Triacetylcellulose (BioDeep_00000702664)

   


代谢物信息卡片


CELLULOSE TRIACETATE

化学式: C40H54O27 (966.2852334)
中文名称: 三乙酸纤维素
谱图信息: 最多检出来源 () 0%

分子结构信息

SMILES: CC(=O)OCC1C(C(C(C(O1)OC2C(OC(C(C2OC(=O)C)OC(=O)C)OC(=O)C)COC(=O)C)OC(=O)C)OC(=O)C)OC3C(C(C(C(O3)COC(=O)C)OC(=O)C)OC(=O)C)OC(=O)C
InChI: InChI=1S/C40H54O27/c1-15(41)52-12-26-29(55-18(4)44)32(56-19(5)45)36(60-23(9)49)39(64-26)67-31-28(14-54-17(3)43)65-40(37(61-24(10)50)34(31)58-21(7)47)66-30-27(13-53-16(2)42)63-38(62-25(11)51)35(59-22(8)48)33(30)57-20(6)46/h26-40H,12-14H2,1-11H3/t26-,27-,28-,29-,30-,31-,32+,33+,34+,35-,36-,37-,38-,39+,40+/m1/s1

描述信息

D019995 - Laboratory Chemicals > D007202 - Indicators and Reagents
D001697 - Biomedical and Dental Materials
It is used as a food additive .

同义名列表

2 个代谢物同义名

CELLULOSE TRIACETATE; Triacetylcellulose



数据库引用编号

4 个数据库交叉引用编号

分类词条

相关代谢途径

Reactome(0)

BioCyc(0)

PlantCyc(0)

代谢反应

0 个相关的代谢反应过程信息。

Reactome(0)

BioCyc(0)

WikiPathways(0)

Plant Reactome(0)

INOH(0)

PlantCyc(0)

COVID-19 Disease Map(0)

PathBank(0)

PharmGKB(0)

0 个相关的物种来源信息

在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:

  • PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
  • NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
  • Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
  • Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。

点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。



文献列表

  • Kamya Kameshwar, Matthew J Damasiewicz, Kevan R Polkinghorne, Peter G Kerr. A pilot study comparing the efficiency of a novel asymmetric cellulose triacetate (ATA) dialyser membrane (Solacea-190H) to a standard high flux polysulfone dialyser membrane (FX-80) in the setting of extended hours haemodialysis. Nephrology (Carlton, Vic.). 2022 Jun; 27(6):494-500. doi: 10.1111/nep.14030. [PMID: 35195932]
  • Ákos Pethő, Dorothea Piecha, Tamás Mészáros, Rudolf Urbanics, Christoph Moore, Bernard Canaud, László Rosivall, Tom Eirik Mollnes, Sonja Steppan, Gábor Szénási, János Szebeni, László Dézsi. A porcine model of hemodialyzer reactions: roles of complement activation and rinsing back of extracorporeal blood. Renal failure. 2021 Dec; 43(1):1609-1620. doi: 10.1080/0886022x.2021.2007127. [PMID: 34882053]
  • Shingo Watanabe, Masanori Morita, Noriyuki Hirabayashi, Tadashi Yoshida. Milky fluid elicited by cellulose triacetate membrane dialyzer, hyperlipidemia, and elevated C-reactive protein. Renal failure. 2020 Nov; 42(1):302-303. doi: 10.1080/0886022x.2020.1744450. [PMID: 32312120]
  • Raquel Ojeda, Marta Arias-Guillén, Miquel Gómez, Manel Vera, Néstor Fontseré, Lida Rodas, Xavier Filella, Juan Carlos Reverter, Francisco Lozano, Neus Villamor, Francisco Maduell. Study of Biocompatibility of Membranes in Online Hemodiafiltration. Blood purification. 2020; 49(4):400-408. doi: 10.1159/000504954. [PMID: 31865336]
  • A R Firooz, M Movahedi, H Sabzyan. A new selective optode for the determination of iron(III) based on the immobilization of morin on triacetylcellulose: A combined experimental and computational study. Materials science & engineering. C, Materials for biological applications. 2019 Jan; 94(?):410-416. doi: 10.1016/j.msec.2018.09.031. [PMID: 30423724]
  • Andreas Körtge, Thomas Wild, Benjamin Heskamp, Manuel Folk, Steffen Mitzner, Reinhold Wasserkort. Thrombogenicity and long-term cytokine removal capability of a novel asymmetric triacetate membrane hemofilter. Journal of artificial organs : the official journal of the Japanese Society for Artificial Organs. 2018 Dec; 21(4):435-442. doi: 10.1007/s10047-018-1062-1. [PMID: 30039457]
  • Tae Ryung Kim, Mahsa Hadidi, Seyed Pouria Motevalian, Takashi Sunohara, Andrew L Zydney. Effects of Plasma Proteins on the Transport and Surface Characteristics of Polysulfone/Polyethersulfone and Asymmetric Cellulose Triacetate High Flux Dialyzers. Artificial organs. 2018 Nov; 42(11):1070-1077. doi: 10.1111/aor.13154. [PMID: 29774568]
  • Maurizio Ronci, Lidia Leporini, Paolo Felaco, Vittorio Sirolli, Luisa Pieroni, Viviana Greco, Antonio Aceto, Andrea Urbani, Mario Bonomini. Proteomic Characterization of a New asymmetric Cellulose Triacetate Membrane for Hemodialysis. Proteomics. Clinical applications. 2018 11; 12(6):e1700140. doi: 10.1002/prca.201700140. [PMID: 29808585]
  • Klaus Kratochwill. The Extracorporeal Proteome-The Significance of Selective Protein Removal During Dialysis Therapy. Proteomics. Clinical applications. 2018 11; 12(6):e1800078. doi: 10.1002/prca.201800078. [PMID: 30138539]
  • Román-Hidalgo Cristina, Martín-Valero María Jesús, Fernández-Torres Rut, Bello-López Miguel Ángel. Use of Polymer Inclusion Membranes (PIMs) as support for electromembrane extraction of non-steroidal anti-inflammatory drugs and highly polar acidic drugs. Talanta. 2018 Mar; 179(?):601-607. doi: 10.1016/j.talanta.2017.11.066. [PMID: 29310282]
  • Francisco Maduell, Raquel Ojeda, Marta Arias-Guillén, Néstor Fontseré, Manel Vera, Lida Rodas, Miquel Gómez, Karen P Huablocho, Fanny Esquivel, Paola D Mori, Valentina Hoffmann, Jessica Ugalde, Nayra Rico. A new generation of cellulose triacetate suitable for online haemodiafiltration. Nefrologia. 2018 Mar; 38(2):161-168. doi: 10.1016/j.nefro.2017.03.011. [PMID: 29198593]
  • Raquel Esteras, Juan Martín-Navarro, Gabriel Ledesma, Raúl Fernández-Prado, Gilda Carreño, Melissa Cintra, Ignacio Cidraque, Ignacio Sanz, Blanca Tarragón, Simona Alexandru, Mónica Milla, Elena Astudillo, Emilio Sánchez, Sebastian Mas, Rafael Díaz Tejeiro, Alberto Ortiz, Rafael Sánchez, Emilio González-Parra. Incidence of Hypersensitivity Reactions During Hemodialysis. Kidney & blood pressure research. 2018; 43(5):1472-1478. doi: 10.1159/000493662. [PMID: 30235456]
  • Hayata Maeda, Narumi Tomisawa, Yoichi Jimbo, Norikazu Harii, Kenichi Matsuda. Efficacy of hemofiltration with PEPA membrane for IL-6 removal in a rat sepsis model. Journal of artificial organs : the official journal of the Japanese Society for Artificial Organs. 2017 Dec; 20(4):335-340. doi: 10.1007/s10047-017-0991-4. [PMID: 28894963]
  • Carlo Donadio, Danika Tognotti, Laura Caponi, Aldo Paolicchi. β-trace protein is highly removed during haemodialysis with high-flux and super high-flux membranes. BMC nephrology. 2017 02; 18(1):68. doi: 10.1186/s12882-017-0489-6. [PMID: 28219328]
  • Norihisa Yasuda, Koji Goto, Shunsuke Yamamoto, Seigo Hidaka, Satoshi Hagiwara, Takayuki Noguchi. Removal of 17 cytokines, HMGB1, and albumin by continuous hemofiltration using a cellulose triacetate membrane: an ex vivo study. The Journal of surgical research. 2012 Jul; 176(1):226-31. doi: 10.1016/j.jss.2011.07.047. [PMID: 22099603]
  • . [Major results of research and development of heterogenous biocatalysts for regenerated water clearing from harmful admixture]. Aviakosmicheskaia i ekologicheskaia meditsina = Aerospace and environmental medicine. 2012 Jul; 46(4):17-21. doi: . [PMID: 23116037]
  • John A Tomenson. Update of a cohort mortality study of workers exposed to methylene chloride employed at a plant producing cellulose triacetate film base. International archives of occupational and environmental health. 2011 Dec; 84(8):889-97. doi: 10.1007/s00420-011-0621-z. [PMID: 21327981]
  • Masanori Abe, Kazuyoshi Okada, Kazuya Ikeda, Shiro Matsumoto, Masayoshi Soma, Koichi Matsumoto. Characterization of insulin adsorption behavior of dialyzer membranes used in hemodialysis. Artificial organs. 2011 Apr; 35(4):398-403. doi: 10.1111/j.1525-1594.2010.01112.x. [PMID: 21314833]
  • Takashi Sunohara, Toshiaki Masuda. Cellulose triacetate as a high-performance membrane. Contributions to nephrology. 2011; 173(?):156-163. doi: 10.1159/000329055. [PMID: 21865788]
  • Shuangxin Liu, Wei Shi, Xinling Liang, Yong Su, Yongzhen Liang, Bin Zhang, Zhiming Ye, Lixia Xu, Yunfeng Xia, Chaoshen He, Jianchao Ma, Yiming Tao, Hen Ye, Hui Li. Cellulose triacetate dialyzer reduces platelet loss during continuous veno-venous hemofiltration. Blood purification. 2010; 29(4):375-82. doi: 10.1159/000314649. [PMID: 20484898]
  • M Abe, K Okada, T Maruyama, A Inoshita, K Ikeda, E Uto, F Kikuchi, K Matsumoto. Clinical evaluation of plasma insulin and C-peptide levels with 3 different high-flux dialyzers in diabetic patients on hemodialysis. The International journal of artificial organs. 2008 Oct; 31(10):898-904. doi: 10.1177/039139880803101006. [PMID: 19009508]
  • M Abe, F Kikuchi, K Kaizu, K Matsumoto. The influence of hemodialysis membranes on the plasma insulin level of diabetic patients on maintenance hemodialysis. Clinical nephrology. 2008 May; 69(5):354-60. doi: 10.5414/cnp69354. [PMID: 18538098]
  • Kazutaka Murakami, Atsushi Ohashi, Hideo Hori, Makoto Hibiya, Yumiko Shoji, Miyuki Kunisaki, Miho Akita, Akira Yagi, Kazuhiro Sugiyama, Sachiko Shimozato, Kazuhiro Ito, Hiroki Takahashi, Kazuo Takahashi, Kouichirou Yamamoto, Masami Kasugai, Nahoko Kawamura, Shigeru Nakai, Midori Hasegawa, Makoto Tomita, Kunihiro Nabeshima, Yoshiyuki Hiki, Satoshi Sugiyama. Accumulation of bisphenol A in hemodialysis patients. Blood purification. 2007; 25(3):290-4. doi: 10.1159/000104869. [PMID: 17622711]
  • Warangkana Pichaiwong, Asada Leelahavanichkul, Somchai Eiam-ong. Efficacy of cellulose triacetate dialyzer and polysulfone synthetic hemofilter for continuous venovenous hemofiltration in acute renal failure. Journal of the Medical Association of Thailand = Chotmaihet thangphaet. 2006 Aug; 89 Suppl 2(?):S65-72. doi: NULL. [PMID: 17044456]
  • Nattha Klansuwan, Chaveewan Ratanajamit, Srirat Kasiwong, Adisorn Wangsiripaisan. Clearance of vancomycin during high-efficiency hemodialysis. Journal of the Medical Association of Thailand = Chotmaihet thangphaet. 2006 Jul; 89(7):986-91. doi: NULL. [PMID: 16881431]
  • V Bordoni, I Bolgan, A Brendolan, C Crepaldi, F Gastaldon, V D'intini, L Pilotto, P Inguaggiato, M Bonello, E Galloni, P Everard, R Bellomo, C Ronco. Caspase-3 and -8 activation and cytokine removal with a novel cellulose triacetate super-permeable membrane in an in vitro sepsis model. The International journal of artificial organs. 2003 Oct; 26(10):897-905. doi: 10.1177/039139880302601005. [PMID: 14636005]
  • Donald Richardson, Elizabeth J Lindley, Cherry Bartlett, Eric J Will. A randomized, controlled study of the consequences of hemodialysis membrane composition on erythropoietic response. American journal of kidney diseases : the official journal of the National Kidney Foundation. 2003 Sep; 42(3):551-60. doi: 10.1016/s0272-6386(03)00788-1. [PMID: 12955684]
  • N A Mason, B L Neudeck, L S Welage, J A Patel, R D Swartz. Comparison of 3 vancomycin dosage regimens during hemodialysis with cellulose triacetate dialyzers: post-dialysis versus intradialytic administration. Clinical nephrology. 2003 Aug; 60(2):96-104. doi: 10.5414/cnp60096. [PMID: 12940611]
  • Takahiro Kuragano, Tsutomu Kuno, Yoshiko Takahashi, Chii Yamamoto, Yuji Nagura, Susumu Takahashi, Katsuo Kanmatsuse. Comparison of the effects of cellulose triacetate and polysulfone membrane on GPIIb/IIIa and platelet activation. Blood purification. 2003; 21(2):176-82. doi: 10.1159/000069157. [PMID: 12601261]
  • Sabine Schmaldienst, André Oberpichler, Harald Tschesche, Walter H Hörl. Angiogenin: a novel inhibitor of neutrophil lactoferrin release during extracorporeal circulation. Kidney & blood pressure research. 2003; 26(2):107-12. doi: 10.1159/000070992. [PMID: 12771535]
  • Richard A Ward, Rosemary Ouseph, Kenneth R McLeish. Effects of high-flux hemodialysis on oxidant stress. Kidney international. 2003 Jan; 63(1):353-9. doi: 10.1046/j.1523-1755.2003.00741.x. [PMID: 12472803]
  • Raymond H Colton, Ina Pahl, Liana E Ottaviano, Travis Bodeutsch, Frank Meyeroltmanns. Study of protein adsorption effects on crossflow filtration using BSA and milk protein. PDA journal of pharmaceutical science and technology. 2002 Jan; 56(1):20-30. doi: NULL. [PMID: 11865780]
  • H Kanda, K Kubo, K Hamasaki, Y Kanda, A Nakao, T Kitamura, T Fujita, K Yamamoto, T Mimura. Influence of various hemodialysis membranes on the plasma (1-->3)-beta-D-glucan level. Kidney international. 2001 Jul; 60(1):319-23. doi: 10.1046/j.1523-1755.2001.00802.x. [PMID: 11422767]
  • L Lepri, L Boddi, M D Bubba, A Cincinelli. Reversed-phase planar chromatography of some enantiomeric amino acids and oxazolidinones. Biomedical chromatography : BMC. 2001 May; 15(3):196-201. doi: 10.1002/bmc.61. [PMID: 11391676]
  • L Lucchi, S Bergamini, B Botti, R Rapanà, A Ciuffreda, P Ruggiero, M Ballestri, A Tomasi, A Albertazzi. Influence of different hemodialysis membranes on red blood cell susceptibility to oxidative stress. Artificial organs. 2000 Jan; 24(1):1-6. doi: 10.1046/j.1525-1594.2000.06432.x. [PMID: 10677150]
  • C Ronco, A Brendolan, P Everard, M Irone, M Ballestri, G Cappelli, P Inguaggiato, R Bellomo. Cellulose triacetate: another membrane for continuous renal replacement therapy. Journal of nephrology. 1999 Jul; 12(4):241-7. doi: NULL. [PMID: 10493567]
  • E Lynge. Mortality of workers exposed to methylene chloride employed at a plant producing cellulose triacetate film base. Occupational and environmental medicine. 1999 Mar; 56(3):215. doi: 10.1136/oem.56.3.215a. [PMID: 10448332]
  • L W Henderson. Hemofiltration and the middle molecule. Blood purification. 1999; 17(4):175-7. doi: 10.1159/000014392. [PMID: 10494018]
  • A Fujimori, H Naito, T Miyazaki. Adsorption of complement, cytokines, and proteins by different dialysis membrane materials: evaluation by confocal laser scanning fluorescence microscopy. Artificial organs. 1998 Dec; 22(12):1014-7. doi: 10.1046/j.1525-1594.1998.06083.x. [PMID: 9876092]
  • K J Berg, B Rolfsen, G Stake. Iodixanol is readily eliminated by hemodialysis. Acta radiologica (Stockholm, Sweden : 1987). 1998 Jul; 39(4):372-4. doi: 10.1080/02841859809172447. [PMID: 9685821]
  • S M Morti, A L Zydney. Protein-membrane interactions during hemodialysis: effects on solute transport. ASAIO journal (American Society for Artificial Internal Organs : 1992). 1998 Jul; 44(4):319-26. doi: 10.1097/00002480-199807000-00015. [PMID: 9682960]
  • D Frenchie, B Bastani. Significant removal of phenytoin during high flux dialysis with cellulose triacetate dialyzer. Nephrology, dialysis, transplantation : official publication of the European Dialysis and Transplant Association - European Renal Association. 1998 Mar; 13(3):817-8. doi: 10.1093/oxfordjournals.ndt.a027878. [PMID: 9550689]
  • M D Whorton, J Amsel, J Mandel. Cohort mortality study of prostate cancer among chemical workers. American journal of industrial medicine. 1998 Mar; 33(3):293-6. doi: 10.1002/(sici)1097-0274(199803)33:3<293::aid-ajim11>3.0.co;2-v. [PMID: 9481428]
  • C S Bouman, R W van Olden, C P Stoutenbeek. Cytokine filtration and adsorption during pre- and postdilution hemofiltration in four different membranes. Blood purification. 1998; 16(5):261-8. doi: 10.1159/000014343. [PMID: 9917534]
  • P DeFranco, J Farrell, M Gellens, B Bastani. Serum beta 2-microglobulin levels in patients chronically dialyzed with CA-210 versus CT-190 dialysis membranes. American journal of nephrology. 1998; 18(1):16-20. doi: 10.1159/000013299. [PMID: 9481434]
  • B L Jaber, V S Balakrishnan, M N Cendoroglo, M C Perianayagam, A J King, B J Pereira. Modulation of neutrophil apoptosis by uremic plasma during hemodialysis. Blood purification. 1998; 16(6):325-35. doi: 10.1159/000014352. [PMID: 10343079]
  • M K Scott, B A Mueller, W R Clark. Vancomycin mass transfer characteristics of high-flux cellulosic dialysers. Nephrology, dialysis, transplantation : official publication of the European Dialysis and Transplant Association - European Renal Association. 1997 Dec; 12(12):2647-53. doi: 10.1093/ndt/12.12.2647. [PMID: 9430866]
  • M P Grooteman, M J Nubé, M R Daha, J Van Limbeek, M van Deuren, M Schoorl, P M Bet, A J Van Houte. Cytokine profiles during clinical high-flux dialysis: no evidence for cytokine generation by circulating monocytes. Journal of the American Society of Nephrology : JASN. 1997 Nov; 8(11):1745-54. doi: 10.1681/asn.v8111745. [PMID: 9355078]
  • J A Tomenson, S M Bonner, C G Heijne, D G Farrar, T F Cummings. Mortality of workers exposed to methylene chloride employed at a plant producing cellulose triacetate film base. Occupational and environmental medicine. 1997 Jul; 54(7):470-6. doi: 10.1136/oem.54.7.470. [PMID: 9282122]
  • J Farrell, B Bastani. The effect of dialysis membrane on serum beta 2-microglobulin (beta 2M) in chronic haemodialysis patients. Nephrology, dialysis, transplantation : official publication of the European Dialysis and Transplant Association - European Renal Association. 1997 Apr; 12(4):856. doi: 10.1093/ndt/12.4.856. [PMID: 9141041]
  • M K Scott, W L Macias, M A Kraus, W R Clark, M A Carfagna, B A Mueller. Effects of dialysis membrane on intradialytic vancomycin administration. Pharmacotherapy. 1997 Mar; 17(2):256-62. doi: NULL. [PMID: 9085316]
  • B J Pereira, S Sundaram, T W Barrett, N K Butt, R Porat, A J King, C A Dinarello. Transfer of cytokine-inducing bacterial products across hemodialyzer membranes in the presence of plasma or whole blood. Clinical nephrology. 1996 Dec; 46(6):394-401. doi: NULL. [PMID: 8982556]
  • J L Mege, C Capo, R Purgus, M Olmer. Monocyte production of transforming growth factor beta in long-term hemodialysis: modulation by hemodialysis membranes. American journal of kidney diseases : the official journal of the National Kidney Foundation. 1996 Sep; 28(3):395-9. doi: 10.1016/s0272-6386(96)90497-7. [PMID: 8804238]
  • L B De Sanctis, S Stefoni, G Cianciolo, L Colì, A Buscaroli, G Feliciangeli, L C Borgnino, M Bonetti, M C Gregorini, P De Giovanni, R Buttazzi. Effect of different dialysis membranes on platelet function. A tool for biocompatibility evaluation. The International journal of artificial organs. 1996 Jul; 19(7):404-10. doi: 10.1177/039139889601900705. [PMID: 8841854]
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  • L S Welage, N A Mason, E J Hoffman, R M Odeh, J Dombrouski, J A Patel, R D Swartz. Influence of cellulose triacetate hemodialyzers on vancomycin pharmacokinetics. Journal of the American Society of Nephrology : JASN. 1995 Oct; 6(4):1284-90. doi: 10.1681/asn.v641284. [PMID: 8589298]
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  • M P Grooteman, M J Nubé, J van Limbeek, A J van Houte, M R Daha, J A van Geelen. Biocompatibility and performance of a modified cellulosic and a synthetic high flux dialyzer. A randomized crossover comparison between cellulose triacetate and polysulphon. ASAIO journal (American Society for Artificial Internal Organs : 1992). 1995 Apr; 41(2):215-20. doi: . [PMID: 7640431]
  • A Fontanellas, J A Herrero, M J Moran, F Coronel, P Sepulveda, A Barrientos, R Enriquez De Salamanca. Efficiency of three different hemodialysis membranes for plasma porphyrin removal. American journal of kidney diseases : the official journal of the National Kidney Foundation. 1995 Jan; 25(1):30-3. doi: 10.1016/0272-6386(95)90621-5. [PMID: 7810529]
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  • C A DeSoi, D F Sahm, J G Umans. Vancomycin elimination during high-flux hemodialysis: kinetic model and comparison of four membranes. American journal of kidney diseases : the official journal of the National Kidney Foundation. 1992 Oct; 20(4):354-60. doi: 10.1016/s0272-6386(12)70298-6. [PMID: 1415203]
  • A Naitoh, T Tatsuguchi, M Okada, T Ohmura, K Sakai. Removal of beta-2-microglobulin by diffusion alone is feasible using highly permeable dialysis membranes. ASAIO transactions. 1988 Jul; 34(3):630-4. doi: NULL. [PMID: 3058183]
  • H Sato, T Kidaka. Characteristics of the cellulose triacetate membrane for hemofiltration. The International journal of artificial organs. 1983 Nov; 6(6):289-94. doi: 10.1177/039139888300600603. [PMID: 6668091]
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