这是一篇来自已证抗体库的有关人类 NKX2-1 (NKX2-1) 的综述,是根据54篇发表使用所有方法的文章归纳的。这综述旨在帮助来邦网的访客找到最适合NKX2-1 抗体。
NKX2-1 同义词: BCH; BHC; NK-2; NKX2.1; NKX2A; NMTC1; T/EBP; TEBP; TITF1; TTF-1; TTF1

艾博抗(上海)贸易有限公司
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 图 s5d
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, 76013)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s5d). Sci Adv (2022) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-冰冻切片; 小鼠; 图 4b
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-冰冻切片在小鼠样本上 (图 4b). Sci Adv (2022) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-冰冻切片; African green monkey; 1:200-1:2000; 图 4b
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, AB76013)被用于被用于免疫组化-冰冻切片在African green monkey样本上浓度为1:200-1:2000 (图 4b). Sci Adv (2022) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 s1b
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200 (图 s1b). Nat Commun (2021) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 小鼠; 1:250; 图 4e
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在小鼠样本上浓度为1:250 (图 4e). Genes Dev (2021) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 人类; 1:250; 图 s7c
艾博抗(上海)贸易有限公司NKX2-1抗体(abcam, ab76013)被用于被用于免疫组化在人类样本上浓度为1:250 (图 s7c). Genome Biol (2021) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 小鼠; 1:2000; 图 1a
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在小鼠样本上浓度为1:2000 (图 1a). elife (2021) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 e2f
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 e2f). Nature (2021) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-冰冻切片; 小鼠; 1:1000; 图 s2a
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:1000 (图 s2a). Nat Commun (2020) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 1f, 4c
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 1f, 4c). Nat Commun (2020) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:300; 图 6d
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:300 (图 6d). Nat Commun (2019) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:250; 图 7b
  • 免疫沉淀; 小鼠; ; 图 7f
  • 免疫印迹; 小鼠; 1:1000; 图 7e
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:250 (图 7b), 被用于免疫沉淀在小鼠样本上浓度为 (图 7f) 和 被用于免疫印迹在小鼠样本上浓度为1:1000 (图 7e). elife (2019) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:200; 图 s1l
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200 (图 s1l). Cell (2019) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 小鼠; 图 4d
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在小鼠样本上 (图 4d). Nature (2019) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 小鼠; 1:250
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在小鼠样本上浓度为1:250. elife (2019) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫印迹; 人类; 1:2000; 图 s4h
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫印迹在人类样本上浓度为1:2000 (图 s4h). Immunity (2018) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 小鼠; 图 2c
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在小鼠样本上 (图 2c). J Clin Invest (2018) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 其他; 人类; 图 4c
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于其他在人类样本上 (图 4c). Cancer Cell (2018) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 图 s3e
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, EP1584Y)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 s3e). Cell (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫印迹; 小鼠; 图 8i
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫印迹在小鼠样本上 (图 8i). J Cell Biol (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:400; 图 s5a
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:400 (图 s5a). Proc Natl Acad Sci U S A (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫细胞化学; 人类; 图 2e
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫细胞化学在人类样本上 (图 2e). Cell Stem Cell (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • reverse phase protein lysate microarray; 人类; 图 st6
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于reverse phase protein lysate microarray在人类样本上 (图 st6). Cancer Cell (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 st14
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 st14). J Toxicol Pathol (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • reverse phase protein lysate microarray; 人类; 图 3a
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于reverse phase protein lysate microarray在人类样本上 (图 3a). Nature (2017) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化-自由浮动切片; 小鼠; 1:2000; 图 1e
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化-自由浮动切片在小鼠样本上浓度为1:2000 (图 1e). Nat Neurosci (2016) ncbi
domestic rabbit 单克隆(EP1584Y)
  • 免疫组化; 人类; 1:200; 图 3S2A
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab76013)被用于被用于免疫组化在人类样本上浓度为1:200 (图 3S2A). elife (2016) ncbi
domestic rabbit 单克隆(EPR8190-6)
  • 免疫组化-石蜡切片; 小鼠; 1:1000; 图 1
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab133638)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:1000 (图 1). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit 单克隆(EPR8190-6)
  • 免疫组化-冰冻切片; domestic rabbit
艾博抗(上海)贸易有限公司NKX2-1抗体(Abcam, ab133638)被用于被用于免疫组化-冰冻切片在domestic rabbit样本上. Neuroscience (2014) ncbi
圣克鲁斯生物技术
小鼠 单克隆(8G7G3/1)
  • 免疫印迹; 人类; 图 4d
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz, sc-53136)被用于被用于免疫印迹在人类样本上 (图 4d). J Pathol Clin Res (2021) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 小鼠; 1:100; 图 1f
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz, sc-53136)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:100 (图 1f). Nat Commun (2021) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:200; 图 3a
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz, sc-53136)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:200 (图 3a). Medicine (Baltimore) (2020) ncbi
小鼠 单克隆(8G7G3/1)
  • 染色质免疫沉淀 ; 人类; 图 2
  • 免疫印迹; 人类; 图 1
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz, sc-53136)被用于被用于染色质免疫沉淀 在人类样本上 (图 2) 和 被用于免疫印迹在人类样本上 (图 1). Oncotarget (2015) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz, 8G7G3/1)被用于被用于免疫组化-石蜡切片在人类样本上. Differentiation (2014) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 小鼠; 1:200
圣克鲁斯生物技术NKX2-1抗体(Santa Cruz Biotechnology, SC-53136)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:200. Stem Cells Transl Med (2014) ncbi
北京傲锐东源
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 表 1
北京傲锐东源NKX2-1抗体(OriGene, 8G7G3/1)被用于被用于免疫组化在人类样本上 (表 1). Int J Clin Exp Pathol (2015) ncbi
丹科医疗器械技术服务(上海)有限公司
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:2000; 表 1
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, M3575)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:2000 (表 1). ESMO Open (2022) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 1:100; 图 2
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化在人类样本上浓度为1:100 (图 2). Cancer Sci (2020) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 小鼠; 1:1000; 图 1f
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化在小鼠样本上浓度为1:1000 (图 1f). Nature (2019) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:50; 图 e6e
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(DAKO, M3575)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:50 (图 e6e). Nature (2019) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 犬; 1:50; 图 st14
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, M3575)被用于被用于免疫组化-石蜡切片在犬样本上浓度为1:50 (图 st14). J Toxicol Pathol (2017) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:50; 表 3
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(DAKO, M3575)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:50 (表 3). Pituitary (2017) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 图 2d
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化在人类样本上 (图 2d). Pathol Res Pract (2016) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 小鼠; 1:50; 图 1b
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, M3575)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:50 (图 1b). J Thorac Oncol (2016) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 小鼠; 1:500; 图 s5
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, M3575)被用于被用于免疫组化-石蜡切片在小鼠样本上浓度为1:500 (图 s5). Endocrinology (2016) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:100; 图 1d
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:100 (图 1d). Lung Cancer (2016) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-冰冻切片; 人类; 图 6
  • 免疫组化-冰冻切片; 小鼠; 1:200; 图 6
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(DAKO, M3575)被用于被用于免疫组化-冰冻切片在人类样本上 (图 6) 和 被用于免疫组化-冰冻切片在小鼠样本上浓度为1:200 (图 6). PLoS Genet (2015) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化-石蜡切片; 人类; 1:100
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化-石蜡切片在人类样本上浓度为1:100. Am J Surg Pathol (2015) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 图 s1
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化在人类样本上 (图 s1). J Thorac Oncol (2014) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 1:2000
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, M3575)被用于被用于免疫组化在人类样本上浓度为1:2000. Histopathology (2014) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 人类; 1:50
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(Dako, 8G7G3/1)被用于被用于免疫组化在人类样本上浓度为1:50. Hum Pathol (2013) ncbi
小鼠 单克隆(8G7G3/1)
  • 免疫组化; 小鼠; 1:100
丹科医疗器械技术服务(上海)有限公司NKX2-1抗体(DakoCytomation, M3575)被用于被用于免疫组化在小鼠样本上浓度为1:100. Cancer Res (2013) ncbi
赛信通(上海)生物试剂有限公司
domestic rabbit 单克隆(D2E8)
  • 免疫组化; 小鼠; 1:50; 图 3
赛信通(上海)生物试剂有限公司NKX2-1抗体(Cell Signaling, 12373)被用于被用于免疫组化在小鼠样本上浓度为1:50 (图 3). Biol Open (2016) ncbi
徕卡显微系统(上海)贸易有限公司
小鼠 单克隆(SPT24)
  • 免疫组化; 人类; 1:300; 图 4
徕卡显微系统(上海)贸易有限公司NKX2-1抗体(LEICA, SPT24)被用于被用于免疫组化在人类样本上浓度为1:300 (图 4). BMC Cancer (2020) ncbi
小鼠 单克隆(SPT24)
  • 免疫组化-石蜡切片; 小鼠; 图 4e
徕卡显微系统(上海)贸易有限公司NKX2-1抗体(Leica Biosystems Newcastle, SPT24)被用于被用于免疫组化-石蜡切片在小鼠样本上 (图 4e). Histochem Cell Biol (2017) ncbi
文章列表
  1. Werder R, Liu T, Abo K, Lindstrom Vautrin J, Villacorta Martin C, Huang J, et al. CRISPR interference interrogation of COPD GWAS genes reveals the functional significance of desmoplakin in iPSC-derived alveolar epithelial cells. Sci Adv. 2022;8:eabo6566 pubmed 出版商
  2. Yu D, Li T, Delpech J, Zhu B, Kishore P, Koshi T, et al. Microglial GPR56 is the molecular target of maternal immune activation-induced parvalbumin-positive interneuron deficits. Sci Adv. 2022;8:eabm2545 pubmed 出版商
  3. Zhu X, Guo Y, Chu C, Liu D, Duan K, Yin Y, et al. BRN2 as a key gene drives the early primate telencephalon development. Sci Adv. 2022;8:eabl7263 pubmed 出版商
  4. Simbolo M, Centonze G, Ali G, Garzone G, Taormina S, Sabella G, et al. Integrative molecular analysis of combined small-cell lung carcinomas identifies major subtypes with different therapeutic opportunities. ESMO Open. 2022;7:100308 pubmed 出版商
  5. Tan X, Tong L, Li L, Xu J, Xie S, Ji L, et al. Loss of Smad4 promotes aggressive lung cancer metastasis by de-repression of PAK3 via miRNA regulation. Nat Commun. 2021;12:4853 pubmed 出版商
  6. Olsen R, Ireland A, Kastner D, Groves S, Spainhower K, Pozo K, et al. ASCL1 represses a SOX9+ neural crest stem-like state in small cell lung cancer. Genes Dev. 2021;35:847-869 pubmed 出版商
  7. Sano K, Hayashi T, Suehara Y, Hosoya M, Takamochi K, Kohsaka S, et al. Transcription start site-level expression of thyroid transcription factor 1 isoforms in lung adenocarcinoma and its clinicopathological significance. J Pathol Clin Res. 2021;7:361-374 pubmed 出版商
  8. Yuan C, Chen H, Tu S, Huang H, Pan Y, Gui X, et al. A systematic dissection of the epigenomic heterogeneity of lung adenocarcinoma reveals two different subclasses with distinct prognosis and core regulatory networks. Genome Biol. 2021;22:156 pubmed 出版商
  9. Zewdu R, Mehrabad E, Ingram K, Fang P, Gillis K, Camolotto S, et al. An NKX2-1/ERK/WNT feedback loop modulates gastric identity and response to targeted therapy in lung adenocarcinoma. elife. 2021;10: pubmed 出版商
  10. Yuan G, Flores N, Hausmann S, Lofgren S, Kharchenko V, Angulo Ibáñez M, et al. Elevated NSD3 histone methylation activity drives squamous cell lung cancer. Nature. 2021;590:504-508 pubmed 出版商
  11. Vaughan C, Singh S, Subler M, Windle J, Inoue K, Fry E, et al. The oncogenicity of tumor-derived mutant p53 is enhanced by the recruitment of PLK3. Nat Commun. 2021;12:704 pubmed 出版商
  12. Soleilhavoup C, Travaglio M, Patrick K, Garção P, Boobalan E, Adolfs Y, et al. Nolz1 expression is required in dopaminergic axon guidance and striatal innervation. Nat Commun. 2020;11:3111 pubmed 出版商
  13. Matsubara D, Yoshimoto T, Soda M, Amano Y, Kihara A, Funaki T, et al. Reciprocal expression of trefoil factor-1 and thyroid transcription factor-1 in lung adenocarcinomas. Cancer Sci. 2020;111:2183-2195 pubmed 出版商
  14. Zhao J, Xiang C, Zhao R, Guo P, Zheng J, Han Zhang H, et al. Clinicopathologic features and genomic analysis of pulmonary blastomatoid carcinosarcoma. BMC Cancer. 2020;20:248 pubmed 出版商
  15. Liu Z, Chen S, Xu Y, Liu X, Xiong P, Fu Y. Surfactant protein A expression and distribution in human lung samples from smokers with or without chronic obstructive pulmonary disease in China. Medicine (Baltimore). 2020;99:e19118 pubmed 出版商
  16. Ikonomou L, Herriges M, Lewandowski S, Marsland R, Villacorta Martin C, Caballero I, et al. The in vivo genetic program of murine primordial lung epithelial progenitors. Nat Commun. 2020;11:635 pubmed 出版商
  17. Quach C, Song Y, Guo H, Li S, Maazi H, Fung M, et al. A truncating mutation in the autophagy gene UVRAG drives inflammation and tumorigenesis in mice. Nat Commun. 2019;10:5681 pubmed 出版商
  18. Momcilovic M, Jones A, Bailey S, Waldmann C, Li R, Lee J, et al. In vivo imaging of mitochondrial membrane potential in non-small-cell lung cancer. Nature. 2019;575:380-384 pubmed 出版商
  19. Ombrato L, Nolan E, Kurelac I, Mavousian A, Bridgeman V, Heinze I, et al. Metastatic-niche labelling reveals parenchymal cells with stem features. Nature. 2019;572:603-608 pubmed 出版商
  20. van Veen J, Scherzer M, Boshuizen J, Chu M, Liu A, Landman A, et al. Mutationally-activated PI3'-kinase-α promotes de-differentiation of lung tumors initiated by the BRAFV600E oncoprotein kinase. elife. 2019;8: pubmed 出版商
  21. Wiel C, Le Gal K, Ibrahim M, Jahangir C, Kashif M, Yao H, et al. BACH1 Stabilization by Antioxidants Stimulates Lung Cancer Metastasis. Cell. 2019;: pubmed 出版商
  22. Walter D, Yates T, Ruiz Torres M, Kim Kiselak C, Gudiel A, Deshpande C, et al. RB constrains lineage fidelity and multiple stages of tumour progression and metastasis. Nature. 2019;569:423-427 pubmed 出版商
  23. Lesch B, Tothova Z, Morgan E, Liao Z, Bronson R, Ebert B, et al. Intergenerational epigenetic inheritance of cancer susceptibility in mammals. elife. 2019;8: pubmed 出版商
  24. Mollaoglu G, Jones A, Wait S, Mukhopadhyay A, Jeong S, Arya R, et al. The Lineage-Defining Transcription Factors SOX2 and NKX2-1 Determine Lung Cancer Cell Fate and Shape the Tumor Immune Microenvironment. Immunity. 2018;49:764-779.e9 pubmed 出版商
  25. Wang B, Joo J, Mount R, Teubner B, Krenzer A, Ward A, et al. The COPII cargo adapter SEC24C is essential for neuronal homeostasis. J Clin Invest. 2018;128:3319-3332 pubmed 出版商
  26. Ng P, Li J, Jeong K, Shao S, Chen H, Tsang Y, et al. Systematic Functional Annotation of Somatic Mutations in Cancer. Cancer Cell. 2018;33:450-462.e10 pubmed 出版商
  27. Kortlever R, Sodir N, Wilson C, Burkhart D, Pellegrinet L, Brown Swigart L, et al. Myc Cooperates with Ras by Programming Inflammation and Immune Suppression. Cell. 2017;171:1301-1315.e14 pubmed 出版商
  28. Yao J, Guihard P, Wu X, Blázquez Medela A, Spencer M, Jumabay M, et al. Vascular endothelium plays a key role in directing pulmonary epithelial cell differentiation. J Cell Biol. 2017;216:3369-3385 pubmed 出版商
  29. Katsumata O, Mori M, Sawane Y, Niimura T, Ito A, Okamoto H, et al. Cellular and subcellular localization of ADP-ribosylation factor 6 in mouse peripheral tissues. Histochem Cell Biol. 2017;148:577-596 pubmed 出版商
  30. Gocheva V, Naba A, Bhutkar A, Guardia T, Miller K, Li C, et al. Quantitative proteomics identify Tenascin-C as a promoter of lung cancer progression and contributor to a signature prognostic of patient survival. Proc Natl Acad Sci U S A. 2017;114:E5625-E5634 pubmed 出版商
  31. McCauley K, Hawkins F, Serra M, Thomas D, JACOB A, Kotton D. Efficient Derivation of Functional Human Airway Epithelium from Pluripotent Stem Cells via Temporal Regulation of Wnt Signaling. Cell Stem Cell. 2017;20:844-857.e6 pubmed 出版商
  32. Cherniack A, Shen H, Walter V, Stewart C, Murray B, Bowlby R, et al. Integrated Molecular Characterization of Uterine Carcinosarcoma. Cancer Cell. 2017;31:411-423 pubmed 出版商
  33. Furukawa S, Nagaike M, Ozaki K. Databases for technical aspects of immunohistochemistry. J Toxicol Pathol. 2017;30:79-107 pubmed 出版商
  34. . Integrated genomic and molecular characterization of cervical cancer. Nature. 2017;543:378-384 pubmed 出版商
  35. Dimidschstein J, Chen Q, Tremblay R, Rogers S, Saldi G, Guo L, et al. A viral strategy for targeting and manipulating interneurons across vertebrate species. Nat Neurosci. 2016;19:1743-1749 pubmed 出版商
  36. Hagel C, Buslei R, Buchfelder M, Fahlbusch R, Bergmann M, Giese A, et al. Immunoprofiling of glial tumours of the neurohypophysis suggests a common pituicytic origin of neoplastic cells. Pituitary. 2017;20:211-217 pubmed 出版商
  37. Dye B, Dedhia P, Miller A, Nagy M, White E, Shea L, et al. A bioengineered niche promotes in vivo engraftment and maturation of pluripotent stem cell derived human lung organoids. elife. 2016;5: pubmed 出版商
  38. Czapiewski P, Gorczyński A, Radecka K, Wiewiora C, Haybaeck J, Adam P, et al. Expression of SOX11, PAX5, TTF-1 and ISL-1 in medulloblastoma. Pathol Res Pract. 2016;212:965-971 pubmed 出版商
  39. Dai Y, Miao Y, Wu W, Li Y, D Errico F, Su W, et al. Ablation of Liver X receptors ? and ? leads to spontaneous peripheral squamous cell lung cancer in mice. Proc Natl Acad Sci U S A. 2016;113:7614-9 pubmed 出版商
  40. Azpilikueta A, Agorreta J, Labiano S, Pérez Gracia J, Sánchez Paulete A, Aznar M, et al. Successful Immunotherapy against a Transplantable Mouse Squamous Lung Carcinoma with Anti-PD-1 and Anti-CD137 Monoclonal Antibodies. J Thorac Oncol. 2016;11:524-36 pubmed 出版商
  41. Gaide Chevronnay H, Janssens V, Van Der Smissen P, Rocca C, Liao X, Refetoff S, et al. Hematopoietic Stem Cells Transplantation Can Normalize Thyroid Function in a Cystinosis Mouse Model. Endocrinology. 2016;157:1363-71 pubmed 出版商
  42. Loebel D, Plageman T, Tang T, Jones V, Muccioli M, Tam P. Thyroid bud morphogenesis requires CDC42- and SHROOM3-dependent apical constriction. Biol Open. 2016;5:130-9 pubmed 出版商
  43. Vergne F, Quéré G, Andrieu Key S, Descourt R, Quintin Roué I, Talagas M, et al. ALK-rearranged squamous cell lung carcinoma responding to crizotinib: A missing link in the field of non-small cell lung cancer?. Lung Cancer. 2016;91:67-9 pubmed 出版商
  44. Yin Y, Castro A, Hoekstra M, Yan T, Kanakamedala A, Dehner L, et al. Fibroblast Growth Factor 9 Regulation by MicroRNAs Controls Lung Development and Links DICER1 Loss to the Pathogenesis of Pleuropulmonary Blastoma. PLoS Genet. 2015;11:e1005242 pubmed 出版商
  45. Chen P, Wu T, Cheng Y, Chen C, Lee H. NKX2-1-mediated p53 expression modulates lung adenocarcinoma progression via modulating IKKβ/NF-κB activation. Oncotarget. 2015;6:14274-89 pubmed
  46. Kadota K, Nitadori J, Rekhtman N, Jones D, Adusumilli P, Travis W. Reevaluation and reclassification of resected lung carcinomas originally diagnosed as squamous cell carcinoma using immunohistochemical analysis. Am J Surg Pathol. 2015;39:1170-80 pubmed 出版商
  47. Xiu Y, Jiang L, Liu W. Classic biphasic pulmonary blastoma with brain and axillary metastases: a case report with molecular analysis and review of literature. Int J Clin Exp Pathol. 2015;8:983-8 pubmed
  48. Kodama T, Motoi N, Ninomiya H, Sakamoto H, Kitada K, Tsukaguchi T, et al. A novel mechanism of EML4-ALK rearrangement mediated by chromothripsis in a patient-derived cell line. J Thorac Oncol. 2014;9:1638-46 pubmed 出版商
  49. Milione M, Gasparini P, Sozzi G, Mazzaferro V, Ferrari A, Casali P, et al. Ewing sarcoma of the small bowel: a study of seven cases, including one with the uncommonly reported EWSR1-FEV translocation. Histopathology. 2014;64:1014-26 pubmed 出版商
  50. Kaisani A, Delgado O, Fasciani G, Kim S, Wright W, Minna J, et al. Branching morphogenesis of immortalized human bronchial epithelial cells in three-dimensional culture. Differentiation. 2014;87:119-26 pubmed 出版商
  51. Vose L, Vinukonda G, Diamond D, Korumilli R, Hu F, Zia M, et al. Prenatal betamethasone does not affect glutamatergic or GABAergic neurogenesis in preterm newborns. Neuroscience. 2014;270:148-57 pubmed 出版商
  52. McIntyre B, Alev C, Mechael R, Salci K, Lee J, Fiebig Comyn A, et al. Expansive generation of functional airway epithelium from human embryonic stem cells. Stem Cells Transl Med. 2014;3:7-17 pubmed 出版商
  53. Yousem S. Immunohistochemical and molecular characterization of clear cell carcinoma of the lung. Hum Pathol. 2013;44:2467-74 pubmed 出版商
  54. Yin Y, Betsuyaku T, Garbow J, Miao J, Govindan R, Ornitz D. Rapid induction of lung adenocarcinoma by fibroblast growth factor 9 signaling through FGF receptor 3. Cancer Res. 2013;73:5730-41 pubmed 出版商