Artigos de revistas sobre o tema "Autophagic bodies"
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Stefaniak, Szymon, Łukasz Wojtyla, Małgorzata Pietrowska-Borek e Sławomir Borek. "Completing Autophagy: Formation and Degradation of the Autophagic Body and Metabolite Salvage in Plants". International Journal of Molecular Sciences 21, n.º 6 (23 de março de 2020): 2205. http://dx.doi.org/10.3390/ijms21062205.
Texto completo da fonteHariri, Mehrdad, Ghania Millane, Marie-Pierre Guimond, Ginette Guay, James W. Dennis e Ivan R. Nabi. "Biogenesis of Multilamellar Bodies via Autophagy". Molecular Biology of the Cell 11, n.º 1 (janeiro de 2000): 255–68. http://dx.doi.org/10.1091/mbc.11.1.255.
Texto completo da fonteBjørkøy, Geir, Trond Lamark, Andreas Brech, Heidi Outzen, Maria Perander, Aud Øvervatn, Harald Stenmark e Terje Johansen. "p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death". Journal of Cell Biology 171, n.º 4 (14 de novembro de 2005): 603–14. http://dx.doi.org/10.1083/jcb.200507002.
Texto completo da fonteWleklik, Karolina, Szymon Stefaniak, Katarzyna Nuc, Małgorzata Pietrowska-Borek e Sławomir Borek. "Identification and Potential Participation of Lipases in Autophagic Body Degradation in Embryonic Axes of Lupin (Lupinus spp.) Germinating Seeds". International Journal of Molecular Sciences 25, n.º 1 (20 de dezembro de 2023): 90. http://dx.doi.org/10.3390/ijms25010090.
Texto completo da fonteTakeshige, K., M. Baba, S. Tsuboi, T. Noda e Y. Ohsumi. "Autophagy in yeast demonstrated with proteinase-deficient mutants and conditions for its induction." Journal of Cell Biology 119, n.º 2 (15 de outubro de 1992): 301–11. http://dx.doi.org/10.1083/jcb.119.2.301.
Texto completo da fonteYang, Zhifen, Ju Huang, Jiefei Geng, Usha Nair e Daniel J. Klionsky. "Atg22 Recycles Amino Acids to Link the Degradative and Recycling Functions of Autophagy". Molecular Biology of the Cell 17, n.º 12 (dezembro de 2006): 5094–104. http://dx.doi.org/10.1091/mbc.e06-06-0479.
Texto completo da fonteBaba, M., K. Takeshige, N. Baba e Y. Ohsumi. "Ultrastructural analysis of the autophagic process in yeast: detection of autophagosomes and their characterization". Journal of Cell Biology 124, n.º 6 (15 de março de 1994): 903–13. http://dx.doi.org/10.1083/jcb.124.6.903.
Texto completo da fonteEpple, Ulrike D., Ivet Suriapranata, Eeva-Liisa Eskelinen e Michael Thumm. "Aut5/Cvt17p, a Putative Lipase Essential for Disintegration of Autophagic Bodies inside the Vacuole". Journal of Bacteriology 183, n.º 20 (15 de outubro de 2001): 5942–55. http://dx.doi.org/10.1128/jb.183.20.5942-5955.2001.
Texto completo da fonteLi, Qingrong, Xiaojuan Deng, Wanying Yang, Zhijun Huang, Gianluca Tettamanti, Yang Cao e Qili Feng. "Autophagy, apoptosis, and ecdysis-related gene expression in the silk gland of the silkworm (Bombyx mori) during metamorphosis". Canadian Journal of Zoology 88, n.º 12 (dezembro de 2010): 1169–78. http://dx.doi.org/10.1139/z10-083.
Texto completo da fonteDernovics, Áron, György Seprényi, Zsolt Rázga, Ferhan Ayaydin, Zoltán Veréb e Klára Megyeri. "Phenol-Soluble Modulin α3 Stimulates Autophagy in HaCaT Keratinocytes". Biomedicines 11, n.º 11 (10 de novembro de 2023): 3018. http://dx.doi.org/10.3390/biomedicines11113018.
Texto completo da fonteMontiel, Teresa, Luis A. Montes-Ortega, Susana Flores-Yáñez e Lourdes Massieu. "Treatment with the Ketone Body D-β-hydroxybutyrate Attenuates Autophagy Activated by NMDA and Reduces Excitotoxic Neuronal Damage in the Rat Striatum In Vivo". Current Pharmaceutical Design 26, n.º 12 (6 de maio de 2020): 1377–87. http://dx.doi.org/10.2174/1381612826666200115103646.
Texto completo da fonteRobinson, Carolyn-Ann, Gillian K. Singh, Mariel Kleer, Thalia Katsademas, Elizabeth L. Castle, Bre Q. Boudreau e Jennifer A. Corcoran. "Kaposi’s sarcoma-associated herpesvirus (KSHV) utilizes the NDP52/CALCOCO2 selective autophagy receptor to disassemble processing bodies". PLOS Pathogens 19, n.º 1 (12 de janeiro de 2023): e1011080. http://dx.doi.org/10.1371/journal.ppat.1011080.
Texto completo da fonteCebollero, Eduardo, e Ramon Gonzalez. "Induction of Autophagy by Second-Fermentation Yeasts during Elaboration of Sparkling Wines". Applied and Environmental Microbiology 72, n.º 6 (junho de 2006): 4121–27. http://dx.doi.org/10.1128/aem.02920-05.
Texto completo da fonteKim, Hei, Seo-Yeon Park, Seok Moon, Jeong Lee e Sungjoo Kim. "Autophagy in Human Skin Fibroblasts: Impact of Age". International Journal of Molecular Sciences 19, n.º 8 (1 de agosto de 2018): 2254. http://dx.doi.org/10.3390/ijms19082254.
Texto completo da fonteJankó, Laura, Zsanett Sári, Tünde Kovács, Gréta Kis, Magdolna Szántó, Miklós Antal, Gábor Juhász e Péter Bai. "Silencing of PARP2 Blocks Autophagic Degradation". Cells 9, n.º 2 (7 de fevereiro de 2020): 380. http://dx.doi.org/10.3390/cells9020380.
Texto completo da fonteTanida, Isei, Tomohiro Haruta, Mitsuo Suga, Shunsuke Takei, Akira Takebe, Yoko Furuta, Junji Yamaguchi, Juan Alejandro Oliva Trejo, Soichiro Kakuta e Yasuo Uchiyama. "Membranous Structures Directly Come in Contact With p62/SQSTM1 Bodies". Journal of Histochemistry & Cytochemistry 69, n.º 6 (22 de abril de 2021): 407–14. http://dx.doi.org/10.1369/00221554211011423.
Texto completo da fonteHirata, Eri, Kyo Shirai, Tatsuya Kawaoka, Kosuke Sato, Fumito Kodama e Kuninori Suzuki. "Atg15 in Saccharomyces cerevisiae consists of two functionally distinct domains". Molecular Biology of the Cell 32, n.º 8 (15 de abril de 2021): 645–63. http://dx.doi.org/10.1091/mbc.e20-07-0500.
Texto completo da fonteFader, Claudio M., Diego Sánchez, Marcelo Furlán e María I. Colombo. "Induction of Autophagy Promotes Fusion of Multivesicular Bodies with Autophagic Vacuoles in K562 Cells". Traffic 9, n.º 2 (12 de novembro de 2007): 230–50. http://dx.doi.org/10.1111/j.1600-0854.2007.00677.x.
Texto completo da fonteNezis, Ioannis P., Anne Simonsen, Antonia P. Sagona, Kim Finley, Sébastien Gaumer, Didier Contamine, Tor Erik Rusten, Harald Stenmark e Andreas Brech. "Ref(2)P, the Drosophila melanogaster homologue of mammalian p62, is required for the formation of protein aggregates in adult brain". Journal of Cell Biology 180, n.º 6 (17 de março de 2008): 1065–71. http://dx.doi.org/10.1083/jcb.200711108.
Texto completo da fonteLee, Jihyun, Ji Hoon Jung, Jisung Hwang, Ji Eon Park, Ju-Ha Kim, Woon Yi Park, Jin Young Suh e Sung-Hoon Kim. "CNOT2 Is Critically Involved in Atorvastatin Induced Apoptotic and Autophagic Cell Death in Non-Small Cell Lung Cancers". Cancers 11, n.º 10 (30 de setembro de 2019): 1470. http://dx.doi.org/10.3390/cancers11101470.
Texto completo da fonteBestion, Eloïne, Keivan Zandi, Sandrine Belouzard, Julien Andreani, Hubert Lepidi, Marie Novello, Clara Rouquairol et al. "GNS561 Exhibits Potent Antiviral Activity against SARS-CoV-2 through Autophagy Inhibition". Viruses 14, n.º 1 (12 de janeiro de 2022): 132. http://dx.doi.org/10.3390/v14010132.
Texto completo da fonteDing, Jin-Li, Hao Zhang, Ming-Guang Feng e Sheng-Hua Ying. "Divergent Physiological Functions of Four Atg22-like Proteins in Conidial Germination, Development, and Virulence of the Entomopathogenic Fungus Beauveria bassiana". Journal of Fungi 9, n.º 2 (15 de fevereiro de 2023): 262. http://dx.doi.org/10.3390/jof9020262.
Texto completo da fonteImam, Sabrina, Sarah Talley, Rachel S. Nelson, Adarsh Dharan, Christopher O'Connor, Thomas J. Hope e Edward M. Campbell. "TRIM5α Degradation via Autophagy Is Not Required for Retroviral Restriction". Journal of Virology 90, n.º 7 (13 de janeiro de 2016): 3400–3410. http://dx.doi.org/10.1128/jvi.03033-15.
Texto completo da fontePark, Hyungsun, Ju-Hee Kang e Seongju Lee. "Autophagy in Neurodegenerative Diseases: A Hunter for Aggregates". International Journal of Molecular Sciences 21, n.º 9 (10 de maio de 2020): 3369. http://dx.doi.org/10.3390/ijms21093369.
Texto completo da fonteYi, Shuanglong, Linfang Wang, Margaret S. Ho e Shiping Zhang. "The autophagy protein Atg9 functions in glia and contributes to parkinsonian symptoms in a Drosophila model of Parkinson’s disease". Neural Regeneration Research 19, n.º 5 (14 de agosto de 2023): 1150–55. http://dx.doi.org/10.4103/1673-5374.382259.
Texto completo da fonteWilliams, JB. "Ultrastructural Studies on Kronborgia (Platyhelminthes, Fecampiidae) - the Differentiated Vitellocyte of Kronborgia-Isopodicola Blair and Williams". Australian Journal of Zoology 38, n.º 1 (1990): 79. http://dx.doi.org/10.1071/zo9900079.
Texto completo da fonteSyrjä, Pernilla, Tahira Anwar, Tarja Jokinen, Kaisa Kyöstilä, Karin Hultin Jäderlund, Francesca Cozzi, Cecilia Rohdin et al. "Basal Autophagy Is Altered in Lagotto Romagnolo Dogs with an ATG4D Mutation". Veterinary Pathology 54, n.º 6 (6 de junho de 2017): 953–63. http://dx.doi.org/10.1177/0300985817712793.
Texto completo da fonteGao, Hongjuan, Xiulan Qi, William Jackson e Achsah Keegan. "The complex allergen house dust mite (HDM) acts directly on macrophages to stimulate noncanonical autophagy". Journal of Immunology 202, n.º 1_Supplement (1 de maio de 2019): 119.21. http://dx.doi.org/10.4049/jimmunol.202.supp.119.21.
Texto completo da fontePaula, Jéssica C., Nilma S. Fernandes, Thaysa K. Karam, Paula Baréa, Maria H. Sarragiotto, Tania Ueda-Nakamura, Sueli O. Silva e Celso V. Nakamura. "β-carbolines RCC and C5 induce the death of Leishmania amazonensis intracellular amastigotes". Future Microbiology 17, n.º 2 (janeiro de 2022): 99–110. http://dx.doi.org/10.2217/fmb-2020-0263.
Texto completo da fonteGardiner, Tom A., e Alan W. Stitt. "Pericyte and Vascular Smooth Muscle Death in Diabetic Retinopathy Involves Autophagy". International Journal of Translational Medicine 2, n.º 1 (19 de janeiro de 2022): 26–40. http://dx.doi.org/10.3390/ijtm2010003.
Texto completo da fonteGao, Hongjuan, Xiulan Qi, William Jackson e Achsah D. Keegan. "The complex allergen house dust mite (HDM) dramatically increases the abundance of the autophagy cargo adapter SQSTM1/p62 in macrophages and suppresses Torin 1-induced degradative autophagy". Journal of Immunology 204, n.º 1_Supplement (1 de maio de 2020): 147.11. http://dx.doi.org/10.4049/jimmunol.204.supp.147.11.
Texto completo da fonteLiu, Xuezhao, Yang Li, Xin Wang, Ruxiao Xing, Kai Liu, Qiwen Gan, Changyong Tang et al. "The BEACH-containing protein WDR81 coordinates p62 and LC3C to promote aggrephagy". Journal of Cell Biology 216, n.º 5 (12 de abril de 2017): 1301–20. http://dx.doi.org/10.1083/jcb.201608039.
Texto completo da fonteMejlvang, Jakob, Hallvard Olsvik, Steingrim Svenning, Jack-Ansgar Bruun, Yakubu Princely Abudu, Kenneth Bowitz Larsen, Andreas Brech et al. "Starvation induces rapid degradation of selective autophagy receptors by endosomal microautophagy". Journal of Cell Biology 217, n.º 10 (17 de julho de 2018): 3640–55. http://dx.doi.org/10.1083/jcb.201711002.
Texto completo da fonteLajoie, P. "The lipid composition of autophagic vacuoles regulates expression of multilamellar bodies". Journal of Cell Science 118, n.º 9 (1 de maio de 2005): 1991–2003. http://dx.doi.org/10.1242/jcs.02324.
Texto completo da fonteBackues, Steven K., Dachuan Chen, Jishou Ruan, Zhiping Xie e Daniel J. Klionsky. "Estimating the size and number of autophagic bodies by electron microscopy". Autophagy 10, n.º 1 (11 de novembro de 2013): 155–64. http://dx.doi.org/10.4161/auto.26856.
Texto completo da fonteLongobardi, Antonio, Marcella Catania, Andrea Geviti, Erika Salvi, Elena Rita Vecchi, Sonia Bellini, Claudia Saraceno et al. "Autophagy Markers Are Altered in Alzheimer’s Disease, Dementia with Lewy Bodies and Frontotemporal Dementia". International Journal of Molecular Sciences 25, n.º 2 (17 de janeiro de 2024): 1125. http://dx.doi.org/10.3390/ijms25021125.
Texto completo da fonteSchweiger, Linda, Laura A. Lelieveld-Fast, Snježana Mikuličić, Johannes Strunk, Kirsten Freitag, Stefan Tenzer, Albrecht M. Clement e Luise Florin. "HPV16 Induces Formation of Virus-p62-PML Hybrid Bodies to Enable Infection". Viruses 14, n.º 7 (5 de julho de 2022): 1478. http://dx.doi.org/10.3390/v14071478.
Texto completo da fonteFellner, Lisa, Elisa Gabassi, Johannes Haybaeck e Frank Edenhofer. "Autophagy in α-Synucleinopathies—An Overstrained System". Cells 10, n.º 11 (12 de novembro de 2021): 3143. http://dx.doi.org/10.3390/cells10113143.
Texto completo da fonteRahman, Muhammad Arifur, Ravinder Kumar, Enrique Sanchez e Taras Y. Nazarko. "Lipid Droplets and Their Autophagic Turnover via the Raft-Like Vacuolar Microdomains". International Journal of Molecular Sciences 22, n.º 15 (29 de julho de 2021): 8144. http://dx.doi.org/10.3390/ijms22158144.
Texto completo da fonteZheng, Liwen, Wanchun Wang, Jiangdong Ni, Xinzhan Mao, Deye Song, Tang Liu, Jianwei Wei e Huaying Zhou. "Role of autophagy in tumor necrosis factor-α-induced apoptosis of osteoblast cells". Journal of Investigative Medicine 65, n.º 6 (20 de junho de 2017): 1014–20. http://dx.doi.org/10.1136/jim-2017-000426.
Texto completo da fonteFilimonenko, Maria, Susanne Stuffers, Camilla Raiborg, Ai Yamamoto, Lene Malerød, Elizabeth M. C. Fisher, Adrian Isaacs, Andreas Brech, Harald Stenmark e Anne Simonsen. "Functional multivesicular bodies are required for autophagic clearance of protein aggregates associated with neurodegenerative disease". Journal of Cell Biology 179, n.º 3 (5 de novembro de 2007): 485–500. http://dx.doi.org/10.1083/jcb.200702115.
Texto completo da fonteWleklik, Karolina, e Sławomir Borek. "Vacuolar Processing Enzymes in Plant Programmed Cell Death and Autophagy". International Journal of Molecular Sciences 24, n.º 2 (7 de janeiro de 2023): 1198. http://dx.doi.org/10.3390/ijms24021198.
Texto completo da fonteMarquardt, Lisa, Marco Montino, Yvonne Mühe, Petra Schlotterhose e Michael Thumm. "Topology and Function of the S. cerevisiae Autophagy Protein Atg15". Cells 12, n.º 16 (12 de agosto de 2023): 2056. http://dx.doi.org/10.3390/cells12162056.
Texto completo da fonteMacgregor, Stuart R., Hyun Kyung Lee, Hayley Nelles, Daniel C. Johnson, Tong Zhang, Chaozhi Ma e Daphne R. Goring. "Autophagy is required for self-incompatible pollen rejection in two transgenic Arabidopsis thaliana accessions". Plant Physiology 188, n.º 4 (25 de janeiro de 2022): 2073–84. http://dx.doi.org/10.1093/plphys/kiac026.
Texto completo da fonteSato, Shigeto, Sachiko Noda, Satoru Torii, Taku Amo, Aya Ikeda, Manabu Funayama, Junji Yamaguchi et al. "Homeostatic p62 levels and inclusion body formation in CHCHD2 knockout mice". Human Molecular Genetics 30, n.º 6 (25 de fevereiro de 2021): 443–53. http://dx.doi.org/10.1093/hmg/ddab057.
Texto completo da fonteLiu, Xuezhao, Limin Yin, Tianyou Li, Lingxi Lin, Jie Zhang e Yang Li. "Reduction of WDR81 impairs autophagic clearance of aggregated proteins and cell viability in neurodegenerative phenotypes". PLOS Genetics 17, n.º 3 (17 de março de 2021): e1009415. http://dx.doi.org/10.1371/journal.pgen.1009415.
Texto completo da fonteYang, Fan, Haoran Hu, Wenjing Yin, Guangyi Li, Ting Yuan, Xuetao Xie e Changqing Zhang. "Autophagy Is Independent of the Chondroprotection Induced by Platelet-Rich Plasma Releasate". BioMed Research International 2018 (24 de julho de 2018): 1–11. http://dx.doi.org/10.1155/2018/9726703.
Texto completo da fonteKovács, Attila L. "A Simple Method to Estimate the Number of Autophagic Elements by Electron Microscopic Morphometry in Real Cellular Dimensions". BioMed Research International 2014 (2014): 1–5. http://dx.doi.org/10.1155/2014/578698.
Texto completo da fonteHALFERTY, L., J. F. O'NEILL, G. P. BRENNAN, J. KEISER e I. FAIRWEATHER. "Electron microscopical study to assess thein vitroeffects of the synthetic trioxolane OZ78 against the liver fluke,Fasciola hepatica". Parasitology 136, n.º 11 (7 de agosto de 2009): 1325–37. http://dx.doi.org/10.1017/s0031182009990643.
Texto completo da fonteRost-Roszkowska, M. M., J. Vilimová, K. Tajovský, A. Chachulska-Żymełka, A. Sosinka, M. Kszuk-Jendrysik, A. Ostróżka e F. Kaszuba. "Autophagy and Apoptosis in the Midgut Epithelium of Millipedes". Microscopy and Microanalysis 25, n.º 4 (20 de maio de 2019): 1004–16. http://dx.doi.org/10.1017/s143192761900059x.
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