Spontaneous Primary Pleural Mesothelioma in Fischer 344 (F344) and Other Rat Strains: A Retrospective Review

1. Hiriart, E, Deepe, R, Wessels, A. Mesothelium and malignant mesothelioma. J Dev Biol. 2019;7(2):7–26.
Google Scholar | Crossref2. Nicholson, AG, Sauter, JL, Nowak, AK, et al. EURACAN/IASLC proposals for updating the histologic classification of pleural mesothelioma: towards a more multidisciplinary approach. J Thoracic Oncol. 2020;15(1):29–49.
Google Scholar | Crossref | Medline3. Attanoos, RL, Churg, A, Galateau-Salle, F, Gibbs, AR, Roggli, VL. Malignant mesothelioma and its non-asbestos causes. Arch Pathol Lab Med. 2018;142(6):753–760.
Google Scholar | Crossref | Medline4. Attanoos, RL, Gibbs, AR. Pathology of malignant mesothelioma. Histopathol. 1997;30(5):403–418.
Google Scholar | Crossref | Medline5. Below, JE, Cox, NJ, Fukagawa, NK, Hirvonen, A, Testa, JR. Factors that impact susceptibility to fiber-induced health effects. J Toxicol Environ Heatlth B. 2011;14(1-4):246–266.
Google Scholar | Crossref | Medline6. Kraynie, A, de Ridder, GG, Sporn, TA, Pavlisko, EN, Roggli, VL. Malignant mesothelioma not related to asbestos exposure: analytical scanning electron microscopic analysis of 83 cases and comparison with 442 asbestos-related cases. Ultrastruct Pathol. 2016;40(3):142–146.
Google Scholar | Crossref | Medline7. Robinson, BM . Malignant pleural mesothelioma: an epidemiological perspective. Ann Cardiothorac Surg. 2012;1(4):491–496.
Google Scholar | Medline8. Hung, YP, Chirieac, LR. Novel insights and recent discoveries on the genetics and pathogenesis of malignant mesothelioma. J Thorac Dis. 2018;10(3):1314–1317.
Google Scholar | Crossref | Medline9. Abdelgied, M, El-Gazzar, AM, Alexander, WT, et al. Carcinogenic effect of potassium octatitanate (POT) fibers in the lung and pleura of male Fischer 344 rats after intrapulmonary administration. Part Fibre Toxicol. 2019;16(1):34–47.
Google Scholar | Crossref | Medline10. Davis, JMG . The histopathology and ultrastructure of pleural mesotheliomas produced in the rat by injections of crocidolite asbestos. Br J Exp Path. 1979;60(6):642–652.
Google Scholar | Medline11. Davis, JMG, Jones, AD, Miller, BG. Experimental studies in rats on the effects of asbestos inhalation coupled with the inhalation of titanium dioxide or quartz. Int J Exp Pathol. 1991;72(5):501–525.
Google Scholar | Medline12. Fraire, AE, Greenberg, SD, Spjut, HJ, et al. Effect of fibrous glass on rat pleural mesothelium. Am J Respir Crit Care Med. 1994;150(2):521–527.
Google Scholar | Crossref | Medline13. Fraire, AE, Greenberg, SD, Spjut, HJ, et al. Effect of erionite on the pleural mesothelium of the Fischer 344 rat. Chest. 1997;111(5):1375–1380.
Google Scholar | Crossref | Medline14. Hahn, FF, Lundgren, DL. Pulmonary neoplasms in rats that inhaled cerium-144 dioxide. Toxicol Pathol. 1992;20(2):169–178.
Google Scholar | SAGE Journals | ISI15. Hill, RJ, Edwards, RE, Carthew, P. Early changes in the pleural mesothelium following intrapleural inoculation of the mineral fibre erionite and the subsequent development of mesotheliomas. J Exp Path. 1990;71(1):105–118.
Google Scholar16. Mast, RW, Hesterberg, TW, Glass, LR, McConnell, EE, Anderson, R, Bernstein, DM. Chronic inhalation and biopersistence of refractory ceramic fiber in rats and hamsters. Environ Health Perspec. 1994;102(suppl 5):207–209.
Google Scholar | Crossref | Medline17. Minardi, F, Maltoni, C. Results of recent experimental research on the carcinogenicity of natural and modified asbestos. Ann N Y Acad Sci. 1988;534:754–761.
Google Scholar | Crossref | Medline18. Numano, T, Higuchi, H, Alexander, DB, et al. MWCNT-7 administered to the lung by intratracheal instillation induces development of pleural mesothelioma in F344 rats. Cancer Sci. 2019;110(8):2485–2492.
Google Scholar | Crossref | Medline19. Saffioti, U . Mesothelioma carcinogenesis: in vivo models. In: Pass, HI, Vogelzurg, NJ, Corbone, M, eds. Malignant Mesothelioma: Advances in Pathogenesis, Diagnosis, and Translational Medicine. Springer Science + Business Media; 2005:60–86.
Google Scholar | Crossref20. Suzui, M, Futakuchi, M, Fukamachi, K, et al. Multiwalled carbon nanotubes intratracheally instilled into the rat lung induce development of pleural malignant mesothelioma and lung tumors. Cancer Sci. 2016;107(7):924–935.
Google Scholar | Crossref | Medline21. Wagner, JC, Berry, G. Mesotheliomas in rats following inoculation with asbestos. Br J Cancer. 1969;23(3):567–581.
Google Scholar | Crossref | Medline22. Wagner, JC, Berry, G, Timbrell, V. Mesotheliomas in rats following inoculation with asbestos and other materials. Br J Cancer. 1973;28(2):173–185.
Google Scholar | Crossref | Medline23. Hudson, AL, Weir, C, Moon, E, et al. Establishing a panel of chemo-resistant mesothelioma models for investigating chemo-resistance and identifying new treatments for mesothelioma. Sci Rep. 2014;4:6152.
Google Scholar | Crossref | Medline24. Weir, CJ, Hudson, AL, Peters, L, Howell, VM. Orthotopic implantation and peripheral immune cell monitoring in the II-45 syngeneic rat mesothelioma model. J Vis Exp. 2015;104:e53019. doi:10.3791/53019
Google Scholar25. Maronpot, RR, Nyska, A, Foreman, JE, Ramot, Y. The legacy of the F344 rat as a cancer bioassay model (a retrospective summary of three common F344 rat neoplasms). Crit Rev Toxicol. 2016;46(8):641–675.
Google Scholar | Crossref | Medline26. Maronpot, RR, Zeiger, E, McConnell, EE, Kolenda-Roberts, H, Wall, H, Friedman, MA. Induction of tunica vaginalis mesotheliomas in rats by xenobiotics. Crit Rev Toxicol. 2009;39(6):512–537.
Google Scholar | Crossref | Medline27. Zimmerman, B . Peritoneum, retroperitoneum, mesentery, and abdominal cavity. In: Suttie, AW, Leininger, JR, Bradley, AE, eds. Boorman’s Pathology of the Rat: Reference and Atlas. 2nd ed. Elsevier Inc; 2018:71–77.
Google Scholar | Crossref28. Tanigawa, H, Onodera, H, Maekawa, A. Spontaneous mesotheliomas in Fischer rats—a histological and electron microscopic study. Toxicol Pathol. 1987;15(2):157–163.
Google Scholar | SAGE Journals | ISI29. Coleman, GL, Barthold, SW, Osbaldiston, GW, Foster, SJ, Jonas, AM. Pathological changes during aging in barrier-reared Fischer 344 male rats. J Gerontol. 1977;32(3):258–278.
Google Scholar | Crossref | Medline30. Haseman, JK, Hailey, JR, Morris, RW. Spontaneous neoplasm incidences in Fischer 344 rats and B6C3F1 mice in two-year carcinogenicity studies: a national toxicology program update. Toxicol Pathol. 1998;26(3):428–441.
Google Scholar | SAGE Journals | ISI31. Mitsumori, K, Elwell, MR. Proliferative lesions in the male reproductive system of F344 rats and B6C3F1 mice: incidence and classification. Environ Health Perspec. 1988;77:11–21.
Google Scholar | Crossref | Medline | ISI32. Alison, RH, Elwell, MR, Jokinen, MP, Dittrich, KL, Boorman, GA. Morphology and classification of 96 primary cardiac neoplasms in Fischer 344 rats. Vet Pathol. 1987;24(6):488–494.
Google Scholar | SAGE Journals | ISI33. Chandra, M, Davis, H, Carlton, WW. Naturally occurring atriocaval mesotheliomas in rats. J Comp Pathol. 1993;109(4):433–437.
Google Scholar | Crossref | Medline | ISI34. Elmore, SA, Aeffner, A, Bangari, DS, et al. Proceedings of the 2017 national toxicology program satellite symposium. Toxicol Pathol. 2017;45(7):799–833.
Google Scholar | SAGE Journals35. Goodall, CM, Christie, GS, Hurley, JV. Primary epithelial tumour in the right atrium of the heart and inferior vena cava in NZR/gd inbred rats: pathology of 18 cases. J Pathol. 1975;116(4):239–251.
Google Scholar | Crossref | Medline36. Peano, S, Conz, A, Carbonatto, M, Goldstein, J, Nyska, A. Atriocaval mesothelioma in a male Sprague-Dawley rat. Toxicol Pathol. 1998;26(5):695–698.
Google Scholar | SAGE Journals | ISI37. Greaves, P, Chouinard, L, Ernst, H, et al. Proliferative and non-proliferative lesions of the rat and mouse soft tissue, skeletal muscle and mesothelium. Toxicol Pathol. 2013;26(3 suppl):1S–26 S.
Google Scholar38. Herbert, RA, Kyanthanahalli, SJ, Pandiri, AR, Cesta, MF, Chen, V, Miller, RA. Lung, pleura, and mediastinum. In: Suttie, AW, Leininger, JR, Bradley, AE, eds. Boorman’s Pathology of the Rat: Reference and Atlas. 2nd ed. Elsevier Inc; 2018:437–466.
Google Scholar | Crossref39. Doi, T, Kotani, Y, Takahashi, K, et al. Malignant mesothelioma in the thoracic cavity of a rat characterized by round hyalinous stroma. J Toxicol Pathol. 2010;23(2):103–106.
Google Scholar | Crossref | Medline40. Shibuya, K, Tajima, M, Yamate, J. Histological classification of 62 spontaneous mesotheliomas in F344 rats. Jpn J Vet Sci. 1990;52(6):1313–1317.
Google Scholar | Crossref | Medline41. Howroyd, P, Allison, N, Foley, JF, Hardisty, J. Apparent alveolar bronchiolar tumors arising in the mediastinum of F344 rats. Toxicol Pathol. 2009;37(3):351–358.
Google Scholar | SAGE Journals | ISI42. Maekawa, A, Onodera, H, Tanigawa, H, et al. Neoplastic and non-neoplastic lesions in aging Slc: Wistar rats. J Toxicol Sci. 1983;8(4):279–290.
Google Scholar | Crossref | Medline43. Maekawa, A, Kurokawa, Y, Takahashi, M, et al. Spontaneous tumors in F-344/DuCrj rats. Gan. 1983;74(3):365–372.
Google Scholar | Medline44. Solleveld, HA, Haseman, JK, McConnell, EE. Natural history of body weight gain, survival, and neoplasia in the F344 rat. JNCI. 1984;72(4):929–940.
Google Scholar | Medline45. National Toxicology Program (NTP) . NTP technical reports index. Updated April 19, 2021. Accessed November 13, 2020. https://ntp.niehs.nih.gov/data/tr/index.html
Google Scholar46. National Toxicology Program . Chemical effects in biological systems (CEBS) database. Updated August 18, 2021. Accessed January 14, 2020. https://manticore.niehs.nih.gov/cebssearch
Google Scholar47. Berridge, BR, Mowat, V, Nagai, H, et al. Non-proliferative and proliferative lesions of the cardiovascular system of the rat and mouse. Toxicol Pathol. 2016;29(3 Suppl):1S–47S.
Google Scholar48. Creasy, D, Bube, A, de Rujk, E, et al. Proliferative and non-proliferative lesions of the rat and mouse male reproductive system. Toxicol Pathol. 2012;40(6 Suppl):40S–121S.
Google Scholar | SAGE Journals49. Husain, AN, Colby, TV, Ordonez, NG, et al. Guidelines for pathologic diagnosis of malignant mesothelioma 2017 update of the consensus statement from the International Mesothelioma Interest Group. Arch Pathol Lab Med. 2018;142(1):89–108.
Google Scholar | Crossref | Medline50. Sakamoto, Y, Nakae, D, Fukumori, N, et al. Induction of mesothelioma by a single intrascrotal administration of multi-wall carbon nanotube in intact male Fischer 344 rats. J Toxicol Sci. 2009;34(1):65–76.
Google Scholar | Crossref | Medline | ISI51. National Toxicology Program (NTP) . NTP technical report on the toxicology and carcinogenesis studies of 2,3-butanedione (CASRN 431-03-8) in Wistar Han [Crl: WI (Han)] rats and B6C3F1/N mice (inhalation studies). Technical Report 593. 2018. doi:10.22427/NTP-TR-593
Google Scholar52. National Toxicology Program (NTP) . NTP historical controls report all routes and vehicles Wistar-Han RATS. August 2016. Updated August 4, 2016. Accessed October 17, 2021. https://ntp.niehs.nih.gov/ntp/historical_controls/ntp2000_2016/aug-2016-hc-report-wh-rats-all-routes.pdf
Google Scholar53. Rubin, JB, Lagas, JS, Broestl, L, et al. Sex differences in cancer mechanisms. Biol Sex Differ. 2020;11(1):17. doi:10.1186/s13293-020-00291-x
Google Scholar | Crossref | Medline54. Renne, R, Brix, A, Harkema, J, et al. Proliferative and nonproliferative lesions of the rat and mouse respiratory tract. Toxicol Pathol. 2009;37(7 Suppl):5S–73 S.
Google Scholar |

留言 (0)

沒有登入
gif