Artículos de revistas sobre el tema "LDLrKO"
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Dupasquier, Chantal M. C., Elena Dibrov, Annette L. Kneesh, Paul K. M. Cheung, Kaitlin G. Y. Lee, Helen K. Alexander, Behzad K. Yeganeh, Mohammed H. Moghadasian y Grant N. Pierce. "Dietary flaxseed inhibits atherosclerosis in the LDL receptor-deficient mouse in part through antiproliferative and anti-inflammatory actions". American Journal of Physiology-Heart and Circulatory Physiology 293, n.º 4 (octubre de 2007): H2394—H2402. http://dx.doi.org/10.1152/ajpheart.01104.2006.
Texto completoForrest, Lolita M., Elena Boudyguina, Martha D. Wilson y John S. Parks. "Echium oil reduces atherosclerosis in apoB100-only LDLrKO mice". Atherosclerosis 220, n.º 1 (enero de 2012): 118–21. http://dx.doi.org/10.1016/j.atherosclerosis.2011.10.025.
Texto completoCao, Qiang, Xin Cui, Rui Wu, Lin Zha, Xianfeng Wang, John S. Parks, Liqing Yu, Hang Shi y Bingzhong Xue. "Myeloid Deletion of α1AMPK Exacerbates Atherosclerosis in LDL Receptor Knockout (LDLRKO) Mice". Diabetes 65, n.º 6 (28 de enero de 2016): 1565–76. http://dx.doi.org/10.2337/db15-0917.
Texto completoBi, Xin, Xuewei Zhu, MyNgan Duong, Elena Y. Boudyguina, Martha D. Wilson, Abraham K. Gebre y John S. Parks. "Liver ABCA1 Deletion in LDLrKO Mice Does Not Impair Macrophage Reverse Cholesterol Transport or Exacerbate Atherogenesis". Arteriosclerosis, Thrombosis, and Vascular Biology 33, n.º 10 (octubre de 2013): 2288–96. http://dx.doi.org/10.1161/atvbaha.112.301110.
Texto completoBaumgartner, Roland, Felipe B. Casagrande, Randi B. Mikkelsen, Martin Berg, Konstantinos A. Polyzos, Maria J. Forteza, Aastha Arora, Thue W. Schwartz, Siv A. Hjorth y Daniel F. J. Ketelhuth. "Disruption of GPR35 Signaling in Bone Marrow-Derived Cells Does Not Influence Vascular Inflammation and Atherosclerosis in Hyperlipidemic Mice". Metabolites 11, n.º 7 (23 de junio de 2021): 411. http://dx.doi.org/10.3390/metabo11070411.
Texto completoSchaftenaar, Frank, Jacob Amersfoort, Hidde Douna, Mara Kröner, Bram Slütter, Ilze Bot, Gijs van Puijvelde y Johan Kuiper. "Vaccination with ApoB100 Derived HLA-A2 Restricted CD8 T Cell Epitopes Did Not Reduce Atherosclerosis in Male LDLrKO hApoB100tg HLA-A2tg Mice". Atherosclerosis Supplements 32 (junio de 2018): 100–101. http://dx.doi.org/10.1016/j.atherosclerosissup.2018.04.307.
Texto completoJasiecki, Jacek, Monika Targońska, Anna Janaszak-Jasiecka, Magdalena Chmara, Monika Żuk, Leszek Kalinowski, Krzysztof Waleron y Bartosz Wasąg. "Novel Tools for Comprehensive Functional Analysis of LDLR (Low-Density Lipoprotein Receptor) Variants". International Journal of Molecular Sciences 24, n.º 14 (14 de julio de 2023): 11435. http://dx.doi.org/10.3390/ijms241411435.
Texto completoStrøm, Thea Bismo, Katrine Bjune, Luís Teixeira da Costa y Trond P. Leren. "Strategies to prevent cleavage of the linker region between ligand-binding repeats 4 and 5 of the LDL receptor". Human Molecular Genetics 28, n.º 22 (23 de julio de 2019): 3734–41. http://dx.doi.org/10.1093/hmg/ddz164.
Texto completoPersson, Lena, Cecilia Gälman, Bo Angelin y Mats Rudling. "Importance of Proprotein Convertase Subtilisin/Kexin Type 9 in the Hormonal and Dietary Regulation of Rat Liver Low-Density Lipoprotein Receptors". Endocrinology 150, n.º 3 (13 de noviembre de 2008): 1140–46. http://dx.doi.org/10.1210/en.2008-1281.
Texto completoKim, Meewhi y Ilya Bezprozvanny. "Differences in Recycling of Apolipoprotein E3 and E4—LDL Receptor Complexes—A Mechanistic Hypothesis". International Journal of Molecular Sciences 22, n.º 9 (10 de mayo de 2021): 5030. http://dx.doi.org/10.3390/ijms22095030.
Texto completoKang, Richard S. y Heike Fölsch. "ARH cooperates with AP-1B in the exocytosis of LDLR in polarized epithelial cells". Journal of Cell Biology 193, n.º 1 (28 de marzo de 2011): 51–60. http://dx.doi.org/10.1083/jcb.201012121.
Texto completoLin, Jean Z., Alexandro J. Martagón, Willa A. Hsueh, John D. Baxter, Jan-Åke Gustafsson, Paul Webb y Kevin J. Phillips. "Thyroid Hormone Receptor Agonists Reduce Serum Cholesterol Independent of the LDL Receptor". Endocrinology 153, n.º 12 (1 de diciembre de 2012): 6136–44. http://dx.doi.org/10.1210/en.2011-2081.
Texto completoKonecsni, Tuende, Ursula Berka, Angela Pickl-Herk, Gerhard Bilek, Abdul Ghafoor Khan, Leszek Gajdzig, Renate Fuchs y Dieter Blaas. "Low pH-Triggered Beta-Propeller Switch of the Low-Density Lipoprotein Receptor Assists Rhinovirus Infection". Journal of Virology 83, n.º 21 (12 de agosto de 2009): 10922–30. http://dx.doi.org/10.1128/jvi.01312-09.
Texto completoDuff, Christopher J., Martin J. Scott, Ian T. Kirby, Sue E. Hutchinson, Steve L. Martin y Nigel M. Hooper. "Antibody-mediated disruption of the interaction between PCSK9 and the low-density lipoprotein receptor". Biochemical Journal 419, n.º 3 (14 de abril de 2009): 577–84. http://dx.doi.org/10.1042/bj20082407.
Texto completoSanguino Otero, Javier, Carmen Rodríguez-Jiménez, Jose Mostaza Prieto, Carlos Rodríguez-Antolín, Ana Carazo Alvarez, Francisco Arrieta Blanco y Sonia Rodríguez-Nóvoa. "Functional Analysis of 3′UTR Variants at the LDLR and PCSK9 Genes in Patients with Familial Hypercholesterolemia". Human Mutation 2024 (8 de febrero de 2024): 1–15. http://dx.doi.org/10.1155/2024/9964734.
Texto completoRogers, Justin T. y Edwin J. Weeber. "Reelin and apoE actions on signal transduction, synaptic function and memory formation". Neuron Glia Biology 4, n.º 3 (agosto de 2008): 259–70. http://dx.doi.org/10.1017/s1740925x09990184.
Texto completoStrøm, Thea Bismo, Katrine Bjune y Trond P. Leren. "Bone morphogenetic protein 1 cleaves the linker region between ligand-binding repeats 4 and 5 of the LDL receptor and makes the LDL receptor non-functional". Human Molecular Genetics 29, n.º 8 (10 de octubre de 2019): 1229–38. http://dx.doi.org/10.1093/hmg/ddz238.
Texto completoLiou, Je-Wen, Pei-Yi Chen, Wan-Yun Gao y Jui-Hung Yen. "Natural phytochemicals as small-molecule proprotein convertase subtilisin/kexin type 9 inhibitors". Tzu Chi Medical Journal 36, n.º 4 (5 de septiembre de 2024): 360–69. http://dx.doi.org/10.4103/tcmj.tcmj_46_24.
Texto completoVargas-Alarcon, Gilberto, Oscar Perez-Mendez, Julian Ramirez-Bello, Rosalinda Posadas-Sanchez, Hector Gonzalez-Pacheco, Galileo Escobedo, Betzabe Nieto-Lima, Elizabeth Carreon-Torres y Jose Manuel Fragoso. "The c.*52 A/G and c.*773 A/G Genetic Variants in the UTR′3 of the LDLR Gene Are Associated with the Risk of Acute Coronary Syndrome and Lower Plasma HDL-Cholesterol Concentration". Biomolecules 10, n.º 10 (29 de septiembre de 2020): 1381. http://dx.doi.org/10.3390/biom10101381.
Texto completoSuzuki, Yasuhiro, Nobuo Nagai, Kasumi Yamakawa, Yoshinori Muranaka, Kazuya Hokamura y Kazuo Umemura. "Recombinant Tissue-Type Plasminogen Activator Transiently Enhances Blood–Brain Barrier Permeability During Cerebral Ischemia through Vascular Endothelial Growth Factor-Mediated Endothelial Endocytosis in Mice". Journal of Cerebral Blood Flow & Metabolism 35, n.º 12 (29 de julio de 2015): 2021–31. http://dx.doi.org/10.1038/jcbfm.2015.167.
Texto completoCao, Yunpeng, Haili Wang, Ping Jin, Fei Ma y Xue Zhou. "Identification and Characterization of the Very-Low-Density Lipoprotein Receptor Gene from Branchiostoma belcheri: Insights into the Origin and Evolution of the Low-Density Lipoprotein Receptor Gene Family". Animals 13, n.º 13 (4 de julio de 2023): 2193. http://dx.doi.org/10.3390/ani13132193.
Texto completoSasaki, Minoru, Yu Shimoyama, Yoshitoyo Kodama y Taichi Ishikawa. "Tryptophanyl tRNA Synthetase from Human Macrophages Infected by Porphyromonas gingivalis Induces a Proinflammatory Response Associated with Atherosclerosis". Pathogens 10, n.º 12 (20 de diciembre de 2021): 1648. http://dx.doi.org/10.3390/pathogens10121648.
Texto completoYe, Huadan, Qianlei Zhao, Yi Huang, Lingyan Wang, Haibo Liu, Chunming Wang, Dongjun Dai, Leiting Xu, Meng Ye y Shiwei Duan. "Meta-Analysis of Low Density Lipoprotein Receptor (LDLR) rs2228671 Polymorphism and Coronary Heart Disease". BioMed Research International 2014 (2014): 1–6. http://dx.doi.org/10.1155/2014/564940.
Texto completoMayne, Janice, Thilina Dewpura, Angela Raymond, Lise Bernier, Marion Cousins, Teik Chye Ooi, Jean Davignon, Nabil G. Seidah, Majambu Mbikay y Michel Chrétien. "Novel Loss-of-Function PCSK9 Variant Is Associated with Low Plasma LDL Cholesterol in a French-Canadian Family and with Impaired Processing and Secretion in Cell Culture". Clinical Chemistry 57, n.º 10 (1 de octubre de 2011): 1415–23. http://dx.doi.org/10.1373/clinchem.2011.165191.
Texto completoAli, Akhtar, Ros Whittall, Masroor Ellahi Babar, Tanveer Hussain y Steve E. Humphries. "Genetics of LDLR Gene in Pakistani Hypercholesterolemia Families". International Journal of Pharma Medicine and Biological Sciences 8, n.º 4 (octubre de 2019): 143–46. http://dx.doi.org/10.18178/ijpmbs.8.4.143-146.
Texto completoSilvestri, Laura, Flavia Guillem, Alessia Pagani, Antonella Nai, Claire Oudin, Muriel Silva, Fabienne Toutain et al. "Molecular mechanisms of the defective hepcidin inhibition in TMPRSS6 mutations associated with iron-refractory iron deficiency anemia". Blood 113, n.º 22 (28 de mayo de 2009): 5605–8. http://dx.doi.org/10.1182/blood-2008-12-195594.
Texto completoLarrea-Sebal, Asier, Asier Benito-Vicente, José A. Fernandez-Higuero, Shifa Jebari-Benslaiman, Unai Galicia-Garcia, Kepa B. Uribe, Ana Cenarro et al. "MLb-LDLr". JACC: Basic to Translational Science 6, n.º 11 (noviembre de 2021): 815–27. http://dx.doi.org/10.1016/j.jacbts.2021.08.009.
Texto completoBashir, Nabil. "Effects of Hinc II Polymorphism in the LDL Receptor Gene on Serum Lipid Levels of Jordanian Individuals with High Risk for Coronary Heart Disease". American Journal of Laboratory Medicine 9, n.º 5 (16 de diciembre de 2024): 58–63. https://doi.org/10.11648/j.ajlm.20240905.12.
Texto completoPirmoradi, Leila, Nayer Seyfizadeh, Saeid Ghavami, Amir A. Zeki y Shahla Shojaei. "Targeting cholesterol metabolism in glioblastoma: a new therapeutic approach in cancer therapy". Journal of Investigative Medicine 67, n.º 4 (14 de febrero de 2019): 715–19. http://dx.doi.org/10.1136/jim-2018-000962.
Texto completoBovenschen, Niels, Koen Mertens, Lihui Hu, Louis M. Havekes y Bart J. M. van Vlijmen. "LDL receptor cooperates with LDL receptor–related protein in regulating plasma levels of coagulation factor VIII in vivo". Blood 106, n.º 3 (1 de agosto de 2005): 906–12. http://dx.doi.org/10.1182/blood-2004-11-4230.
Texto completoKang, Yuan-Lin, John Yochem, Leslie Bell, Erika B. Sorensen, Lihsia Chen y Sean D. Conner. "Caenorhabditis elegans reveals a FxNPxY-independent low-density lipoprotein receptor internalization mechanism mediated by epsin1". Molecular Biology of the Cell 24, n.º 3 (febrero de 2013): 308–18. http://dx.doi.org/10.1091/mbc.e12-02-0163.
Texto completoHuang, Yong, Ke Ning, Wen-Wen Li, Ge Lin, Cui-Lan Hou, Ming-Jie Wang y Yi-Chun Zhu. "Hydrogen sulfide accumulates LDL receptor precursor via downregulating PCSK9 in HepG2 cells". American Journal of Physiology-Cell Physiology 319, n.º 6 (1 de diciembre de 2020): C1082—C1096. http://dx.doi.org/10.1152/ajpcell.00244.2019.
Texto completoGuo, Tao, Liang Zhang, Dong Cheng, Tao Liu, Liguo An, Wei-Ping Li y Cong Zhang. "Low-density lipoprotein receptor affects the fertility of female mice". Reproduction, Fertility and Development 27, n.º 8 (2015): 1222. http://dx.doi.org/10.1071/rd13436.
Texto completoNgai, Ying Fai, Whitney L. Quong, Melissa B. Glier, Maria M. Glavas, Sandra L. Babich, Sheila M. Innis, Timothy J. Kieffer y William T. Gibson. "Ldlr−/− Mice Display Decreased Susceptibility to Western-Type Diet-Induced Obesity Due to Increased Thermogenesis". Endocrinology 151, n.º 11 (29 de septiembre de 2010): 5226–36. http://dx.doi.org/10.1210/en.2010-0496.
Texto completoGurzeler, Erika, Anna-Kaisa Ruotsalainen, Anssi Laine, Teemu Valkama, Sanna Kettunen, Markku Laakso y Seppo Ylä-Herttuala. "SUR1-E1506K mutation impairs glucose tolerance and promotes vulnerable atherosclerotic plaque phenotype in hypercholesterolemic mice". PLOS ONE 16, n.º 11 (12 de noviembre de 2021): e0258408. http://dx.doi.org/10.1371/journal.pone.0258408.
Texto completoJONG, Miek C., Ko WILLEMS Van DIJK, Vivian E. H. DAHLMANS, Hans Van Der BOOM, Kunisha KOBAYASHI, Kazuhito OKA, Gerard SIEST, Lawrence CHAN, Marten H. HOFKER y Louis M. HAVEKES. "Reversal of hyperlipidaemia in apolipoprotein C1 transgenic mice by adenovirus-mediated gene delivery of the low-density-lipoprotein receptor, but not by the very-low-density-lipoprotein receptor". Biochemical Journal 338, n.º 2 (22 de febrero de 1999): 281–87. http://dx.doi.org/10.1042/bj3380281.
Texto completoEslami, Seyyed Majid, Shekoufeh Nikfar, Maryam Ghasemi y Mohammad Abdollahi. "Does Evolocumab, as a PCSK9 Inhibitor, Ameliorate the Lipid Profile in Familial Hypercholesterolemia Patients? A Meta-Analysis of Randomized Controlled Trials". Journal of Pharmacy & Pharmaceutical Sciences 20 (11 de abril de 2017): 81. http://dx.doi.org/10.18433/j36c8n.
Texto completoMertens, Koen, Niels Bovenschen, Louis M. Havekes y Bart J. M. van Vlijmen. "Role of Low Density Lipoprotein Receptor in the Clearance of Coagulation Factor VIII In Vivo." Blood 104, n.º 11 (16 de noviembre de 2004): 1925. http://dx.doi.org/10.1182/blood.v104.11.1925.1925.
Texto completoSrivastava, Rai Ajit K. "A Review of Progress on Targeting LDL Receptor-Dependent and -Independent Pathways for the Treatment of Hypercholesterolemia, a Major Risk Factor of ASCVD". Cells 12, n.º 12 (16 de junio de 2023): 1648. http://dx.doi.org/10.3390/cells12121648.
Texto completoDandan, Mohamad, Julia Han, Sabrina Mann, Rachael Kim, Hussein Mohammed, Edna Nyangau y Marc Hellerstein. "Turnover Rates of the Low-Density Lipoprotein Receptor and PCSK9: Added Dimension to the Cholesterol Homeostasis Model". Arteriosclerosis, Thrombosis, and Vascular Biology 41, n.º 12 (diciembre de 2021): 2866–76. http://dx.doi.org/10.1161/atvbaha.121.316764.
Texto completoChang, Wei-Chun, Hsiao-Ching Wang, Wei-Chung Cheng, Juan-Cheng Yang, Wei-Min Chung, Yen-Pin Ho, Lumin Chen, Yao-Ching Hung y Wen-Lung Ma. "LDLR-mediated lipidome–transcriptome reprogramming in cisplatin insensitivity". Endocrine-Related Cancer 27, n.º 2 (febrero de 2020): 81–95. http://dx.doi.org/10.1530/erc-19-0095.
Texto completoAl-Allaf, Faisal A., Zainularifeen Abduljaleel, Mohiuddin M. Taher, Ahmed A. H. Abdellatif, Mohammad Athar, Neda M. Bogari, Mohammed N. Al-Ahdal et al. "Molecular Dynamics Simulation Reveals Exposed Residues in the Ligand-Binding Domain of the Low-Density Lipoprotein Receptor that Interacts with Vesicular Stomatitis Virus-G Envelope". Viruses 11, n.º 11 (15 de noviembre de 2019): 1063. http://dx.doi.org/10.3390/v11111063.
Texto completoCroston, Glenn E., Loribelle B. Milan, Keith B. Marschke, Melvin Reichman y Michael R. Briggs. "Androgen Receptor-Mediated Antagonism of Estrogen-Dependent Low Density Lipoprotein Receptor Transcription in Cultured Hepatocytes". Endocrinology 138, n.º 9 (1 de septiembre de 1997): 3779–86. http://dx.doi.org/10.1210/endo.138.9.5404.
Texto completoBordicchia, Marica, Francesco Spannella, Gianna Ferretti, Tiziana Bacchetti, Arianna Vignini, Chiara Di Pentima, Laura Mazzanti y Riccardo Sarzani. "PCSK9 is Expressed in Human Visceral Adipose Tissue and Regulated by Insulin and Cardiac Natriuretic Peptides". International Journal of Molecular Sciences 20, n.º 2 (9 de enero de 2019): 245. http://dx.doi.org/10.3390/ijms20020245.
Texto completoRuotsalainen, Anna-Kaisa, Jari P. Lappalainen, Emmi Heiskanen, Mari Merentie, Virve Sihvola, Juha Näpänkangas, Line Lottonen-Raikaslehto et al. "Nuclear factor E2-related factor 2 deficiency impairs atherosclerotic lesion development but promotes features of plaque instability in hypercholesterolaemic mice". Cardiovascular Research 115, n.º 1 (18 de junio de 2018): 243–54. http://dx.doi.org/10.1093/cvr/cvy143.
Texto completoRanheim, Trine, Mari Ann Kulseth, Knut Erik Berge y Trond Paul Leren. "Model System for Phenotypic Characterization of Sequence Variations in the LDL Receptor Gene". Clinical Chemistry 52, n.º 8 (1 de agosto de 2006): 1469–79. http://dx.doi.org/10.1373/clinchem.2006.068627.
Texto completoHan, Maggie, Sarada Charugundla, Zeneng Wang, Satyesh SINHA, Zhiqiang Zhou, Hooman Allayee, Stanley Hazen, Aldons Lusis y Diana Shih. "Abstract 4141953: Genetic deficiency of flavin containing monooxygenase 3 ( Fmo3 ) lowers circulating trimethylamine N-oxide level and protects against atherosclerosis". Circulation 150, Suppl_1 (12 de noviembre de 2024). http://dx.doi.org/10.1161/circ.150.suppl_1.4141953.
Texto completoHartman, Helen B., Douglas C. Harnish y Mark J. Evans. "Abstract 5521: Activation of Farnesoid X Receptor (FXR) Reduces Atherosclerosis in LDLRKO and apoEKO Mice". Circulation 118, suppl_18 (28 de octubre de 2008). http://dx.doi.org/10.1161/circ.118.suppl_18.s_566-c.
Texto completoLe May, Cedric, Jean Mathieu Berger, Bruno Pillot, Xavier Prieur, Eric Letessier, Xavier Collet, Anne Lespine, Bertrand Cariou y Philippe Costet. "Abstract 22: LDLR Promotes and PCSK9 Inhibits LDL-Derived Transintestinal Cholesterol Excretion". Arteriosclerosis, Thrombosis, and Vascular Biology 32, suppl_1 (mayo de 2012). http://dx.doi.org/10.1161/atvb.32.suppl_1.a22.
Texto completoBi, Xin, Xuewei Zhu, Chuan Gao, Qiang Cao, Mingxia Liu, Swapnil Shewale, Elena Boudyguina, Martha Wilson y John Parks. "Abstract 49: Myeloid Cell Specific ABCA1 Deletion Does Not Significantly Accelerate Atherogenesis in LDL Receptor Knockout Mice". Arteriosclerosis, Thrombosis, and Vascular Biology 33, suppl_1 (mayo de 2013). http://dx.doi.org/10.1161/atvb.33.suppl_1.a49.
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