Hydrogels: Biomaterials for Sustained and Localized Drug Delivery
249
168. Santra TS, Tseng F-G (2020) Handbook of single cell technologies. Springer, Singapore
169. Santra TS (2002) Microfluidics and bioMEMS applications. Springer US, Boston, MA
170. Sasaki Y, Akiyoshi K (2010) Nanogel engineering for new nanobiomaterials: from chaperoning engineering to biomedical applications. Chem Rec 10:366–376. https://doi.org/10.
1002/tcr.201000008
171. Satarkar NS, Biswal D, Hilt JZ (2010) Hydrogel nanocomposites: a review of applications as
remote controlled biomaterials. Soft Matter 6:2364–2371. https://doi.org/10.1039/b925218p
172. Sawhney AS, Pathak CP, Hubbell JA (1993) Interfacial photopolymerization of poly(ethylene
glycol)-based hydrogels upon alginate-poly(l-lysine) microcapsules for enhanced biocompatibility. Biomaterials 14:1008–1016. https://doi.org/10.1016/0142-9612(93)90194-7
173. Schindler M, Nur-E-Kamal A, Ahmed I, Kamal J, Liu HY, Amor N, Ponery AS, Crockett
DP, Grafe TH, Chung HY, Weik T, Jones E, Meiners S (2006) Living in three dimensions:
3D nanostructured environments for cell culture and regenerative medicine. Cell Biochem,
Biophys
174. Schmaljohann D (2006) Thermo- and pH-responsive polymers in drug delivery. Adv Drug
Deliv Rev 58:1655–1670
175. Schneider H-J (2015) Chemoresponsive materials: stimulation by chemical and biological
signals
176. Schubert US, Eschbaumer C (2002) Macromolecules containing bipyridine and terpyridine metal complexes: towards metallosupramolecular polymers. Angew Chemie Int
Ed 41:2892–2926. https://doi.org/10.1002/1521-3773(20020816)41:16%3c2892:AID-ANI
E2892%3e3.0.CO;2-6
177. Secret E, Kelly SJ, Crannell KE, Andrew JS (2014) Enzyme-responsive hydrogel microparticles for pulmonary drug delivery. ACS Appl Mater Interfaces. https://doi.org/10.1021/am5
01754s
178. Seidler C, Ng DYW, Weil T (2017) Native protein hydrogels by dynamic boronic acid
chemistry. Tetrahedron 73:4979–4987. https://doi.org/10.1016/j.tet.2017.06.066
179. Sharma VK, Yngard RA, Lin Y (2009) Silver nanoparticles: green synthesis and their
antimicrobial activities. Adv Colloid Interface Sci
180. Shenoy D, Little S, Langer R, Amiji M (2005) Poly(ethylene oxide)-modified poly(β-amino
ester) nanoparticles as a pH-sensitive system for tumor-targeted delivery of hydrophobic
drugs. 1. in vitro evaluations. Mol Pharm 2:357–366. https://doi.org/10.1021/mp0500420
181. Shih H, Lin CC (2013) Visible-light-mediated thiol-ene hydrogelation using eosin-Y as the
only photoinitiator. Macromol Rapid Commun 34:269–273. https://doi.org/10.1002/marc.201
200605
182. Shin SJ, Lee JH, So J, Min K (2016) Anti-adhesive effect of poloxamer-based thermo-sensitive
sol-gel in rabbit laminectomy model. J Mater Sci Mater Med. https://doi.org/10.1007/s10856016-5773-7
183. Shin SR, Migliori B, Miccoli B, Li YC, Mostafalu P, Seo J, Mandla S, Enrico A, Antona S,
Sabarish R, Zheng T, Pirrami L, Zhang K, Zhang YS, Wan KT, Demarchi D, Dokmeci MR,
Khademhosseini A (2018) Electrically driven microengineered bioinspired soft robots. Adv
Mater. https://doi.org/10.1002/adma.201704189
184. Shoda SI, Uyama H, Kadokawa JI, Kimura S, Kobayashi S (2016) Enzymes as green catalysts
for precision macromolecular synthesis. Chem Rev 116:2307–2413
185. Simon J, Flahaut E, Golzio M (2019) Overview of carbon nanotubes for biomedical
applications. Materials (Basel)
186. Sivashanmugam A, Arun Kumar R, Vishnu Priya M, Nair SV, Jayakumar R (2015) An
overview of injectable polymeric hydrogels for tissue engineering. Eur Polym J. https://doi.
org/10.1016/j.eurpolymj.2015.05.014
187. Slaughter B V, Khurshid SS, Fisher OZ, Khademhosseini A, Peppas NA (2009) Hydrogels in
regenerative medicine. Adv Mater
188. Smeds KA, Grinstaff MW (2001) Photocrosslinkable polysaccharides for in situ hydrogel
formation. J Biomed Mater Res. https://doi.org/10.1002/1097-4636(200101)54:1%3c115:
AID-JBM14%3e3.0.CO;2-Q
249
168. Santra TS, Tseng F-G (2020) Handbook of single cell technologies. Springer, Singapore
169. Santra TS (2002) Microfluidics and bioMEMS applications. Springer US, Boston, MA
170. Sasaki Y, Akiyoshi K (2010) Nanogel engineering for new nanobiomaterials: from chaperoning engineering to biomedical applications. Chem Rec 10:366–376. https://doi.org/10.
1002/tcr.201000008
171. Satarkar NS, Biswal D, Hilt JZ (2010) Hydrogel nanocomposites: a review of applications as
remote controlled biomaterials. Soft Matter 6:2364–2371. https://doi.org/10.1039/b925218p
172. Sawhney AS, Pathak CP, Hubbell JA (1993) Interfacial photopolymerization of poly(ethylene
glycol)-based hydrogels upon alginate-poly(l-lysine) microcapsules for enhanced biocompatibility. Biomaterials 14:1008–1016. https://doi.org/10.1016/0142-9612(93)90194-7
173. Schindler M, Nur-E-Kamal A, Ahmed I, Kamal J, Liu HY, Amor N, Ponery AS, Crockett
DP, Grafe TH, Chung HY, Weik T, Jones E, Meiners S (2006) Living in three dimensions:
3D nanostructured environments for cell culture and regenerative medicine. Cell Biochem,
Biophys
174. Schmaljohann D (2006) Thermo- and pH-responsive polymers in drug delivery. Adv Drug
Deliv Rev 58:1655–1670
175. Schneider H-J (2015) Chemoresponsive materials: stimulation by chemical and biological
signals
176. Schubert US, Eschbaumer C (2002) Macromolecules containing bipyridine and terpyridine metal complexes: towards metallosupramolecular polymers. Angew Chemie Int
Ed 41:2892–2926. https://doi.org/10.1002/1521-3773(20020816)41:16%3c2892:AID-ANI
E2892%3e3.0.CO;2-6
177. Secret E, Kelly SJ, Crannell KE, Andrew JS (2014) Enzyme-responsive hydrogel microparticles for pulmonary drug delivery. ACS Appl Mater Interfaces. https://doi.org/10.1021/am5
01754s
178. Seidler C, Ng DYW, Weil T (2017) Native protein hydrogels by dynamic boronic acid
chemistry. Tetrahedron 73:4979–4987. https://doi.org/10.1016/j.tet.2017.06.066
179. Sharma VK, Yngard RA, Lin Y (2009) Silver nanoparticles: green synthesis and their
antimicrobial activities. Adv Colloid Interface Sci
180. Shenoy D, Little S, Langer R, Amiji M (2005) Poly(ethylene oxide)-modified poly(β-amino
ester) nanoparticles as a pH-sensitive system for tumor-targeted delivery of hydrophobic
drugs. 1. in vitro evaluations. Mol Pharm 2:357–366. https://doi.org/10.1021/mp0500420
181. Shih H, Lin CC (2013) Visible-light-mediated thiol-ene hydrogelation using eosin-Y as the
only photoinitiator. Macromol Rapid Commun 34:269–273. https://doi.org/10.1002/marc.201
200605
182. Shin SJ, Lee JH, So J, Min K (2016) Anti-adhesive effect of poloxamer-based thermo-sensitive
sol-gel in rabbit laminectomy model. J Mater Sci Mater Med. https://doi.org/10.1007/s10856016-5773-7
183. Shin SR, Migliori B, Miccoli B, Li YC, Mostafalu P, Seo J, Mandla S, Enrico A, Antona S,
Sabarish R, Zheng T, Pirrami L, Zhang K, Zhang YS, Wan KT, Demarchi D, Dokmeci MR,
Khademhosseini A (2018) Electrically driven microengineered bioinspired soft robots. Adv
Mater. https://doi.org/10.1002/adma.201704189
184. Shoda SI, Uyama H, Kadokawa JI, Kimura S, Kobayashi S (2016) Enzymes as green catalysts
for precision macromolecular synthesis. Chem Rev 116:2307–2413
185. Simon J, Flahaut E, Golzio M (2019) Overview of carbon nanotubes for biomedical
applications. Materials (Basel)
186. Sivashanmugam A, Arun Kumar R, Vishnu Priya M, Nair SV, Jayakumar R (2015) An
overview of injectable polymeric hydrogels for tissue engineering. Eur Polym J. https://doi.
org/10.1016/j.eurpolymj.2015.05.014
187. Slaughter B V, Khurshid SS, Fisher OZ, Khademhosseini A, Peppas NA (2009) Hydrogels in
regenerative medicine. Adv Mater
188. Smeds KA, Grinstaff MW (2001) Photocrosslinkable polysaccharides for in situ hydrogel
formation. J Biomed Mater Res. https://doi.org/10.1002/1097-4636(200101)54:1%3c115:
AID-JBM14%3e3.0.CO;2-Q
