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200. Van Thienen TG, Lucas B, Flesch FM, Van Nostrum CF, Demeester J, De Smedt SC (2005) On
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203. Valade D, Wong LK, Jeon Y, Jia Z, Monteiro MJ (2013) Polyacrylamide hydrogel membranes
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26311
204. Van Der Linden HJ, Herber S, Olthuis W, Bergveld P (2003) Stimulus-sensitive hydrogels
and their applications in chemical (micro)analysis. Analyst
205. Verhulsel M, Vignes M, Descroix S, Malaquin L, Vignjevic DM, Viovy JL (2014) A review
of microfabrication and hydrogel engineering for micro-organs on chips. Biomaterials
206. Vinogradov SV, Bronich TK, Kabanov AV (2002) Nanosized cationic hydrogels for drug
delivery: preparation, properties and interactions with cells. Adv Drug Deliv Rev. https://doi.
org/10.1016/S0169-409X(01)00245-9
207. Voorhaar L, Hoogenboom R (2016) Supramolecular polymer networks: hydrogels and bulk
materials. Chem Soc Rev 45:4013–4031
208. Wang E, Desai MS, Lee SW (2013) Light-controlled graphene-elastin composite hydrogel
actuators. Nano Lett. https://doi.org/10.1021/nl401088b
209. Wang X, Kluge JA, Leisk GG, Kaplan DL (2008) Sonication-induced gelation of silk fibroin
for cell encapsulation. Biomaterials 29:1054–1064. https://doi.org/10.1016/j.biomaterials.
2007.11.003
G. Keerthiga et al.
189. Smith LJ, Taimoory SM, Tam RY, Baker AEG, Binth Mohammad N, Trant JF, Shoichet
MS (2018) Diels-Alder click-cross-linked hydrogels with increased reactivity enable 3D cell
encapsulation. Biomacromol 19:926–935. https://doi.org/10.1021/acs.biomac.7b01715
190. Sohail M, Mudassir Minhas MU, Khan S, Hussain Z, de Matas M, Shah SA, Khan S, Kousar
M, Ullah K (2019) Natural and synthetic polymer-based smart biomaterials for management
of ulcerative colitis: a review of recent developments and future prospects. Drug Deliv Transl
Res 9:595–614. https://doi.org/10.1007/s13346-018-0512-x
191. Solouk A, Mirzadeh H, Shokrgozar MA, Solati-Hashjin M, Najarian S, Seifalian AM (2011)
The study of collagen immobilization on a novel nanocomposite to enhance cell adhesion and
growth. Iran Biomed J 15:6–14
192. De Souza Ferreira SB, Moço TD, Borghi-Pangoni FB, Junqueira MV, Bruschi ML (2016)
Rheological, mucoadhesive and textural properties of thermoresponsive polymer blends for
biomedical applications. J Mech Behav Biomed Mater. https://doi.org/10.1016/j.jmbbm.2015.
10.026
193. Spang MT, Christman KL (2018) Extracellular matrix hydrogel therapies: in vivo applications
and development. Acta Biomater
194. Stenekes RJH, Talsma H, Hennink WE (2001) Formation of dextran hydrogels by crystallization. Biomaterials. https://doi.org/10.1016/S0142-9612(00)00375-6
195. Syakir MI, Nurin NA, Zafirah N, Kassim MA, Khalil HA (2016) Nanoclay reinforced polymer
composites. Springer, Singapore
196. Sydney Gladman A, Matsumoto EA, Nuzzo RG, Mahadevan L, Lewis JA (2016) Biomimetic
4D printing. Nat Mater. https://doi.org/10.1038/nmat4544
197. Söntjens SHM, Nettles DL, Carnahan MA, Setton LA, Grinstaff MW (2006) Biodendrimerbased hydrogel scaffolds for cartilage tissue repair. Biomacromol 7:310–316. https://doi.org/
10.1021/bm050663e
198. Taheri A, Atyabi F, Dinarvnd R (2011) Temperature-responsive and biodegradable PVA: VP
k30: poloxamer 407 hydrogel for controlled delivery of human growth hormone (hGH). J
Pediatr Endocrinol Metab. https://doi.org/10.1515/JPEM.2011.079
199. Teotia AK, Sami H, Kumar A (2015) Thermo-responsive polymers: structure and design
of smart materials. In: Switchable and responsive surfaces and materials for biomedical
applications
200. Van Thienen TG, Lucas B, Flesch FM, Van Nostrum CF, Demeester J, De Smedt SC (2005) On
the synthesis and characterization of biodegradable dextran nanogels with tunable degradation
properties. Macromolecules 38:8503–8511. https://doi.org/10.1021/ma050822m
201. Torchilin VP (2004) Targeted polymeric micelles for delivery of poorly soluble drugs. Cell
Mol Life Sci
202. Tseng F-G, Santra TS (2016) Essentials of single-cell analysis: concepts, applications and
future prospects
203. Valade D, Wong LK, Jeon Y, Jia Z, Monteiro MJ (2013) Polyacrylamide hydrogel membranes
with controlled pore sizes. J Polym Sci, Part A: Polym Chem. https://doi.org/10.1002/pola.
26311
204. Van Der Linden HJ, Herber S, Olthuis W, Bergveld P (2003) Stimulus-sensitive hydrogels
and their applications in chemical (micro)analysis. Analyst
205. Verhulsel M, Vignes M, Descroix S, Malaquin L, Vignjevic DM, Viovy JL (2014) A review
of microfabrication and hydrogel engineering for micro-organs on chips. Biomaterials
206. Vinogradov SV, Bronich TK, Kabanov AV (2002) Nanosized cationic hydrogels for drug
delivery: preparation, properties and interactions with cells. Adv Drug Deliv Rev. https://doi.
org/10.1016/S0169-409X(01)00245-9
207. Voorhaar L, Hoogenboom R (2016) Supramolecular polymer networks: hydrogels and bulk
materials. Chem Soc Rev 45:4013–4031
208. Wang E, Desai MS, Lee SW (2013) Light-controlled graphene-elastin composite hydrogel
actuators. Nano Lett. https://doi.org/10.1021/nl401088b
209. Wang X, Kluge JA, Leisk GG, Kaplan DL (2008) Sonication-induced gelation of silk fibroin
for cell encapsulation. Biomaterials 29:1054–1064. https://doi.org/10.1016/j.biomaterials.
2007.11.003
