419 Curcumin Against Skin Aging (64) G. D. Liyanaarachchi, J. K. R. R. Samarasekera, K. R. R. Mahanama, and K. D. P. Hemalal, Tyrosinase, elastase, hyaluronidase, inhibitory and antioxidant activity of Sri Lankan medicinal plants for novel cosmeceuticals, Ind. Crops Prod. 111, 597–605 (2018). (65) A. Amalraj, A. Pius, S. Gopi, and S. Gopi, Biological activities of curcuminoids, other biomolecules from turmeric and their derivatives—A review, J. Tradit. Complement. Med. 7(2), 205–233 (2017). (66)Y .H. Kim, C. B. Chung, J. G. Kim, K. I. Ko, S. H. Park, J. H. Kim, Anti-wrinkle activity of ziyuglycoside I isolated from a Sanguisorba officinalis root extract and its application as a cosmeceutical ingredient, Biosci. Biotechnol. Biochem. 72(2), 303–311 (2008). (67) I. Binic, V. Lazarevic, M. Ljubenovic, J. Mojsa, and D. Sokolovic, Skin ageing: Natural weapons and strategies, eCAM. 2013, 827248 (2013). (68) S. I. Rattan, R. A. Fernandes, D. Demirovic, B. Dymek, and C. F. Lima, Heat stress and hormetin- induced hormesis in human cells: Effects on aging, wound healing, angiogenesis, and differentiation, DOSE-RESPONSE 7(1), 90–103 (2009). (69) C. F. Lima, C. Pereira-Wilson, and S. I. Rattan, Curcumin induces heme oxygenase-1 in.normal human skin fibroblasts through redox signaling: Relevance for antiaging intervention, Mol. Nutr. Food Res. 55(3), 430–442 (2011). (70) N. S. A. Moghaddam, M. N. Oskouie, A. E. Butler, P. X. Petit, G. E. Barreto, and A. Sahebkar, Hormetic effects of curcumin: What is the evidence? J. Cell. Physiol. 234(7), 10060–10071 (2019). (71) S. I. Rattan and R. E. Ali, Hormetic prevention of molecular damage during cellular aging of human skin fibroblasts and keratinocytes, Ann N.Y. Acad. Sci. 1100, 424–430 (2007). (72) M. M. Yallapu, P. K. Nagesh, M. Jaggi, and S. C. Chauhan, Therapeutic applications of curcumin nanoformulations, AAPS J. 17(6), 1341–1356 (2015). (73) M. Shailaja, K. M. Damodara Gowda, K. Vishakh, and N. Suchetha Kumari, Antiaging role of curcumin by modulating the inflammatory markers in albino wistar rats, J. Natl. Med. Assoc. 109(1), 9–13 (2017). (74) G. M. S. Gonçalves, G. H. D. Silva, P. P. Barros, S. M. Srebernich, C. T. C. Shiraishi, V. R. D. Camargos, Use of curcuma longa in cosmetics: Extraction of curcuminoid pigments, development of formulations, and in vitro skin permeation studies, Braz. J. Pharm. Sci. 50(4), 885–893 (2014). (75) L. Yang, Z. Zheng, C. Qian, J. Wu, Y. Liu, S. Guo, Curcumin-functionalized silk biomaterials for antiaging utility, J. Colloid Interface Sci. 496, 66–77 (2017). (76) S. Jebahi, M. Saoudi, L. Farhat, H. Oudadesse, T. Rebai, A. Kabir, Effect of novel curcumin-encapsulated chitosan-bioglass drug on bone and skin repair after gamma radiation: Experimental study on a Wistar rat model. Cell Biochem. Funct. 33(3), 150–159 (2015). (77) F. Zhou, Z. Song, Y. Wen, H. Xu, L. Zhu, and R. Feng, Transdermal delivery of curcumin-loaded supramolecular hydrogels for dermatitis treatment, J. Mater. Sci. Mater. Med. 30(1), 11 (2019). (78) T. R. Arunraj, N. Sanoj Rejinold, S. Mangalathillam, S. Saroj, R. Biswas, and R. Jayakumar, Synthesis, characterization and biological activities of curcumin nanospheres, J. Biomed. Nanotechnol. 10(2), 238– 250 (2014). (79) K. Coradini, F. O. Lima, C. M. Oliveira, P. S. Chaves, M. L. Athayde, L. M. Carvalho, Co-encapsulation of resveratrol and curcumin in lipid-core nanocapsules improves their in vitro antioxidant effects, Eur. J. Pharm. Biopharm. 88(1), 178–185 (2014). (80) R. W. Eckert, S. Wiemann, and C. M. Keck, Improved dermal and transdermal delivery of curcumin with SmartFilms and nanocrystals, Molecules 26(6), (2021). (81) M. S. S. Chanchal Deep Kaur, Topical vesicular formulations of curcuma longa extract on recuperating the ultraviolet radiation–damaged skin, J. Cosmet. Dermatol. 10(4), 260–265 (2011). (82) V. Kakkar, S. Singh, D. Singla, and I. P. Kaur, Exploring solid lipid nanoparticles to enhance the oral bioavailability of curcumin, Mol. Nutr. Food Res. 55(3), 495–503 (2011). (83) N. Suwannateep, S. Wanichwecharungruang, S. F. Haag, S. Devahastin, N. Groth, J. W. Fluhr, Encapsulated curcumin results in prolonged curcumin activity in vitro and radical scavenging activity ex vivo on skin after UVB-irradiation, Eur. J. Pharm. Biopharm. 82(3), 485–490 (2012).
420 JOURNAL OF COSMETIC SCIENCE (84) M. Ben Yehuda Greenwald, M. Frusic-Zlotkin, Y. Soroka, S. Ben Sasson, R. Bitton, H. Bianco-Peled, Curcumin protects skin against UVB-induced cytotoxicity via the Keap1-Nrf2 pathway: The use of a microemulsion delivery system, Oxid. Med. Cell. Longev. 2017, 5205471 (2017). (85) T. P. Sari, B. Mann, R. Kumar, R. R. B. Singh, R. Sharma, M. Bhardwaj, Preparation and characterization of nanoemulsion encapsulating curcumin, Food Hydrocoll. 43, 540–546 (2015). (86) N. Ahmad, R. Ahmad, A. Al-Qudaihi, S. E. Alaseel, I. Z. Fita, M. S. Khalid, Preparation of a novel curcumin nanoemulsion by ultrasonication and its comparative effects in wound healing and the treatment of inflammation, RSC Adv. 9(35), 20192–20206 (2019). (87) S. Kaul, N. Gulati, D. Verma, S. Mukherjee, and U. Nagaich, Role of nanotechnology in cosmeceuticals: A review of recent advances, J. Pharm. 2018, 3420204 (2018).
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