For: | Wong CH, Li YJ, Chen YC. Therapeutic potential of targeting acinar cell reprogramming in pancreatic cancer. World J Gastroenterol 2016; 22(31): 7046-7057 [PMID: 27610015 DOI: 10.3748/wjg.v22.i31.7046] |
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URL: | https://www.wjgnet.com/1007-9327/full/v22/i31/7046.htm |
Number | Citing Articles |
1 |
René Rasche, Lisa Helene Apken, Esther Michalke, Daniel Kümmel, Andrea Oeckinghaus. κB‐Ras proteins are fast‐exchanging GTPases and function via nucleotide‐independent binding of Ral GTPase‐activating protein complexes. FEBS Letters 2024; 598(14): 1769 doi: 10.1002/1873-3468.14860
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2 |
Tiantian Jing, Xiaoli Xu, Chengsi Wu, Dianhui Wei, Lili Yuan, Yiwen Huang, Yizhen Liu, Boshi Wang. POH1 facilitates pancreatic carcinogenesis through MYC-driven acinar-to-ductal metaplasia and is a potential therapeutic target. Cancer Letters 2023; 577: 216444 doi: 10.1016/j.canlet.2023.216444
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3 |
J.P.R. MARTINS, S.W. MOREIRA, P.C.S. BRAGA, L.T. CONDE, R. CIPRIANO, A.R. FALQUETO, A.B.P.L. GONTIJO. Photosynthetic apparatus performance and anatomical modulations of Alcantarea imperialis (Bromeliaceae) exposed to selenium during in vitro growth. Photosynthetica 2021; 59(4): 529 doi: 10.32615/ps.2021.042
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4 |
Farid G Khalafalla, Mohammad W Khan. Inflammation and Epithelial-Mesenchymal Transition in Pancreatic Ductal Adenocarcinoma: Fighting Against Multiple Opponents. Cancer Growth and Metastasis 2017; 10: 117906441770928 doi: 10.1177/1179064417709287
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5 |
Li-Juan Gao, Jia-Lei Li, Rui-Rui Yang, Zhong-Mei He, Min Yan, Xia Cao, Ji-Min Cao. Biological Characterization and Clinical Value of OAS Gene Family in Pancreatic Cancer. Frontiers in Oncology 2022; 12 doi: 10.3389/fonc.2022.884334
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6 |
Megha Singhal, Mahsa Khatibeghdami, Daniel R. Principe, Georgina E. Mancinelli, Kyle M. Schachtschneider, Lawrence B. Schook, Paul J. Grippo, Sam R. Grimaldo, Aamir Ahmad. TM4SF18 is aberrantly expressed in pancreatic cancer and regulates cell growth. PLOS ONE 2019; 14(3): e0211711 doi: 10.1371/journal.pone.0211711
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7 |
Seema Parte, Rama Krishna Nimmakayala, Surinder K. Batra, Moorthy P. Ponnusamy. Acinar to ductal cell trans-differentiation: A prelude to dysplasia and pancreatic ductal adenocarcinoma. Biochimica et Biophysica Acta (BBA) - Reviews on Cancer 2022; 1877(1): 188669 doi: 10.1016/j.bbcan.2021.188669
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8 |
Yufu Wang, Tianyi Fang, Lining Huang, Hao Wang, Lei Zhang, Zhidong Wang, Yunfu Cui. Neutrophils infiltrating pancreatic ductal adenocarcinoma indicate higher malignancy and worse prognosis. Biochemical and Biophysical Research Communications 2018; 501(1): 313 doi: 10.1016/j.bbrc.2018.05.024
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9 |
Doaa Tawfik, Angela Zaccagnino, Alexander Bernt, Monika Szczepanowski, Wolfram Klapper, Albrecht Schwab, Holger Kalthoff, Anna Trauzold. The A818–6 system as an in-vitro model for studying the role of the transportome in pancreatic cancer. BMC Cancer 2020; 20(1) doi: 10.1186/s12885-020-06773-w
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10 |
Amanda R. Muñoz, Divya Chakravarthy, Jingjing Gong, Glenn A. Halff, Rita Ghosh, Addanki P. Kumar. Pancreatic Cancer: Current Status and Challenges. Current Pharmacology Reports 2017; 3(6): 396 doi: 10.1007/s40495-017-0112-3
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11 |
Eduardo Mere Del Aguila, Xiao-Han Tang, Lorraine J. Gudas. Pancreatic Ductal Adenocarcinoma: New Insights into the Actions of Vitamin A. Oncology Research and Treatment 2022; 45(5): 291 doi: 10.1159/000522425
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12 |
Shu Li, Keping Xie. Ductal metaplasia in pancreas. Biochimica et Biophysica Acta (BBA) - Reviews on Cancer 2022; 1877(2): 188698 doi: 10.1016/j.bbcan.2022.188698
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13 |
P.C.S. BRAGA, J.P.R. MARTINS, R. BONOMO, A.R. FALQUETO. Morphophysiological responses of Crambe abyssinica Hochst. lineages submitted to water deficit during flowering. Photosynthetica 2021; 59(4): 486 doi: 10.32615/ps.2021.039
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14 |
Hao Yang, Julia Messina-Pacheco, Andrea Liliam Gomez Corredor, Alex Gregorieff, Jun-li Liu, Ali Nehme, Hamed S. Najafabadi, Yasser Riazalhosseini, Bo Gao, Zu-hua Gao. An integrated model of acinar to ductal metaplasia-related N7-methyladenosine regulators predicts prognosis and immunotherapy in pancreatic carcinoma based on digital spatial profiling. Frontiers in Immunology 2022; 13 doi: 10.3389/fimmu.2022.961457
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15 |
Nikita Bhalerao, Asmi Chakraborty, Michael P. Marciel, Jihye Hwang, Colleen M. Britain, Austin D. Silva, Isam E. Eltoum, Robert B. Jones, Katie L. Alexander, Lesley E. Smythies, Phillip D. Smith, David K. Crossman, Michael R. Crowley, Boyoung Shin, Laurie E. Harrington, Zhaoqi Yan, Maigen M. Bethea, Chad S. Hunter, Christopher A. Klug, Donald J. Buchsbaum, Susan L. Bellis. ST6GAL1 sialyltransferase promotes acinar to ductal metaplasia and pancreatic cancer progression. JCI Insight 2023; 8(19) doi: 10.1172/jci.insight.161563
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16 |
Jingxiao Wang, Mingjie Dong, Zhong Xu, Xinhua Song, Shanshan Zhang, Yu Qiao, Li Che, John Gordan, Kaiwen Hu, Yan Liu, Diego F. Calvisi, Xin Chen. Notch2 controls hepatocyte-derived cholangiocarcinoma formation in mice. Oncogene 2018; 37(24): 3229 doi: 10.1038/s41388-018-0188-1
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17 |
Huairong Zhang, Andrea Liliam Gomez Corredor, Julia Messina-Pacheco, Qing Li, George Zogopoulos, Nancy Kaddour, Yifan Wang, Bing-yin Shi, Alex Gregorieff, Jun-li Liu, Zu-hua Gao. REG3A/REG3B promotes acinar to ductal metaplasia through binding to EXTL3 and activating the RAS-RAF-MEK-ERK signaling pathway. Communications Biology 2021; 4(1) doi: 10.1038/s42003-021-02193-z
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18 |
Ahmad Abu Turab Naqvi, Gulam Mustafa Hasan, Md Imtaiyaz Hassan. Investigating the role of transcription factors of pancreas development in pancreatic cancer. Pancreatology 2018; 18(2): 184 doi: 10.1016/j.pan.2017.12.013
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19 |
Takahiro Seimiya, Motoyuki Otsuka, Takuma Iwata, Eri Tanaka, Tatsunori Suzuki, Kazuma Sekiba, Mari Yamagami, Rei Ishibashi, Kazuhiko Koike. Inflammation and de-differentiation in pancreatic carcinogenesis. World Journal of Clinical Cases 2018; 6(15): 882-891 doi: 10.12998/wjcc.v6.i15.882
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20 |
Stephanie Beel, Lina Kolloch, Lisa H. Apken, Lara Jürgens, Andrea Bolle, Nadine Sudhof, Sankar Ghosh, Eva Wardelmann, Michael Meisterernst, Konrad Steinestel, Andrea Oeckinghaus. κB-Ras and Ral GTPases regulate acinar to ductal metaplasia during pancreatic adenocarcinoma development and pancreatitis. Nature Communications 2020; 11(1) doi: 10.1038/s41467-020-17226-0
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21 |
E. CLAIRVIL, J.P.R. MARTINS, P.C.S. BRAGA, S.W. MOREIRA, L.T. CONDE, R. CIPRIANO, A.R. FALQUETO, A.B.P.L. GONTIJO. Zinc and cadmium as modulating factors of the morphophysiological responses of Alternanthera tenella Colla (Amaranthaceae) under in vitro conditions. Photosynthetica 2021; 59(4): 652 doi: 10.32615/ps.2021.059
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22 |
Ge Huang, Luke Ternes, Christian Lanciault, Kevin MacPherson‐Hawthorne, Young Hwan Chang, Rosalie C Sears, John L Muschler. Suppression of dystroglycan function accompanies pancreatic acinar‐to‐ductal metaplasia and favours dysplasia development. The Journal of Pathology 2024; 264(4): 411 doi: 10.1002/path.6356
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23 |
Xiaojia Li, Jie He, Keping Xie. Molecular signaling in pancreatic ductal metaplasia: emerging biomarkers for detection and intervention of early pancreatic cancer. Cellular Oncology 2022; 45(2): 201 doi: 10.1007/s13402-022-00664-x
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24 |
Andreas Damianou, Zhu Liang, Frederik Lassen, Iolanda Vendrell, George Vere, Svenja Hester, Philip D Charles, Adan Pinto-Fernandez, Alberto Santos, Roman Fischer, Benedikt M Kessler. Oncogenic mutations of KRAS modulate its turnover by the CUL3/LZTR1 E3 ligase complex. Life Science Alliance 2024; 7(5): e202302245 doi: 10.26508/lsa.202302245
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