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ISSN 打印: 0743-4863

ISSN 在线: 2162-660X

The Impact Factor measures the average number of citations received in a particular year by papers published in the journal during the two preceding years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) IF: 2.7 To calculate the five year Impact Factor, citations are counted in 2017 to the previous five years and divided by the source items published in the previous five years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) 5-Year IF: 3.6 The Immediacy Index is the average number of times an article is cited in the year it is published. The journal Immediacy Index indicates how quickly articles in a journal are cited. Immediacy Index: 0.8 The Eigenfactor score, developed by Jevin West and Carl Bergstrom at the University of Washington, is a rating of the total importance of a scientific journal. Journals are rated according to the number of incoming citations, with citations from highly ranked journals weighted to make a larger contribution to the eigenfactor than those from poorly ranked journals. Eigenfactor: 0.00023 The Journal Citation Indicator (JCI) is a single measurement of the field-normalized citation impact of journals in the Web of Science Core Collection across disciplines. The key words here are that the metric is normalized and cross-disciplinary. JCI: 0.39 SJR: 0.42 SNIP: 0.89 CiteScore™:: 5.5 H-Index: 79

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Phase-Transition Polymers for Drug Delivery

卷 16, 册 4, 1999, pp. 385-423
DOI: 10.1615/CritRevTherDrugCarrierSyst.v16.i4.20
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摘要

Phase-transition polymers show changes in response to external stimuli, such as pH, temperature, light, metabolite, and electric current. Based on the stimuli-induced phase transition, many applications have been developed to improve drug delivery. This paper summarizes various phase-transition polymers and their applications relevant to modulated-drug delivery.

对本文的引用
  1. Namkung Sun, Chu Chih-Chang, Partially biodegradable temperature- and pH-responsive poly(N-isopropylacrylamide)/dextran-maleic acid hydrogels: formulation and controlled drug delivery of doxorubicin, Journal of Biomaterials Science, Polymer Edition, 18, 7, 2007. Crossref

  2. Zhang Ran, Shi Tongfei, Li Hongfei, An Lijia, Effect of the concentration on sol–gel transition of telechelic polyelectrolytes, The Journal of Chemical Physics, 134, 3, 2011. Crossref

  3. Confortini Ondine, Du Prez Filip E., Functionalized Thermo-Responsive Poly(vinyl ether) by Living Cationic Random Copolymerization of Methyl Vinyl Ether and 2-Chloroethyl Vinyl Ether, Macromolecular Chemistry and Physics, 208, 17, 2007. Crossref

  4. Polymer Solutions and Gels, in Surfactants and Polymers in Drug Delivery, 122, 2002. Crossref

  5. Raula Janne, Eerikäinen Hannele, Lähde Anna, Kauppinen Esko, Aerosol Flow Reactor Method for the Synthesis of Multicomponent Drug Nano- and Microparticles, in Nanoparticulate Drug Delivery Systems, 20075578, 2007. Crossref

  6. Alvarez-Lorenzo Carmen, Concheiro Angel, , 12, 2006. Crossref

  7. Prabaharan Mani, Mano João F., Stimuli-Responsive Hydrogels Based on Polysaccharides Incorporated with Thermo-Responsive Polymers as Novel Biomaterials, Macromolecular Bioscience, 6, 12, 2006. Crossref

  8. Virtanen Janne, Tenhu Heikki, Studies on copolymerization ofn-isopropylacrylamide and glycidyl methacrylate, Journal of Polymer Science Part A: Polymer Chemistry, 39, 21, 2001. Crossref

  9. Traitel Tamar, Kost Joseph, Lapidot Smadar A., Modeling ionic hydrogels swelling: Characterization of the non-steady state, Biotechnology and Bioengineering, 84, 1, 2003. Crossref

  10. Liu Baorui, Yang Mi, Li Xiaolin, Qian Xiaoping, Shen Zetian, Ding Yitao, Yu Lixia, Enhanced Efficiency of Thermally Targeted Taxanes Delivery in a Human Xenograft Model of Gastric Cancer, Journal of Pharmaceutical Sciences, 97, 8, 2008. Crossref

  11. Lee Seung Yong, Lee Yuhan, Chae Su Young, Park Tae Gwan, Ahn Cheol-Hee, Blends of Oppositely Charged PEG-PPG-PEG Copolymers Displaying Improved Physical Thermogelling Properties, Macromolecular Chemistry and Physics, 211, 6, 2010. Crossref

  12. Lee Seung Yong, Lee Yuhan, Kim Ju Eun, Park Tae Gwan, Ahn Cheol-Hee, A novel pH-sensitive PEG-PPG-PEG copolymer displaying a closed-loop sol–gel–sol transition, Journal of Materials Chemistry, 19, 43, 2009. Crossref

  13. Chu Liang-Yin, Controlled release systems for insulin delivery, Expert Opinion on Therapeutic Patents, 15, 9, 2005. Crossref

  14. Cao Shengguang, Hu Binghuan, Liu Haiqing, Synthesis of pH-responsive crosslinked poly[styrene-co-(maleic sodium anhydride)] and cellulose composite hydrogel nanofibers by electrospinning, Polymer International, 58, 5, 2009. Crossref

  15. Oh Kyung T., Yin Haiqing, Lee Eun Seong, Bae You Han, Polymeric nanovehicles for anticancer drugs with triggering release mechanisms, Journal of Materials Chemistry, 17, 38, 2007. Crossref

  16. Underwood C., van Eps A.W., Nanomedicine and veterinary science: The reality and the practicality, The Veterinary Journal, 193, 1, 2012. Crossref

  17. Siemoneit Ulf, Schmitt Christoph, Alvarez-Lorenzo Carmen, Luzardo Asteria, Otero-Espinar Francisco, Concheiro Angel, Blanco-Méndez José, Acrylic/cyclodextrin hydrogels with enhanced drug loading and sustained release capability, International Journal of Pharmaceutics, 312, 1-2, 2006. Crossref

  18. Oh Keun Sang, Han Sung Kyun, Choi Young Whan, Lee Jin Ho, Lee Ji Youl, Yuk Soon Hong, Hydrogen-bonded polymer gel and its application as a temperature-sensitive drug delivery system, Biomaterials, 25, 12, 2004. Crossref

  19. Puoci Francesco, Cirillo Giuseppe, Curcio Manuela, Parisi Ortensia Ilaria, Iemma Francesca, Picci Nevio, Molecularly imprinted polymers in drug delivery: state of art and future perspectives, Expert Opinion on Drug Delivery, 8, 10, 2011. Crossref

  20. Alvarez-Lorenzo Carmen, Concheiro Angel, Reversible adsorption by a pH- and temperature-sensitive acrylic hydrogel, Journal of Controlled Release, 80, 1-3, 2002. Crossref

  21. Wang Feng, Zhu Yi, Gao Changyou, Fabrication of complex microcapsules containing poly(allylamine)-g-poly(N-isopropylacrylamide) and their thermal responsivity, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 349, 1-3, 2009. Crossref

  22. Meyer D.E., Shin B.C., Kong G.A., Dewhirst M.W., Chilkoti A., Drug targeting using thermally responsive polymers and local hyperthermia, Journal of Controlled Release, 74, 1-3, 2001. Crossref

  23. Alvarez-Lorenzo Carmen, Moya-Ortega Maria D., Loftsson Thorsteinn, Concheiro Angel, Torres-Labandeira Juan J., Cyclodextrin-Based Hydrogels, in Cyclodextrins in Pharmaceutics, Cosmetics, and Biomedicine, 2011. Crossref

  24. Kim Eun Jung, Cho Sun Hang, Yuk Soon Hong, Polymeric microspheres composed of pH/temperature-sensitive polymer complex, Biomaterials, 22, 18, 2001. Crossref

  25. Tanna S, Sahota T, Clark J, Taylor M J, Covalent coupling of concanavalin A to a Carbopol 934P and 941P carrier in glucose-sensitive gels for delivery of insulin, Journal of Pharmacy and Pharmacology, 54, 11, 2010. Crossref

  26. Yang Lin, Alexandridis Paschalis, Physicochemical aspects of drug delivery and release from polymer-based colloids, Current Opinion in Colloid & Interface Science, 5, 1-2, 2000. Crossref

  27. Alvarez-Lorenzo Carmen, Concheiro Angel, Molecularly imprinted polymers for drug delivery, Journal of Chromatography B, 804, 1, 2004. Crossref

  28. Rzaev Zakir M.O., Dinçer Sevil, Pişkin Erhan, Functional copolymers of N-isopropylacrylamide for bioengineering applications, Progress in Polymer Science, 32, 5, 2007. Crossref

  29. Kanjilal Baishali, Dasgupta Rajdeep, Banthia Ajit Kumar, Iontophoretic study on Salicylic acid and Disprin loaded polymer hydrogels, International Journal of Plastics Technology, 15, S1, 2011. Crossref

  30. Alvarez-Lorenzo Carmen, Concheiro Angel, Dubovik Alexander S., Grinberg Natalia V., Burova Tatiana V., Grinberg Valerij Ya., Temperature-sensitive chitosan-poly(N-isopropylacrylamide) interpenetrated networks with enhanced loading capacity and controlled release properties, Journal of Controlled Release, 102, 3, 2005. Crossref

  31. Chilkoti Ashutosh, Dreher Matthew R, Meyer Dan E, Raucher Drazen, Targeted drug delivery by thermally responsive polymers, Advanced Drug Delivery Reviews, 54, 5, 2002. Crossref

  32. Murdan Sudaxshina, Electro-responsive drug delivery from hydrogels, Journal of Controlled Release, 92, 1-2, 2003. Crossref

  33. Yegin Yagmur, Yilmaz Gökhan, Karakoç Ömer, Yegin Cengiz, Çete Servet, Akbulut Mustafa, Sari Müfrettin Murat, Molecularly Imprinted Materials for Controlled Release Systems, in Advanced Molecularly Imprinting Materials, 2016. Crossref

  34. Prabaharan Mani, Review Paper: Chitosan Derivatives as Promising Materials for Controlled Drug Delivery, Journal of Biomaterials Applications, 23, 1, 2008. Crossref

  35. García Sánchez Luis Guillermo de Jesús, Cortés Ortega Jorge Alberto, Síntesis de hidrogeles de acrilamida en soluciones acuosas de etanol, Polímeros, 24, 6, 2014. Crossref

  36. Komiyama Makoto, Mori Taizo, Ariga Katsuhiko, Molecular Imprinting: Materials Nanoarchitectonics with Molecular Information, Bulletin of the Chemical Society of Japan, 91, 7, 2018. Crossref

  37. Omer Ahmed M., Tamer Tamer M., Khalifa Randa E., Gaber Samar A., Mohy Eldin Mohamed S., Smart Biopolymer Hydrogels Developments for Biotechnological Applications, in Cellulose-Based Superabsorbent Hydrogels, 2018. Crossref

  38. Omer Ahmed M., Tamer Tamer M., Khalifa Randa E., Gaber Samar A., Mohy Eldin Mohamed S., Smart Biopolymer Hydrogels Developments for Biotechnological Applications, in Cellulose-Based Superabsorbent Hydrogels, 2019. Crossref

  39. Kang Han Chang, Lee Eun Seong, Na Kun, Bae You Han, Stimuli-Sensitive Nanosystems: For Drug and Gene Delivery, in Multifunctional Pharmaceutical Nanocarriers, 4, 2008. Crossref

  40. Lozinsky Vladimir I., Approaches to Chemical Synthesis of Protein-Like Copolymers, in Conformation-Dependent Design of Sequences in Copolymers II, 196, 2006. Crossref

  41. Alvarez-Lorenzo Carmen, Concheiro Angel, Effects of Surfactants on Gel Behavior, American Journal of Drug Delivery, 1, 2, 2003. Crossref

  42. Traitel Tamar, Kost Joseph, pH-Responsive Hydrogels: Swelling Model, in Biomaterials, 553, 2004. Crossref

  43. Witos Joanna, Karjalainen Erno, Tenhu Heikki, Wiedmer Susanne K., CE and asymmetrical flow‐field flow fractionation studies of polymer interactions with surfaces and solutes reveal conformation changes of polymers, Journal of Separation Science, 43, 12, 2020. Crossref

  44. Zhang Ran, Shi Tongfei, An Lijia, Huang Qingrong, Salt Effects on Sol–Gel Transition of Telechelic Polyelectrolytes in Aqueous Solutions, Macromolecules, 45, 1, 2012. Crossref

  45. Wang Xuemei, Huang Pengfei, Zhou Zheng, Outlook, in Molecularly Imprinted Polymers as Advanced Drug Delivery Systems, 2021. Crossref

  46. Virtanen Janne, Arotçaréna Michel, Heise Bettina, Ishaya Sultana, Laschewsky André, Tenhu Heikki, Dissolution and Aggregation of a Poly(NIPA-block-sulfobetaine) Copolymer in Water and Saline Aqueous Solutions, Langmuir, 18, 14, 2002. Crossref

  47. Zhang Ran, Shi Tongfei, An Lijia, Sun Zhaoyan, Tong Zhen, Conformational Study on Sol−Gel Transition in Telechelic Polyelectrolytes Solutions, The Journal of Physical Chemistry B, 114, 10, 2010. Crossref

  48. Virtanen Janne, Tenhu Heikki, Thermal Properties of Poly(N-isopropylacrylamide)-g-poly(ethylene oxide) in Aqueous Solutions:  Influence of the Number and Distribution of the Grafts, Macromolecules, 33, 16, 2000. Crossref

  49. Gimpel Karolina, Luliński Piotr, Maciejewska Dorota, WYBRANE TECHNOLOGIE OPTYMALIZUJĄCE DOSTARCZANIE SUBSTANCJI CZYNNYCH W NOWOCZESNYCH POSTACIACH LEKU, Prospects in Pharmaceutical Sciences, 7, 3, 2009. Crossref

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