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The Journal of Experimental Medicine, ISSN 0022-1007, 06/2017, Volume 214, Issue 6, pp. 1607 - 1618
Interleukin-22 (IL-22) acts protectively and harmfully on intestinal tissue depending on the situation; therefore, IL-22 signaling needs to be tightly... 
Binding | Antigens | CD11b antigen | Dendritic cells | Interleukin | Patches (structures) | Homeostasis | Interleukin 22 | Mucus | Lymphoid tissue | Gene expression | Epithelium | Proteins | Signaling | Intestine | Animal tissues | Bacteria | Mice | 319
Journal Article
Quaternary International, ISSN 1040-6182, 11/2012, Volume 279-280, pp. 428 - 428
Journal Article
Frontiers in Immunology, ISSN 1664-3224, 10/2019, Volume 10
The primary induction sites for intestinal IgA are the gut-associated lymphoid tissues (GALT), such as Peyer's patches (PPs) and isolated lymphoid follicles... 
Peyer's patches | IgA | mucosal immunology | germinal center (GC) reaction | dietary antigens
Journal Article
Biology of Reproduction, ISSN 0006-3363, 11/2019
Abstract The number of stockpiled primordial follicles is thought to be responsible for the fate of female fertility and reproductive lifetime. We previously... 
Journal Article
PLoS ONE, ISSN 1932-6203, 03/2017, Volume 12, Issue 3, p. e0173635
Journal Article
Extremophiles, ISSN 1431-0651, 9/2019, Volume 23, Issue 5, pp. 549 - 556
Journal Article
by Takahashi, Tadayuki and Kokubun, Motohide and Mitsuda, Kazuhisa and Kelley, Richard and Ohashi, Takaya and Aharonian, Felix and Akamatsu, Hiroki and Akimoto, Fumie and Allen, Steve and Anabuki, Naohisa and Angelini, Lorella and Arnaud, Keith and Asai, Makoto and Audard, Marc and Awaki, Hisamitsu and Axelsson, Magnus and Azzarello, Philipp and Baluta, Chris and Bamba, Aya and Bando, Nobutaka and Bautz, Marshall and Bialas, Thomas and Blandford, Roger and Boyce, Kevin and Brenneman, Laura and Brown, Greg and Bulbul, Esra and Cackett, Edward and Canavan, Edgar and Chernyakova, Maria and Chiao, Meng and Coppi, Paolo and Costantini, Elisa and De Plaa, Jelle and Den Herder, Jan-Willem and DiPirro, Michael and Done, Chris and Dotani, Tadayasu and Doty, John and Ebisawa, Ken and Eckart, Megan and Enoto, Teruaki and Ezoe, Yuichiro and Fabian, Andrew and Ferrigno, Carlo and Foster, Adam and Fujimoto, Ryuichi and Fukazawa, Yasushi and Furuzawa, Akihiro and Galeazzi, Massimiliano and Gallo, Luigi and Gandhi, Poshak and Gilmore, Kirk and Giustini, Margherita and Goldwurm, Andrea and Gu, Liyi and Guainazzi, Matteo and Haas, Daniel and Haba, Yoshito and Hagino, Kouichi and Hamaguchi, Kenji and Harayama, Atsushi and Harrus, Ilana and Hatsukade, Isamu and Hayashi, Takayuki and Hayashi, Katsuhiro and Hayashida, Kiyoshi and Hiraga, Junko and Hirose, Kazuyuki and Hornschemeier, Ann and Hoshino, Akio and Hughes, John and Ichinohe, Yuto and Iizuka, Ryo and Inoue, Yoshiyuki and Inoue, Hajime and Ishibashi, Kazunori and Ishida, Manabu and Ishikawa, Kumi and Ishimura, Kosei and Ishisaki, Yoshitaka and Itoh, Masayuki and Iwata, Naoko and Iyomoto, Naoko and Jewell, Chris and Kaastra, Jelle and Kallman, Timothy and Kamae, Tuneyoshi and Kara, Erin and Kataoka, Jun and Katsuda, Satoru and Katsuta, Junichiro and Kawaharada, Madoka and Kawai, Nobuyuki and Kawano, Taro and Kawasaki, Shigeo and Khangulyan, Dmitry and Kilbourne, Caroline and Kimball, Mark and King, Ashley and ...
Proceedings of SPIE - The International Society for Optical Engineering, ISSN 0277-786X, 2016, Volume 9905
Conference Proceeding
Journal of Clinical Investigation, ISSN 0021-9738, 04/2015, Volume 125, Issue 4, pp. 1591 - 1602
The mechanistic target of rapamycin (mTOR) is hyperactivated in many types of cancer, rendering it a compelling drug-target; however, the impact of mTOR... 
RAPAMYCIN | MEDICINE, RESEARCH & EXPERIMENTAL | PATHWAY | MUTATION | KINASE INHIBITORS | PROLIFERATION | CELL-GROWTH | PTEN-DEFICIENT | CANCER | CONTRIBUTES | Gas Chromatography-Mass Spectrometry | Humans | Glutamine - metabolism | Male | Neoplasm Proteins - antagonists & inhibitors | Purines - administration & dosage | Indoles - administration & dosage | Benzophenanthridines - therapeutic use | Glioblastoma - metabolism | Purines - therapeutic use | Neoplasm Proteins - genetics | Glutaminase - biosynthesis | Magnetic Resonance Spectroscopy | Benzophenanthridines - administration & dosage | Brain Neoplasms - drug therapy | Benzophenanthridines - pharmacology | Drug Synergism | Energy Metabolism | Signal Transduction - drug effects | Mice, Nude | Glioblastoma - pathology | Cell Line, Tumor | Indoles - therapeutic use | Mice | Mice, Inbred BALB C | Glioblastoma - drug therapy | Glutaminase - physiology | Neoplasm Proteins - physiology | Brain Neoplasms - pathology | Molecular Targeted Therapy | Brain Neoplasms - metabolism | TOR Serine-Threonine Kinases - antagonists & inhibitors | Indoles - pharmacology | Ketoglutaric Acids - metabolism | Neoplasm Proteins - biosynthesis | Purines - pharmacology | RNA, Small Interfering - pharmacology | Temporal Lobe - metabolism | Glutaminase - antagonists & inhibitors | Citric Acid Cycle | Xenograft Model Antitumor Assays | Rotarod Performance Test | Animals | Metabolome - drug effects | Antineoplastic Combined Chemotherapy Protocols - therapeutic use | Protein Kinase Inhibitors - therapeutic use | Glycolysis | Signal Transduction - physiology | Aged | Glutamic Acid - metabolism | Protein Kinase Inhibitors - pharmacology | Drug Resistance, Neoplasm - physiology | Glutaminase - genetics | Pharmacology, Experimental | Oncology, Experimental | Glutamine metabolism | Research | Drug therapy | Drug resistance | Health aspects | Glioblastoma multiforme | Cancer | Medical research | Enzymes | Brain cancer | Neurosurgery | Glucose | Kinases | Metabolism | Carbon | Cancer therapies | Medicine | Cell growth | Brain research | Laboratory animals | Tumors | University graduates | Oncology
Journal Article
Science, ISSN 0036-8075, 5/2011, Volume 332, Issue 6031, pp. 848 - 852
Journal Article
Journal of Experimental Medicine, ISSN 0022-1007, 06/2017, Volume 214, Issue 6, pp. 1607 - 1618
Journal Article