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2015 | OriginalPaper | Buchkapitel

2. Biodegradable Natural Polymers

verfasst von : Sindhu Doppalapudi, Sameer Katiyar, Abraham J. Domb, Wahid Khan

Erschienen in: Advanced Polymers in Medicine

Verlag: Springer International Publishing

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Abstract

Natural polymers have proved to be useful in versatile applications, including controlled drug delivery, gene delivery, regenerative medicine, and other biomedical applications. These polymers are obtained primarily from plants, animals, and microbial sources which are again classified based on their chemistry into polysaccharide, protein, polyester, polyamide-based polymers. The in-depth surveys of these polymers reveals their malleable nature to be modified for various applications. Also, their responsive chemical linkages provide ease of biodegradability, which in turn makes them biocompatible. Their desirable features of ample abundance, biocompatibility, and biodegradability make them potential material for various uses. The eco-friendly profile of these polymers makes researchers inclined towards alluring natural polymers. This chapter describes natural polymers obtained from different sources and provides insights on the origin, chemistry, key features, applications, and marketed products of natural polymers that are being explored as adaptable materials in multifaceted areas.

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Literatur
1.
Zurück zum Zitat Laza-Knoerr, A., Gref, R., Couvreur, P.: Cyclodextrins for drug delivery. J. Drug Target. 18(9), 645–656 (2010) Laza-Knoerr, A., Gref, R., Couvreur, P.: Cyclodextrins for drug delivery. J. Drug Target. 18(9), 645–656 (2010)
2.
Zurück zum Zitat Challa, R., Ahuja, A., Ali, J., Khar, R.: Cyclodextrins in drug delivery: an updated review. Aaps Pharmscitech 6(2), E329–E357 (2005) Challa, R., Ahuja, A., Ali, J., Khar, R.: Cyclodextrins in drug delivery: an updated review. Aaps Pharmscitech 6(2), E329–E357 (2005)
3.
Zurück zum Zitat Muntimadugu, E., Ickowicz, D.E., Domb, A.J., Khan, W.: Polysaccharide biomaterials. Isr. J. Chem. 53(9–10), 787–794 (2013) Muntimadugu, E., Ickowicz, D.E., Domb, A.J., Khan, W.: Polysaccharide biomaterials. Isr. J. Chem. 53(9–10), 787–794 (2013)
4.
Zurück zum Zitat Vyas, A., Saraf, S., Saraf, S.: Cyclodextrin based novel drug delivery systems. J. Incl. Phenom. Macrocycl. Chem. 62(1–2), 23–42 (2008) Vyas, A., Saraf, S., Saraf, S.: Cyclodextrin based novel drug delivery systems. J. Incl. Phenom. Macrocycl. Chem. 62(1–2), 23–42 (2008)
5.
Zurück zum Zitat Loftsson, T., Jarho, P., Masson, M., Järvinen, T.: Cyclodextrins in drug delivery. Expert Opin. Drug Deliv. 2(2), 335–351 (2005) Loftsson, T., Jarho, P., Masson, M., Järvinen, T.: Cyclodextrins in drug delivery. Expert Opin. Drug Deliv. 2(2), 335–351 (2005)
6.
Zurück zum Zitat Khan, W., Muthupandian, S., Domb, A.J.: Cationic polymers for the delivery of therapeutic nucleotides. Nanotechnology for the Delivery of Therapeutic Nucleic Acids. Pan Stanford Publishing, Singapore (2013) Khan, W., Muthupandian, S., Domb, A.J.: Cationic polymers for the delivery of therapeutic nucleotides. Nanotechnology for the Delivery of Therapeutic Nucleic Acids. Pan Stanford Publishing, Singapore (2013)
7.
Zurück zum Zitat Swami, R., Singh, I., Khan, W., Ramakrishna, S.: Diseases originate and terminate by genes: unraveling nonviral gene delivery. Drug Deliv. Transl. Res. 3(6), 593–610 (2013) Swami, R., Singh, I., Khan, W., Ramakrishna, S.: Diseases originate and terminate by genes: unraveling nonviral gene delivery. Drug Deliv. Transl. Res. 3(6), 593–610 (2013)
8.
Zurück zum Zitat Khan, W., Hosseinkhani, H., Ickowicz, D., Hong, P.D., Yu, D.S., Domb, A.J.: Polysaccharide gene transfection agents. Acta Biomater. 8(12), 4224–4232 (2012). S1742-7061(12)00459-X[pii]/j.actbio.2012.09.022 Khan, W., Hosseinkhani, H., Ickowicz, D., Hong, P.D., Yu, D.S., Domb, A.J.: Polysaccharide gene transfection agents. Acta Biomater. 8(12), 4224–4232 (2012). S1742-7061(12)00459-X[pii]/j.actbio.2012.09.022
9.
Zurück zum Zitat Merkus, F., Verhoef, J., Marttin, E., Romeijn, S., Van der Kuy, P., Hermens, W., Schipper, N.: Cyclodextrins in nasal drug delivery. Adv. Drug Deliv. Rev. 36(1), 41–57 (1999) Merkus, F., Verhoef, J., Marttin, E., Romeijn, S., Van der Kuy, P., Hermens, W., Schipper, N.: Cyclodextrins in nasal drug delivery. Adv. Drug Deliv. Rev. 36(1), 41–57 (1999)
10.
Zurück zum Zitat Loftsson, T., Brewster, M.E., Másson, M.: Role of cyclodextrins in improving oral drug delivery. Am. J. Drug Deliv. 2(4), 261–275 (2004) Loftsson, T., Brewster, M.E., Másson, M.: Role of cyclodextrins in improving oral drug delivery. Am. J. Drug Deliv. 2(4), 261–275 (2004)
11.
Zurück zum Zitat Redenti, E., Pietra, C., Gerloczy, A., Szente, L.: Cyclodextrins in oligonucleotide delivery. Adv. Drug Deliv. Rev. 53(2), 235–244 (2001) Redenti, E., Pietra, C., Gerloczy, A., Szente, L.: Cyclodextrins in oligonucleotide delivery. Adv. Drug Deliv. Rev. 53(2), 235–244 (2001)
12.
Zurück zum Zitat Neill, M.J., Mahony, A.M., Byrne, C., Darcy, R., Driscoll, C.M.: Gastrointestinal gene delivery by Cyclodextrins—In vitro quantification of extracellular barriers. Int. J. Pharm. 456(2), 390–399 (2013) Neill, M.J., Mahony, A.M., Byrne, C., Darcy, R., Driscoll, C.M.: Gastrointestinal gene delivery by Cyclodextrins—In vitro quantification of extracellular barriers. Int. J. Pharm. 456(2), 390–399 (2013)
13.
Zurück zum Zitat Lai, W.-F.: Cyclodextrins in non-viral gene delivery. Biomaterials 35(1), 401–411 (2014) Lai, W.-F.: Cyclodextrins in non-viral gene delivery. Biomaterials 35(1), 401–411 (2014)
14.
Zurück zum Zitat Tan, H., Qin, F., Chen, D., Han, S., Lu, W., Yao, X.: Study of glycol chitosan-carboxymethyl β-cyclodextrins as anticancer drugs carrier. Carbohydr. Polym. 93(2), 679–685 (2013) Tan, H., Qin, F., Chen, D., Han, S., Lu, W., Yao, X.: Study of glycol chitosan-carboxymethyl β-cyclodextrins as anticancer drugs carrier. Carbohydr. Polym. 93(2), 679–685 (2013)
15.
Zurück zum Zitat Matsuda, H., Arima, H.: Cyclodextrins in transdermal and rectal delivery. Adv. Drug Deliv. Rev. 36(1), 81–99 (1999) Matsuda, H., Arima, H.: Cyclodextrins in transdermal and rectal delivery. Adv. Drug Deliv. Rev. 36(1), 81–99 (1999)
16.
Zurück zum Zitat Loftssona, T., Jarvinen, T.: Cyclodextrins in ophthalmic drug delivery. Adv. Drug Deliv. Rev. 36(1), 59–79 (1999) Loftssona, T., Jarvinen, T.: Cyclodextrins in ophthalmic drug delivery. Adv. Drug Deliv. Rev. 36(1), 59–79 (1999)
17.
Zurück zum Zitat Bibby, D.C., Davies, N.M., Tucker, I.G.: Mechanisms by which cyclodextrins modify drug release from polymeric drug delivery systems. Int. J. Pharm. 197(1), 1–11 (2000) Bibby, D.C., Davies, N.M., Tucker, I.G.: Mechanisms by which cyclodextrins modify drug release from polymeric drug delivery systems. Int. J. Pharm. 197(1), 1–11 (2000)
18.
Zurück zum Zitat Nishiyama, Y., Langan, P., Chanzy, H.: Crystal structure and hydrogen-bonding system in cellulose Iβ from synchrotron X-ray and neutron fiber diffraction. J. Am. Chem. Soc. 124(31), 9074–9082 (2002) Nishiyama, Y., Langan, P., Chanzy, H.: Crystal structure and hydrogen-bonding system in cellulose Iβ from synchrotron X-ray and neutron fiber diffraction. J. Am. Chem. Soc. 124(31), 9074–9082 (2002)
19.
Zurück zum Zitat Aguilera J.M., Stanley D.W.: Microstructural principles of food processing and engineering, pp. 166–168. Springer, New York (1999) Aguilera J.M., Stanley D.W.: Microstructural principles of food processing and engineering, pp. 166–168. Springer, New York (1999)
20.
Zurück zum Zitat Cosgrove, D.J.: Growth of the plant cell wall. Nat. Rev. Mol. Cell Biol. 6(11), 850–861 (2005) Cosgrove, D.J.: Growth of the plant cell wall. Nat. Rev. Mol. Cell Biol. 6(11), 850–861 (2005)
21.
Zurück zum Zitat Hon, D.N.S.: Cellulose and its derivatives: structures, reactions, and medical uses. In: Severian D. (ed.) Polysaccharides in Medicinal Applications, pp. 87–105. Marcel Dekker, New York (1996) Hon, D.N.S.: Cellulose and its derivatives: structures, reactions, and medical uses. In: Severian D. (ed.) Polysaccharides in Medicinal Applications, pp. 87–105. Marcel Dekker, New York (1996)
22.
Zurück zum Zitat Conti, S., Maggi, L., Segale, L., Ochoa Machiste, E., Conte, U., Grenier, P., Vergnault, G.: Matrices containing NaCMC and HPMC: 1. Dissolution performance characterization. Int. J. Pharm. 333(1), 136–142 (2007) Conti, S., Maggi, L., Segale, L., Ochoa Machiste, E., Conte, U., Grenier, P., Vergnault, G.: Matrices containing NaCMC and HPMC: 1. Dissolution performance characterization. Int. J. Pharm. 333(1), 136–142 (2007)
23.
Zurück zum Zitat Jamzad, S., Fassihi, R.: Development of a controlled release low dose class II drug-Glipizide. Int. J. Pharm. 312(1), 24–32 (2006) Jamzad, S., Fassihi, R.: Development of a controlled release low dose class II drug-Glipizide. Int. J. Pharm. 312(1), 24–32 (2006)
24.
Zurück zum Zitat Scheller, H.V., Ulvskov, P.: Hemicelluloses. Plant Biol. 61(1), 263–289 (2010) Scheller, H.V., Ulvskov, P.: Hemicelluloses. Plant Biol. 61(1), 263–289 (2010)
25.
Zurück zum Zitat Lerouxel, O., Cavalier, D.M., Liepman, A.H., Keegstra, K.: Biosynthesis of plant cell wall polysaccharides—a complex process. Curr. Opin. Plant Biol. 9(6), 621–630 (2006) Lerouxel, O., Cavalier, D.M., Liepman, A.H., Keegstra, K.: Biosynthesis of plant cell wall polysaccharides—a complex process. Curr. Opin. Plant Biol. 9(6), 621–630 (2006)
26.
Zurück zum Zitat Elvira, C., Mano, J., San Roman, J., Reis, R.: Starch-based biodegradable hydrogels with potential biomedical applications as drug delivery systems. Biomaterials 23(9), 1955–1966 (2002) Elvira, C., Mano, J., San Roman, J., Reis, R.: Starch-based biodegradable hydrogels with potential biomedical applications as drug delivery systems. Biomaterials 23(9), 1955–1966 (2002)
27.
Zurück zum Zitat Malafaya, P., Elvira, C., Gallardo, A., San Roman, J., Reis, R.: Porous starch-based drug delivery systems processed by a microwave route. J. Biomater. Sci. Polym. Ed. 12(11), 1227–1241 (2001) Malafaya, P., Elvira, C., Gallardo, A., San Roman, J., Reis, R.: Porous starch-based drug delivery systems processed by a microwave route. J. Biomater. Sci. Polym. Ed. 12(11), 1227–1241 (2001)
28.
Zurück zum Zitat Santander-Ortega, M., Stauner, T., Loretz, B., Ortega-Vinuesa, J., Bastos-González, D., Wenz, G., Schaefer, U., Lehr, C.: Nanoparticles made from novel starch derivatives for transdermal drug delivery. J. Controlled Release 141(1), 85–92 (2010) Santander-Ortega, M., Stauner, T., Loretz, B., Ortega-Vinuesa, J., Bastos-González, D., Wenz, G., Schaefer, U., Lehr, C.: Nanoparticles made from novel starch derivatives for transdermal drug delivery. J. Controlled Release 141(1), 85–92 (2010)
29.
Zurück zum Zitat Vilivalam, V.D., Illum, L., Iqbal, K.: Starch capsules: an alternative system for oral drug delivery. Pharm. Sci. Technol. Today 3(2), 64–69 (2000) Vilivalam, V.D., Illum, L., Iqbal, K.: Starch capsules: an alternative system for oral drug delivery. Pharm. Sci. Technol. Today 3(2), 64–69 (2000)
30.
Zurück zum Zitat Izawa, K., Akiyama, K., Abe, H., Togashi, Y., Hasegawa, T.: Inulin-based glycopolymer: its preparation, lectin-affinity and gellation property. Bioorg. Med. Chem. 21(11), 2895–2902 (2013) Izawa, K., Akiyama, K., Abe, H., Togashi, Y., Hasegawa, T.: Inulin-based glycopolymer: its preparation, lectin-affinity and gellation property. Bioorg. Med. Chem. 21(11), 2895–2902 (2013)
31.
Zurück zum Zitat Akhgari, A., Farahmand, F., Afrasiabi Garekani, H., Sadeghi, F., Vandamme, T.F.: Permeability and swelling studies on free films containing inulin in combination with different polymethacrylates aimed for colonic drug delivery. Eur. J. Pharm. Sci. 28(4), 307–314 (2006) Akhgari, A., Farahmand, F., Afrasiabi Garekani, H., Sadeghi, F., Vandamme, T.F.: Permeability and swelling studies on free films containing inulin in combination with different polymethacrylates aimed for colonic drug delivery. Eur. J. Pharm. Sci. 28(4), 307–314 (2006)
32.
Zurück zum Zitat Maris, B., Verheyden, L., Van Reeth, K., Samyn, C., Augustijns, P., Kinget, R., Van den Mooter, G.: Synthesis and characterisation of inulin-azo hydrogels designed for colon targeting. Int. J. Pharm. 213(1), 143–152 (2001) Maris, B., Verheyden, L., Van Reeth, K., Samyn, C., Augustijns, P., Kinget, R., Van den Mooter, G.: Synthesis and characterisation of inulin-azo hydrogels designed for colon targeting. Int. J. Pharm. 213(1), 143–152 (2001)
33.
Zurück zum Zitat Pitarresi, G., Giacomazza, D., Triolo, D., Giammona, G., San Biagio, P.L.: Rheological characterization and release properties of inulin-based hydrogels. Carbohydr. Polym. 88(3), 1033–1040 (2012) Pitarresi, G., Giacomazza, D., Triolo, D., Giammona, G., San Biagio, P.L.: Rheological characterization and release properties of inulin-based hydrogels. Carbohydr. Polym. 88(3), 1033–1040 (2012)
34.
Zurück zum Zitat Mohnen, D.: Pectin structure and biosynthesis. Curr. Opin. Plant Biol. 11(3), 266–277 (2008) Mohnen, D.: Pectin structure and biosynthesis. Curr. Opin. Plant Biol. 11(3), 266–277 (2008)
35.
Zurück zum Zitat Liu, L., Fishman, M.L., Kost, J., Hicks, K.B.: Pectin-based systems for colon-specific drug delivery via oral route. Biomaterials 24(19), 3333–3343 (2003) Liu, L., Fishman, M.L., Kost, J., Hicks, K.B.: Pectin-based systems for colon-specific drug delivery via oral route. Biomaterials 24(19), 3333–3343 (2003)
36.
Zurück zum Zitat Jung, J., Arnold, R.D., Wicker, L.: Pectin and charge modified pectin hydrogel beads as a colon-targeted drug delivery carrier. Colloids Surf. B Biointerfaces 104, 116–121 (2013) Jung, J., Arnold, R.D., Wicker, L.: Pectin and charge modified pectin hydrogel beads as a colon-targeted drug delivery carrier. Colloids Surf. B Biointerfaces 104, 116–121 (2013)
37.
Zurück zum Zitat Munjeri, O., Collett, J., Fell, J.: Hydrogel beads based on amidated pectins for colon-specific drug delivery: the role of chitosan in modifying drug release. J. Controlled Release 46(3), 273–278 (1997) Munjeri, O., Collett, J., Fell, J.: Hydrogel beads based on amidated pectins for colon-specific drug delivery: the role of chitosan in modifying drug release. J. Controlled Release 46(3), 273–278 (1997)
38.
Zurück zum Zitat Fernandez-Hervas, M., Fell, J.: Pectin/chitosan mixtures as coatings for colon-specific drug delivery: an in vitro evaluation. Int. J. Pharm. 169(1), 115–119 (1998) Fernandez-Hervas, M., Fell, J.: Pectin/chitosan mixtures as coatings for colon-specific drug delivery: an in vitro evaluation. Int. J. Pharm. 169(1), 115–119 (1998)
39.
Zurück zum Zitat Itoh, K., Yahaba, M., Takahashi, A., Tsuruya, R., Miyazaki, S., Dairaku, M., Togashi, M., Mikami, R., Attwood, D.: In situ gelling xyloglucan/pectin formulations for oral sustained drug delivery. Int. J. Pharm. 356(1), 95–101 (2008) Itoh, K., Yahaba, M., Takahashi, A., Tsuruya, R., Miyazaki, S., Dairaku, M., Togashi, M., Mikami, R., Attwood, D.: In situ gelling xyloglucan/pectin formulations for oral sustained drug delivery. Int. J. Pharm. 356(1), 95–101 (2008)
40.
Zurück zum Zitat Dutta, R.K., Sahu, S.: Development of oxaliplatin encapsulated in magnetic nanocarriers of pectin as a potential targeted drug delivery for cancer therapy. Results Pharma Sci. 2, 38–45 (2012) Dutta, R.K., Sahu, S.: Development of oxaliplatin encapsulated in magnetic nanocarriers of pectin as a potential targeted drug delivery for cancer therapy. Results Pharma Sci. 2, 38–45 (2012)
41.
Zurück zum Zitat Smistad, G., Boyum, S., Alund, S.J., Samuelsen, A.B.C., Hiorth, M.: The potential of pectin as a stabilizer for liposomal drug delivery systems. Carbohydr. Polym. 90(3), 1337–1344 (2012) Smistad, G., Boyum, S., Alund, S.J., Samuelsen, A.B.C., Hiorth, M.: The potential of pectin as a stabilizer for liposomal drug delivery systems. Carbohydr. Polym. 90(3), 1337–1344 (2012)
42.
Zurück zum Zitat Kumar, P., Ramya, C., Jayakumar, R., Lakshmanan, V.-K.: Drug delivery and tissue engineering applications of biocompatible pectin-chitin/nano CaCO3 composite scaffolds. Colloids Surf. B Biointerfaces 106, 109–116 (2013) Kumar, P., Ramya, C., Jayakumar, R., Lakshmanan, V.-K.: Drug delivery and tissue engineering applications of biocompatible pectin-chitin/nano CaCO3 composite scaffolds. Colloids Surf. B Biointerfaces 106, 109–116 (2013)
43.
Zurück zum Zitat Luppi, B., Bigucci, F., Abruzzo, A., Corace, G., Cerchiara, T., Zecchi, V.: Freeze-dried chitosan/pectin nasal inserts for antipsychotic drug delivery. Eur. J. Pharm. Biopharm. 75(3), 381–387 (2010) Luppi, B., Bigucci, F., Abruzzo, A., Corace, G., Cerchiara, T., Zecchi, V.: Freeze-dried chitosan/pectin nasal inserts for antipsychotic drug delivery. Eur. J. Pharm. Biopharm. 75(3), 381–387 (2010)
44.
Zurück zum Zitat Katsuraya, K., Okuyama, K., Hatanaka, K., Oshima, R., Sato, T., Matsuzaki, K.: Constitution of konjac glucomannan: chemical analysis and 13C NMR spectroscopy. Carbohydr. Polym. 53(2), 183–189 (2003) Katsuraya, K., Okuyama, K., Hatanaka, K., Oshima, R., Sato, T., Matsuzaki, K.: Constitution of konjac glucomannan: chemical analysis and 13C NMR spectroscopy. Carbohydr. Polym. 53(2), 183–189 (2003)
45.
Zurück zum Zitat Fan, J., Wang, K., Liu, M., He, Z.: In vitro evaluations of konjac glucomannan and xanthan gum mixture as the sustained release material of matrix tablet. Carbohydr. Polym. 73(2), 241–247 (2008) Fan, J., Wang, K., Liu, M., He, Z.: In vitro evaluations of konjac glucomannan and xanthan gum mixture as the sustained release material of matrix tablet. Carbohydr. Polym. 73(2), 241–247 (2008)
46.
Zurück zum Zitat Alvarez-Mancenido, F., Landin, M., Lacik, I., Martinez-Pacheco, R.: Konjac glucomannan and konjac glucomannan/xanthan gum mixtures as excipients for controlled drug delivery systems. Diffusion of small drugs. Int. J. Pharm. 349(1), 11–18 (2008) Alvarez-Mancenido, F., Landin, M., Lacik, I., Martinez-Pacheco, R.: Konjac glucomannan and konjac glucomannan/xanthan gum mixtures as excipients for controlled drug delivery systems. Diffusion of small drugs. Int. J. Pharm. 349(1), 11–18 (2008)
47.
Zurück zum Zitat Wen, X., Wang, T., Wang, Z., Li, L., Zhao, C.: Preparation of konjac glucomannan hydrogels as DNA-controlled release matrix. Int. J. Biol. Macromol. 42(3), 256–263 (2008) Wen, X., Wang, T., Wang, Z., Li, L., Zhao, C.: Preparation of konjac glucomannan hydrogels as DNA-controlled release matrix. Int. J. Biol. Macromol. 42(3), 256–263 (2008)
48.
Zurück zum Zitat Prabaharan, M.: Prospective of guar gum and its derivatives as controlled drug delivery systems. Int. J. Biol. Macromol. 49(2), 117–124 (2011) Prabaharan, M.: Prospective of guar gum and its derivatives as controlled drug delivery systems. Int. J. Biol. Macromol. 49(2), 117–124 (2011)
49.
Zurück zum Zitat Shukla, R.K., Tiwari, A.: Carbohydrate polymers: Applications and recent advances in delivering drugs to the colon. Carbohydr. Polym. 88(2), 399–416 (2012) Shukla, R.K., Tiwari, A.: Carbohydrate polymers: Applications and recent advances in delivering drugs to the colon. Carbohydr. Polym. 88(2), 399–416 (2012)
50.
Zurück zum Zitat Krishnaiah, Y., Satyanarayana, S., Rama Prasad, Y., Narasimha Rao, S.: Evaluation of guar gum as a compression coat for drug targeting to colon. Int. J. Pharm. 171(2), 137–146 (1998) Krishnaiah, Y., Satyanarayana, S., Rama Prasad, Y., Narasimha Rao, S.: Evaluation of guar gum as a compression coat for drug targeting to colon. Int. J. Pharm. 171(2), 137–146 (1998)
51.
Zurück zum Zitat Prasad, Y., Krishnaiah, Y., Satyanarayana, S.: In vitro evaluation of guar gum as a carrier for colon-specific drug delivery. J. Controlled Release 51(2), 281–287 (1998) Prasad, Y., Krishnaiah, Y., Satyanarayana, S.: In vitro evaluation of guar gum as a carrier for colon-specific drug delivery. J. Controlled Release 51(2), 281–287 (1998)
52.
Zurück zum Zitat Li, X., Wu, W., Wang, J., Duan, Y.: The swelling behavior and network parameters of guar gum/poly (acrylic acid) semi-interpenetrating polymer network hydrogels. Carbohydr. Polym. 66(4), 473–479 (2006) Li, X., Wu, W., Wang, J., Duan, Y.: The swelling behavior and network parameters of guar gum/poly (acrylic acid) semi-interpenetrating polymer network hydrogels. Carbohydr. Polym. 66(4), 473–479 (2006)
53.
Zurück zum Zitat George, M., Abraham, T.: pH sensitive alginate-guar gum hydrogel for the controlled delivery of protein drugs. Int. J. Pharm. 335(1), 123–129 (2007) George, M., Abraham, T.: pH sensitive alginate-guar gum hydrogel for the controlled delivery of protein drugs. Int. J. Pharm. 335(1), 123–129 (2007)
54.
Zurück zum Zitat Krishnaiah, Y., Karthikeyan, R., Gouri Sankar, V., Satyanarayana, V.: Three-layer guar gum matrix tablet formulations for oral controlled delivery of highly soluble trimetazidine dihydrochloride. J. Controlled Release 81(1), 45–56 (2002) Krishnaiah, Y., Karthikeyan, R., Gouri Sankar, V., Satyanarayana, V.: Three-layer guar gum matrix tablet formulations for oral controlled delivery of highly soluble trimetazidine dihydrochloride. J. Controlled Release 81(1), 45–56 (2002)
55.
Zurück zum Zitat Krishnaiah, Y., Karthikeyan, R., Satyanarayana, V.: A three-layer guar gum matrix tablet for oral controlled delivery of highly soluble metoprolol tartrate. Int. J. Pharm. 241(2), 353–366 (2002) Krishnaiah, Y., Karthikeyan, R., Satyanarayana, V.: A three-layer guar gum matrix tablet for oral controlled delivery of highly soluble metoprolol tartrate. Int. J. Pharm. 241(2), 353–366 (2002)
56.
Zurück zum Zitat Li, X., Wu, W., Liu, W.: Synthesis and properties of thermo-responsive guar gum/poly (N-isopropylacrylamide) interpenetrating polymer network hydrogels. Carbohydr. Polym. 71(3), 394–402 (2008) Li, X., Wu, W., Liu, W.: Synthesis and properties of thermo-responsive guar gum/poly (N-isopropylacrylamide) interpenetrating polymer network hydrogels. Carbohydr. Polym. 71(3), 394–402 (2008)
57.
Zurück zum Zitat Thakur, S., Chauhan, G.S., Ahn, J.-H.: Synthesis of acryloyl guar gum and its hydrogel materials for use in the slow release of l-DOPA and l-tyrosine. Carbohydr. Polym. 76(4), 513–520 (2009) Thakur, S., Chauhan, G.S., Ahn, J.-H.: Synthesis of acryloyl guar gum and its hydrogel materials for use in the slow release of l-DOPA and l-tyrosine. Carbohydr. Polym. 76(4), 513–520 (2009)
58.
Zurück zum Zitat Ponder, G.R.: Arabinogalactan from Western larch. Part IV. Polymeric products of partial acid hydrolysis. Carbohydr. Polym. 36(1), 1–14 (1998) Ponder, G.R.: Arabinogalactan from Western larch. Part IV. Polymeric products of partial acid hydrolysis. Carbohydr. Polym. 36(1), 1–14 (1998)
59.
Zurück zum Zitat Showalter, A.: Arabinogalactan-proteins: structure, expression and function. Cell. Mol. Life Sci. 58(10), 1399–1417 (2001) Showalter, A.: Arabinogalactan-proteins: structure, expression and function. Cell. Mol. Life Sci. 58(10), 1399–1417 (2001)
60.
Zurück zum Zitat Parveen, S., Gupta, A.D., Prasad, R.: Arabinogalactan protein from Arachis hypogaea: Role as carrier in drug-formulations. Int. J. Pharm. 333(1), 79–86 (2007) Parveen, S., Gupta, A.D., Prasad, R.: Arabinogalactan protein from Arachis hypogaea: Role as carrier in drug-formulations. Int. J. Pharm. 333(1), 79–86 (2007)
61.
Zurück zum Zitat Prescott, J.H., Enriquez, P., Jung, C., Menz, E., Groman, E.V.: Larch arabinogalactan for hepatic drug delivery: isolation and characterization of a 9 kDa arabinogalactan fragment. Carbohydr. Res. 278(1), 113–128 (1995) Prescott, J.H., Enriquez, P., Jung, C., Menz, E., Groman, E.V.: Larch arabinogalactan for hepatic drug delivery: isolation and characterization of a 9 kDa arabinogalactan fragment. Carbohydr. Res. 278(1), 113–128 (1995)
62.
Zurück zum Zitat Avramoff, A., Khan, W., Mizrahi, B., Domb, A.J.: Preparation and characterization of a novel once-daily formulation of diltiazem using arabinogalactan as a channeling agent. J. Appl. Polym. Sci. 126(S1), E197–E203 (2012) Avramoff, A., Khan, W., Mizrahi, B., Domb, A.J.: Preparation and characterization of a novel once-daily formulation of diltiazem using arabinogalactan as a channeling agent. J. Appl. Polym. Sci. 126(S1), E197–E203 (2012)
63.
Zurück zum Zitat Ehrenfreund-Kleinman, T., Azzam, T., Falk, R., Polacheck, I., Golenser, J., Domb, A.: Synthesis and characterization of novel water soluble amphotericin B-arabinogalactan conjugates. Biomaterials 23(5), 1327–1335 (2002) Ehrenfreund-Kleinman, T., Azzam, T., Falk, R., Polacheck, I., Golenser, J., Domb, A.: Synthesis and characterization of novel water soluble amphotericin B-arabinogalactan conjugates. Biomaterials 23(5), 1327–1335 (2002)
64.
Zurück zum Zitat Ehrenfreund-Kleinman, T., Gazit, Z., Gazit, D., Azzam, T., Golenser, J., Domb, A.: Synthesis and biodegradation of arabinogalactan sponges prepared by reductive amination. Biomaterials 23(23), 4621–4631 (2002) Ehrenfreund-Kleinman, T., Gazit, Z., Gazit, D., Azzam, T., Golenser, J., Domb, A.: Synthesis and biodegradation of arabinogalactan sponges prepared by reductive amination. Biomaterials 23(23), 4621–4631 (2002)
65.
Zurück zum Zitat Ehrenfreund-Kleinman, T., Golenser, J., Domb, A.J.: Conjugation of amino-containing drugs to polysaccharides by tosylation: amphotericin B-arabinogalactan conjugates. Biomaterials 25(15), 3049–3057 (2004) Ehrenfreund-Kleinman, T., Golenser, J., Domb, A.J.: Conjugation of amino-containing drugs to polysaccharides by tosylation: amphotericin B-arabinogalactan conjugates. Biomaterials 25(15), 3049–3057 (2004)
66.
Zurück zum Zitat Daniel-da-Silva, A.L., Ferreira, L., Gil, A.M., Trindade, T.: Synthesis and swelling behavior of temperature responsive κ-carrageenan nanogels. J. Colloid Interface Sci. 355(2), 512–517 (2011) Daniel-da-Silva, A.L., Ferreira, L., Gil, A.M., Trindade, T.: Synthesis and swelling behavior of temperature responsive κ-carrageenan nanogels. J. Colloid Interface Sci. 355(2), 512–517 (2011)
67.
Zurück zum Zitat Keppeler, S., Ellis, A., Jacquier, J.: Cross-linked carrageenan beads for controlled release delivery systems. Carbohydr. Polym. 78(4), 973–977 (2009) Keppeler, S., Ellis, A., Jacquier, J.: Cross-linked carrageenan beads for controlled release delivery systems. Carbohydr. Polym. 78(4), 973–977 (2009)
68.
Zurück zum Zitat Sukhlaaied, W., Riyajan, S.-A.: Synthesis and properties of carrageenan grafted copolymer with poly (vinyl alcohol). Carbohydr. Polym. 98(1), 677–685 (2013) Sukhlaaied, W., Riyajan, S.-A.: Synthesis and properties of carrageenan grafted copolymer with poly (vinyl alcohol). Carbohydr. Polym. 98(1), 677–685 (2013)
69.
Zurück zum Zitat Necas, J., Bartosikova, L.: Carrageenan: a review. Vet. Med. 58(4), 187–205 (2013) Necas, J., Bartosikova, L.: Carrageenan: a review. Vet. Med. 58(4), 187–205 (2013)
70.
Zurück zum Zitat Hezaveh, H., Muhamad, I.I.: Controlled drug release via minimization of burst release in pH-response kappa-carrageenan/polyvinyl alcohol hydrogels. Chem. Eng. Res. Des. 91(3), 508–519 (2013) Hezaveh, H., Muhamad, I.I.: Controlled drug release via minimization of burst release in pH-response kappa-carrageenan/polyvinyl alcohol hydrogels. Chem. Eng. Res. Des. 91(3), 508–519 (2013)
71.
Zurück zum Zitat Kianfar, F., Antonijevic, M., Chowdhry, B., Boateng, J.S.: Lyophilized wafers comprising carrageenan and pluronic acid for buccal drug delivery using model soluble and insoluble drugs. Colloids Surf. B Biointerfaces 103, 99–106 (2013) Kianfar, F., Antonijevic, M., Chowdhry, B., Boateng, J.S.: Lyophilized wafers comprising carrageenan and pluronic acid for buccal drug delivery using model soluble and insoluble drugs. Colloids Surf. B Biointerfaces 103, 99–106 (2013)
72.
Zurück zum Zitat Kulkarni, R.V., Boppana, R., Krishna Mohan, G., Mutalik, S., Kalyane, N.V.: pH-responsive interpenetrating network hydrogel beads of poly (acrylamide)-carrageenan and sodium alginate for intestinal targeted drug delivery: synthesis, in vitro and in vivo evaluation. J. Colloid Interface Sci. 367(1), 509–517 (2012) Kulkarni, R.V., Boppana, R., Krishna Mohan, G., Mutalik, S., Kalyane, N.V.: pH-responsive interpenetrating network hydrogel beads of poly (acrylamide)-carrageenan and sodium alginate for intestinal targeted drug delivery: synthesis, in vitro and in vivo evaluation. J. Colloid Interface Sci. 367(1), 509–517 (2012)
73.
Zurück zum Zitat Leong, K.H., Chung, L.Y., Noordin, M.I., Mohamad, K., Nishikawa, M., Onuki, Y., Morishita, M., Takayama, K.: Carboxymethylation of kappa-carrageenan for intestinal-targeted delivery of bioactive macromolecules. Carbohydr. Polym. 83(4), 1507–1515 (2011) Leong, K.H., Chung, L.Y., Noordin, M.I., Mohamad, K., Nishikawa, M., Onuki, Y., Morishita, M., Takayama, K.: Carboxymethylation of kappa-carrageenan for intestinal-targeted delivery of bioactive macromolecules. Carbohydr. Polym. 83(4), 1507–1515 (2011)
74.
Zurück zum Zitat Makino, K., Idenuma, R., Murakami, T., Ohshima, H.: Design of a rate-and time-programming drug release device using a hydrogel: pulsatile drug release from κ-carrageenan hydrogel device by surface erosion of the hydrogel. Colloids Surf. B Biointerfaces 20(4), 355–359 (2001) Makino, K., Idenuma, R., Murakami, T., Ohshima, H.: Design of a rate-and time-programming drug release device using a hydrogel: pulsatile drug release from κ-carrageenan hydrogel device by surface erosion of the hydrogel. Colloids Surf. B Biointerfaces 20(4), 355–359 (2001)
75.
Zurück zum Zitat Leong, K.H., Chung, L.Y., Noordin, M.I., Onuki, Y., Morishita, M., Takayama, K.: Lectin-functionalized carboxymethylated kappa-carrageenan microparticles for oral insulin delivery. Carbohydr. Polym. 86(2), 555–565 (2011) Leong, K.H., Chung, L.Y., Noordin, M.I., Onuki, Y., Morishita, M., Takayama, K.: Lectin-functionalized carboxymethylated kappa-carrageenan microparticles for oral insulin delivery. Carbohydr. Polym. 86(2), 555–565 (2011)
76.
Zurück zum Zitat Malafaya, P.B., Silva, G.A., Reis, R.L.: Natural-origin polymers as carriers and scaffolds for biomolecules and cell delivery in tissue engineering applications. Adv. Drug Deliv. Rev. 59(4), 207–233 (2007) Malafaya, P.B., Silva, G.A., Reis, R.L.: Natural-origin polymers as carriers and scaffolds for biomolecules and cell delivery in tissue engineering applications. Adv. Drug Deliv. Rev. 59(4), 207–233 (2007)
77.
Zurück zum Zitat Vaz, C.M., Van Doeveren, P., Reis, R., Cunha, A.: Development and design of double-layer co-injection moulded soy protein based drug delivery devices. Polymer 44(19), 5983–5992 (2003) Vaz, C.M., Van Doeveren, P., Reis, R., Cunha, A.: Development and design of double-layer co-injection moulded soy protein based drug delivery devices. Polymer 44(19), 5983–5992 (2003)
78.
Zurück zum Zitat Vaz, C., Fossen, M., Van Tuil, R., De Graaf, L., Reis, R., Cunha, A.: Casein and soybean protein-based thermoplastics and composites as alternative biodegradable polymers for biomedical applications. J. Biomed. Mater. Res. Part A 65(1), 60–70 (2003) Vaz, C., Fossen, M., Van Tuil, R., De Graaf, L., Reis, R., Cunha, A.: Casein and soybean protein-based thermoplastics and composites as alternative biodegradable polymers for biomedical applications. J. Biomed. Mater. Res. Part A 65(1), 60–70 (2003)
79.
Zurück zum Zitat Ruggiero, F., Exposito, J.-Y., Bournat, P., Gruber, V., Perret, S., Comte, J., Olagnier, B., Garrone, R., Theisen, M.: Triple helix assembly and processing of human collagen produced in transgenic tobacco plants. FEBS Lett. 469(1), 132–136 (2000) Ruggiero, F., Exposito, J.-Y., Bournat, P., Gruber, V., Perret, S., Comte, J., Olagnier, B., Garrone, R., Theisen, M.: Triple helix assembly and processing of human collagen produced in transgenic tobacco plants. FEBS Lett. 469(1), 132–136 (2000)
80.
Zurück zum Zitat Shoseyov O., Amitai H., Posen Y., Yaari A., Shilo S., Roth S., Dgany O., Tal T., Lapidot N.: Large-scale molecular farming of recombinant human collagen in transgenic tobacco (2010) Shoseyov O., Amitai H., Posen Y., Yaari A., Shilo S., Roth S., Dgany O., Tal T., Lapidot N.: Large-scale molecular farming of recombinant human collagen in transgenic tobacco (2010)
81.
Zurück zum Zitat Kolattukudy P.E.: Polyesters in higher plants. In: Biopolyesters, pp. 1–49. Springer, New York (2001) Kolattukudy P.E.: Polyesters in higher plants. In: Biopolyesters, pp. 1–49. Springer, New York (2001)
82.
Zurück zum Zitat Dutta, P.K., Dutta, J., Tripathi, V.: Chitin and chitosan: chemistry, properties and applications. J. Sci. Ind. Res. 63(1), 20–31 (2004) Dutta, P.K., Dutta, J., Tripathi, V.: Chitin and chitosan: chemistry, properties and applications. J. Sci. Ind. Res. 63(1), 20–31 (2004)
83.
Zurück zum Zitat Rinaudo, M.: Chitin and chitosan: properties and applications. Prog. Polym. Sci. 31(7), 603–632 (2006) Rinaudo, M.: Chitin and chitosan: properties and applications. Prog. Polym. Sci. 31(7), 603–632 (2006)
84.
Zurück zum Zitat de Alvarenga E.S.: Characterization and properties of chitosan. In: Biotechnology of Biopolymers, p. 91. (2011) de Alvarenga E.S.: Characterization and properties of chitosan. In: Biotechnology of Biopolymers, p. 91. (2011)
85.
Zurück zum Zitat Bansal P., Verma S., Khan W., Kumar N.: Global patent and technological status of biodegradable polymers in drug delivery and tissue engineering. In: Biodegradable Polymers in Clinical Use and Clinical Development, pp. 665–725. Wiley, New York. doi:10.1002/9781118015810.ch18 Bansal P., Verma S., Khan W., Kumar N.: Global patent and technological status of biodegradable polymers in drug delivery and tissue engineering. In: Biodegradable Polymers in Clinical Use and Clinical Development, pp. 665–725. Wiley, New York. doi:10.​1002/​9781118015810.​ch18
86.
Zurück zum Zitat Di Martino, A., Sittinger, M., Risbud, M.V.: Chitosan: a versatile biopolymer for orthopaedic tissue-engineering. Biomaterials 26(30), 5983–5990 (2005) Di Martino, A., Sittinger, M., Risbud, M.V.: Chitosan: a versatile biopolymer for orthopaedic tissue-engineering. Biomaterials 26(30), 5983–5990 (2005)
87.
Zurück zum Zitat Malafaya, P., Pedro, A., Peterbauer, A., Gabriel, C., Redl, H., Reis, R.: Chitosan particles agglomerated scaffolds for cartilage and osteochondral tissue engineering approaches with adipose tissue derived stem cells. J. Mater. Sci. Mater. Med. 16(12), 1077–1085 (2005) Malafaya, P., Pedro, A., Peterbauer, A., Gabriel, C., Redl, H., Reis, R.: Chitosan particles agglomerated scaffolds for cartilage and osteochondral tissue engineering approaches with adipose tissue derived stem cells. J. Mater. Sci. Mater. Med. 16(12), 1077–1085 (2005)
88.
Zurück zum Zitat Necas, J., Bartosikova, L., Brauner, P., Kolar, J.: Hyaluronic acid (hyaluronan): a review. Vet. Med. 53(8), 397–411 (2008) Necas, J., Bartosikova, L., Brauner, P., Kolar, J.: Hyaluronic acid (hyaluronan): a review. Vet. Med. 53(8), 397–411 (2008)
89.
Zurück zum Zitat Burdick, J.A., Prestwich, G.D.: Hyaluronic acid hydrogels for biomedical applications. Adv. Mater. 23(12), H41–H56 (2011) Burdick, J.A., Prestwich, G.D.: Hyaluronic acid hydrogels for biomedical applications. Adv. Mater. 23(12), H41–H56 (2011)
90.
Zurück zum Zitat Sintov, A., Di-Capua, N., Rubinstein, A.: Cross-linked chondroitin sulphate: characterization for drug delivery purposes. Biomaterials 16(6), 473–478 (1995) Sintov, A., Di-Capua, N., Rubinstein, A.: Cross-linked chondroitin sulphate: characterization for drug delivery purposes. Biomaterials 16(6), 473–478 (1995)
91.
Zurück zum Zitat Chang, C.H., Liu, H.C., Lin, C.C., Chou, C.H., Lin, F.H.: Gelatin-chondroitin-hyaluronan tri-copolymer scaffold for cartilage tissue engineering. Biomaterials 24(26), 4853–4858 (2003) Chang, C.H., Liu, H.C., Lin, C.C., Chou, C.H., Lin, F.H.: Gelatin-chondroitin-hyaluronan tri-copolymer scaffold for cartilage tissue engineering. Biomaterials 24(26), 4853–4858 (2003)
92.
Zurück zum Zitat Lee, C.H., Singla, A., Lee, Y.: Biomedical applications of collagen. Int. J. Pharm. 221(1), 1–22 (2001) Lee, C.H., Singla, A., Lee, Y.: Biomedical applications of collagen. Int. J. Pharm. 221(1), 1–22 (2001)
93.
Zurück zum Zitat Khan W., Yadav D., Domb A.J., Kumar N.: Collagen. Biodegradable polymers in clinical use and clinical development: 59–89 (2011) Khan W., Yadav D., Domb A.J., Kumar N.: Collagen. Biodegradable polymers in clinical use and clinical development: 59–89 (2011)
94.
Zurück zum Zitat Gelse, K., Pöschl, E., Aigner, T.: Collagens—structure, function, and biosynthesis. Adv. Drug Deliv. Rev. 55(12), 1531–1546 (2003) Gelse, K., Pöschl, E., Aigner, T.: Collagens—structure, function, and biosynthesis. Adv. Drug Deliv. Rev. 55(12), 1531–1546 (2003)
95.
Zurück zum Zitat Neel, E.A.A., Bozec, L., Knowles, J.C., Syed, O., Mudera, V., Day, R., Hyun, J.K.: Collagen—emerging collagen based therapies hit the patient. Adv. Drug Deliv. Rev. 65(4), 429–456 (2013) Neel, E.A.A., Bozec, L., Knowles, J.C., Syed, O., Mudera, V., Day, R., Hyun, J.K.: Collagen—emerging collagen based therapies hit the patient. Adv. Drug Deliv. Rev. 65(4), 429–456 (2013)
96.
Zurück zum Zitat Brown, J., Timpl, R.: The collagen superfamily. Int. Arch. Allergy Immunol. 107(4), 484–490 (1995) Brown, J., Timpl, R.: The collagen superfamily. Int. Arch. Allergy Immunol. 107(4), 484–490 (1995)
97.
Zurück zum Zitat Friess, W.: Collagen–biomaterial for drug delivery. Eur. J. Pharm. Biopharm. 45(2), 113–136 (1998) Friess, W.: Collagen–biomaterial for drug delivery. Eur. J. Pharm. Biopharm. 45(2), 113–136 (1998)
98.
Zurück zum Zitat von der Mark, K.: Structure, biosynthesis and gene regulation of collagens in cartilage and bone, pp. 3–26. Academic Press, Orlando (1999) von der Mark, K.: Structure, biosynthesis and gene regulation of collagens in cartilage and bone, pp. 3–26. Academic Press, Orlando (1999)
99.
Zurück zum Zitat Das, S., Khan, W., Mohsin, S., Kumar, N.: Miltefosine loaded albumin microparticles for treatment of visceral leishmaniasis: formulation development and in vitro evaluation. Polym. Adv. Technol. 22(1), 172–179 (2010). doi:10.1002/pat.1710 Das, S., Khan, W., Mohsin, S., Kumar, N.: Miltefosine loaded albumin microparticles for treatment of visceral leishmaniasis: formulation development and in vitro evaluation. Polym. Adv. Technol. 22(1), 172–179 (2010). doi:10.​1002/​pat.​1710
100.
Zurück zum Zitat Ledward D., Phillips G., Williams P.: Gelatin. In: Handbook of Hydrocolloids, pp. 67–86. (2000) Ledward D., Phillips G., Williams P.: Gelatin. In: Handbook of Hydrocolloids, pp. 67–86. (2000)
101.
Zurück zum Zitat Kratz, F.: Albumin as a drug carrier: design of prodrugs, drug conjugates and nanoparticles. J. Controlled Release 132(3), 171–183 (2008) Kratz, F.: Albumin as a drug carrier: design of prodrugs, drug conjugates and nanoparticles. J. Controlled Release 132(3), 171–183 (2008)
102.
Zurück zum Zitat Elzoghby, A.O., Samy, W.M., Elgindy, N.A.: Albumin-based nanoparticles as potential controlled release drug delivery systems. J. Controlled Release 157(2), 168–182 (2012) Elzoghby, A.O., Samy, W.M., Elgindy, N.A.: Albumin-based nanoparticles as potential controlled release drug delivery systems. J. Controlled Release 157(2), 168–182 (2012)
103.
Zurück zum Zitat Domb A.J., Khan W.: Biodegradable polymers as drug carrier systems. In: Dumitriu S., Popa C. (eds) Polymeric Biomaterials, pp. 135–176. CRC Press, Boca Raton (2013) Domb A.J., Khan W.: Biodegradable polymers as drug carrier systems. In: Dumitriu S., Popa C. (eds) Polymeric Biomaterials, pp. 135–176. CRC Press, Boca Raton (2013)
104.
Zurück zum Zitat Fasano, M., Curry, S., Terreno, E., Galliano, M., Fanali, G., Narciso, P., Notari, S., Ascenzi, P.: The extraordinary ligand binding properties of human serum albumin. IUBMB Life 57(12), 787–796 (2005) Fasano, M., Curry, S., Terreno, E., Galliano, M., Fanali, G., Narciso, P., Notari, S., Ascenzi, P.: The extraordinary ligand binding properties of human serum albumin. IUBMB Life 57(12), 787–796 (2005)
105.
Zurück zum Zitat Hu, Y.J., Liu, Y., Sun, T.Q., Bai, A.M., Lü, J.Q., Pi, Z.B.: Binding of anti-inflammatory drug cromolyn sodium to bovine serum albumin. Int. J. Biol. Macromol. 39(4), 280–285 (2006) Hu, Y.J., Liu, Y., Sun, T.Q., Bai, A.M., Lü, J.Q., Pi, Z.B.: Binding of anti-inflammatory drug cromolyn sodium to bovine serum albumin. Int. J. Biol. Macromol. 39(4), 280–285 (2006)
106.
Zurück zum Zitat Roche, M., Rondeau, P., Singh, N.R., Tarnus, E., Bourdon, E.: The antioxidant properties of serum albumin. FEBS Lett. 582(13), 1783–1787 (2008) Roche, M., Rondeau, P., Singh, N.R., Tarnus, E., Bourdon, E.: The antioxidant properties of serum albumin. FEBS Lett. 582(13), 1783–1787 (2008)
107.
Zurück zum Zitat Khan, W., Kumar, N.: Drug targeting to macrophages using paromomycin-loaded albumin microspheres for treatment of visceral leishmaniasis: an in vitro evaluation. J. Drug Target. 19(4), 239–250 (2011). doi:10.3109/1061186X.2010.492524 Khan, W., Kumar, N.: Drug targeting to macrophages using paromomycin-loaded albumin microspheres for treatment of visceral leishmaniasis: an in vitro evaluation. J. Drug Target. 19(4), 239–250 (2011). doi:10.​3109/​1061186X.​2010.​492524
108.
Zurück zum Zitat Haisch, A., Loch, A., David, J., Pruss, A., Hansen, R., Sittinger, M.: Preparation of a pure autologous biodegradable fibrin matrix for tissue engineering. Med. Biol. Eng. Comput. 38(6), 686–689 (2000) Haisch, A., Loch, A., David, J., Pruss, A., Hansen, R., Sittinger, M.: Preparation of a pure autologous biodegradable fibrin matrix for tissue engineering. Med. Biol. Eng. Comput. 38(6), 686–689 (2000)
109.
Zurück zum Zitat Furst, W., Banerjee, A., Redl, H.: Comparison of structure, strength and cytocompatibility of a fibrin matrix supplemented either with tranexamic acid or aprotinin. J. Biomed. Mater. Res. B Appl. Biomater. 82(1), 109–114 (2007) Furst, W., Banerjee, A., Redl, H.: Comparison of structure, strength and cytocompatibility of a fibrin matrix supplemented either with tranexamic acid or aprotinin. J. Biomed. Mater. Res. B Appl. Biomater. 82(1), 109–114 (2007)
110.
Zurück zum Zitat Han, D., Liu, W., Ao, Q., Wang, G.: Optimal delivery systems for bone morphogenetic proteins in orthopedic applications should model initial tissue repair structures by using a heparin-incorporated fibrin-fibronectin matrix. Med. Hypotheses 71(3), 374–378 (2008) Han, D., Liu, W., Ao, Q., Wang, G.: Optimal delivery systems for bone morphogenetic proteins in orthopedic applications should model initial tissue repair structures by using a heparin-incorporated fibrin-fibronectin matrix. Med. Hypotheses 71(3), 374–378 (2008)
111.
Zurück zum Zitat Sathian, J., Sastry, T., Suguna, L., Lakshminarayana, Y., Radhakrishnan, G.: Fibrin as a matrix for grafting 2-hydroxyethyl methacrylate: Preparation and characterization of the graft and its in vivo evaluation for wound healing. J. Biomed. Mater. Res., Part A 65(4), 435–440 (2003) Sathian, J., Sastry, T., Suguna, L., Lakshminarayana, Y., Radhakrishnan, G.: Fibrin as a matrix for grafting 2-hydroxyethyl methacrylate: Preparation and characterization of the graft and its in vivo evaluation for wound healing. J. Biomed. Mater. Res., Part A 65(4), 435–440 (2003)
112.
Zurück zum Zitat Ryu, J.H., Kim, I.-K., Cho, S.-W., Cho, M.-C., Hwang, K.-K., Piao, H., Piao, S., Lim, S.H., Hong, Y.S., Choi, C.Y.: Implantation of bone marrow mononuclear cells using injectable fibrin matrix enhances neovascularization in infarcted myocardium. Biomaterials 26(3), 319–326 (2005) Ryu, J.H., Kim, I.-K., Cho, S.-W., Cho, M.-C., Hwang, K.-K., Piao, H., Piao, S., Lim, S.H., Hong, Y.S., Choi, C.Y.: Implantation of bone marrow mononuclear cells using injectable fibrin matrix enhances neovascularization in infarcted myocardium. Biomaterials 26(3), 319–326 (2005)
113.
Zurück zum Zitat Kumar, T., Vasantha Bai, M., Krishnan, L.K.: A freeze-dried fibrin disc as a biodegradable drug release matrix. Biologicals 32(1), 49–55 (2004) Kumar, T., Vasantha Bai, M., Krishnan, L.K.: A freeze-dried fibrin disc as a biodegradable drug release matrix. Biologicals 32(1), 49–55 (2004)
114.
Zurück zum Zitat Shim, G., Im, S., Lee, S., Park, J.Y., Kim, J., Jin, H., Lee, S., Im, I., Kim, D.-D., Kim, S.W.: Enhanced survival of transplanted human adipose-derived stem cells by co-delivery with liposomal apoptosome inhibitor in fibrin gel matrix. Eur. J. Pharm. Biopharm. 85(3), 673–681 (2013) Shim, G., Im, S., Lee, S., Park, J.Y., Kim, J., Jin, H., Lee, S., Im, I., Kim, D.-D., Kim, S.W.: Enhanced survival of transplanted human adipose-derived stem cells by co-delivery with liposomal apoptosome inhibitor in fibrin gel matrix. Eur. J. Pharm. Biopharm. 85(3), 673–681 (2013)
115.
Zurück zum Zitat Jin, J., Hassanzadeh, P., Perotto, G., Sun, W., Brenckle, M.A., Kaplan, D., Omenetto, F.G., Rolandi, M.: A biomimetic composite from solution self-assembly of chitin nanofibers in a silk fibroin matrix. Adv. Mater. 25(32), 4482–4487 (2013) Jin, J., Hassanzadeh, P., Perotto, G., Sun, W., Brenckle, M.A., Kaplan, D., Omenetto, F.G., Rolandi, M.: A biomimetic composite from solution self-assembly of chitin nanofibers in a silk fibroin matrix. Adv. Mater. 25(32), 4482–4487 (2013)
116.
Zurück zum Zitat Miroiu, F., Socol, G., Visan, A., Stefan, N., Craciun, D., Craciun, V., Dorcioman, G., Mihailescu, I., Sima, L., Petrescu, S.: Composite biocompatible hydroxyapatite–silk fibroin coatings for medical implants obtained by matrix assisted pulsed laser evaporation. Mater. Sci. Eng. B169(1), 151–158 (2010) Miroiu, F., Socol, G., Visan, A., Stefan, N., Craciun, D., Craciun, V., Dorcioman, G., Mihailescu, I., Sima, L., Petrescu, S.: Composite biocompatible hydroxyapatite–silk fibroin coatings for medical implants obtained by matrix assisted pulsed laser evaporation. Mater. Sci. Eng. B169(1), 151–158 (2010)
117.
Zurück zum Zitat Wang, Y., Bella, E., Lee, C.S., Migliaresi, C., Pelcastre, L., Schwartz, Z., Boyan, B.D., Motta, A.: The synergistic effects of 3-D porous silk fibroin matrix scaffold properties and hydrodynamic environment in cartilage tissue regeneration. Biomaterials 31(17), 4672–4681 (2010) Wang, Y., Bella, E., Lee, C.S., Migliaresi, C., Pelcastre, L., Schwartz, Z., Boyan, B.D., Motta, A.: The synergistic effects of 3-D porous silk fibroin matrix scaffold properties and hydrodynamic environment in cartilage tissue regeneration. Biomaterials 31(17), 4672–4681 (2010)
118.
Zurück zum Zitat Altman, A.M., Gupta, V., Ríos, C.N., Alt, E.U., Mathur, A.B.: Adhesion, migration and mechanics of human adipose-tissue-derived stem cells on silk fibroin-chitosan matrix. Acta Biomater. 6(4), 1388–1397 (2010) Altman, A.M., Gupta, V., Ríos, C.N., Alt, E.U., Mathur, A.B.: Adhesion, migration and mechanics of human adipose-tissue-derived stem cells on silk fibroin-chitosan matrix. Acta Biomater. 6(4), 1388–1397 (2010)
119.
Zurück zum Zitat Kasoju, N., Bora, U.: Silk fibroin based biomimetic artificial extracellular matrix for hepatic tissue engineering applications. Biomed. Mater. 7(4), 045004 (2012) Kasoju, N., Bora, U.: Silk fibroin based biomimetic artificial extracellular matrix for hepatic tissue engineering applications. Biomed. Mater. 7(4), 045004 (2012)
120.
Zurück zum Zitat Liu, Y., Liu, H., Qian, J., Deng, J., Yu, T.: Regenerated silk fibroin membrane as immobilization matrix for peroxidase and fabrication of a sensor for hydrogen peroxide utilizing methylene blue as electron shuttle. Anal. Chim. Acta 316(1), 65–72 (1995) Liu, Y., Liu, H., Qian, J., Deng, J., Yu, T.: Regenerated silk fibroin membrane as immobilization matrix for peroxidase and fabrication of a sensor for hydrogen peroxide utilizing methylene blue as electron shuttle. Anal. Chim. Acta 316(1), 65–72 (1995)
121.
Zurück zum Zitat Farag, Y., Leopold, C.S.: Development of shellac-coated sustained release pellet formulations. Eur. J. Pharm. Sci. 42(4), 400–405 (2011) Farag, Y., Leopold, C.S.: Development of shellac-coated sustained release pellet formulations. Eur. J. Pharm. Sci. 42(4), 400–405 (2011)
122.
Zurück zum Zitat Limmatvapirat, S., Limmatvapirat, C., Puttipipatkhachorn, S., Nunthanid, J., Luangtana-anan, M., Sriamornsak, P.: Modulation of drug release kinetics of shellac-based matrix tablets by in-situ polymerization through annealing process. Eur. J. Pharm. Biopharm. 69(3), 1004–1013 (2008) Limmatvapirat, S., Limmatvapirat, C., Puttipipatkhachorn, S., Nunthanid, J., Luangtana-anan, M., Sriamornsak, P.: Modulation of drug release kinetics of shellac-based matrix tablets by in-situ polymerization through annealing process. Eur. J. Pharm. Biopharm. 69(3), 1004–1013 (2008)
123.
Zurück zum Zitat Soradech, S., Limatvapirat, S., Luangtana-anan, M.: Stability enhancement of shellac by formation of composite film: effect of gelatin and plasticizers. J. Food Eng. 116(2), 572–580 (2013) Soradech, S., Limatvapirat, S., Luangtana-anan, M.: Stability enhancement of shellac by formation of composite film: effect of gelatin and plasticizers. J. Food Eng. 116(2), 572–580 (2013)
124.
Zurück zum Zitat Yu, C.-Y., Yin, B.-C., Zhang, W., Cheng, S.-X., Zhang, X.-Z., Zhuo, R.-X.: Composite microparticle drug delivery systems based on chitosan, alginate and pectin with improved pH-sensitive drug release property. Colloids Surf. B Biointerfaces 68(2), 245–249 (2009) Yu, C.-Y., Yin, B.-C., Zhang, W., Cheng, S.-X., Zhang, X.-Z., Zhuo, R.-X.: Composite microparticle drug delivery systems based on chitosan, alginate and pectin with improved pH-sensitive drug release property. Colloids Surf. B Biointerfaces 68(2), 245–249 (2009)
125.
Zurück zum Zitat Hornig, S., Bunjes, H., Heinze, T.: Preparation and characterization of nanoparticles based on dextran–drug conjugates. J. Colloid Interface Sci. 338(1), 56–62 (2009) Hornig, S., Bunjes, H., Heinze, T.: Preparation and characterization of nanoparticles based on dextran–drug conjugates. J. Colloid Interface Sci. 338(1), 56–62 (2009)
126.
Zurück zum Zitat Saboktakin, M.R., Tabatabaie, R., Maharramov, A., Ramazanov, M.A.: Synthesis and characterization of superparamagnetic chitosan–dextran sulfate hydrogels as nano carriers for colon-specific drug delivery. Carbohydr. Polym. 81(2), 372–376 (2010) Saboktakin, M.R., Tabatabaie, R., Maharramov, A., Ramazanov, M.A.: Synthesis and characterization of superparamagnetic chitosan–dextran sulfate hydrogels as nano carriers for colon-specific drug delivery. Carbohydr. Polym. 81(2), 372–376 (2010)
127.
Zurück zum Zitat Shu, S., Zhang, X., Wu, Z., Wang, Z., Li, C.: Delivery of protein drugs using nanoparticles self-assembled from dextran sulfate and quaternized chitosan. J. Controlled Release 152, e170–e172 (2011) Shu, S., Zhang, X., Wu, Z., Wang, Z., Li, C.: Delivery of protein drugs using nanoparticles self-assembled from dextran sulfate and quaternized chitosan. J. Controlled Release 152, e170–e172 (2011)
128.
Zurück zum Zitat Brondsted, H., Andersen, C., Hovgaard, L.: Crosslinked dextran—a new capsule material for colon targeting of drugs. J. Controlled Release 53(1), 7–13 (1998) Brondsted, H., Andersen, C., Hovgaard, L.: Crosslinked dextran—a new capsule material for colon targeting of drugs. J. Controlled Release 53(1), 7–13 (1998)
129.
Zurück zum Zitat Cortesi, R., Esposito, E., Osti, M., Menegatti, E., Squarzoni, G., Spencer Davis, S., Nastruzzi, C.: Dextran cross-linked gelatin microspheres as a drug delivery system. Eur. J. Pharm. Biopharm. 47(2), 153–160 (1999) Cortesi, R., Esposito, E., Osti, M., Menegatti, E., Squarzoni, G., Spencer Davis, S., Nastruzzi, C.: Dextran cross-linked gelatin microspheres as a drug delivery system. Eur. J. Pharm. Biopharm. 47(2), 153–160 (1999)
130.
Zurück zum Zitat Hovgaard, L., Brondsted, H.: Dextran hydrogels for colon-specific drug delivery. J. Controlled Release 36(1), 159–166 (1995) Hovgaard, L., Brondsted, H.: Dextran hydrogels for colon-specific drug delivery. J. Controlled Release 36(1), 159–166 (1995)
131.
Zurück zum Zitat Rehm, B.H.: Bacterial polymers: biosynthesis, modifications and applications. Nat. Rev. Microbiol. 8(8), 578–592 (2010) Rehm, B.H.: Bacterial polymers: biosynthesis, modifications and applications. Nat. Rev. Microbiol. 8(8), 578–592 (2010)
132.
Zurück zum Zitat Averous L., Pollet E.: Biodegradable polymers. In: Environmental Silicate Nano-Biocomposites, pp. 13–39. Springer, New York Averous L., Pollet E.: Biodegradable polymers. In: Environmental Silicate Nano-Biocomposites, pp. 13–39. Springer, New York
133.
Zurück zum Zitat Nair L.S., Laurencin C.T.: Polymers as biomaterials for tissue engineering and controlled drug delivery. In: Tissue Engineering I, pp. 47–90. Springer, New York (2006) Nair L.S., Laurencin C.T.: Polymers as biomaterials for tissue engineering and controlled drug delivery. In: Tissue Engineering I, pp. 47–90. Springer, New York (2006)
134.
Zurück zum Zitat Ueda, H., Tabata, Y.: Polyhydroxyalkanonate derivatives in current clinical applications and trials. Adv. Drug Deliv. Rev. 55(4), 501–518 (2003) Ueda, H., Tabata, Y.: Polyhydroxyalkanonate derivatives in current clinical applications and trials. Adv. Drug Deliv. Rev. 55(4), 501–518 (2003)
135.
Zurück zum Zitat Nair, L.S., Laurencin, C.T.: Biodegradable polymers as biomaterials. Prog. Polym. Sci. 32(8), 762–798 (2007) Nair, L.S., Laurencin, C.T.: Biodegradable polymers as biomaterials. Prog. Polym. Sci. 32(8), 762–798 (2007)
136.
Zurück zum Zitat Ashiuchi M., Misono H.: Poly γ glutamic Acid. Biopolymers Online (2002) Ashiuchi M., Misono H.: Poly γ glutamic Acid. Biopolymers Online (2002)
Metadaten
Titel
Biodegradable Natural Polymers
verfasst von
Sindhu Doppalapudi
Sameer Katiyar
Abraham J. Domb
Wahid Khan
Copyright-Jahr
2015
DOI
https://doi.org/10.1007/978-3-319-12478-0_2

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