover, we propose that irradiation sterilization on severe acute respiratory syndrome coronavirus 2 of cold-chain seafood and seafood irradiation dose control are the main research content and directions.
8.Application of radiation-sensitive indicators in health monitoring of radiation workers in China
Juancong DONG ; Jiao CHENG ; Chao WANG ; Xuhong DANG
Chinese Journal of Radiological Health 2022;31(1):119-123
Health monitoring of radiation workers is an important part of the radiation protection system. Occupational health examination is very important for the safe use of nuclear energy technology. This article analyzes the detection results of radiation-sensitive indicators reported in the literature to investigate the health status of radiation workers and to provide a reference for the further study of sensitive indicators in health monitoring of radiation workers.
9.Research progress on application of virus inactivation by ionizing radiation
Boxuan SHI ; Xuhong DANG ; Jiao CHENG ; Juancong DONG
Chinese Journal of Radiological Health 2022;31(4):517-523
Radiation sterilization is one of the most successful applications of ionizing radiation technologies. This paper reviews research on virus inactivation by ionizing radiation, focusing on its use in virus control for food, blood products, and homologous or heterologous tissue repair materials, inactivated viral vaccine preparation, and high-risk virus-related laboratory sample preparation, and also puts forward some thoughts on the application of ionizing radiation technologies in the prevention and control of coronavirus disease 2019.
10. Effects of different radiation on chromosome aberration in human lymphoblastoid cells
Ruifeng ZHANG ; Yayi YUAN ; Yue REN ; Zhongxin ZHANG ; Juancong DONG ; Xuhong DANG ; Lihong XING ; Yahui ZUO ; Zhikai DUAN
China Occupational Medicine 2017;44(03):341-344
OBJECTIVE: To compare the effects of ~(56)Fe~(17+),~(12)C~(6+)ion beams and~(60)Co γ rays on chromosome aberration in human lymphoblastoid cells. METHODS: The human lymphoblastoid cells were divided into 0. 1,0. 3,0. 5,0. 7,1. 0,2. 0 Gy irradiated groups and 0. 0 Gy control group. They were separately exposed to ~(56)Fe~(17+)ion beams( linear energy transfer was 400. 0 ke V/μm),~(12)C~(6+)ion beams( linear energy transfer was 26. 0 ke V/μm) and~(60)C γ rays. Chromosome specimens were harvested 48 hours after irradiation. The effects of different radiation on dicentric plus centric ring( “d + r”) aberration rate and chromosome aberration in human lymphoblastoid cells were detected by light microscope with artificial counting. RESULTS: The “d + r”aberration rates induced by 0. 3-2. 0 Gy ~(12)C~(6+)ion beams were significantly higher than those of ~(56)Fe~(17+)ion beams and~(60)Co γ rays at the same dose( P < 0. 017). Chromosome aberration cell rates of 0. 1-2. 0 Gy ~(12)C~(6+)ion beams were significantly higher than those of ~(56)Fe~(17+)ion beams and~(60)C γ rays at the same dose( P < 0. 017). At the dose range of 0. 0-2. 0 Gy,chromosome aberration effects of three kinds of radiations were gradually increased( P < 0. 01). The relative biological effectiveness of ~(56)Fe~(17+)ion beams was lower than that of ~(12)C~(6+)ion beams.CONCLUSION: The chromosome aberration induced by ~(12)C~(6+)ion beams was more serious than that of~(60)Co γ rays and ~(56)Fe~(17+)ion beams.


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