[1] T. Ikegami, K. Shirabe, T. Yoshizumi, S. Aishima, Y.A. Taketomi, Y. Soejima, H. Uchiyama, H. Kayashima, T. Toshima, Y. Maehara, Primary graft dysfunction after living donor liver transplantation is characterized by delayed functional hyperbilirubinemia, Am. J. Transplant. 12(2012) 1886-1897. [2] C. Rochon, A. Kardashian, B. Mahadevappa, A.E. Yildirim, S. Sevmis, G. Moray, M. Haberal, Liver graft failure and hyperbilirubinemia in liver transplantation recipients after Clostridium difficile infection, Transplant. Proc. 43(2011) 3819-3823. [3] B. Davies, J. Cohen, Endotoxin removal devices for the treatment of sepsis and septic shock, Lancet Infect. Dis. 11(2011) 65-71. [4] A.S. Morozov, M.N. Kopitsyna, I.V. Bessonov, N.V. Karelina, A.V. Nuzhdina, I.Yu. Sarkisov, L.A. Pavlova, M.P. Tsyurupa, Z.K. Blinnikova, V.A. Davankov, A selective sorbent for removing bacterial endotoxins from blood, Russ. J. Phys. Chem. A 90(12) (2016) 2465-2470. [5] S. Klammt, J. Stange, S.R. Mitzner, P. Peszynski, E. Peters, S. Liebe, Extracorporeal liver support by recirculating albumin dialysis:Analysing the effect of the first clinically used generation of the MAR system, Liver 22(Suppl. 2) (2002) 30-34. [6] I. Ledebo, Development of hemodiafiltration therapy-A historical perspective, Blood Purif. 35(Suppl. 1) (2013) 6-10. [7] B. Stegmayr, W. Ramlow, R.A. Balogun, Beyond dialysis:current and emerging blood purification techniques, Semin. Dial. 25(2012) 207-213. [8] G.L. Adani, D. Lorenzin, G. Currò, M. Sainz-Barriga, C. Comuzzi, V. Bresadola, C. Avellini, U. Baccarani, Selective bilirubin removal by plasma treatment with Plasorba BR-350 for early cholestatic graft dysfunction, Transplant. Proc. 39(2007) 1904-1906. [9] Z. Huang, S. Wang, W. Su, J. Liu, Removal of humoral mediators and the effect on the survival of septic patients by hemoperfusion with neutral microporous resin column, Ther. Apher. Dial. 14(6) (2010) 596-602. [10] E. Klein, Affinity membranes:A 10-year review, J. Membr. Sci. 179(2000) 1-27. [11] S.-Y. Suen, Y.-C. Liu, C.-S. Chang, Exploiting immobilized metal affinity membranes for the isolation or purification of therapeutically relevant species, J. Chromatogr. B 797(2003) 305-319. [12] Z. Chen, M. Deng, Y. Chen, G. He, M. Wu, J. Wang, Preparation and performance of cellulose acetate/polyethyleneimine blend microfiltration membranes and their applications, J. Membr. Sci. 235(2004) 73-86. [13] J. Ju, G. He, Z. Duan, W. Zhao, Y. Liu, L. Zhang, Y. Li, Improvement of bilirubin adsorption capacity of cellulose acetate/polyethyleneimine membrane using sodium deoxycholate, Biochem. Eng. J. 79(2013) 144-152. [14] L. Zhang, G. Jin, Novel method for bilirubin removal from human plasma within modified polytetrafluoroethylene capillary, React. Funct. Polym. 66(2006) 1106-1117. [15] G. Bayramoglu, E. Yalcın, M.Y. Arıca, Characterization of polyethylenimine grafted and Cibacron Blue F3GA immobilized poly(hydroxyethylmethacrylate-coglycydylmethacrylate) membranes and application to bilirubin removal from human serum, Colloids Surf. A 264(2005) 195-202. [16] W. Shi, F. Zhang, G. Zhang, D. Ge, Q. Zhang, Adsorption of bilirubin on poly-L-lysine containing nylon membranes:Applications in affinity chromatography, Polym. Int. 54(2005) 790-795. [17] L. Chen, S. Xu, J. Li, Recent advances in molecular imprinting technology:Current status, challenges and highlighted applications, Chem. Soc. Rev. 40(2011) 2922-2942. [18] M.J. Syu, J.H. Deng, Y.M. Nian, Towards bilirubin imprinted poly (methacrylic acidco-ethylene glycol dimethylacrylate) for the specific binding of α-bilirubin, Anal. Chim. Acta 504(2004) 167-177. [19] M.J. Syu, Y.M. Nian, Y.S. Chang, X.Z. Lin, S.C. Shiesh, T.C. Zhou, Ionic effect on the binding of bilirubin to the imprinted poly(methacrylic acid-co-ethylene glycol dimethylacrylate), J. Chromatogr. A 1122(2006) 54-62. [20] M.J. Syu, Y.M. Nian, An allosteric model for the binding of bilirubin to the bilirubin imprinted poly (methacrylic acid-co-ethylene glycol dimethylacrylate), Anal. Chim. Acta 539(2005) 97-106. [21] C.Y. Huang, M.J. Syu, Y.S. Chang, C.H. Chang, T.C. Chou, B.D. Liu, A portable potentiostat for the bilirubin-specific sensor prepared from molecular imprinting, Biosens. Bioelectron. 22(2007) 1694-1699. [22] G. Baydemir, M. Andac, N. Bereli, R. Say, A. Denzili, Selective removal of bilirubin from human plasma with bilirubin-imprinted particles, Ind. Eng. Chem. Res. 46(2007) 2843-2852. [23] G. Baydemir, N. Bereli, M. Andac, R. Say, I.Y. Galaey, A. Denizli, Bilirubin recognition via molecularly imprinted supermacroporous cryogels, Colloids Surf. B 68(2009) 33-38. [24] G. Baydemir, N. Bereli, M. Andac, R. Say, I.Y. Galaey, A. Denizli, Supermacroporous poly(hydroxyethyl methacrylate) based cryogel with embedded bilirubin imprinted particles, React. Funct. Polym. 69(2009) 36-42. [25] B.R. Muller, Effect of particle size and surface area on the adsorption of albuminbonded bilirubin on activated carbon, Carbon 48(2010) 3607-3615. [26] L. Guo, L. Zhang, J. Zhang, J. Zhou, Q. He, S. Zeng, X. Cui, J. Shi, Hollow mesoporous carbon spheres-An excellent bilirubin adsorbent, Chem. Commun. 40(2009) 6071-6073. [27] K. Shinke, K. Ando, T. Koyama, T. Takai, S. Nakaji, T. Ogino, Properties of various carbon nanomaterial surfaces in bilirubin adsorption, Colloids Surf. B 77(2010) 18-21. [28] K. Ando, K. Shinke, S. Yamada, T. Koyama, T. Takai, S. Nakaji, T. Ogino, Fabrication of carbon nanotube sheets and their bilirubin adsorption capacity, Colloids Surf. B 71(2009) 255-259. [29] A. Rezaee, G. Ghanizadeh, G. Behzadiyannejad, A. Yazdanbakhsh, S.D. Siyadat, Adsorption of endotoxin from aqueous solution using bone char, Bull. Environ. Contam. Toxicol. 82(2009) 732-737. [30] C.F. Ma, Q. Gao, K.S. Xia, Z.Y. Huang, B. Han, C.G. Zhou, Three-dimensionally porous graphene:A high-performance adsorbent for removal of albumin-bonded bilirubin, Colloids Surf. B 149(2017) 146-153. [31] Z. Yang, S. Si, Y. Fung, Bilirubin adsorption on nanocrystalline titania films, Thin Solid Films 515(2007) 3344-3351. [32] T. Asano, K. Tsuru, S. Hayakawa, A. Osaka, Bilirubin adsorption property of sol-gelderived titania particles for blood purification therapy, Acta Biomater. 4(2008) 1067-1072. [33] Z. Yang, C. Zhang, Adsorption and photocatalytic degradation of bilirubin on hydroxyapatite coatings with nanostructural surface, J. Mol. Catal. A 302(2009) 107-111. [34] H. Wei, L. Xu, J. Ren, L. Jia, Adsorption of bilirubin to magnetic multi-walled carbon nanotubes as a potential application in bound solute dialysis, Colloids Surf. A Physicochem. Eng. Asp. 405(2012) 38-44. [35] C.F. Ma, Q. Gao, J. Zhou, Q.X. Chen, B. Han, K.S. Xia, C.G. Zhou, Facile one-pot synthesis of magnetic nitrogen doped porous carbon for high-performance bilirubin removal from BSA-rich solution, RSC Adv. 7(2017) 2081-2091. [36] T. Asano, K. Tsuru, S. Hayakawa, A. Osaka, Adsorption on sol-gel derived alumina for blood purification therapy, Bio-Med. Mater. Eng. 18(2008) 161-170. [37] M.S.L. Tijink, M. Wester, J. Sun, A. Saris, L.A.M. Bolhuis-Versteeg, S. Saiful, J.A. Joles, Z. Borneman, M. Wessling, D.F. Stamatialis, A novel approach for blood purification:Mixed-matrix membranes combining diffusion and adsorption in one step, Acta Biomater. 8(2012) 2279-2287. [38] Y. Li, L. Li, L. Cao, C. Yang, Promoting dynamic adsorption of Pb2+ in a single pass flow using fibrous nano-TiO2/cellulose membranes, Chem. Eng. J. 283(2016) 1145-1153. [39] E. Salehi, S.S. Madaeni, L. Rajabi, A.A. Derakhshan, S. Daraei, V. Vatanpour, Static and dynamic adsorption of copper ions on chitosan/polyvinyl alcohol thin adsorptive membranes:Combined effect of polyethylene glycol and aminated multi-walled carbon nanotubes, Chem. Eng. J. (215-216) (2013) 791-801. [40] Z. Peng, Y. Yang, J. Luo, C. Nie, L. Ma, C. Cheng, C. Zhao, Nanofibrous polymeric beads from aramid fibers for efficient bilirubin removal, Biomater. Sci. 4(9) (2016) 1392-1401. [41] A. Timin, E. Rumyantsev, S.N. Lanin, S.A. Rychkova, S.S. Guseynov, A.V. Solomonov, E.V. Antina, Preparation and surface properties of mesoporous silica particles modified with poly(N-vinyl-2-pyrrolidone) as a potential adsorbent for bilirubin removal, Mater. Chem. Phys. 147(3) (2014) 673-683. [42] T. Tang, X. Li, Y. Xu, D. Wu, Y. Sun, J. Xu, F. Deng, Bilirubin adsorption on amine/methyl bifunctionalized SBA-15 with platelet morphology, Colloids Surf. B 84(2011) 571-578. [43] T. Tang, X. Li, Y. Xu, D. Wu, J. Xu, F. Deng, Functionalized SBA-15 materials for bilirubin adsorption, Appl. Surf. Sci. 257(2011) 6004-6009. [44] G. Cheng, Y. Chai, J. Chen, J. Chen, Q. Zhang, S. Ji, L. Ou, Y. Yu, Polystyrenedivinylbenzene based nano-CaCO3 composites for the efficient removal of human tumor necrosis factor-α, Chem. Commun. 53(55) (2017) 7744-7747. [45] J. Chen, G. Cheng, Y. Chai, W. Han, W. Zong, J. Chen, C. Li, W. Wang, L. Ou, Y. Yu, Preparation of nano-CaCO3/polystyrene nanocomposite beads for efficient bilirubin removal, Colloids Surf. B 161(2017) 480-487. [46] W. Shi, H. Cao, C. Song, H. Jiang, J. Wang, S. Jiang, J. Tu, D. Ge, Poly(pyrrole-3-carboxylicacid)-Alumina composite membrane for affinity adsorption of bilirubin, J. Membr. Sci. 353(2010) 151-158. [47] M. Xue, Y. Ling, G. Wu, X. Liu, D. Ge, W. Shi, Surface-modified anodic aluminum oxide membrane with hydroxyethyl celluloses as a matrix for bilirubin removal, J. Chromatogr. B 912(2013) 1-7. [48] C. Song, A. Zhang, W. Shi, H. Jiang, D. Ge, Functionalized silica nanotubes as affinity matrices for bilirubin removal, IEEE Trans. Nanotechnol. 10(2011) 626-631. [49] C. Nie, L. Ma, Y. Xia, C. He, J. Deng, L. Wang, C. Cheng, S. Sun, C. Zhao, Novel heparinmimicking polymer brush grafted carbon nanotube/PES composite membranes for safe and efficient blood purification, J. Membr. Sci. 475(2015) 455-468. [50] S. Şenel, F. Denizli, H. Yavuz, A. Denizli, Bilirubin removal from human plasma by dye affinity microporous hollow fibers, Sep. Sci. Technol. 37(2002) 1989-2006. [51] Z. Ma, M. Kotaki, S. Ramakrishna, Electrospun cellulese nanofiber as affinity membrane, J. Membr. Sci. 265(2004) 115-123. [52] Z. Wang, Y. Cao, H. Wei, L. Jia, L. Xu, J. Xie, Bilirubin adsorption properties of watersoluble adsorbents with different cyclodextrin cavities in plasma dialysis system, Colloids Surf. B 90(2012) 248-253. [53] Z. Wang, H. Wei, L. Jia, L. Xu, C. Zou, J. Xie, Water-soluble adsorbent b-cyclodextringrafted polyethyleneimine for removing bilirubin from plasma, Transfus. Apher. Sci. 47(2012) 159-165. [54] M. Sakata, K. Uezono, K. Kimura, M. Todokoro, γ-Cyclodextrin-polyurethane copolymer adsorbent for selective removal of endotoxin from DNA solution, Anal. Biochem. 443(2013) 41-45. [55] M.Y. Arica, E. Yalcin, G. Bayranolu, Polyethylenimine-grafted and HSA-immobilized poly(GMA-MMA) affinity adsorbents for bilirubin removal, Polym. Int. 54(2004) 153-160. [56] Z. Yu, R. Wu, H. Zou, Preparation of bovine serum albumin immobilized adsorbent for specific adsorption of bilirubin, Chin. J. Chromatogr. 28(2010) 291-295. [57] M. Kavoshchian, R. Üzek, S.A. Uyanık, S. Şenel, A. Denizli, HSA immobilized novel polymeric matrix as an alternative sorbent in hemoperfusion columns for bilirubin removal, React. Funct. Polym. 96(2015) 25-31. [58] Z. Moosavi-Movahedi, H. Bahrami, M. ZAHWDI, et al., A theoretical elucidation of bilirubin interaction with HSA's lysines:First electrostatic binding site in ⅡA subdomain, Biophys. Chem. 125(2007) 375-387. [59] K. Xu, M. Huang, L. Wu, Q. Xu, L. Zhang, H. Lin, Endotoxin removal from human plasma through PVDF affinity membrane containing Ser ligand, Membr. Sci. Technol. 31(2011) 28-34. [60] T. Chandy, C.P. Sharma, Polylysine-immobilized chitosan beads as adsorbents for bilirubin, Artif. Organs 16(1992) 568-576. [61] M. Zhang, L. Zhang, L. Cheng, K. Xu, Q. Xu, H. Chen, J.Y. Lai, Extracorporeal endotoxin removal by novel L-serine grafted PVDF membrane modules, J. Membr. Sci. 405-406(2012) 104-112. [62] T. Huang, M. Zhang, L. Cheng, L. Zhang, M. Huang, Q. Xu, H. Chen, A novel polysulfone-based affinity membrane with high hemocompatibility:Preparation and endotoxin elimination performance, RSC Adv. 3(2013) 25982-25988. [63] M.E. Landgrebe, D. Wu, R.R. Walters, Preparation of chromatographic supports of variable ligand density, Anal. Chem. 58(1986) 1607-1611. [64] C. Boi, C. Castro, G.C. Sarti, Plasminogen purification from serum through affinity membranes, J. Membr. Sci. 475(2015) 71-79. [65] K.H. Gebauer, J. Thommes, M.R. Kula, Breakthrough performance of high-capacity membrane adsorbers in protein chromatography, Chem. Eng. Sci. 52(1997) 405-419. [66] S. Zhang, Y. Sun, Study on protein adsorption kinetics to a dye-ligand adsorbent by the pore diffusion model, J. Chromatogr. A 964(2002) 35-46. [67] J.F. Langford, X. Xu, Y. Yao, S.F. Maloney, A.M. Lenhoff, Chromatography of proteins on charge-variant ion exchangers and implications for optimizing protein uptake rates, J. Chromatogr. A 1163(2007) 190-202. [68] L. Yu, X. Dong, Y. Sun, Ion-exchange resins facilitate like-charged protein refolding:Effects of porous solid phase properties, J. Chromatogr. A 1225(2012) 168-173. [69] L. Zhang, G. Zhao, Y. Sun, Effects of ligand density on hydrophobic charge induction chromatography:Molecular dynamics simulation, J. Phys. Chem. B 114(2010) 2203-2211. [70] H. Lu, D. Lin, D. Gao, S. Yao, Evaluation of immunoglobulin adsorption on the hydrophobic charge-induction resins with different ligand densities and pore sizes, J. Chromatogr. A 1278(2013) 61-68. [71] A. Franke, N. Forrer, A. Butté, B. Cvijetić, M. Morbidelli, M. Jöhnck, M. Schulte, Role of the ligand density in cation exchange materials for the purification of proteins, J. Chromatogr. A 1217(2010) 2216-2225. [72] S.-Y. Suen, Y.-D. Tsai, Comparison of ligand density and protein adsorption on dyeaffinity membranes using different spacer arms, Sep. Sci. Technol. 35(2000) 69-87. [73] Y. Yu, B. He, H. Gu, Adsorption of bilirubin by amine-containing crosslinked chitosan resins, Artif. Cells Blood Substit. Immobil. Biotechnol. 28(2000) 307-320. [74] L. Jia, R. Guo, X. Zhang, C. Zhou, Synthesis and characterization of novel adsorbents with different ligand composition for bilirubin conjugated with albumin, Sep. Sci. Technol. 40(2005) 1387-1399. [75] J. Ju, F. Nie, Z. Duan, G. He, Effect of ligand composition and ligand density of affinity membrane on bilirubin removal, CIESC J. 64(1) (2013) 303-310. [76] E. Salehi, S.S. Madaeni, Influence of poly(ethylene glycol) as pore-generator on morphology and performance of chitosan/poly(vinyl alcohol) membrane adsorbents, Appl. Surf. Sci. 288(2014) 537-541. [77] S. Wu, B. Duan, X. Zeng, A. Lu, X. Xu, Y. Wang, Q. Ye, L. Zhang, Construction of blood compatible lysine-immobilized chitin/carbon nanotubes microspheres and potential applications for blood purified therapy, J. Mater. Chem. B 5(2017) 2952-2963. [78] J. Fan, J. Luo, W. Song, Y. Wan, One-step purification of α1-antitrypsin by regulating polyelectrolyte ligands on mussel-inspired membrane adsorber, J. Membr. Sci. 528(2017) 155-162. [79] S. Harm, A. Gruber, F. Gabor, J. Hartmann, Adsorption of selected antibiotics to resins in extracorporeal blood purification, Blood Purif. 41(2016) 55-63. [80] R. Wang, X. Jiang, A. He, T. Xiang, C. Zhao, An in situ crosslinking approach towards chitosan based semi-IPN hybrid particles for versatile adsorptions of toxins, RSC Adv. 5(2015) 51631-51641. [81] J. Zhang, Z. Peng, D. Maberry, J. Volpe, J.D. Kimmel, W.J. Federspiel, J.A. Kellum, Effects of hemoadsorption with a novel adsorbent on sepsis:In vivo and in vitro study, Blood Purif. 39(2015) 239-245. [82] J. Chen, W. Han, R. Su, J. Chen, W. Zong, Y. Wang, W. Wang, G. Cheng, L. Ou, Y. Yu, Non-ionic macroporous polystyrene adsorbents for removal of serum toxins in liver failure by hemoperfusion, Artif. Cells Nanomed. Biotechnol. 45(1) (2016) 1-9. [83] Z. An, R. Xu, F. Dai, G. Xue, X. He, Y. Zhao, L. Chen, PVDF/PVDF-g-PACMO blend hollow fiber membranes for hemodialysis:Preparation, characterization, and performance, RSC Adv. 7(2017) 26593-26600. [84] X. Yu, L. Shen, Y. Zhu, X. Li, Y. Yang, X. Wang, M. Zhu, B.S. Hsiao, High performance thin-film nanofibrous composite hemodialysis membranes with efficient middlemolecule uremic toxin removal, J. Membr. Sci. 523(2017) 173-184. [85] L. Zhu, H. Song, J. Wang, L. Xue, Polysulfone hemodiafiltration membranes with enhanced anti-fouling and hemocompatibility modified by poly(vinyl pyrrolidone) via in situ cross-linked polymerization, Mater. Sci. Eng. C 74(2017) 159-166. |