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84. Ishida O, Maruyama K, Sasaki K, Iwatsuru M (1999) Size-dependent extravasation and interstitial localization of polyethyleneglycol liposomes in solid tumor-bearing mice. Int J Pharm
190:49–56. https://doi.org/10.1016/S0378-5173(99)00256-2
85. Jeon O, Powell C, Solorio LD, Krebs MD, Alsberg E (2011) Affinity-based growth factor
delivery using biodegradable, photocrosslinked heparin-alginate hydrogels. J Control Release
154:258–266. https://doi.org/10.1016/j.jconrel.2011.06.027
86. Jin R, Hiemstra C, Zhong Z, Feijen J (2007) Enzyme-mediated fast in situ formation of
hydrogels from dextran-tyramine conjugates. Biomaterials 28:2791–2800. https://doi.org/10.
1016/j.biomaterials.2007.02.032
87. Jin R, Moreira Teixeira LS, Dijkstra PJ, van Blitterswijk CA, Karperien M, Feijen J (2010)
Enzymatically-crosslinked injectable hydrogels based on biomimetic dextran-hyaluronic acid
conjugates for cartilage tissue engineering. Biomaterials 31:3103–3113. https://doi.org/10.
1016/j.biomaterials.2010.01.013
88. Jin R, Moreira Teixeira LS, Dijkstra PJ, Karperien M, van Blitterswijk CA, Zhong ZY, Feijen
J (2009) Injectable chitosan-based hydrogels for cartilage tissue engineering. Biomaterials
30:2544–2551. https://doi.org/10.1016/j.biomaterials.2009.01.020
89. Joshi N, Grinstaff M (2008) Applications of dendrimers in tissue engineering. Curr Top Med
Chem 8:1225–1236. https://doi.org/10.2174/156802608785849067
90. Jung YP, Kim JH, Lee DS, Kim YH (2007) Preparation and properties of modified PHEMA
hydrogel with sulfonated PEG graft. J Appl Polym Sci. https://doi.org/10.1002/app.25500
91. Kar S, Sood AK (2019) Ultrafast terahertz photoresponse of single and double-walled carbon
nanotubes: optical pump-terahertz probe spectroscopy. Carbon N Y. https://doi.org/10.1016/
j.carbon.2018.12.081
92. Khang G (2017) Handbook of intelligent scaffolds for tissue engineering and regenerative
medicine, 2nd edn
93. Kim SY, Ha JC, Lee YM (2000) Poly(ethylene oxide)-poly(propylene oxide)-poly(ethylene
oxide)/poly(ε- caprolactone) (PCL) amphiphilic block copolymeric nanospheres: II. Thermoresponsive drug release behaviors. J Control Release 65:345–358. https://doi.org/10.1016/
S0168-3659(99)00207-2
94. Kim MH, Park H, Park WH (2018) Effect of pH and precursor salts on in situ formation of
calcium phosphate nanoparticles in methylcellulose hydrogel. Carbohydr Polym 191:176–
182. https://doi.org/10.1016/j.carbpol.2018.03.032
95. Kim JK, Kim HJ, Chung JY, Lee JH, Young SB, Kim YH (2014) Natural and synthetic
biomaterials for controlled drug delivery. Arch Pharm Res
96. Kingsley JD, Dou H, Morehead J, Rabinow B, Gendelman HE, Destache CJ (2006)
Nanotechnology: a focus on nanoparticles as a drug delivery system. J Neuroimmune
Pharmacol
97. Kocak G, Tuncer C, Bütün V (2017) PH-responsive polymers. Polym Chem
98. Kong G, Braun RD, Dewhirst MW (2000) Hyperthermia enables tumor-specific nanoparticle
delivery: effect of particle size. Cancer Res 60:4440–4445
99. Kumar S, Rani R, Dilbaghi N, Tankeshwar K, Kim KH (2017) Carbon nanotubes: a novel
material for multifaceted applications in human healthcare. Chem Soc Rev 46:158–196
100. Kumar A, Srivastava A, Galaev IY, Mattiasson B (2007) Smart polymers: Physical forms and
bioengineering applications. Prog Polym Sci
101. Kumarasamy D, Ghosh MK, Giri TK (2018) Polymer-based responsive hydrogel for drug
delivery. Springer, Singapore, pp 1–25
102. Kuo CK, Ma PX (2001) Ionically crosslinked alginate hydrogels as scaffolds for tissue engineering: part 1. Structure, gelation rate and mechanical properties. Biomaterials 22:511–521
103. Kurisawa M, Chung JE, Yang YY, Gao SJ, Uyama H (2005) Injectable biodegradable
hydrogels composed of hyaluronic acid-tyramine conjugates for drug delivery and tissue
engineering. Chem Commun 4312–4314. https://doi.org/10.1039/b506989k
104. Langer R (2000) Biomaterials in drug delivery and tissue engineering: one laboratory’s
experience. Acc Chem Res 33:94–101. https://doi.org/10.1021/ar9800993
245
84. Ishida O, Maruyama K, Sasaki K, Iwatsuru M (1999) Size-dependent extravasation and interstitial localization of polyethyleneglycol liposomes in solid tumor-bearing mice. Int J Pharm
190:49–56. https://doi.org/10.1016/S0378-5173(99)00256-2
85. Jeon O, Powell C, Solorio LD, Krebs MD, Alsberg E (2011) Affinity-based growth factor
delivery using biodegradable, photocrosslinked heparin-alginate hydrogels. J Control Release
154:258–266. https://doi.org/10.1016/j.jconrel.2011.06.027
86. Jin R, Hiemstra C, Zhong Z, Feijen J (2007) Enzyme-mediated fast in situ formation of
hydrogels from dextran-tyramine conjugates. Biomaterials 28:2791–2800. https://doi.org/10.
1016/j.biomaterials.2007.02.032
87. Jin R, Moreira Teixeira LS, Dijkstra PJ, van Blitterswijk CA, Karperien M, Feijen J (2010)
Enzymatically-crosslinked injectable hydrogels based on biomimetic dextran-hyaluronic acid
conjugates for cartilage tissue engineering. Biomaterials 31:3103–3113. https://doi.org/10.
1016/j.biomaterials.2010.01.013
88. Jin R, Moreira Teixeira LS, Dijkstra PJ, Karperien M, van Blitterswijk CA, Zhong ZY, Feijen
J (2009) Injectable chitosan-based hydrogels for cartilage tissue engineering. Biomaterials
30:2544–2551. https://doi.org/10.1016/j.biomaterials.2009.01.020
89. Joshi N, Grinstaff M (2008) Applications of dendrimers in tissue engineering. Curr Top Med
Chem 8:1225–1236. https://doi.org/10.2174/156802608785849067
90. Jung YP, Kim JH, Lee DS, Kim YH (2007) Preparation and properties of modified PHEMA
hydrogel with sulfonated PEG graft. J Appl Polym Sci. https://doi.org/10.1002/app.25500
91. Kar S, Sood AK (2019) Ultrafast terahertz photoresponse of single and double-walled carbon
nanotubes: optical pump-terahertz probe spectroscopy. Carbon N Y. https://doi.org/10.1016/
j.carbon.2018.12.081
92. Khang G (2017) Handbook of intelligent scaffolds for tissue engineering and regenerative
medicine, 2nd edn
93. Kim SY, Ha JC, Lee YM (2000) Poly(ethylene oxide)-poly(propylene oxide)-poly(ethylene
oxide)/poly(ε- caprolactone) (PCL) amphiphilic block copolymeric nanospheres: II. Thermoresponsive drug release behaviors. J Control Release 65:345–358. https://doi.org/10.1016/
S0168-3659(99)00207-2
94. Kim MH, Park H, Park WH (2018) Effect of pH and precursor salts on in situ formation of
calcium phosphate nanoparticles in methylcellulose hydrogel. Carbohydr Polym 191:176–
182. https://doi.org/10.1016/j.carbpol.2018.03.032
95. Kim JK, Kim HJ, Chung JY, Lee JH, Young SB, Kim YH (2014) Natural and synthetic
biomaterials for controlled drug delivery. Arch Pharm Res
96. Kingsley JD, Dou H, Morehead J, Rabinow B, Gendelman HE, Destache CJ (2006)
Nanotechnology: a focus on nanoparticles as a drug delivery system. J Neuroimmune
Pharmacol
97. Kocak G, Tuncer C, Bütün V (2017) PH-responsive polymers. Polym Chem
98. Kong G, Braun RD, Dewhirst MW (2000) Hyperthermia enables tumor-specific nanoparticle
delivery: effect of particle size. Cancer Res 60:4440–4445
99. Kumar S, Rani R, Dilbaghi N, Tankeshwar K, Kim KH (2017) Carbon nanotubes: a novel
material for multifaceted applications in human healthcare. Chem Soc Rev 46:158–196
100. Kumar A, Srivastava A, Galaev IY, Mattiasson B (2007) Smart polymers: Physical forms and
bioengineering applications. Prog Polym Sci
101. Kumarasamy D, Ghosh MK, Giri TK (2018) Polymer-based responsive hydrogel for drug
delivery. Springer, Singapore, pp 1–25
102. Kuo CK, Ma PX (2001) Ionically crosslinked alginate hydrogels as scaffolds for tissue engineering: part 1. Structure, gelation rate and mechanical properties. Biomaterials 22:511–521
103. Kurisawa M, Chung JE, Yang YY, Gao SJ, Uyama H (2005) Injectable biodegradable
hydrogels composed of hyaluronic acid-tyramine conjugates for drug delivery and tissue
engineering. Chem Commun 4312–4314. https://doi.org/10.1039/b506989k
104. Langer R (2000) Biomaterials in drug delivery and tissue engineering: one laboratory’s
experience. Acc Chem Res 33:94–101. https://doi.org/10.1021/ar9800993
