Artigos de revistas sobre o tema "Immunité hybride"
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Crotty, Shane. "Hybrid immunity". Science 372, n.º 6549 (24 de junho de 2021): 1392–93. http://dx.doi.org/10.1126/science.abj2258.
Texto completo da fonteShi, Meiqing, Liping Su, Sigou Hao, Xulin Guo e Jim Xiang. "Fusion Hybrid of Dendritic Cells and Engineered Tumor Cells Expressing Interleukin-12 Induces Type 1 Immune Responses against Tumor". Tumori Journal 91, n.º 6 (novembro de 2005): 531–38. http://dx.doi.org/10.1177/030089160509100614.
Texto completo da fonteDang Caihong, 党彩虹, e 聂敏 Nie Min. "基于免疫和模拟退火混合算法的量子卫星资源调度策略". Laser & Optoelectronics Progress 61, n.º 21 (2024): 2127004. http://dx.doi.org/10.3788/lop240585.
Texto completo da fonteXiao, Wei, Binglin Chen, Jun Wang, Zhiying Zou, Chenghui Wang, Dayu Li, Jinglin Zhu, Jie Yu e Hong Yang. "Integration of mRNA and miRNA Profiling Reveals Heterosis in Oreochromis niloticus × O. aureus Hybrid Tilapia". Animals 12, n.º 5 (3 de março de 2022): 640. http://dx.doi.org/10.3390/ani12050640.
Texto completo da fonteCortes, S., A. Albuquerque-Wendt, C. Maia, M. Carvalho, I. A. Lima, L. A. R. de Freitas, W. L. C. dos-Santos e L. Campino. "Elucidating in vitro and in vivo phenotypic behaviour of L. infantum/L. major natural hybrids". Parasitology 146, n.º 5 (29 de novembro de 2018): 580–87. http://dx.doi.org/10.1017/s0031182018001993.
Texto completo da fonteLiu, Zihui, Binglin Chen, Zhiying Zou, Dayu Li, Jinglin Zhu, Jie Yu, Wei Xiao e Hong Yang. "Non-Additive and Asymmetric Allelic Expression of p38 mapk in Hybrid Tilapia (Oreochromis niloticus ♀ × O. aureus ♂)". Animals 14, n.º 2 (15 de janeiro de 2024): 266. http://dx.doi.org/10.3390/ani14020266.
Texto completo da fonteGroszmann, Michael, Rebeca Gonzalez-Bayon, Rebecca L. Lyons, Ian K. Greaves, Kemal Kazan, W. James Peacock e Elizabeth S. Dennis. "Hormone-regulated defense and stress response networks contribute to heterosis in Arabidopsis F1 hybrids". Proceedings of the National Academy of Sciences 112, n.º 46 (2 de novembro de 2015): E6397—E6406. http://dx.doi.org/10.1073/pnas.1519926112.
Texto completo da fonteAccotto, Gian Paolo, Giuseppe Nervo, Nazzareno Acciarri, Luciana Tavella, Manuela Vecchiati, Massimo Schiavi, Giovanna Mason e Anna Maria Vaira. "Field Evaluation of Tomato Hybrids Engineered with Tomato spotted wilt virus Sequences for Virus Resistance, Agronomic Performance, and Pollen-Mediated Transgene Flow". Phytopathology® 95, n.º 7 (julho de 2005): 800–807. http://dx.doi.org/10.1094/phyto-95-0800.
Texto completo da fonteTang, Jinyi, Arka Chaudhuri, Panke Qu, Yue Wu, Kristin Wavell, Marthajoy Spano, Justin Taylor, Shan-lu Liu, William Teague e Jie Sun. "Respiratory mucosal immunity against SARS-CoV-2 after vaccination and infection". Journal of Immunology 212, n.º 1_Supplement (1 de maio de 2024): 1559_5071. http://dx.doi.org/10.4049/jimmunol.212.supp.1559.5071.
Texto completo da fonteLukomets, V. M., M. V. Trunovа e Ya N. Demurin. "Modern trends in breeding and genetic improvement of sunflower varieties and hybrids at VNIIMK". Vavilov Journal of Genetics and Breeding 25, n.º 4 (10 de julho de 2021): 388–93. http://dx.doi.org/10.18699/vj21.042.
Texto completo da fonteE. A. Imelbaeva, E. A., A. Zh Gilmanov e L. M. Saptarova. "Results of assessing herd immunity to SARS-CoV-2 in medical workers". Terapevt (General Physician), n.º 10 (27 de outubro de 2023): 6–11. http://dx.doi.org/10.33920/med-12-2310-01.
Texto completo da fonteAbel, Craig A., e Melanie C. Pollan. "Field Resistance of Bacillus thuringiensis Berliner Transformed Maize to Fall Armyworm (Lepidoptera: Noctuidae) and Southwestern Corn Borer (Lepidoptera: Crambidae) Leaf Feeding". Journal of Entomological Science 39, n.º 3 (1 de julho de 2004): 325–36. http://dx.doi.org/10.18474/0749-8004-39.3.325.
Texto completo da fonteJOLY, P., V. GUESDON, E. FROMONT, S. PLENET, O. GROLET, J. F. GUEGAN, S. HURTREZ-BOUSSES, F. THOMAS e F. RENAUD. "Heterozygosity and parasite intensity: lung parasites in the water frog hybridization complex". Parasitology 135, n.º 1 (2 de outubro de 2007): 95–104. http://dx.doi.org/10.1017/s0031182007003599.
Texto completo da fonteKanokudom, Sitthichai, Jira Chansaenroj, Suvichada Assawakosri, Nungruthai Suntronwong, Ritthideach Yorsaeng, Lakkhana Wongsrisang, Ratchadawan Aeemjinda et al. "Real-World Study: Hybrid Immunity against SARS-CoV-2 Influences the Antibody Levels and Persistency Lasting More than One Year". Vaccines 11, n.º 11 (7 de novembro de 2023): 1693. http://dx.doi.org/10.3390/vaccines11111693.
Texto completo da fontePaul B. Ekpo, Ekerette E. Ekerette, e Owoidihe M. Etukudo. "Enhanced Growth, Haematological and Biochemical Performance in Hybrid Catfish of Clarias gariepinus x Clarias cavernicola". Sumerianz Journal of Scientific Research, n.º 74 (6 de dezembro de 2024): 57–65. https://doi.org/10.47752/sjsr.74.57.65.
Texto completo da fonteHablak, S. G., Ya A. Abdullaeva, L. O. Ryabovol e Ya S. Ryabovol. "Susceptibility of siberian hybrids new races of zarazhi". Faktori eksperimental'noi evolucii organizmiv 23 (9 de setembro de 2018): 154–59. http://dx.doi.org/10.7124/feeo.v23.1006.
Texto completo da fonteCoyne, Glare J., e Shawn A. Mehlenbacher. "521 PB 483 RESISTANCE TO EASTERN FILBERT BLIGHT IN CORYLUS SPECIES AND INTERSPECIFIC HYBRIDS". HortScience 29, n.º 5 (maio de 1994): 506b—506. http://dx.doi.org/10.21273/hortsci.29.5.506b.
Texto completo da fonteSizyakina, L. P., V. Ya Zakurskaya e I. I. Andreeva. "Capacities of hybrid immunity: objective realities". Immunologiya 45, n.º 3 (2024): 300–311. http://dx.doi.org/10.33029/1816-2134-2024-45-3-300-311.
Texto completo da fonteTatarnikova, V. V., V. I. Dubrovina, N. O. Kiseleva, V. A. Vishnyakov, D. D. Bryukhova, A. B. Pyatidesyatnikova, A. N. Bondaryuk e S. V. Balakhonov. "Effect of Immunity to SARS-CoV-2 Virus on Blood Cellular Composition". Epidemiology and Vaccinal Prevention 23, n.º 2 (3 de maio de 2024): 50–60. http://dx.doi.org/10.31631/2073-3046-2024-23-2-50-60.
Texto completo da fonteKodera, Sachiko, Akito Takada, Essam A. Rashed e Akimasa Hirata. "Projection of COVID-19 Positive Cases Considering Hybrid Immunity: Case Study in Tokyo". Vaccines 11, n.º 3 (13 de março de 2023): 633. http://dx.doi.org/10.3390/vaccines11030633.
Texto completo da fonteLivieratos, Achilleas, Lars Erik Schiro, Charalambos Gogos e Karolina Akinosoglou. "Durability of Adaptive Immunity in Immunocompetent and Immunocompromised Patients Across Different Respiratory Viruses: RSV, Influenza, and SARS-CoV-2". Vaccines 12, n.º 12 (22 de dezembro de 2024): 1444. https://doi.org/10.3390/vaccines12121444.
Texto completo da fonteBondarenko, S. V., S. V. Stankevych e A. V. Matsyura. "Major cucumber diseases and the crop immunity". Ukrainian Journal of Ecology 11, n.º 1 (20 de janeiro de 2021): 46–54. http://dx.doi.org/10.15421/2021_7.
Texto completo da fonteA, Bajaji. "Adjunctive and Transformed Immunity: Histiocytic & Dendritic Cell Neoplasm". Gastroenterology & Hepatology International Journal 3, n.º 1 (23 de março de 2022): 1–10. http://dx.doi.org/10.23880/ghij-16000139.
Texto completo da fonteDuché, Denis, Aurélie Frenkian, Valérie Prima e Roland Lloubès. "Release of Immunity Protein Requires Functional Endonuclease Colicin Import Machinery". Journal of Bacteriology 188, n.º 24 (29 de setembro de 2006): 8593–600. http://dx.doi.org/10.1128/jb.00941-06.
Texto completo da fonteJohnsen, Line, Gunnar Fimland, Dimitris Mantzilas e Jon Nissen-Meyer. "Structure-Function Analysis of Immunity Proteins of Pediocin-Like Bacteriocins: C-Terminal Parts of Immunity Proteins Are Involved in Specific Recognition of Cognate Bacteriocins". Applied and Environmental Microbiology 70, n.º 5 (maio de 2004): 2647–52. http://dx.doi.org/10.1128/aem.70.5.2647-2652.2004.
Texto completo da fonteSharma, Prashant, Ji Beom Shin, Bum Chul Park, Jae-Won Lee, Sang Won Byun, Na-Yoon Jang, Yu Jin Kim, Yuri Kim, Young Keun Kim e Nam-Hyuk Cho. "Application of radially grown ZnO nanowires on poly-l-lactide microfibers complexed with a tumor antigen for cancer immunotherapy". Nanoscale 11, n.º 10 (2019): 4591–600. http://dx.doi.org/10.1039/c8nr08704k.
Texto completo da fonteSobolev, Gennady Ivanovich, Vladimir Vyacheslavovich Chernyshkov e Stanislav Sergeevich Saksonov. "The assessment of field resistance to scab and winter resistance of columnar apple trees in the Samara Region". Samara Journal of Science 9, n.º 4 (30 de novembro de 2020): 153–58. http://dx.doi.org/10.17816/snv202094123.
Texto completo da fonteBygayenko, Liudmila Alexandrovna. "WILD-GROWING SPECIES OF MINT AS CARRIERS OF GENES OF RESISTANCE TO ADVERSE ENVIRONMENTAL FACTORS". Samara Journal of Science 4, n.º 2 (15 de junho de 2015): 24–30. http://dx.doi.org/10.17816/snv20152107.
Texto completo da fonteSpreco, Armin, Örjan Dahlström, Anna Jöud, Dennis Nordvall, Cecilia Fagerström, Eva Blomqvist, Fredrik Gustafsson, Jorma Hinkula, Thomas Schön e Toomas Timpka. "Effectiveness of the BNT162b2 mRNA Vaccine Compared with Hybrid Immunity in Populations Prioritized and Non-Prioritized for COVID-19 Vaccination in 2021–2022: A Naturalistic Case-Control Study in Sweden". Vaccines 10, n.º 8 (7 de agosto de 2022): 1273. http://dx.doi.org/10.3390/vaccines10081273.
Texto completo da fonteRoza, Des. "INCREASE OF IMMUNITY CANTIK HYBRID GROUPER JUVENILES BY LIPOPOLYSACCHARIDE (LPS)". Jurnal Ilmu dan Teknologi Kelautan Tropis 9, n.º 1 (2 de novembro de 2017): 161–72. http://dx.doi.org/10.29244/jitkt.v9i1.17927.
Texto completo da fonteChavda, Vivek P., Suneetha Vuppu, Toshika Mishra e Pankti Balar. "The Emergence of Hybrid Variants of SARS-CoV-2: Towards Hybrid Immunity". Vaccines 11, n.º 4 (30 de março de 2023): 764. http://dx.doi.org/10.3390/vaccines11040764.
Texto completo da fonteMiles, Andrew K., Malcolm W. Smith, Nga T. Tran, Timothy A. Shuey, Megan M. Dewdney e André Drenth. "Identification of Resistance to Citrus Black Spot Using a Novel In-field Inoculation Assay". HortScience 54, n.º 10 (outubro de 2019): 1673–81. http://dx.doi.org/10.21273/hortsci14200-19.
Texto completo da fonteBhattacharya, Madhumita, e Taraprasad Chattopadhyay. "Interference-Immunity of the Injection-Locked Hybrid Discriminator". IETE Journal of Research 40, n.º 2-3 (março de 1994): 69–73. http://dx.doi.org/10.1080/03772063.1994.11437171.
Texto completo da fonteDiego, Juan García-Bernalt, Gagandeep Singh, Sonia Jangra, Kim Handrejk, Manon Laporte, Lauren A. Chang, Sara S. El Zahed et al. "Breakthrough infections by SARS-CoV-2 variants boost cross-reactive hybrid immune responses in mRNA-vaccinated Golden Syrian hamsters". PLOS Pathogens 20, n.º 1 (10 de janeiro de 2024): e1011805. http://dx.doi.org/10.1371/journal.ppat.1011805.
Texto completo da fonteDarrieux, M., E. N. Miyaji, D. M. Ferreira, L. M. Lopes, A. P. Y. Lopes, B. Ren, D. E. Briles, S. K. Hollingshead e L. C. C. Leite. "Fusion Proteins Containing Family 1 and Family 2 PspA Fragments Elicit Protection against Streptococcus pneumoniae That Correlates with Antibody-Mediated Enhancement of Complement Deposition". Infection and Immunity 75, n.º 12 (8 de outubro de 2007): 5930–38. http://dx.doi.org/10.1128/iai.00940-07.
Texto completo da fonteKozlovskiy, Vladimir, Pavel Nikolaev, Alexander Podgorniy, Alexey Kritskiy e Luiza Shamina. "Experimental studies of a hybrid car and electric car interference immunity". E3S Web of Conferences 221 (2020): 01001. http://dx.doi.org/10.1051/e3sconf/202022101001.
Texto completo da fonteKurmangaliyeva, Saulesh S., Akzhan M. Madenbayeva, Saltanat T. Urazayeva, Yerlan Sh Bazargaliyev, Khatimya I. Kudabayeva e Kairat B. Kurmangaliyev. "Comparative Analysis of Vaccine-induced Immunity and Natural Immunity in Post-COVID Patients". West Kazakhstan Medical Journal 66, n.º 4 (20 de dezembro de 2024): 387–400. https://doi.org/10.18502/wkmj.v66i4.17770.
Texto completo da fonteGuo, Wei, Yi Guo, Shun Tang, Huayi Qu e Hui Zhao. "Dendritic Cell-Ewing’s Sarcoma Cell Hybrids Enhance Antitumor Immunity". Clinical Orthopaedics and Related Research 466, n.º 9 (19 de junho de 2008): 2176–83. http://dx.doi.org/10.1007/s11999-008-0348-7.
Texto completo da fonteRodriguez Velásquez, Sabina, Loza Estifanos Biru, Sandrine Marie Hakiza, Muaamar Al-Gobari, Isotta Triulzi, Jyoti Dalal, Camille Beatrice Gaza Varela, Sara Botero Mesa e Olivia Keiser. "Long-term levels of protection of different types of immunity against the Omicron variant: a rapid literature review". Swiss Medical Weekly 154, n.º 5 (6 de maio de 2024): 3732. http://dx.doi.org/10.57187/s.3732.
Texto completo da fonteLivieratos, Achilleas, Charalambos Gogos e Karolina Akinosoglou. "Impact of Prior COVID-19 Immunization and/or Prior Infection on Immune Responses and Clinical Outcomes". Viruses 16, n.º 5 (26 de abril de 2024): 685. http://dx.doi.org/10.3390/v16050685.
Texto completo da fonteEngalycheva, I. A., Е. G. Kozar e A. A. Ushakov. "Selection for immunity in FSBSI FSVC – history and modernity". Vegetable crops of Russia, n.º 4 (9 de julho de 2024): 5–14. http://dx.doi.org/10.18619/2072-9146-2024-4-5-14.
Texto completo da fonteDe Gee, A. L., R. F. Levine e J. M. Mansfield. "Genetics of resistance to the African trypanosomes. VI. Heredity of resistance and variable surface glycoprotein-specific immune responses." Journal of Immunology 140, n.º 1 (1 de janeiro de 1988): 283–88. http://dx.doi.org/10.4049/jimmunol.140.1.283.
Texto completo da fonteRussell, Rodney S. "Hybrid Immunity Against Severe Acute Respiratory Syndrome Coronavirus 2". Viral Immunology 35, n.º 6 (1 de julho de 2022): 391. http://dx.doi.org/10.1089/vim.2022.0116.
Texto completo da fonteShervani, Zameer, Deepali Bhardwaj, Roma Nikhat, Aiman Ibbrahim, Sadia Hasan, Intazam Khan, Umair Yaqub Qazi et al. "Serosurvey of Haryana and Odisha: COVID-19 Hybrid Immunity". European Journal of Medical and Health Sciences 4, n.º 2 (17 de março de 2022): 27–32. http://dx.doi.org/10.24018/ejmed.2022.4.2.1173.
Texto completo da fonteJi, Hongshan, e Zhiguo Zhou. "A ‘Hybrid’ Radiotherapy Regimen Designed for Immunomodulation: Combining High-Dose Radiotherapy with Low-Dose Radiotherapy". Cancers 14, n.º 14 (19 de julho de 2022): 3505. http://dx.doi.org/10.3390/cancers14143505.
Texto completo da fonteYang, Li, Pengtao Liu, Xuncheng Wang, Aolin Jia, Diqiu Ren, Yaru Tang, Yaqi Tang, Xing Wang Deng e Guangming He. "A central circadian oscillator confers defense heterosis in hybrids without growth vigor costs". Nature Communications 12, n.º 1 (19 de abril de 2021). http://dx.doi.org/10.1038/s41467-021-22268-z.
Texto completo da fonteCalvo-Baltanás, Vanesa, Jinge Wang e Eunyoung Chae. "Hybrid Incompatibility of the Plant Immune System: An Opposite Force to Heterosis Equilibrating Hybrid Performances". Frontiers in Plant Science 11 (16 de fevereiro de 2021). http://dx.doi.org/10.3389/fpls.2020.576796.
Texto completo da fonteDai, Xiaoguang, Zhiwen Liu, Xiaoyi Zhao, Kangli Guo, Xiaokang Ding, Fu‐Jian Xu e Nana Zhao. "NIR‐II‐Responsive Hybrid System Achieves Cascade‐Augmented Antitumor Immunity via Genetic Engineering of Both Bacteria and Tumor Cells". Advanced Materials, 26 de agosto de 2024. http://dx.doi.org/10.1002/adma.202407927.
Texto completo da fonte& et al., Simakove. "RESULTS OF NEW TRENDS OF POTATO BREEDING PROGRAMS DEVELOPED IN RUSSSIA". IRAQI JOURNAL OF AGRICULTURAL SCIENCES 49, n.º 4 (1 de setembro de 2018). http://dx.doi.org/10.36103/ijas.v49i4.67.
Texto completo da fonteRothoeft, T., C. Maier, A. Talarico, A. Hoffmann, A. Schlegtendal, B. Lange, A. Petersmann et al. "Natural and hybrid immunity after SARS-CoV-2 infection in children and adolescents". Infection, 18 de março de 2024. http://dx.doi.org/10.1007/s15010-024-02225-w.
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