Nanomaterials: Versatile Drug Carriers for Nanomedicine
291
77. Han G, Nguyen LN, Macherla C, Chi Y, Friedman JM, Nosanchuk JD, Martinez LR
(2012) Nitric oxide–releasing nanoparticles accelerate wound healing by promoting fibroblast
migration and collagen deposition. Am J Pathol 180:1465–1473
78. Azuma K, Izumi R, Osaki T, Ifuku S, Morimoto M, Saimoto H, Minami S, Okamoto Y (2018)
Functional biomaterials chitin, chitosan, and its derivatives for wound healing: old and new
materials. J Funct Biomater 6:104–1426. https://doi.org/10.3390/jfb6010104
79. Hussain Z, Thu HE, Ng SF, Khan S, Katas H (2017) Nanoencapsulation, an efficient and
promising approach to maximize wound healing efficacy of curcumin: a review of new trends
and state-of-the-art. Colloids Surfaces B Biointerfaces 150:223–241
80. Kant V, Gopal A, Pathak NN, Kumar P, Tandan SK, Kumar D (2014) Antioxidant
and anti-inflammatory potential of curcumin accelerated the cutaneous wound healing in
streptozotocin-induced diabetic rats. Elsevier 20:322–330
81. Yallapu MM, Nagesh PKB, Jaggi M, Chauhan SC (2015) Therapeutic applications of
curcumin nanoformulations. AAPS J 17:1341–1356. https://doi.org/10.1208/s12248-0159811-z
82. Sherwani MA, Tufail S, Khan AA, Owais M (2015) Gold nanoparticle-photosensitizer conjugate based photodynamic inactivation of biofilm producing cells: potential for treatment of
C. albicans infection in. PLoS One 10
83. Yates CC, Hebda P, Wells A (2012) Skin wound healing and scarring: fetal wounds and
regenerative restitution. Birth Defects Res Part C Embryo Today Rev 96:325–333
84. Rajendran NK, Sundar S, Kumar D, Houreld NN, Abrahamse H (2018) A review on nanoparticle based treatment for wound healing. J Drug Deliv Sci Technol 44:421–430. https://doi.
org/10.1016/j.jddst.2018.01.009
85. Zhang XF, Liu ZG, Shen W, Gurunathan S (2016) Silver nanoparticles: synthesis, characterization, properties, applications, and therapeutic approaches. Int J Mol Sci 17:1534–1568
86. Sarhan WA, Azzazy HME, El-Sherbiny IM (2016) Honey/chitosan nanofiber wound dressing
enriched with Allium sativum and Cleome droserifolia: enhanced antimicrobial and wound
healing activity. ACS Appl Mater Interfaces 8:6379–6390. https://doi.org/10.1021/acsami.
6b00739
87. Lambadi PR, Sharma TK, Kumar P, Vasnani P, Thalluri SM, Bisht N, Pathania R, Navani
NK (2015) Facile biofunctionalization of silver nanoparticles for enhanced antibacterial
properties, endotoxin removal, and biofilm control. Int J Nanomedicine 10:2155
88. Butler KS, Peeler DJ, Casey BJ, Dair BJ, Elespuru RK (2015) Silver nanoparticles: correlating
nanoparticle size and cellular uptake with genotoxicity. Mutagenesis 30:577–591
89. Franková J, Pivodová V, Vágnerová H, Jurᡠnová J, Ulrichová J (2016) Effects of silver nanoparticles on primary cell cultures of fibroblasts and keratinocytes in a wound-healing model. J
Appl Biomater Funct Mater 14:e137–e142. https://doi.org/10.5301/jabfm.5000268
90. Tian J, Wong KKY, Ho C-M, Lok C-N, Yu W-Y, Che C-M, Chiu J-F, Tam PKH (2007) Topical
delivery of silver nanoparticles promotes wound healing. ChemMedChem Chem Enabling
Drug Discov 2:129–136. https://doi.org/10.1002/cmdc.200600171
91. GhavamiNejad A, Rajan Unnithan A, Ramachandra Kurup Sasikala A, Samarikhalaj M,
Thomas RG, Jeong YY, Nasseri S, Murugesan P, Wu D, Hee Park C, Kim CS (2015) Musselinspired electrospun nanofibers functionalized with size-controlled silver nanoparticles for
wound dressing application. ACS Appl Mater Interfaces 7:12176–12183. https://doi.org/10.
1021/acsami.5b02542
92. Liu J, Sonshine DA, Shervani S, Hurt RH (2010) Controlled release of biologically active
silver from nanosilver surfaces. ACS Nano 4:6903–6913. https://doi.org/10.1021/nn102272n
93. Akturk O, Kismet K, Yasti AC, Kuru S, Duymus ME, Kaya F, Caydere M, Hucumenoglu S,
Keskin D (2016) Collagen/gold nanoparticle nanocomposites: a potential skin wound healing
biomaterial. J Biomater Appl 31:283–301. https://doi.org/10.1177/0885328216644536
94. Gu H, Ho PL, Tong E, Wang L, Xu B (2003) Presenting vancomycin on nanoparticles to
enhance antimicrobial activities. Nano Lett 3:1261–1263. https://doi.org/10.1021/nl034396z
95. Norman RS, Stone JW, Gole A, Murphy CJ, Sabo-Attwood TL (2008) Targeted photothermal
lysis of the pathogenic bacteria, pseudomonas aeruginosa, with gold nanorods. Nano Lett
8:302–306. https://doi.org/10.1021/nl0727056
291
77. Han G, Nguyen LN, Macherla C, Chi Y, Friedman JM, Nosanchuk JD, Martinez LR
(2012) Nitric oxide–releasing nanoparticles accelerate wound healing by promoting fibroblast
migration and collagen deposition. Am J Pathol 180:1465–1473
78. Azuma K, Izumi R, Osaki T, Ifuku S, Morimoto M, Saimoto H, Minami S, Okamoto Y (2018)
Functional biomaterials chitin, chitosan, and its derivatives for wound healing: old and new
materials. J Funct Biomater 6:104–1426. https://doi.org/10.3390/jfb6010104
79. Hussain Z, Thu HE, Ng SF, Khan S, Katas H (2017) Nanoencapsulation, an efficient and
promising approach to maximize wound healing efficacy of curcumin: a review of new trends
and state-of-the-art. Colloids Surfaces B Biointerfaces 150:223–241
80. Kant V, Gopal A, Pathak NN, Kumar P, Tandan SK, Kumar D (2014) Antioxidant
and anti-inflammatory potential of curcumin accelerated the cutaneous wound healing in
streptozotocin-induced diabetic rats. Elsevier 20:322–330
81. Yallapu MM, Nagesh PKB, Jaggi M, Chauhan SC (2015) Therapeutic applications of
curcumin nanoformulations. AAPS J 17:1341–1356. https://doi.org/10.1208/s12248-0159811-z
82. Sherwani MA, Tufail S, Khan AA, Owais M (2015) Gold nanoparticle-photosensitizer conjugate based photodynamic inactivation of biofilm producing cells: potential for treatment of
C. albicans infection in. PLoS One 10
83. Yates CC, Hebda P, Wells A (2012) Skin wound healing and scarring: fetal wounds and
regenerative restitution. Birth Defects Res Part C Embryo Today Rev 96:325–333
84. Rajendran NK, Sundar S, Kumar D, Houreld NN, Abrahamse H (2018) A review on nanoparticle based treatment for wound healing. J Drug Deliv Sci Technol 44:421–430. https://doi.
org/10.1016/j.jddst.2018.01.009
85. Zhang XF, Liu ZG, Shen W, Gurunathan S (2016) Silver nanoparticles: synthesis, characterization, properties, applications, and therapeutic approaches. Int J Mol Sci 17:1534–1568
86. Sarhan WA, Azzazy HME, El-Sherbiny IM (2016) Honey/chitosan nanofiber wound dressing
enriched with Allium sativum and Cleome droserifolia: enhanced antimicrobial and wound
healing activity. ACS Appl Mater Interfaces 8:6379–6390. https://doi.org/10.1021/acsami.
6b00739
87. Lambadi PR, Sharma TK, Kumar P, Vasnani P, Thalluri SM, Bisht N, Pathania R, Navani
NK (2015) Facile biofunctionalization of silver nanoparticles for enhanced antibacterial
properties, endotoxin removal, and biofilm control. Int J Nanomedicine 10:2155
88. Butler KS, Peeler DJ, Casey BJ, Dair BJ, Elespuru RK (2015) Silver nanoparticles: correlating
nanoparticle size and cellular uptake with genotoxicity. Mutagenesis 30:577–591
89. Franková J, Pivodová V, Vágnerová H, Jurᡠnová J, Ulrichová J (2016) Effects of silver nanoparticles on primary cell cultures of fibroblasts and keratinocytes in a wound-healing model. J
Appl Biomater Funct Mater 14:e137–e142. https://doi.org/10.5301/jabfm.5000268
90. Tian J, Wong KKY, Ho C-M, Lok C-N, Yu W-Y, Che C-M, Chiu J-F, Tam PKH (2007) Topical
delivery of silver nanoparticles promotes wound healing. ChemMedChem Chem Enabling
Drug Discov 2:129–136. https://doi.org/10.1002/cmdc.200600171
91. GhavamiNejad A, Rajan Unnithan A, Ramachandra Kurup Sasikala A, Samarikhalaj M,
Thomas RG, Jeong YY, Nasseri S, Murugesan P, Wu D, Hee Park C, Kim CS (2015) Musselinspired electrospun nanofibers functionalized with size-controlled silver nanoparticles for
wound dressing application. ACS Appl Mater Interfaces 7:12176–12183. https://doi.org/10.
1021/acsami.5b02542
92. Liu J, Sonshine DA, Shervani S, Hurt RH (2010) Controlled release of biologically active
silver from nanosilver surfaces. ACS Nano 4:6903–6913. https://doi.org/10.1021/nn102272n
93. Akturk O, Kismet K, Yasti AC, Kuru S, Duymus ME, Kaya F, Caydere M, Hucumenoglu S,
Keskin D (2016) Collagen/gold nanoparticle nanocomposites: a potential skin wound healing
biomaterial. J Biomater Appl 31:283–301. https://doi.org/10.1177/0885328216644536
94. Gu H, Ho PL, Tong E, Wang L, Xu B (2003) Presenting vancomycin on nanoparticles to
enhance antimicrobial activities. Nano Lett 3:1261–1263. https://doi.org/10.1021/nl034396z
95. Norman RS, Stone JW, Gole A, Murphy CJ, Sabo-Attwood TL (2008) Targeted photothermal
lysis of the pathogenic bacteria, pseudomonas aeruginosa, with gold nanorods. Nano Lett
8:302–306. https://doi.org/10.1021/nl0727056
