References
Agnes Mary S, Giri Dev VR (2015) Electrospun herbal nanofibrous wound dressings for skin tissue
engineering. J Text Inst 106:886–895
Anandjiwala S, Bagul M, Parabia M, Rajani M (2008) Evaluation of free radical scavenging activity
of an ayurvedic formulation, Panchvalkala. Indian J Pharm Sci 70:31–35
Bektas N, Şenel B, Yenilmez E, Özatik O, Arslan R (2020) Evaluation of wound healing effect of
chitosan-based gel formulation containing vitexin. Saudi Pharm J 28:87–94
Biswas A, Aswal VK, Sastry PU, Rana D, Maiti P (2016) Reversible bidirectional shape memory
effect in polyurethanes through molecular flipping. Macromolecules 49:4889–4897
Biswas A, Amarajeewa M, Senapati S, Sahu M, Maiti P (2018a) Sustained release of herbal drugs
using biodegradable scaffold for faster wound healing and better patient compliance. Nanomed
Nanotechnol Biol Med 14:2131–2141
Biswas A, Sahu M, Maiti P (2018b) Dressing materials using herbal drugs for better wound
management | request PDF. In: Gupta B, Pathania D (eds) Advances in polymers for biomedical
applications. Nova Science, Hauppauge, pp 279–302
Biswas A, Singh AP, Rana D, Aswal VK, Maiti P (2018c) Biodegradable toughened nanohybrid
shape memory polymer for smart biomedical applications. Nanoscale 10:9917–9934
Biswas A, Shukla A, Maiti P (2019a) Biomaterials for interfacing cell imaging and drug delivery:
an overview. Langmuir 35:12285–12305. https://doi.org/10.1021/acs.langmuir.9b00419
Biswas A, Aswal VK, Maiti P (2019b) Tunable shape memory behavior of polymer with surface
modification of nanoparticles. J Colloid Interface Sci 556:147–158
Blanco MD, García O, Trigo RM, Teijón JM, Katime I (1996) 5-Fluorouracil release from
copolymeric hydrogels of itaconic acid monoester: I. Acrylamide-co-monomethyl itaconate.
Biomaterials 17:1061–1067
Boateng JS, Matthews KH, Stevens HNE, Eccleston GM (2008) Wound healing dressings and drug
delivery systems: a review. J Pharm Sci 97:2892–2923
Borghi SM et al (2013) Vitexin inhibits inflammatory pain in mice by targeting TRPV1, oxidative
stress, and cytokines. J Nat Prod 76:1141–1146
Brandl F, Hammer N, Blunk T, Tessmar J, Goepferich A (2010) Biodegradable hydrogels for time-
controlled release of tethered peptides or proteins. Biomacromolecules 11:496–504
Carla Daunton SD, Kothari S, Smith L, Steele D (2012) A history of materials and practices for
wound management. Wound Pract Res 20:174–186
Chouhan D, Chakraborty B, Nandi SK, Mandal BB (2017) Role of non-mulberry silk fibroin in
deposition and regulation of extracellular matrix towards accelerated wound healing. Acta
Biomater 48:157–174
Cowan MM (1999) Plant products as antimicrobial agents. Clin Microbiol Rev 12:564–582
Datta HS, Mitra SK, Patwardhan B (2011) Wound healing activity of topical application forms
based on ayurveda. Evidence-Based Complement Altern Med 2011:1–10
Dhivya S, Padma VV, Santhini E (2015) Wound dressings—a review. BioMedicine (Netherlands)
5:24–28
Doillon CJ, Silver FH (1986) Collagen-based wound dressing: effects of hyaluronic acid and
firponectin on wound healing. Biomaterials 7:3–8
Dorman HJ, Deans SG (2000) Antimicrobial agents from plants: antibacterial activity of plant
volatile oils. J Appl Microbiol 88:308–316
Du L, Feng X, Xiang X, Jin Y (2016) Wound healing effect of an in situ forming hydrogel loading
curcumin-phospholipid complex. Curr Drug Deliv 13:76–82
Farahani H, Barati A, Arjomandzadegan M, Vatankhah E (2020) Nanofibrous cellulose acetate/
gelatin wound dressing endowed with antibacterial and healing efficacy using nanoemulsion of
Zataria multiflora. Int J Biol Macromol 162:762–773
Friedman M (2015) Antibiotic-resistant bacteria: prevalence in food and inactivation by food-
compatible compounds and plant extracts. J Agric Food Chem 63:3805–3822
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