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127. Mironi-Harpaz I, Wang DY, Venkatraman S, Seliktar D (2012) Photopolymerization of cellencapsulating hydrogels: crosslinking efficiency versus cytotoxicity. Acta Biomater 8:1838–
1848. https://doi.org/10.1016/j.actbio.2011.12.034
128. Mitragotri S, Lahann J (2009) Physical approaches to biomaterial design. Nat Mater 8:15–23.
https://doi.org/10.1038/nmat2344
129. Moghimi SM, Hunter AC, Murray JC (2001) Long-circulating and target-specific nanoparticles: theory to practice. Pharmacol Rev
130. Morozowich NL, Nichol JL, Allcock HR (2016) Hydrogels based on schiff base formation between an amino-containing polyphosphazene and aldehyde functionalized-dextrans. J
Polym Sci, Part A Polym Chem 54:2984–2991. https://doi.org/10.1002/pola.28184
131. Mukherjee S, Hill MR, Sumerlin BS (2015) Self-healing hydrogels containing reversible
oxime crosslinks. Soft Matter 11:6152–6161. https://doi.org/10.1039/c5sm00865d
132. Müller M, Becher J, Schnabelrauch M, Zenobi-Wong M (2015) Nanostructured Pluronic
hydrogels as bioinks for 3D bioprinting. Biofabrication. https://doi.org/10.1088/1758-5090/
7/3/035006
133. Nadeem N, Sohail M, Bin Asad MHH, Minhas MU, Mudassir Shah SA (2018) Thermosensitive hydrogels: from bench to market. Curr, Sci
134. Nahar M, Dutta T, Murugesan S, Asthana A, Mishra D, Rajkumar V, Tare M, Saraf S, Jain NK
(2006) Functional polymeric nanoparticles: an efficient and promising tool for active delivery
of bioactives. Crit Rev Ther Drug Carrier Syst
135. Nguyen KT, West JL (2002) Photopolymerizable hydrogels for tissue engineering applications. Biomaterials 23:4307–4314. https://doi.org/10.1016/S0142-9612(02)00175-8
136. Nimmo CM, Owen SC, Shoichet MS (2011) Diels-alder click cross-linked hyaluronic acid
hydrogels for tissue engineering. Biomacromol 12:824–830. https://doi.org/10.1021/bm1
01446k
137. Nolan A, Badminton J, Maguire J, Seymour RA (2009) The efficacy of topical hyaluronic
acid in the management of oral lichen planus. J Oral Pathol Med. https://doi.org/10.1111/j.
1600-0714.2008.00739.x
138. Nusgens BV (2010) Hyaluronic acid and extracellular matrix: a primitive molecule? Ann
Dermatol Venereol. https://doi.org/10.1016/S0151-9638(10)70002-8
139. Nuttelman CR, Tripodi MC, Anseth KS (2005) Synthetic hydrogel niches that promote hMSC
viability. Matrix Biol 24:208–218. https://doi.org/10.1016/j.matbio.2005.03.004
140. Oh JK, Drumright R, Siegwart DJ, Matyjaszewski K (2008) The development of microgels/nanogels for drug delivery applications. Prog Polym Sci 33:448–477
141. Ostrowska-Czubenko J, Gierszewska-Druzy´ nska M (2009) Effect of ionic crosslinking on the
water state in hydrogel chitosan membranes. Carbohydr Polym 77:590–598. https://doi.org/
10.1016/j.carbpol.2009.01.036
142. Panyam J, Labhasetwar V (2003) Biodegradable nanoparticles for drug and gene delivery to
cells and tissue. Adv Drug Deliv Rev
143. Park J, An K, Hwang Y, Park JEG, Noh HJ, Kim JY, Park JH, Hwang NM, Hyeon T (2004)
Ultra-large-scale syntheses of monodisperse nanocrystals. Nat Mater. https://doi.org/10.1038/
nmat1251
144. Park H, Kim MH, Il Yoon Y, Park WH (2017) One-pot synthesis of injectable methylcellulose
hydrogel containing calcium phosphate nanoparticles. Carbohydr Polym 157:775–783
145. Park H, Park K (1996) Hydrogels and biodegradable polymers for bioapplications. In:
Hydrogels and biodegradable polymers for bioapplications
146. Paul A, Hasan A, Al Kindi H, Gaharwar AK, Rao VTS, Nikkhah M, Shin SR, Krafft D,
Dokmeci MR, Shum-Tim D, Khademhosseini A (2014) Injectable graphene oxide/hydrogelbased angiogenic gene delivery system for vasculogenesis and cardiac repair. ACS Nano
8:8050–8062. https://doi.org/10.1021/nn5020787
147. Peppas NA, Brannon-Peppas L (1990) Hydrogels at critical conditions. Part 1. Thermodynamics and swelling behavior. J Memb Sci 48:281–290. https://doi.org/10.1016/0376-738
8(90)85009-A
