Role of Infiltrating Monocytes in the Development of Radiation-Induced Pulmonary Fibrosis

被引:64
|
作者
Groves, Angela M. [1 ]
Johnston, Carl J. [1 ,2 ]
Williams, Jacqueline P. [2 ]
Finkelstein, Jacob N. [1 ,2 ]
机构
[1] Univ Rochester, Med Ctr, Dept Pediat M&D Neonatol, 601 Elmwood Ave,Box 850, Rochester, NY 14642 USA
[2] Univ Rochester, Med Ctr, Dept Environm Med, Rochester, NY 14642 USA
基金
美国国家卫生研究院;
关键词
ALVEOLAR EPITHELIAL-CELLS; MESSENGER-RNA LEVELS; ACUTE LUNG INJURY; THORACIC IRRADIATION; GENE-EXPRESSION; SENSITIVE MICE; CANCER-THERAPY; IN-VITRO; INFLAMMATION; PROTEIN-1;
D O I
10.1667/RR14874.1
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Lung exposure to radiation induces an injury response that includes the release of cytokines and chemotactic mediators; these signals recruit immune cells to execute inflammatory and wound-healing processes. However, radiation alters the pulmonary microenvironment, dysregulating the immune responses and preventing a return to homeostasis. Importantly, dysregulation is observed as a chronic inflammation, which can progress into pneumonitis and promote pulmonary fibrosis; inflammatory monocytes, which are bone marrow derived and express CCR2, have been shown to migrate into the lung after radiation exposure. Although the extent to which recruited inflammatory monocytes contribute to radiation- induced pulmonary fibrosis has not been fully investigated, we hypothesize that its pathogenesis is reliant on this population. The CC chemokine ligand, CCL2, is a chemotactic mediator responsible for trafficking of CCR2(+) inflammatory cells into the lung. Therefore, the contribution of this mediator to fibrosis development was analyzed. Interleukin (IL)-1 beta, a potent proinflammatory cytokine expressed during the radiation response, and its receptor, IL-1R1, were also evaluated. To this end, CCR2(-/-), IL-1 beta(-/-) and IL-1R1(-/-) chimeric mice were generated and exposed to 12.5 Gy thoracic radiation, and their response was compared to wild-type (C57BL/6) syngeneic controls. Fibrotic foci were observed in the periphery of the lungs of C57 syngeneic mice and CCR2(-/-) recipient mice that received C57 bone marrow (C57 > CCR2(-/-)) by 16 and 12 weeks after irradiation, respectively. In contrast, in the mice that had received bone marrow lacking CCR2 (CCR2(-/-). C57 and CCR2(-/-) syngeneic mice), no pulmonary fibrosis was observed at 22 weeks postirradiation. This observation correlated with decreased numbers of infiltrating and interstitial macrophages compared to controls, as well as reduced proportions of pro-inflammatory Ly6C(+) macrophages observed at 12-18 weeks postirradiation, suggesting that CCR2(+) macrophages contribute to radiation-induced pulmonary fibrosis. Interestingly, reduced proportions of CD206(+) lung macrophages were also present at these time points in CCR2(-/-) chimeric mice, regardless of donor bone marrow type, suggesting that the phenotype of resident subsets may be influenced by CCR2. Furthermore, chimeras, in which either IL-1 beta was ablated from infiltrating cells or IL-1R1 from lung tissues, were also protected from fibrosis development, correlating with attenuated CCL2 production; these data suggest that IL-1 beta may influence chemotactic signaling after irradiation. Overall, our data suggest that CCR2(+) infiltrating monocyte-derived macrophages may play a critical role in the development of radiation-induced pulmonary fibrosis. (C) 2018 by Radiation Research Society.
引用
收藏
页码:300 / 311
页数:12
相关论文
共 50 条
  • [21] ENDOTHELIAL INJURY AND REPAIR IN RADIATION-INDUCED PULMONARY FIBROSIS
    ADAMSON, IYR
    BOWDEN, DH
    AMERICAN JOURNAL OF PATHOLOGY, 1983, 112 (02): : 224 - 230
  • [22] A Hypoxia-Induced Vascular Endothelial-to-Mesenchymal Transition in Development of Radiation-Induced Pulmonary Fibrosis
    Choi, Seo-Hyun
    Hong, Zhen-Yu
    Nam, Jae-Kyung
    Lee, Hae-June
    Jang, Junho
    Yoo, Ran Ji
    Lee, Yong Jin
    Lee, Chang Young
    Kim, Kyung Hwan
    Park, Seungwoo
    Ji, Young Hoon
    Lee, Yun-Sil
    Cho, Jaeho
    Lee, Yoon-Jin
    CLINICAL CANCER RESEARCH, 2015, 21 (16) : 3716 - 3726
  • [23] Metformin Attenuates Radiation-Induced Pulmonary Fibrosis in a Murine Model
    Wang, Jian
    Wang, Ye
    Han, Jun
    Mei, Hong
    Yu, Dandan
    Ding, Qian
    Zhang, Tao
    Wu, Gang
    Peng, Gang
    Lin, Zhenyu
    RADIATION RESEARCH, 2017, 188 (01) : 105 - 113
  • [24] Microbiome administration alleviates radiation-induced pulmonary fibrosis in mice
    Kim, Hye Min
    Gwon, Hye Ran
    Oh, Go Eun
    Kim, Joon
    Cho, Jae Ho
    Lee, Sang Hoon
    RESPIROLOGY, 2024, 29 : 51 - 51
  • [25] Advances in Molecular Mechanisms and Treatment of Radiation-Induced Pulmonary Fibrosis
    Chen, Zhongjie
    Wu, Zhiqiang
    Ning, Wen
    TRANSLATIONAL ONCOLOGY, 2019, 12 (01): : 162 - 169
  • [26] Scarred Lung. An Update on Radiation-Induced Pulmonary Fibrosis
    Jarzebska, Natalia
    Karetnikova, Ekaterina S.
    Markov, Alexander G.
    Kasper, Michael
    Rodionov, Roman N.
    Spieth, Peter M.
    FRONTIERS IN MEDICINE, 2021, 7
  • [27] Inhibition Of Lactate Dehydrogenase Prevents Radiation-Induced Pulmonary Fibrosis
    Judge, J. L.
    Woeller, C.
    Thatched, T. H.
    Williams', J. P.
    Phipps', R. P.
    Slime', P. J.
    Kottmann, R. M.
    AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2017, 195
  • [28] Development and Characterization of an In Vitro Model for Radiation-Induced Fibrosis
    Kumar, Dhruv
    Yalamanchali, Sreeya
    New, Jacob
    Parsel, Sean
    New, Natalie
    Holcomb, Andrew
    Gunewardena, Sumedha
    Tawfik, Ossama
    Lominska, Chris
    Kimler, Bruce F.
    Anant, Shrikant
    Kakarala, Kiran
    Tsue, Terance
    Shnayder, Yelizaveta
    Sykes, Kevin
    Padhye, Subhash
    Thomas, Sufi Mary
    RADIATION RESEARCH, 2018, 189 (03) : 326 - 336
  • [29] Plasminogen activator inhibitor-1 serves an important role in radiation-induced pulmonary fibrosis
    Shioya, Sachiko
    Masuda, Takeshi
    Senoo, Tadashi
    Horimasu, Yasushi
    Miyamoto, Shintaro
    Nakashima, Taku
    Iwamoto, Hiroshi
    Fujitaka, Kazunori
    Hamada, Hironobu
    Hattori, Noboru
    EXPERIMENTAL AND THERAPEUTIC MEDICINE, 2018, 16 (04) : 3070 - 3076
  • [30] Effects of phycocyanin on pulmonary and gut microbiota in a radiation-induced pulmonary fibrosis model
    Li, Wenjun
    Lu, Lina
    Liu, Bin
    Qin, Song
    BIOMEDICINE & PHARMACOTHERAPY, 2020, 132