Artículos de revistas sobre el tema "ABCE1 biogenesis"
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Yu, Qian, Xu Han y Da-Li Tian. "Deficiency of Functional Iron-Sulfur Domains in ABCE1 Inhibits the Proliferation and Migration of Lung Adenocarcinomas By Regulating the Biogenesis of Beta-Actin In Vitro". Cellular Physiology and Biochemistry 44, n.º 2 (2017): 554–66. http://dx.doi.org/10.1159/000485090.
Texto completoKey, Jana, Nesli Ece Sen, Aleksandar Arsović, Stella Krämer, Robert Hülse, Natasha Nadeem Khan, David Meierhofer, Suzana Gispert, Gabriele Koepf y Georg Auburger. "Systematic Surveys of Iron Homeostasis Mechanisms Reveal Ferritin Superfamily and Nucleotide Surveillance Regulation to be Modified by PINK1 Absence". Cells 9, n.º 10 (2 de octubre de 2020): 2229. http://dx.doi.org/10.3390/cells9102229.
Texto completoNürenberg-Goloub, Elina y Robert Tampé. "Ribosome recycling in mRNA translation, quality control, and homeostasis". Biological Chemistry 401, n.º 1 (18 de diciembre de 2019): 47–61. http://dx.doi.org/10.1515/hsz-2019-0279.
Texto completoYokoyama, Shinji. "ABCA1 and Biogenesis of HDL". Journal of Atherosclerosis and Thrombosis 13, n.º 1 (2006): 1–15. http://dx.doi.org/10.5551/jat.13.1.
Texto completoWang, Shuhui y Jonathan D. Smith. "ABCA1 and nascent HDL biogenesis". BioFactors 40, n.º 6 (30 de octubre de 2014): 547–54. http://dx.doi.org/10.1002/biof.1187.
Texto completoYokoyama, Shinji, Reijiro Arakawa, Cheng-ai Wu, Noriyuki Iwamoto, Rui Lu, Maki Tsujita y Sumiko Abe-Dohmae. "Calpain-mediated ABCA1 degradation: Post-translational regulation of ABCA1 for HDL biogenesis". Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids 1821, n.º 3 (marzo de 2012): 547–51. http://dx.doi.org/10.1016/j.bbalip.2011.07.017.
Texto completoWang, Jing, Qianqian Xiao, Luyun Wang, Yan Wang, Daowen Wang y Hu Ding. "Role of ABCA1 in Cardiovascular Disease". Journal of Personalized Medicine 12, n.º 6 (20 de junio de 2022): 1010. http://dx.doi.org/10.3390/jpm12061010.
Texto completoBrunham, L. R. "Intestinal ABCA1 directly contributes to HDL biogenesis in vivo". Journal of Clinical Investigation 116, n.º 4 (23 de marzo de 2006): 1052–62. http://dx.doi.org/10.1172/jci27352.
Texto completoGao, Jie, Yanni Xu, Yuan Yang, Yi Yang, Zhihui Zheng, Wei Jiang, Bin Hong, Xuguang Yan y Shuyi Si. "Identification of Upregulators of Human ATP-Binding Cassette Transporter A1 via High-Throughput Screening of a Synthetic and Natural Compound Library". Journal of Biomolecular Screening 13, n.º 7 (1 de julio de 2008): 648–56. http://dx.doi.org/10.1177/1087057108320545.
Texto completoLi, Li, Rongwen Li, Alex Zacharek, Fengjie Wang, Julie Landschoot-Ward, Michael Chopp, Jieli Chen y Xu Cui. "ABCA1/ApoE/HDL Signaling Pathway Facilitates Myelination and Oligodendrogenesis after Stroke". International Journal of Molecular Sciences 21, n.º 12 (19 de junio de 2020): 4369. http://dx.doi.org/10.3390/ijms21124369.
Texto completoKypreos, Kyriakos E. y Vassilis I. Zannis. "Pathway of biogenesis of apolipoprotein E-containing HDL in vivo with the participation of ABCA1 and LCAT". Biochemical Journal 403, n.º 2 (26 de marzo de 2007): 359–67. http://dx.doi.org/10.1042/bj20061048.
Texto completoArakawa, Reijiro, Maki Tsujita, Noriyuki Iwamoto, Chisato Ito-Ohsumi, Rui Lu, Chen-Ai Wu, Kenji Shimizu et al. "Pharmacological inhibition of ABCA1 degradation increases HDL biogenesis and exhibits antiatherogenesis". Journal of Lipid Research 50, n.º 11 (20 de mayo de 2009): 2299–305. http://dx.doi.org/10.1194/jlr.m900122-jlr200.
Texto completoGhaznavi, Habib, Ehsan Aali y Mohammad Soleiman Soltanpour. "Association Study of the ATP - Binding Cassette Transporter A1 (ABCA1) Rs2230806 Genetic Variation with Lipid Profile and Coronary Artery Disease Risk in an Iranian Population". Open Access Macedonian Journal of Medical Sciences 6, n.º 2 (11 de febrero de 2018): 274–79. http://dx.doi.org/10.3889/oamjms.2018.063.
Texto completoChen, Yu-Sheng, Hsuan-Miao Liu y Tzung-Yan Lee. "Ursodeoxycholic Acid Regulates Hepatic Energy Homeostasis and White Adipose Tissue Macrophages Polarization in Leptin-Deficiency Obese Mice". Cells 8, n.º 3 (16 de marzo de 2019): 253. http://dx.doi.org/10.3390/cells8030253.
Texto completoKovacs, Werner J., Janis E. Shackelford, Khanichi N. Tape, Michael J. Richards, Phyllis L. Faust, Steven J. Fliesler y Skaidrite K. Krisans. "Disturbed Cholesterol Homeostasis in a Peroxisome-Deficient PEX2 Knockout Mouse Model". Molecular and Cellular Biology 24, n.º 1 (1 de enero de 2004): 1–13. http://dx.doi.org/10.1128/mcb.24.1.1-13.2004.
Texto completoWagner, Brandee L., Annabel F. Valledor, Gang Shao, Chris L. Daige, Eric D. Bischoff, Mary Petrowski, Kristen Jepsen et al. "Promoter-Specific Roles for Liver X Receptor/Corepressor Complexes in the Regulation of ABCA1 and SREBP1 Gene Expression". Molecular and Cellular Biology 23, n.º 16 (15 de agosto de 2003): 5780–89. http://dx.doi.org/10.1128/mcb.23.16.5780-5789.2003.
Texto completoLake, Nicole J., Rachael L. Taylor, Hugh Trahair, K. N. Harikrishnan, Joanne E. Curran, Marcio Almeida, Hemant Kulkarni et al. "TRAK2, a novel regulator of ABCA1 expression, cholesterol efflux and HDL biogenesis". European Heart Journal 38, n.º 48 (26 de junio de 2017): 3579–87. http://dx.doi.org/10.1093/eurheartj/ehx315.
Texto completoFrancone, Omar L., Papasani V. Subbaiah, Arie van Tol, Lori Royer y Mehrdad Haghpassand. "Abnormal Phospholipid Composition Impairs HDL Biogenesis and Maturation in Mice Lacking Abca1†". Biochemistry 42, n.º 28 (julio de 2003): 8569–78. http://dx.doi.org/10.1021/bi034540v.
Texto completoHossain, Mohammad Anwar, Maki Tsujita, Frank J. Gonzalez y Shinji Yokoyama. "Effects of Fibrate Drugs on Expression of ABCA1 and HDL Biogenesis in Hepatocytes". Journal of Cardiovascular Pharmacology 51, n.º 3 (marzo de 2008): 258–66. http://dx.doi.org/10.1097/fjc.0b013e3181624b22.
Texto completoPriestley, Jessica R. C., Laura A. Adang, Sarah Drewes Williams, Uta Lichter-Konecki, Caitlin Menello, Nicole M. Engelhardt, James C. DiPerna et al. "Newborn Screening for X-Linked Adrenoleukodystrophy: Review of Data and Outcomes in Pennsylvania". International Journal of Neonatal Screening 8, n.º 2 (23 de marzo de 2022): 24. http://dx.doi.org/10.3390/ijns8020024.
Texto completoTsujita, Maki, Mohammad Anwar Hossain, Rui Lu, Tomoe Tsuboi, Kuniko Okumura-Noji y Shinji Yokoyama. "Exposure to High Glucose Concentration Decreases Cell Surface ABCA1 and HDL Biogenesis in Hepatocytes". Journal of Atherosclerosis and Thrombosis 24, n.º 11 (2017): 1132–49. http://dx.doi.org/10.5551/jat.39156.
Texto completoYamauchi, Yoshio, Shinji Yokoyama y Ta-Yuan Chang. "ABCA1-dependent sterol release: sterol molecule specificity and potential membrane domain for HDL biogenesis". Journal of Lipid Research 57, n.º 1 (24 de octubre de 2015): 77–88. http://dx.doi.org/10.1194/jlr.m063784.
Texto completoHu, Wei, Sumiko Abe-Dohmae, Maki Tsujita, Noriyuki Iwamoto, Osamu Ogikubo, Takanobu Otsuka, Yositaka Kumon y Shinji Yokoyama. "Biogenesis of HDL by SAA is dependent on ABCA1 in the liver in vivo". Journal of Lipid Research 49, n.º 2 (21 de noviembre de 2007): 386–93. http://dx.doi.org/10.1194/jlr.m700402-jlr200.
Texto completoHafiane, Anouar y Jacques Genest. "ATP binding cassette A1 (ABCA1) mediates microparticle formation during high-density lipoprotein (HDL) biogenesis". Atherosclerosis 257 (febrero de 2017): 90–99. http://dx.doi.org/10.1016/j.atherosclerosis.2017.01.013.
Texto completoZannis, Vassilis I., Angeliki Chroni y Monty Krieger. "Role of apoA-I, ABCA1, LCAT, and SR-BI in the biogenesis of HDL". Journal of Molecular Medicine 84, n.º 4 (25 de febrero de 2006): 276–94. http://dx.doi.org/10.1007/s00109-005-0030-4.
Texto completoVassilis, I., Su Shi y Fotakis Panagiotis. "Role of apolipoproteins, ABCA1 and LCAT in the biogenesis of normal and aberrant high density lipoproteins". Journal of Biomedical Research 31, n.º 6 (2017): 471. http://dx.doi.org/10.7555/jbr.31.20160082.
Texto completoLiu, Minjing, Xiaohu Mei, Haya Herscovitz y David Atkinson. "N-terminal mutation of apoA-I and interaction with ABCA1 reveal mechanisms of nascent HDL biogenesis". Journal of Lipid Research 60, n.º 1 (24 de septiembre de 2018): 44–57. http://dx.doi.org/10.1194/jlr.m084376.
Texto completoJi, Ailing, Xuebing Wang, Victoria P. Noffsinger, Drew Jennings, Maria C. de Beer, Frederick C. de Beer, Lisa R. Tannock y Nancy R. Webb. "Serum amyloid A is not incorporated into HDL during HDL biogenesis". Journal of Lipid Research 61, n.º 3 (8 de enero de 2020): 328–37. http://dx.doi.org/10.1194/jlr.ra119000329.
Texto completoHan, Yong-Hyun, Emily J. Onufer, Li-Hao Huang, Robert W. Sprung, W. Sean Davidson, Rafael S. Czepielewski, Mary Wohltmann, Mary G. Sorci-Thomas, Brad W. Warner y Gwendalyn J. Randolph. "Enterically derived high-density lipoprotein restrains liver injury through the portal vein". Science 373, n.º 6553 (22 de julio de 2021): eabe6729. http://dx.doi.org/10.1126/science.abe6729.
Texto completoDuka, Adelina, Panagiotis Fotakis, Dimitra Georgiadou, Andreas Kateifides, Kalliopi Tzavlaki, Leonard von Eckardstein, Efstratios Stratikos, Dimitris Kardassis y Vassilis I. Zannis. "ApoA-IV promotes the biogenesis of apoA-IV-containing HDL particles with the participation of ABCA1 and LCAT". Journal of Lipid Research 54, n.º 1 (6 de noviembre de 2012): 107–15. http://dx.doi.org/10.1194/jlr.m030114.
Texto completoToma, Laura, Teodora Barbălată, Gabriela M. Sanda, Loredan S. Niculescu, Anca V. Sima y Camelia S. Stancu. "CRISPR/dCas9 Transcriptional Activation of Endogenous Apolipoprotein AI and Paraoxonase 1 in Enterocytes Alleviates Endothelial Cell Dysfunction". Biomolecules 11, n.º 12 (25 de noviembre de 2021): 1769. http://dx.doi.org/10.3390/biom11121769.
Texto completoKlemp, Henry Gerd, Matthias Kettwig, Frank Streit, Jutta Gärtner, Hendrik Rosewich y Ralph Krätzner. "LC-MS Based Platform Simplifies Access to Metabolomics for Peroxisomal Disorders". Metabolites 11, n.º 6 (29 de mayo de 2021): 347. http://dx.doi.org/10.3390/metabo11060347.
Texto completoZamanian-Daryoush, Maryam, Valentin Gogonea, Anthony J. DiDonato, Jennifer A. Buffa, Ibrahim Choucair, Bruce S. Levison, Randall A. Hughes et al. "Site-specific 5-hydroxytryptophan incorporation into apolipoprotein A-I impairs cholesterol efflux activity and high-density lipoprotein biogenesis". Journal of Biological Chemistry 295, n.º 15 (25 de febrero de 2020): 4836–48. http://dx.doi.org/10.1074/jbc.ra119.012092.
Texto completoYammine, Aline, Amira Zarrouk, Thomas Nury, Anne Vejux, Norbert Latruffe, Dominique Vervandier-Fasseur, Mohammad Samadi et al. "Prevention by Dietary Polyphenols (Resveratrol, Quercetin, Apigenin) Against 7-Ketocholesterol-Induced Oxiapoptophagy in Neuronal N2a Cells: Potential Interest for the Treatment of Neurodegenerative and Age-Related Diseases". Cells 9, n.º 11 (23 de octubre de 2020): 2346. http://dx.doi.org/10.3390/cells9112346.
Texto completoZhang, Lin-Hua, Vaijinath S. Kamanna, Shobha H. Ganji, Xi-Ming Xiong y Moti L. Kashyap. "Niacin increases HDL biogenesis by enhancing DR4-dependent transcription of ABCA1 and lipidation of apolipoprotein A-I in HepG2 cells". Journal of Lipid Research 53, n.º 5 (1 de marzo de 2012): 941–50. http://dx.doi.org/10.1194/jlr.m020917.
Texto completoCorzo, Deyanira, William Gibson, Kisha Johnson, Grant Mitchell, Guy LePage, Gerald F. Cox, Robin Casey et al. "Contiguous Deletion of the X-Linked Adrenoleukodystrophy Gene (ABCD1) and DXS1357E: A Novel Neonatal Phenotype Similar to Peroxisomal Biogenesis Disorders". American Journal of Human Genetics 70, n.º 6 (junio de 2002): 1520–31. http://dx.doi.org/10.1086/340849.
Texto completoLu, Rui, Tomoe Tsuboi, Kuniko Okumura-Noji, Noriyuki Iwamoto y Shinji Yokoyama. "Caveolin-1 facilitates internalization and degradation of ABCA1 and probucol oxidative products interfere with this reaction to increase HDL biogenesis". Atherosclerosis 253 (octubre de 2016): 54–60. http://dx.doi.org/10.1016/j.atherosclerosis.2016.08.025.
Texto completoBoyd, Joseph S., Telsa M. Mittelmeier, Mary Rose Lamb y Carol L. Dieckmann. "Thioredoxin-family protein EYE2 and Ser/Thr kinase EYE3 play interdependent roles in eyespot assembly". Molecular Biology of the Cell 22, n.º 9 (mayo de 2011): 1421–29. http://dx.doi.org/10.1091/mbc.e10-11-0918.
Texto completoAbumrad, Nada A. y Nicholas O. Davidson. "Role of the Gut in Lipid Homeostasis". Physiological Reviews 92, n.º 3 (julio de 2012): 1061–85. http://dx.doi.org/10.1152/physrev.00019.2011.
Texto completoZannis, V. I. y K. E. Kypreos. "Mo-W15:8 Novel pathway of biogenesis of apoe-containing HDL with the participation of ABCA1 and LCAT: Implications for dyslipidemias and atherogenesis". Atherosclerosis Supplements 7, n.º 3 (enero de 2006): 39. http://dx.doi.org/10.1016/s1567-5688(06)80124-8.
Texto completoKypreos, Kyriakos E. "ABCA1 Promotes the de Novo Biogenesis of Apolipoprotein CIII-Containing HDL Particles in Vivo and Modulates the Severity of Apolipoprotein CIII-Induced Hypertriglyceridemia†". Biochemistry 47, n.º 39 (30 de septiembre de 2008): 10491–502. http://dx.doi.org/10.1021/bi801249c.
Texto completoSalerno, Alessandro G., Thiago Rentz, Gabriel G. Dorighello, Ana Carolina Marques, Estela Lorza-Gil, Amarylis C. B. A. Wanschel, Audrey de Moraes, Anibal E. Vercesi y Helena C. F. Oliveira. "Lack of mitochondrial NADP(H)-transhydrogenase expression in macrophages exacerbates atherosclerosis in hypercholesterolemic mice". Biochemical Journal 476, n.º 24 (20 de diciembre de 2019): 3769–89. http://dx.doi.org/10.1042/bcj20190543.
Texto completoSmirnova, Evgeniya V., Therese S. Collingwood, Catherine Bisbal, Oxana M. Tsygankova, Marina Bogush, Judy L. Meinkoth, Earl E. Henderson, Roland S. Annan y Alexander Y. Tsygankov. "TULA proteins bind to ABCE-1, a host factor of HIV-1 assembly, and inhibit HIV-1 biogenesis in a UBA-dependent fashion". Virology 372, n.º 1 (marzo de 2008): 10–23. http://dx.doi.org/10.1016/j.virol.2007.10.012.
Texto completoHall, Patricia L., Hong Li, Arthur F. Hagar, S. Caleb Jerris, Angela Wittenauer y William Wilcox. "Newborn Screening for X-Linked Adrenoleukodystrophy in Georgia: Experiences from a Pilot Study Screening of 51,081 Newborns". International Journal of Neonatal Screening 6, n.º 4 (23 de octubre de 2020): 81. http://dx.doi.org/10.3390/ijns6040081.
Texto completoHassan, Houssein Hajj, Maxime Denis, Dong-Young Donna Lee, Iulia Iatan, Dana Nyholt, Isabelle Ruel, Larbi Krimbou y Jacques Genest. "Identification of an ABCA1-dependent phospholipid-rich plasma membrane apolipoprotein A-I binding site for nascent HDL formation: implications for current models of HDL biogenesis". Journal of Lipid Research 48, n.º 11 (26 de julio de 2007): 2428–42. http://dx.doi.org/10.1194/jlr.m700206-jlr200.
Texto completoHotta, Noriko, Sumiko Abe-Dohmae, Ryo Taguchi y Shinji Yokoyama. "Preferential incorporation of shorter and less unsaturated acyl phospholipids into high density lipoprotein-like particles in the ABCA1- and ABCA7-mediated biogenesis with apoA-I". Chemistry and Physics of Lipids 187 (abril de 2015): 1–9. http://dx.doi.org/10.1016/j.chemphyslip.2015.01.005.
Texto completoPrice, Nathan L., Xinbo Zhang, Pablo Fernández-Tussy, Abhishek K. Singh, Sean A. Burnap, Noemi Rotllan, Leigh Goedeke et al. "Loss of hepatic miR-33 improves metabolic homeostasis and liver function without altering body weight or atherosclerosis". Proceedings of the National Academy of Sciences 118, n.º 5 (25 de enero de 2021): e2006478118. http://dx.doi.org/10.1073/pnas.2006478118.
Texto completoKoukos, Georgios, Angeliki Chroni, Adelina Duka, Dimitris Kardassis y Vassilis I. Zannis. "Naturally occurring and bioengineered apoA-I mutations that inhibit the conversion of discoidal to spherical HDL: the abnormal HDL phenotypes can be corrected by treatment with LCAT". Biochemical Journal 406, n.º 1 (26 de julio de 2007): 167–74. http://dx.doi.org/10.1042/bj20070296.
Texto completoBesse, Andrej, Lenka Besse, Sara C. Stolze, Amin Sobh, Esther A. Zaal, Alwin J. van der Ham, Mario Ruiz et al. "Nelfinavir Overcomes Proteasome Inhibitor Resistance in Multiple Myeloma By Modulating Membrane Lipid Bilayer Composition and Fluidity". Blood 136, Supplement 1 (5 de noviembre de 2020): 11. http://dx.doi.org/10.1182/blood-2020-136253.
Texto completoNavarro-Quiles, Carla, Eduardo Mateo-Bonmatí, Héctor Candela, Pedro Robles, Antonio Martínez-Laborda, Yolanda Fernández, Jan Šimura et al. "The Arabidopsis ATP-Binding Cassette E protein ABCE2 is a conserved component of the translation machinery". Frontiers in Plant Science 13 (17 de octubre de 2022). http://dx.doi.org/10.3389/fpls.2022.1009895.
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