Lung Adenocarcinoma Mouse Models Based on Orthotopic Transplantation of Syngeneic Tumor-Initiating Cells Expressing EpCAM, SCA-1, and Ly6d

被引:10
作者
Semba, Takashi [1 ,2 ]
Sato, Ryo [1 ,3 ]
Kasuga, Akiyoshi [1 ,4 ]
Suina, Kentaro [1 ]
Shibata, Tatsuhiro [5 ]
Kohno, Takashi [6 ]
Suzuki, Makoto [2 ]
Saya, Hideyuki [1 ]
Arima, Yoshimi [1 ]
机构
[1] Keio Univ, Inst Adv Med Res, Div Gene Regulat, Sch Med,Shinjuku Ku, 35 Shinano Machi, Tokyo 1608582, Japan
[2] Kumamoto Univ, Dept Thorac Surg, Chuo Ku, 1-1-1 Honjo, Kumamoto 8608556, Japan
[3] Kumamoto Univ, Dept Resp Med, Chuo Ku, 1-1-1 Honjo, Kumamoto 8608556, Japan
[4] Keio Univ, Dept Internal Med, Div Gastroenterol & Hepatol, Sch Med,Shinjuku Ku, 35 Shinanomachi, Tokyo 1608582, Japan
[5] Natl Canc Ctr, Div Canc Genom, Chuo Ku, 1-1,Tsukiji 5 Chome, Tokyo 1040045, Japan
[6] Natl Canc Ctr, Div Genome Biol, Chuo Ku, 1-1,Tsukiji 5 Chome, Tokyo 1040045, Japan
关键词
lung cancer; syngeneic mouse model; orthotopic transplantation; EpCAM; SCA-1; Ly6d; STEM-CELLS; IN-VITRO; C-MYC; CANCER; IDENTIFICATION; GENE; CHEMOTHERAPY; INHIBITOR; NICHE; MICE;
D O I
10.3390/cancers12123805
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Simple Summary Lung cancer is the leading cause of cancer deaths worldwide and lung adenocarcinoma (LUAD) is the most common type of lung cancer. To better understand the relation between genetic alterations and the characteristics of lung cancer as well as the interactions between tumor cells and components of the tumor microenvironment, we have developed organoid-based orthotopic and syngeneic mouse models of LUAD driven by the KRAS(G12V) or EML4-ALK oncogene. These models formed tumors closely recapitulating the pathology of human LUAD and proved useful tools for in vitro and in vivo drug efficacy studies. In addition, with the use of these models, we identified Ly6d as a potential novel cancer stem cell marker for LUAD. Given their clinical relevance, our mouse models are important tools for studying cancer stem cell biology and LUAD drug development. Somatic mutations in EGFR and KRAS as well as chromosome rearrangements affecting ALK, ROS1, and RET have been identified in human lung adenocarcinoma (LUAD). We here developed organoid-based orthotopic and syngeneic mouse models for studies of the pathogenesis and treatment of LUAD. We isolated EpCAM-positive epithelial cells from mouse lungs and cultured them as organoids to maintain epithelial stem cell properties. These cells were transformed by KRAS(G12V) or EML4-ALK and then transplanted via the trachea into the lungs of the syngeneic mice, where they formed tumors that expressed the lung lineage marker TTF-1 and which closely recapitulated the pathology of human LUAD. Treatment with crizotinib suppressed the growth of tumors formed by the EML4-ALK-expressing lung epithelial cells in a subcutaneous transplantation model. Organoid culture of normal lung epithelial cells resulted in enrichment of EpCAM(+)SCA-1(Ly6a)(+) cells as well as in that of cells expressing another member of the Ly6 protein family, Ly6d, which was found to be required for the growth of the LUAD-initiating cells expressing KRAS(G12V) or EML4-ALK. We also found that a high expression level of LY6D was associated with poor prognosis in human LUAD. Our results thus suggest that LY6D is a potential lung cancer stem cell marker.
引用
收藏
页码:1 / 18
页数:18
相关论文
共 68 条
[51]   Distinct progenitor lineages contribute to the heterogeneity of plasmacytoid dendritic cells [J].
Rodrigues, Patrick Fernandes ;
Alberti-Servera, Llucia ;
Eremin, Anna ;
Grajales-Reyes, Gary E. ;
Ivanek, Robert ;
Tussiwand, Roxane .
NATURE IMMUNOLOGY, 2018, 19 (07) :711-+
[52]   Bronchioalveolar stem cells are a main source for regeneration of distal lung epithelia in vivo [J].
Salwig, Isabelle ;
Spitznagel, Birgit ;
Vazquez-Armendariz, Ana Ivonne ;
Khalooghi, Keynoosh ;
Guenther, Stefan ;
Herold, Susanne ;
Szibor, Marten ;
Braun, Thomas .
EMBO JOURNAL, 2019, 38 (12)
[53]   Invasion Precedes Tumor Mass Formation in a Malignant Brain Tumor Model of Genetically Modified Neural Stem Cells [J].
Sampetrean, Oltea ;
Saga, Isako ;
Nakanishi, Masaya ;
Sugihara, Eiji ;
Fukaya, Raita ;
Onishi, Nobuyuki ;
Osuka, Satoru ;
Akahata, Masaki ;
Kai, Kazuharu ;
Sugimoto, Hachiro ;
Hirao, Atsushi ;
Saya, Hideyuki .
NEOPLASIA, 2011, 13 (09) :784-U28
[54]   Paneth cells constitute the niche for Lgr5 stem cells in intestinal crypts [J].
Sato, Toshiro ;
van Es, Johan H. ;
Snippert, Hugo J. ;
Stange, Daniel E. ;
Vries, Robert G. ;
van den Born, Maaike ;
Barker, Nick ;
Shroyer, Noah F. ;
van de Wetering, Marc ;
Clevers, Hans .
NATURE, 2011, 469 (7330) :415-+
[55]   Single Lgr5 stem cells build crypt-villus structures in vitro without a mesenchymal niche [J].
Sato, Toshiro ;
Vries, Robert G. ;
Snippert, Hugo J. ;
van de Wetering, Marc ;
Barker, Nick ;
Stange, Daniel E. ;
van Es, Johan H. ;
Abo, Arie ;
Kujala, Pekka ;
Peters, Peter J. ;
Clevers, Hans .
NATURE, 2009, 459 (7244) :262-U147
[56]  
Seike M, 2000, CLIN CANCER RES, V6, P4307
[57]   Periostin antisense oligonucleotide suppresses bleomycin-induced formation of a lung premetastatic niche for melanoma [J].
Semba, Takashi ;
Sugihara, Eiji ;
Kamoshita, Nagisa ;
Ueno, Sayaka ;
Fukuda, Keitaro ;
Yoshino, Masafumi ;
Takao, Kazumasa ;
Yoshikawa, Kazunori ;
Izuhara, Kenji ;
Arima, Yoshimi ;
Suzuki, Makoto ;
Saya, Hideyuki .
CANCER SCIENCE, 2018, 109 (05) :1447-1454
[58]   Oncogenic ras provokes premature cell senescence associated with accumulation of p53 and p16(INK4a) [J].
Serrano, M ;
Lin, AW ;
McCurrach, ME ;
Beach, D ;
Lowe, SW .
CELL, 1997, 88 (05) :593-602
[59]   Loss of p16Ink4a with retention of p19Arf predisposes mice to tumorigenesis [J].
Sharpless, NE ;
Bardeesy, N ;
Lee, KH ;
Carrasco, D ;
Castrillon, DH ;
Aguirre, AJ ;
Wu, EA ;
Horner, JW ;
DePinho, RA .
NATURE, 2001, 413 (6851) :86-91
[60]   c-MYC overexpression with loss of Ink4a/Arf transforms bone marrow stromal cells into osteosarcoma accompanied by loss of adipogenesis [J].
Shimizu, T. ;
Ishikawa, T. ;
Sugihara, E. ;
Kuninaka, S. ;
Miyamoto, T. ;
Mabuchi, Y. ;
Matsuzaki, Y. ;
Tsunoda, T. ;
Miya, F. ;
Morioka, H. ;
Nakayama, R. ;
Kobayashi, E. ;
Toyama, Y. ;
Kawai, A. ;
Ichikawa, H. ;
Hasegawa, T. ;
Okada, S. ;
Ito, T. ;
Ikeda, Y. ;
Suda, T. ;
Saya, H. .
ONCOGENE, 2010, 29 (42) :5687-5699