中国化学工程学报 ›› 2022, Vol. 49 ›› Issue (9): 34-45.DOI: 10.1016/j.cjche.2022.06.006
• Special Column: Membranes for Life Science • 上一篇 下一篇
Lin-Bing Zou1, Jue-Ying Gong1, Xiao-Jie Ju1,2, Zhuang Liu1,2, Wei Wang1,2, Rui Xie1,2, Liang-Yin Chu1,2
收稿日期:
2021-11-28
修回日期:
2022-06-03
发布日期:
2022-10-19
通讯作者:
Xiao-Jie Ju,E-mail:juxiaojie@scu.edu.cn
基金资助:
Lin-Bing Zou1, Jue-Ying Gong1, Xiao-Jie Ju1,2, Zhuang Liu1,2, Wei Wang1,2, Rui Xie1,2, Liang-Yin Chu1,2
Received:
2021-11-28
Revised:
2022-06-03
Published:
2022-10-19
Contact:
Xiao-Jie Ju,E-mail:juxiaojie@scu.edu.cn
Supported by:
摘要: Smart membranes with tunable permeability and selectivity have drawn widespread attention because of their unique biomimetic characteristics. Constructed by incorporating various stimuli-responsive materials into membrane substrates, smart membranes could self-adjust their physical/chemical properties (such as pore size and surface properties) in response to environmental signals such as temperature, pH, light, magnetic field, electric field, redox and specific ions/molecules. Such smart membranes show great prospects in biomedical applications ranging from controlled drug release to bioseparation and tissue engineering. In this review, three controlled release models realized by different designed smart membranes are emphatically introduced, and then smart membranes for biological separation and controlled cell culture are introduced and discussed respectively. At last, the existing challenges of smart membranes for biomedical applications are briefly summarized, and future research topics are suggested.
Lin-Bing Zou, Jue-Ying Gong, Xiao-Jie Ju, Zhuang Liu, Wei Wang, Rui Xie, Liang-Yin Chu. Smart membranes for biomedical applications[J]. 中国化学工程学报, 2022, 49(9): 34-45.
Lin-Bing Zou, Jue-Ying Gong, Xiao-Jie Ju, Zhuang Liu, Wei Wang, Rui Xie, Liang-Yin Chu. Smart membranes for biomedical applications[J]. Chinese Journal of Chemical Engineering, 2022, 49(9): 34-45.
[1] D.L. Gin, R.D. Noble, Chemistry. Designing the next generation of chemical separation membranes, Science 332 (6030) (2011) 674-676 [2] B.E. Logan, M. Elimelech, Membrane-based processes for sustainable power generation using water, Nature 488 (7411) (2012) 313-319 [3] Z. Liu, W. Wang, R. Xie, X.J. Ju, L.Y. Chu, Stimuli-responsive smart gating membranes, Chem. Soc. Rev. 45 (3) (2016) 460-475 [4] Y. Huang, C.F. Xiao, Q.L. Huang, H.L. Liu, J. Zhao, Progress on polymeric hollow fiber membrane preparation technique from the perspective of green and sustainable development, Chem. Eng. J. 403 (2021) 126295 [5] X.B. Lv, R. Xie, J.Y. Ji, Z. Liu, X.Y. Wen, L.Y. Liu, J.Q. Hu, X.J. Ju, W. Wang, L.Y. Chu, A novel strategy to fabricate cation-cross-linked graphene oxide membrane with high aqueous stability and high separation performance, ACS Appl. Mater. Interfaces 12 (50) (2020) 56269-56280 [6] J.Q. Hu, Z. Liu, Z.H. Chen, Q.W. Cai, X.Y. Li, R. Xie, X.J. Ju, W. Wang, L.Y. Chu, Hybrid graphene oxide/laponite layered membranes with stable two-dimensional nanochannels for efficient separations in aqueous environments, Ind. Eng. Chem. Res. 59 (27) (2020) 12441-12450 [7] Y.Q. Hou, Q.X. Wang, S.L. Wang, M. Wang, X.M. Chen, X. Hou, Hydrophilic carbon nanotube membrane enhanced interfacial evaporation for desalination, Chin. Chem. Lett. 33 (4) (2022) 2155-2158 [8] J. Zhang, Z.Y. Li, K. Zhan, R.Q. Sun, Z.Z. Sheng, M. Wang, S.L. Wang, X. Hou, Two dimensional nanomaterial-based separation membranes, Electrophoresis 40 (16-17) (2019) 2029-2040 [9] A. Nasajpour, S. Mandla, S. Shree, E. Mostafavi, R. Sharifi, A. Khalilpour, S. Saghazadeh, S. Hassan, M.J. Mitchell, J. Leijten, X. Hou, A. Moshaverinia, N. Annabi, R. Adelung, Y.K. Mishra, S.R. Shin, A. Tamayol, A. Khademhosseini, Nanostructured fibrous membranes with rose spike-like architecture, Nano Lett. 17 (10) (2017) 6235-6240 [10] D. Wandera, S.R. Wickramasinghe, S.M. Husson, Stimuli-responsive membranes, J. Membr. Sci. 357 (1-2) (2010) 6-35 [11] L.Y. Chu, R. Xie, X.J. Ju, Stimuli-responsive membranes:smart tools for controllable mass-transfer and separation processes, Chin. J. Chem. Eng. 19 (6) (2011) 891-903 [12] F. Lang, M. Föller, K.S. Lang, P.A. Lang, M. Ritter, E. Gulbins, A. Vereninov, S.M. Huber, Ion channels in cell proliferation and apoptotic cell death, J. Membr. Biol. 205 (3) (2005) 147-157 [13] J.M. Kefauver, A.B. Ward, A. Patapoutian, Discoveries in structure and physiology of mechanically activated ion channels, Nature 587 (7835) (2020) 567-576 [14] S.P. Zheng, L.B. Huang, Z.H. Sun, M. Barboiu, Self-assembled artificial ion-channels toward natural selection of functions, Angew. Chem. Int. Ed. 60 (2) (2021) 566-597 [15] B.Y. Chen, R.R. Zhang, Y.Q. Hou, J. Zhang, S.Y. Chen, Y.H. Han, X.Y. Chen, X. Hou, Light-responsive and corrosion-resistant gas valve with non-thermal effective liquid-gating positional flow control, Light Sci. Appl. 10 (1) (2021) 127 [16] W. Lv, Z.Z. Sheng, Y.L. Zhu, J. Liu, Y. Lei, R.R. Zhang, X.Y. Chen, X. Hou, Highly stretchable and reliable graphene oxide-reinforced liquid gating membranes for tunable gas/liquid transport, Microsyst. Nanoeng. 6 (2020) 43 [17] J. Liu, X. Xu, Y. Lei, M.C. Zhang, Z.Z. Sheng, H.M. Wang, M. Cao, J. Zhang, X. Hou, Liquid gating meniscus-shaped deformable magnetoelastic membranes with self-driven regulation of gas/liquid release, Adv. Mater. 34 (3) (2022) e2107327 [18] W. Liu, M. Wang, Z.Z. Sheng, Y.M. Zhang, S.L. Wang, L. Qiao, Y.Q. Hou, M.C. Zhang, X.Y. Chen, X. Hou, Mobile liquid gating membrane system for smart piston and valve applications, Ind. Eng. Chem. Res. 58 (27) (2019) 11976-11984 [19] M. Wang, H.Q. Meng, D. Wang, Y.J. Yin, P. Stroeve, Y.M. Zhang, Z.Z. Sheng, B.Y. Chen, K. Zhan, X. Hou, Dynamic curvature nanochannel-based membrane with anomalous ionic transport behaviors and reversible rectification switch, Adv. Mater. 31 (11) (2019) 1805130 [20] T.F. Chala, C.M. Wu, M.H. Chou, Z.L. Guo, Melt electrospun reduced tungsten oxide/polylactic acid fiber membranes as a photothermal material for light-driven interfacial water evaporation, ACS Appl. Mater. Interfaces 10 (34) (2018) 28955-28962 [21] X. Hou, J.Y. Li, A.B. Tesler, Y.X. Yao, M. Wang, L.L. Min, Z.Z. Sheng, J. Aizenberg, Dynamic air/liquid pockets for guiding microscale flow, Nat. Commun. 9 (2018) 733 [22] H.F.M. Austria, T.M. Subrahmanya, O. Setiawan, J. Widakdo, Y.H. Chiao, W.S. Hung, C.F. Wang, C.C. Hu, K.R. Lee, J.Y. Lai, A review on the recent advancements in graphene-based membranes and their applications as stimuli-responsive separation materials, J. Mater. Chem. A 9 (38) (2021) 21510-21531 [23] S.L. Wang, Y.M. Zhang, Y.H. Han, Y.Q. Hou, Y. Fan, X. Hou, Design of porous membranes by liquid gating technology, Acc. Mater. Res. 2 (6) (2021) 407-419 [24] X. Hou, Liquid gating membrane, Natl. Sci. Rev. 7 (1) (2020) 9-11 [25] Z. Zhang, L.P. Wen, L. Jiang, Bioinspired smart asymmetric nanochannel membranes, Chem. Soc. Rev. 47 (2) (2018) 322-356 [26] X. Hou, Smart gating multi-scale pore/channel-based membranes, Adv. Mater. 28 (33) (2016) 7049-7064 [27] Z.Z. Sheng, J. Zhang, J. Liu, Y.M. Zhang, X.Y. Chen, X. Hou, Liquid-based porous membranes, Chem. Soc. Rev. 49 (22) (2020) 7907-7928 [28] R.S. Langer, N.A. Peppas, Present and future applications of biomaterials in controlled drug delivery systems, Biomaterials 2 (4) (1981) 201-214 [29] J. Kost, R. Langer, Responsive polymeric delivery systems, Adv. Drug Deliv. Rev. 46 (1-3) (2001) 125-148 [30] C.Y. Wang, S.L. Wang, H. Pan, L.L. Min, H.L. Zheng, H. Zhu, G. Liu, W.Z. Yang, X.Y. Chen, X. Hou, Bioinspired liquid gating membrane-based catheter with anticoagulation and positionally drug release properties, Sci. Adv. 6 (36) (2020), DOI:10.1126/sciadv.abb4700 [31] Z. Liu, X.J. Ju, W. Wang, R. Xie, L. Jiang, Q.M. Chen, Y.Q. Zhang, J.F. Wu, L.Y. Chu, Stimuli-responsive capsule membranes for controlled release in pharmaceutical applications, Curr. Pharm. Des. 23 (2) (2017) 295-301 [32] L.Y. Chu, Y. Li, J.H. Zhu, H.D. Wang, Y.J. Liang, Control of pore size and permeability of a glucose-responsive gating membrane for insulin delivery, J. Control. Release 97 (1) (2004) 43-53 [33] M.J. Zhang, W. Wang, R. Xie, X.J. Ju, L. Liu, Y.Y. Gu, L.Y. Chu, Microfluidic fabrication of monodisperse microcapsules for glucose-response at physiological temperature, Soft Matter 9 (16) (2013) 4150 [34] J.B. Qu, L.Y. Chu, M. Yang, R. Xie, L. Hu, W.M. Chen, A pH-responsive gating membrane system with pumping effects for improved controlled release, Adv. Funct. Mater. 16 (14) (2006) 1865-1872 [35] L. Hu, L.Y. Chu, M. Yang, J. Yu, H.D. Wang, A composite thermo-responsive membrane system for improved controlled-release, Chem. Eng. Technol. 30 (4) (2007) 523-529 [36] Z. Liu, F. Luo, X.J. Ju, R. Xie, T. Luo, Y.M. Sun, L.Y. Chu, Positively k+-responsive membranes with functional gates driven by host-guest molecular recognition, Adv. Funct. Mater. 22 (22) (2012) 4742-4750 [37] A.P. Esser-Kahn, S.A. Odom, N.R. Sottos, S.R. White, J.S. Moore, Triggered release from polymer capsules, Macromolecules 44 (14) (2011) 5539-5553 [38] G.M. Estrada-Villegas, G. González-Pérez, E. Bucio, Adsorption and release of caffeine from smart PVDF polyampholyte membrane, Iran. Polym. J. 28 (8) (2019) 639-647 [39] R.S. Patil, E. Sancaktar, Fabrication of pH-responsive polyimide polyacrylic acid smart gating membranes:ultrafast method using 248 nm krypton fluoride excimer laser, ACS Appl. Mater. Interfaces 13 (21) (2021) 24431-24441 [40] Y. Wang, C. Liu, D.J. Shi, L.L. Dong, M.Q. Chen, W.F. Dong, Thermo-responsive membranes fabricated by immobilization of microgels with enhanced gating coefficinent and reversible behavior, Compos. Commun. 27 (2021) 100840 [41] L.Y. Chu, Y.J. Liang, W.M. Chen, X.J. Ju, H.D. Wang, Preparation of glucose-sensitive microcapsules with a porous membrane and functional gates, Colloids Surf. B Biointerfaces 37 (1-2) (2004) 9-14 [42] M.Y. Jiang, X.J. Ju, K. Deng, X.X. Fan, X.H. He, F. Wu, F. He, Z. Liu, W. Wang, R. Xie, L.Y. Chu, The microfluidic synthesis of composite hollow microfibers for K+-responsive controlled release based on a host-guest system, J. Mater. Chem. B 4 (22) (2016) 3925-3935 [43] L. Mei, R. Xie, C. Yang, X.J. Ju, J.Y. Wang, Z.B. Zhang, L.Y. Chu, Bio-inspired mini-eggs with pH-responsive membrane for enzyme immobilization, J. Membr. Sci. 429 (2013) 313-322 [44] C.J. Cheng, L.Y. Chu, P.W. Ren, J. Zhang, L. Hu, Preparation of monodisperse thermo-sensitive poly(N-isopropylacrylamide) hollow microcapsules, J. Colloid Interface Sci. 313 (2) (2007) 383-388 [45] C. Yang, R. Xie, W.G. Liang, X.J. Ju, W. Wang, M.J. Zhang, Z. Liu, L.Y. Chu, Beta-cyclodextrin-based molecular-recognizable smart microcapsules for controlled release, J. Mater. Sci. 49 (20) (2014) 6862-6871 [46] W. Wang, M.J. Zhang, L.Y. Chu, Functional polymeric microparticles engineered from controllable microfluidic emulsions, Acc. Chem. Res. 47 (2) (2014) 373-384 [47] X.T. Mu, Y. Li, X.J. Ju, X.L. Yang, R. Xie, W. Wang, Z. Liu, L.Y. Chu, Microfluidic fabrication of structure-controlled chitosan microcapsules via interfacial cross-linking of droplet templates, ACS Appl. Mater. Interfaces 12 (51) (2020) 57514-57525 [48] M.J. Zhang, P. Zhang, L.D. Qiu, T. Chen, W. Wang, L.Y. Chu, Controllable microfluidic fabrication of microstructured functional materials, Biomicrofluidics 14 (6) (2020) 061501 [49] J. Shi, X.J. Wang, S.H. Xu, Q. Wu, S.K. Cao, Reversible thermal-tunable drug delivery across nano-membranes of hollow PUA/PSS multilayer microcapsules, J. Membr. Sci. 499 (2016) 307-316 [50] X. Lin, B. Nguyen Quoc, M. Ulbricht, Magnetoresponsive poly(ether sulfone)-based iron oxide cum hydrogel mixed matrix composite membranes for switchable molecular sieving, ACS Appl. Mater. Interfaces 8 (42) (2016) 29001-29014 [51] Y. Wang, G. Boero, X.S. Zhang, J. Brugger, Thermal and pH sensitive composite membrane for on-demand drug delivery by applying an alternating magnetic field, Adv. Mater. Interfaces 7 (17) (2020) 2000733 [52] Y.L. Yu, R. Xie, M.J. Zhang, P.F. Li, L.H. Yang, X.J. Ju, L.Y. Chu, Monodisperse microspheres with poly(N-isopropylacrylamide) core and poly(2-hydroxyethyl methacrylate) shell, J. Colloid Interface Sci. 346 (2) (2010) 361-369 [53] Y.L. Yu, M.J. Zhang, R. Xie, X.J. Ju, J.Y. Wang, S.W. Pi, L.Y. Chu, Thermo-responsive monodisperse core-shell microspheres with PNIPAM core and biocompatible porous ethyl cellulose shell embedded with PNIPAM gates, J. Colloid Interface Sci. 376 (1) (2012) 97-106 [54] J.J. Zhao, W. Wang, F. Wang, Y. Zhao, Q.W. Cai, R. Xie, X.J. Ju, Z. Liu, Y. Faraj, L.Y. Chu, Smart hydrogel grating immunosensors for highly selective and sensitive detection of human-IgG, Ind. Eng. Chem. Res. 59 (22) (2020) 10469-10475 [55] C.C. Campillo, A.P. Schröder, C.M. Marques, B. Pépin-Donat, Volume transition in composite poly(NIPAM)-giant unilamellar vesicles, Soft Matter 4 (12) (2008) 2486 [56] C. Campillo, B. Pépin-Donat, A. Viallat, Responsive viscoelastic giant lipid vesicles filled with a poly(N-isopropylacrylamide) artificial cytoskeleton, Soft Matter 3 (11) (2007) 1421 [57] H. Ichikawa, Y. Fukumori, A novel positively thermosensitive controlled-release microcapsule with membrane of nano-sized poly(N-isopropylacrylamide) gel dispersed in ethylcellulose matrix, J. Control. Release 63 (1-2) (2000) 107-119 [58] J.Y. Wang, Y. Jin, R. Xie, J.Y. Liu, X.J. Ju, T. Meng, L.Y. Chu, Novel calcium-alginate capsules with aqueous core and thermo-responsive membrane, J. Colloid Interface Sci. 353 (1) (2011) 61-68 [59] R. Xie, X.L. Song, F. Luo, Z. Liu, W. Wang, X.J. Ju, L.Y. Chu, Ethanol-responsive poly(vinylidene difluoride) membranes with nanogels as functional gates, Chem. Eng. Technol. 39 (5) (2016) 841-848 [60] X.L. Song, R. Xie, T. Luo, X.J. Ju, W. Wang, L.Y. Chu, Ethanol-responsive characteristics of polyethersulfone composite membranes blended with poly(N-isopropylacrylamide) nanogels, J. Appl. Polym. Sci. 131 (21) (2014) 41032 [61] J. Wei, X.J. Ju, X.Y. Zou, R. Xie, W. Wang, Y.M. Liu, L.Y. Chu, Multi-stimuli-responsive microcapsules for adjustable controlled-release, Adv. Funct. Mater. 24 (22) (2014) 3312-3323 [62] F. He, L. Mei, X.J. Ju, R. Xie, W. Wang, Z. Liu, F. Wu, L.Y. Chu, pH-responsive controlled release characteristics of solutes with different molecular weights diffusing across membranes of Ca-alginate/protamine/silica hybrid capsules, J. Membr. Sci. 474 (2015) 233-243 [63] J.Y. Wang, H.R. Yu, R. Xie, X.J. Ju, Y.L. Yu, L.Y. Chu, Z.B. Zhang, Alginate/protamine/silica hybrid capsules with ultrathin membranes for laccase immobilization, AIChE J. 59 (2) (2013) 380-389 [64] L. Mei, R. Xie, C. Yang, X.J. Ju, W. Wang, J.Y. Wang, L.Y. Chu, pH-responsive Ca-alginate-based capsule membranes with grafted poly(methacrylic acid) brushes for controllable enzyme reaction, Chem. Eng. J. 232 (2013) 573-581 [65] Y.F. Zhang, H. Wu, J. Li, L. Li, Y.J. Jiang, Y. Jiang, Z.Y. Jiang, Protamine-templated biomimetic hybrid capsules:efficient and stable carrier for enzyme encapsulation, Chem. Mater. 20 (3) (2008) 1041-1048 [66] Y.F. Zhang, H. Wu, L. Li, J. Li, Z.Y. Jiang, Y.J. Jiang, Y. Chen, Enzymatic conversion of Baicalin into Baicalein by β-glucuronidase encapsulated in biomimetic core-shell structured hybrid capsules, J. Mol. Catal. B Enzym. 57 (1-4) (2009) 130-135 [67] L. Mei, F. He, R.Q. Zhou, C.D. Wu, R. Liang, R. Xie, X.J. Ju, W. Wang, L.Y. Chu, Novel intestinal-targeted Ca-alginate-based carrier for pH-responsive protection and release of lactic acid bacteria, ACS Appl. Mater. Interfaces 6 (8) (2014) 5962-5970 [68] W. Wang, L. Liu, X.J. Ju, D. Zerrouki, R. Xie, L.H. Yang, L.Y. Chu, A novel thermo-induced self-bursting microcapsule with magnetic-targeting property, ChemPhysChem 10 (14) (2009) 2405-2409 [69] Y.M. Liu, W. Wu, X.J. Ju, W. Wang, R. Xie, C.L. Mou, W.C. Zheng, Z. Liu, L.Y. Chu, Smart microcapsules for direction-specific burst release of hydrophobic drugs, RSC Adv. 4 (87) (2014) 46568-46575 [70] L. Liu, W. Wang, X.J. Ju, R. Xie, L.Y. Chu, Smart thermo-triggered squirting capsules for nanoparticle delivery, Soft Matter 6 (16) (2010) 3759 [71] L. Liu, J.P. Yang, X.J. Ju, R. Xie, Y.M. Liu, W. Wang, J.J. Zhang, C.H. Niu, L.Y. Chu, Monodisperse core-shell chitosan microcapsules for pH-responsive burst release of hydrophobic drugs, Soft Matter 7 (10) (2011) 4821 [72] Z. Liu, L. Liu, X.J. Ju, R. Xie, B. Zhang, L.Y. Chu, K(+)-recognition capsules with squirting release mechanisms, Chem. Commun. (Camb) 47 (45) (2011) 12283-12285 [73] M. Windbergs, Y.J. Zhao, J. Heyman, D.A. Weitz, Biodegradable core-shell carriers for simultaneous encapsulation of synergistic actives, J. Am. Chem. Soc. 135 (21) (2013) 7933-7937 [74] R. Kurapati, A.M. Raichur, Near-infrared light-responsive graphene oxide composite multilayer capsules:a novel route for remote controlled drug delivery, Chem. Commun. (Camb) 49 (7) (2013) 734-736 [75] X.L. Yang, X.J. Ju, X.T. Mu, W. Wang, R. Xie, Z. Liu, L.Y. Chu, Core-shell chitosan microcapsules for programmed sequential drug release, ACS Appl. Mater. Interfaces 8 (16) (2016) 10524-10534 [76] D. Miles, G. von Minckwitz, A.D. Seidman, Combination versus sequential single-agent therapy in metastatic breast cancer, Oncologist 7 (Suppl 6) (2002) 13-19 [77] S. Sengupta, D. Eavarone, I. Capila, G.L. Zhao, N. Watson, T. Kiziltepe, R. Sasisekharan, Temporal targeting of tumour cells and neovasculature with a nanoscale delivery system, Nature 436 (7050) (2005) 568-572 [78] B. Koppolu, M. Rahimi, S. Nattama, A. Wadajkar, K.T. Nguyen, Development of multiple-layer polymeric particles for targeted and controlled drug delivery, Nanomed. Nanotechnol. Biol. Med. 6 (2) (2010) 355-361 [79] D. Li, Y.T. Zhang, S. Jin, J. Guo, H.F. Gao, C.C. Wang, Development of a redox/pH dual stimuli-responsive MSP@P(MAA-Cy) drug delivery system for programmed release of anticancer drugs in tumour cells, J. Mater. Chem. B 2 (32) (2014) 5187-5194 [80] Y. Cong, Q.J. Li, M. Chen, L.M. Wu, Synthesis of dual-stimuli-responsive microcontainers with two payloads in different storage spaces for preprogrammable release, Angew. Chem. Int. Ed Engl. 56 (13) (2017) 3552-3556 [81] H.Y. Yoon, S. Son, S.J. Lee, D.G. You, J.Y. Yhee, J.H. Park, M. Swierczewska, S. Lee, I.C. Kwon, S.H. Kim, K. Kim, M.G. Pomper, Glycol chitosan nanoparticles as specialized cancer therapeutic vehicles:sequential delivery of doxorubicin and Bcl-2 siRNA, Sci. Rep. 4 (2014) 6878 [82] Y.Y. Wang, D.D. Zhang, Y.Y. Kong, L.L. Shao, F.Y. Zhang, Y. Gao, X. Mu, J. Wang, H.F. Li, S.Q. Yu, Q. Xu, CS/PAA@TPGS/PLGA nanoparticles with intracellular pH-sensitive sequential release for delivering drug to the nucleus of MDR cells, Colloid Surf. B-Biointerfaces 145 (2016) 716-727 [83] C.L. Mou, W. Wang, Z.L. Li, X.J. Ju, R. Xie, N.N. Deng, J. Wei, Z. Liu, L.Y. Chu, Trojan-horse-like stimuli-responsive microcapsules, Adv. Sci. (Weinh) 5 (6) (2018) 1700960 [84] G. Hernández-Vargas, C.A. Ponce-Ponce de León, J. González-Valdez, H.M.N. Iqbal, "smart" polymers:physicochemical characteristics and applications in bio-separation strategies, Sep. Purif. Rev. 47 (3) (2018) 199-213 [85] R. Ghosh, Protein separation using membrane chromatography:opportunities and challenges, J. Chromatogr. A 952 (1-2) (2002) 13-27 [86] S.X. Liu, Z.H. Li, B. Yu, S. Wang, Y.Q. Shen, H.L. Cong, Recent advances on protein separation and purification methods, Adv. Colloid Interface Sci. 284 (2020) 102254 [87] P. Stroeve, N. Ileri, Biotechnical and other applications of nanoporous membranes, Trends Biotechnol. 29 (6) (2011) 259-266 [88] M.M. Li, Y.T. Xiong, G.Y. Qing, Smart bio-separation materials, Trac Trends Anal. Chem. 124 (2020) 115585 [89] J.W. Guo, C.F. Wang, J.Y. Lai, C.H. Lu, J.K. Chen, Poly(N-isopropylacrylamide)-gelatin hydrogel membranes with thermo-tunable pores for water flux gating and protein separation, J. Membr. Sci. 618 (2021) 118732 [90] T. Meng, R. Xie, Y.C. Chen, C.J. Cheng, P.F. Li, X.J. Ju, L.Y. Chu, A thermo-responsive affinity membrane with nano-structured pores and grafted poly(N-isopropylacrylamide) surface layer for hydrophobic adsorption, J. Membr. Sci. 349 (1-2) (2010) 258-267 [91] J.W. Guo, Y.H. Wu, S.H. Chen, A. Fang, S.C. Lee, J.K. Chen, Protein valves formed through click-reaction grafting of poly(N-isopropylacrylamide) onto electrospun poly(2, 6-dimethyl-1, 4-phenylene oxide) fibrous membranes, J. Membr. Sci. 551 (2018) 103-112 [92] Y.J. Choi, T. Yamaguchi, S.I. Nakao, A novel separation system using porous thermosensitive membranes, Ind. Eng. Chem. Res. 39 (7) (2000) 2491-2495 [93] T.L. Sun, G.J. Wang, L. Feng, B.Q. Liu, Y.M. Ma, L. Jiang, D.B. Zhu, Reversible switching between superhydrophilicity and superhydrophobicity, Angew. Chem. Int. Ed Engl. 43 (3) (2004) 357-360 [94] F. Xia, L. Feng, S. Wang, T. Sun, W. Song, W. Jiang, L. Jiang, Dual-responsive surfaces that switch between superhydrophilicity and superhydrophobicity, Adv. Mater. 18 (4) (2006) 432-436 [95] F. Xia, H. Ge, Y. Hou, T. Sun, L. Chen, G. Zhang, L. Jiang, Multiresponsive surfaces change between superhydrophilicity and superhydrophobicity, Adv. Mater. 19 (18) (2007) 2520-2524 [96] A. Nishiguchi, H. Yoshida, M. Matsusaki, M. Akashi, Rapid construction of three-dimensional multilayered tissues with endothelial tube networks by the cell-accumulation technique, Adv. Mater. 23 (31) (2011) 3506-3510 [97] T. Suganami, J. Nishida, Y. Ogawa, A paracrine loop between adipocytes and macrophages aggravates inflammatory changes:role of free fatty acids and tumor necrosis factor alpha, Arterioscler. Thromb. Vasc. Biol. 25 (10) (2005) 2062-2068 [98] L. Yang, X.G. Fan, J. Zhang, J. Ju, Preparation and characterization of thermoresponsive poly(N-isopropylacrylamide) for cell culture applications, Polymers 12 (2) (2020) 389 [99] M. Sponchioni, N. Manfredini, A. Zanoni, E. Scibona, M. Morbidelli, D. Moscatelli, Readily adsorbable thermoresponsive polymers for the preparation of smart cell-culturing surfaces on site, ACS Biomater. Sci. Eng. 6 (9) (2020) 5337-5345 [100] K. Uto, J.H. Tsui, C.A. DeForest, D.H. Kim, Dynamically tunable cell culture platforms for tissue engineering and mechanobiology, Prog. Polym. Sci. 65 (2017) 53-82 [101] A. Kushida, M. Yamato, C. Konno, A. Kikuchi, Y. Sakurai, T. Okano, Decrease in culture temperature releases monolayer endothelial cell sheets together with deposited fibronectin matrix from temperature-responsive culture surfaces, J. Biomed. Mater. Res. 45 (4) (1999) 355-362 [102] H.L. Liu, S.T. Wang, Poly(N-isopropylacrylamide)-based thermo-responsive surfaces with controllable cell adhesion, Sci. China Chem. 57 (4) (2014) 552-557 [103] K. Nagase, M. Yamato, H. Kanazawa, T. Okano, Poly(N-isopropylacrylamide)-based thermoresponsive surfaces provide new types of biomedical applications, Biomaterials 153 (2018) 27-48 [104] T. Takezawa, Y. Mori, K. Yoshizato, Cell culture on a thermo-responsive polymer surface, Biotechnology (N Y) 8 (9) (1990) 854-856 [105] O.H. Kwon, A. Kikuchi, M. Yamato, Y. Sakurai, T. Okano, Rapid cell sheet detachment from Poly(N-isopropylacrylamide)-grafted porous cell culture membranes, J. Biomed. Mater. Res. 50 (1) (2000) 82-89 [106] O. Hyeong Kwon, A. Kikuchi, M. Yamato, T. Okano, Accelerated cell sheet recovery by co-grafting of PEG with PIPAAm onto porous cell culture membranes, Biomaterials 24 (7) (2003) 1223-1232 [107] L. Zhang, Z. Liu, L.Y. Liu, J.L. Pan, F. Luo, C. Yang, R. Xie, X.J. Ju, W. Wang, L.Y. Chu, Nanostructured thermoresponsive surfaces engineered via stable immobilization of smart nanogels with assistance of polydopamine, ACS Appl. Mater. Interfaces 10 (50) (2018) 44092-44101 [108] M. Ebara, M. Yamato, M. Hirose, T. Aoyagi, A. Kikuchi, K. Sakai, T. Okano, Copolymerization of 2-carboxyisopropylacrylamide with N-isopropylacrylamide accelerates cell detachment from grafted surfaces by reducing temperature, Biomacromolecules 4 (2) (2003) 344-349 [109] H.L. Liu, X.L. Liu, J.X. Meng, P.C. Zhang, G. Yang, B. Su, K. Sun, L. Chen, D. Han, S.T. Wang, L. Jiang, Hydrophobic interaction-mediated capture and release of cancer cells on thermoresponsive nanostructured surfaces, Adv. Mater. 25 (6) (2013) 922-927 [110] M. Nakayama, Y. Toyoshima, H. Chinen, A. Kikuchi, M. Yamato, T. Okano, Water stable nanocoatings of poly(N-isopropylacrylamide)-based block copolymers on culture insert membranes for temperature-controlled cell adhesion, J. Mater. Chem. B 8 (34) (2020) 7812-7821 |
[1] | Pan Wang, Mengdei Zhou, Zhuangxin Wei, Lu Liu, Tao Cheng, Xiaohua Tian, Jianming Pan. Preparation of bowl-shaped polydopamine surface imprinted polymer composite adsorbent for specific separation of 2′-deoxyadenosine[J]. 中国化学工程学报, 2023, 60(8): 69-79. |
[2] | Xinxin Li, Hongwei Shao, Shichao Zhang, Yong Li, Jingjing Gu, Qiang Huang, Jin Ran. Two dimensional MoS2 finding its way towards constructing high-performance alkaline recovery membranes[J]. 中国化学工程学报, 2023, 60(8): 155-164. |
[3] | Wenwen Zhang, Zhigang Xue, Liyun Cui, Haoliang Gao, Di Zhao, Rongfei Zhou, Weihong Xing. Synthesis of an IMF zeolite membrane for the separation of xylene isomer[J]. 中国化学工程学报, 2023, 60(8): 205-211. |
[4] | Hammad Saulat, Jianhua Yang, Tao Yan, Waseem Raza, Wensen Song, Gaohong He. Tungsten incorporated mobil-type eleven zeolite membranes: Facile synthesis and tuneable wettability for highly efficient separation of oil/water mixtures[J]. 中国化学工程学报, 2023, 60(8): 242-252. |
[5] | Hui Yi Leong, Xiao-Qian Fu, Xiang-Yu Liu, Shan-Jing Yao, Dong-Qiang Lin. Characterisation and separation of infectious bursal disease virus-like particles using aqueous two-phase systems[J]. 中国化学工程学报, 2023, 57(5): 72-78. |
[6] | Xingzhong Li, Kunlin Yu, Zibo He, Bo Liu, Rongfei Zhou, Weihong Xing. Improved SSZ-13 thin membranes fabricated by seeded-gel approach for efficient CO2 capture[J]. 中国化学工程学报, 2023, 56(4): 273-280. |
[7] | Taoyan Mao, Runhui Xiao, Peng Liu, Jiale Chen, Junqiang Luo, Su Luo, Fengwei Xie, Cheng Zheng. Facile fabrication of durable superhydrophobic fabrics by silicon polyurethane membrane for oil/water separation[J]. 中国化学工程学报, 2023, 55(3): 73-83. |
[8] | Tutuk Djoko Kusworo, Monica Yulfarida, Andri Cahyo Kumoro, Dani Puji Utomo. Purification of bioethanol fermentation broth using hydrophilic PVA crosslinked PVDF-GO/TiO2 membrane[J]. 中国化学工程学报, 2023, 55(3): 123-136. |
[9] | Xi Zhang, Xiaodong Wang, Wei Huang. Separation of a C3H6/C2H4 mixture using Pebax® 2533/PEG600 blend membranes[J]. 中国化学工程学报, 2023, 54(2): 192-198. |
[10] | Qingyue Han, Suqing Wang, Wenhan Kong, Bing Ji, Haihui Wang. Composite polymer electrolyte reinforced by graphitic carbon nitride nanosheets for room-temperature all-solid-state lithium batteries[J]. 中国化学工程学报, 2023, 54(2): 257-263. |
[11] | Jiacheng Chen, Jincheng Wang, Shuhong Li, Kailing Xiang, Shiqiang Song. Pyridine terminated polyurethane dendrimer/chlorinated butyl rubber nanocomposites with excellent mechanical and damping properties[J]. 中国化学工程学报, 2023, 53(1): 211-221. |
[12] | Luyao Guo, Mengru Wang, Ronghe Lin, Jiaxin Ma, Shuanghao Zheng, Xiaoling Mou, Jun Zhang, Zhong-Shuai Wu, Yunjie Ding. Assembly of N- and P-functionalized carbon nanostructures derived from precursor-defined ternary copolymers for high-capacity lithium-ion batteries[J]. 中国化学工程学报, 2023, 53(1): 280-288. |
[13] | Sihan Huang, Yaohan Chen, Xue Wang, Jing Guo, Yonggang Li, Lei Dai, Shenghai Li, Suobo Zhang. Preparation of antifouling ultrafiltration membranes from copolymers of polysulfone and zwitterionic poly(arylene ether sulfone)s[J]. 中国化学工程学报, 2022, 49(9): 100-110. |
[14] | Ping Zhang, Chao Gong, Tao Zhou, Peng Du, Jieyu Song, Mengyang Shi, Xuerui Wang, Xuehong Gu. Helium extraction from natural gas using DD3R zeolite membranes[J]. 中国化学工程学报, 2022, 49(9): 122-129. |
[15] | Juanjuan Liu, Xiaolong Lu, Guiming Shu, Ke Li, Shuyun Zheng, Xiao Kong, Tao Li, Jun Yang. The facile method developed for preparing polyvinylidene fluoride plasma separation membrane via macromolecular interaction[J]. 中国化学工程学报, 2022, 49(9): 140-149. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||