Journal of Jilin University(Medicine Edition) ›› 2023, Vol. 49 ›› Issue (4): 1076-1082.doi: 10.13481/j.1671-587X.20230432
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Received:2022-06-30
Online:2023-07-28
Published:2023-07-26
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| 1 | GUPTA A, LUTSENKO S. Human copper transporters: mechanism, role in human diseases and therapeutic potential[J]. Future Med Chem,2009,1(6): 1125-1142. |
| 2 | VAN DEURSEN J M. The role of senescent cells in ageing[J]. Nature, 2014, 509(7501): 439-446. |
| 3 | VALKO M, JOMOVA K, RHODES C J, et al. Redox- and non-redox-metal-induced formation of free radicals and their role in human disease[J]. Arch Toxicol, 2016, 90(1): 1-37. |
| 4 | LI H X, FAN R C, LI L B, et al. Identification and characterization of a novel copper transporter gene family TaCT1 in common wheat[J]. Plant Cell Environ, 2014, 37(7): 1561-1573. |
| 5 | JUNG H I, GAYOMBA S R, YAN J P, et al. Brachypodium distachyon as a model system for studies of copper transport in cereal crops[J]. Front Plant Sci, 2014, 5: 236. |
| 6 | TADINI-BUONINSEGNI F, SMEAZZETTO S. Mechanisms of charge transfer in human copper ATPases ATP7A and ATP7B[J]. IUBMB Life, 2017, 69(4): 218-225. |
| 7 | YU C H, DOLGOVA N V, DMITRIEV O Y. Dynamics of the metal binding domains and regulation of the human copper transporters ATP7B and ATP7A[J]. IUBMB Life, 2017, 69(4): 226-235. |
| 8 | LUTSENKO S. Dynamic and cell-specific transport networks for intracellular copper ions[J]. J Cell Sci, 2021, 134(21): jcs240523. |
| 9 | CHEN J, JIANG Y H, SHI H, et al. The molecular mechanisms of copper metabolism and its roles in human diseases[J]. Pflugers Arch, 2020, 472(10): 1415-1429. |
| 10 | CULOTTA V C, KLOMP L W J, STRAIN J, et al. The copper chaperone for superoxide dismutase[J]. J Biol Chem, 1997, 272(38): 23469-23472. |
| 11 | DANCIS A, HAILE D, YUAN D S, et al. The Saccharomyces cerevisiae copper transport protein (Ctr1p). Biochemical characterization, regulation by copper, and physiologic role in copper uptake[J]. J Biol Chem, 1994, 269(41): 25660-25667. |
| 12 | ZHOU B, GITSCHIER J. hCTR1: a human gene for copper uptake identified by complementation in yeast[J]. Proc Natl Acad Sci U S A, 1997, 94(14): 7481-7486. |
| 13 | LARSON C A, ADAMS P L, BLAIR B G, et al. The role of the methionines and histidines in the transmembrane domain of mammalian copper transporter 1 in the cellular accumulation of cisplatin[J]. Mol Pharmacol, 2010, 78(3): 333-339. |
| 14 | BOSSAK K, DREW S C, STEFANIAK E, et al. The Cu(Ⅱ) affinity of the N-terminus of human copper transporter CTR1: comparison of human and mouse sequences[J]. J Inorg Biochem, 2018, 182: 230-237. |
| 15 | REN F F, LOGEMAN B L, ZHANG X H, et al. X-ray structures of the high-affinity copper transporter Ctr1[J]. Nat Commun, 2019, 10(1): 1386. |
| 16 | NOSE Y, KIM B E, THIELE D J. Ctr1 drives intestinal copper absorption and is essential for growth, iron metabolism, and neonatal cardiac function[J]. Cell Metab, 2006, 4(3): 235-244. |
| 17 | WANG Y F, HODGKINSON V, ZHU S, et al. Advances in the understanding of mammalian copper transporters[J]. Adv Nutr, 2011, 2(2): 129-137. |
| 18 | HARTWIG C, ZLATIC S A, WALLIN M, et al. Trafficking mechanisms of P-type ATPase copper transporters[J]. Curr Opin Cell Biol, 2019, 59: 24-33. |
| 19 | GUTHRIE L M, SOMA S, YUAN S, et al. Elesclomol alleviates Menkes pathology and mortality by escorting Cu to cuproenzymes in mice[J]. Science, 2020, 368(6491): 620-625. |
| 20 | SHRIBMAN S, POUJOIS A, BANDMANN O, et al. Wilson’s disease: update on pathogenesis, biomarkers and treatments[J]. J Neurol Neurosurg Psychiatry, 2021, 92(10): 1053-1061. |
| 21 | ZHANG Z B, SERRANO-NEGRÓN J E, MARTÍNEZ J A, et al. Dynamic function of DPMS is essential for angiogenesis and cancer progression[J]. Adv Exp Med Biol, 2018, 1112: 223-244. |
| 22 | MATSON DZEBO M, BLOCKHUYS S, VALENZUELA S, et al. Copper chaperone Atox1 interacts with cell cycle proteins[J]. Comput Struct Biotechnol J, 2018, 16: 443-449. |
| 23 | KIM D W, SHIN M J, CHOI Y J, et al. Tat-ATOX1 inhibits inflammatory responses via regulation of MAPK and NF-κB pathways[J]. BMB Rep, 2018, 51(12): 654-659. |
| 24 | EIDE D J. The molecular biology of metal ion transport in Saccharomyces cerevisiae[J]. Annu Rev Nutr, 1998, 18: 441-469. |
| 25 | ILYECHOVA E Y, BONALDI E, ORLOV I A, et al. CRISP-R/Cas9 mediated deletion of copper transport genes CTR1 and DMT1 in NSCLC cell line H1299. biological and pharmacological consequences[J]. Cells, 2019, 8(4): E322. |
| 26 | STEFANIAK E, PŁONKA D, DREW S C, et al. The N-terminal 14-mer model peptide of human Ctr1 can collect Cu(Ⅱ) from albumin. Implications for copper uptake by Ctr1[J]. Metallomics, 2018, 10(12): 1723-1727. |
| 27 | ISHIHARA K, KAWASHITA E, SHIMIZU R, et al. Copper accumulation in the brain causes the elevation of oxidative stress and less anxious behavior in Ts1Cje mice, a model of Down syndrome[J]. Free Radic Biol Med, 2019, 134: 248-259. |
| 28 | HORDYJEWSKA A, POPIOŁEK Ł, KOCOT J. The many “faces” of copper in medicine and treatment[J]. Biometals, 2014, 27(4): 611-621. |
| 29 | HORN N, WITTUNG-STAFSHEDE P. ATP7A-regulated enzyme metalation and trafficking in the menkes disease puzzle[J].Biomedicines,2021,9(4): 391. |
| 30 | BARNES N, BARTEE M Y, BRAITERMAN L, et al. Cell-specific trafficking suggests a new role for renal ATP7B in the intracellular copper storage[J]. Traffic, 2009, 10(6): 767-779. |
| 31 | LINDER M C. Copper homeostasis in mammals, with emphasis on secretion and excretion. A review[J]. Int J Mol Sci, 2020, 21(14): E4932. |
| 32 | MASALDAN S, CLATWORTHY S A S, GAMELL C,et al. Iron accumulation in senescent cells is coupled with impaired ferritinophagy and inhibition of ferroptosis[J]. Redox Biol, 2018, 14: 100-115. |
| 33 | MATOS L, GOUVEIA A M, ALMEIDA H. Resveratrol attenuates copper-induced senescence by improving cellular proteostasis[J]. Oxid Med Cell Longev, 2017, 2017: 3793817. |
| 34 | MASALDAN S, CLATWORTHY S A S, GAMELL C,et al. Copper accumulation in senescent cells: Interplay between copper transporters and impaired autophagy[J]. Redox Biol, 2018, 16: 322-331. |
| 35 | KUO Y M, ZHOU B, COSCO D, et al. The copper transporter CTR1 provides an essential function in mammalian embryonic development[J]. Proc Natl Acad Sci U S A, 2001, 98(12): 6836-6841. |
| 36 | COBINE P A, BRADY D C. Cuproptosis: cellular and molecular mechanisms underlying copper-induced cell death[J]. Mol Cell, 2022, 82(10): 1786-1787. |
| 37 |
ZHONG L, DONG A J, FENG Y, et al. Alteration of metal elements in radiation injury: radiation-induced copper accumulation aggravates intestinal damage[J]. Dose Response,2020,18(1).DOI:10.1177/1559325820904547 .
doi: 10.1177/1559325820904547 |
| 38 | FENG C Z, MA F, HU C H, et al. SOX9/miR-130a/CTR1 axis modulates DDP-resistance of cervical cancer cell[J]. Cell Cycle, 2018, 17(4): 448-458. |
| 39 | MARQUES C M S, NUNES E A, LAGO L, et al. Generation of Advanced Glycation End-Products (AGEs) by glycoxidation mediated by copper and ROS in a human serum albumin (HSA) model peptide: reaction mechanism and damage in motor neuron cells[J]. Mutat Res Genet Toxicol Environ Mutagen, 2017, 824: 42-51. |
| 40 | BALSANO C, PORCU C, SIDERI S. Is copper a new target to counteract the progression of chronic diseases?[J]. Metallomics, 2018, 10(12): 1712-1722. |
| 41 | SHAHID M, POURRUT B, DUMAT C, et al. Heavy-metal-induced reactive oxygen species: phytotoxicity and physicochemical changes in plants[J]. Rev Environ Contam Toxicol, 2014, 232: 1-44. |
| 42 | THEOPHANIDES T, ANASTASSOPOULOU J. The effects of metal ion contaminants on the double stranded DNA helix and diseases[J]. J Environ Sci Health A Tox Hazard Subst Environ Eng,2017,52(10): 1030-1040. |
| 43 | 廖 月, 何毅怀, 罗亚文. 氧化应激在急性肝损伤中的作用[J].临床肝胆病杂志, 2022,38(10):2402-2407. |
| 44 | BHATTACHARJEE A, CHAKRABORTY K, SHUKLA A. Cellular copper homeostasis: current concepts on its interplay with glutathione homeostasis and its implication in physiology and human diseases[J]. Metallomics, 2017, 9(10): 1376-1388. |
| 45 | GINOTRA Y P, RAMTEKE S N, WALKE G R,et al. Histidine availability is decisive in ROS-mediated cytotoxicity of copper complexes of Aβ1-16 peptide[J]. Free Radic Res, 2016, 50(4): 405-413. |
| 46 | UPADHYAY S, TORRES G, LIN X R. Laccases involved in 1, 8-dihydroxynaphthalene melanin biosynthesis in Aspergillus fumigatus are regulated by developmental factors and copper homeostasis[J]. Eukaryot Cell, 2013, 12(12): 1641-1652. |
| 47 | STAFFORD S L, BOKIL N J, ACHARD M E, et al. Metal ions in macrophage antimicrobial pathways: emerging roles for zinc and copper[J]. Biosci Rep, 2013, 33(4): e00049. |
| 48 | LUCA A D, BARILE A, ARCIELLO M, et al. Copper homeostasis as target of both consolidated and innovative strategies of anti-tumor therapy[J]. J Trace Elem Med Biol, 2019, 55: 204-213. |
| 49 | PRASAD S, GUPTA S C, TYAGI A K. Reactive oxygen species (ROS) and cancer: role of antioxidative nutraceuticals[J]. Cancer Lett, 2017, 387: 95-105. |
| 50 | TSVETKOV P, COY S, PETROVA B, et al. Copper induces cell death by targeting lipoylated TCA cycle proteins[J]. Science, 2022, 375(6586): 1254-1261. |
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