DERMAL EFFECTS OF UNSAPONIFIABLE COMPOUNDS 225 (9) K. G utbrod, J. Romer, and P. Dörmann, Phytol metabolism in plants, Prog. Lipid Res., 74, 1–17 (2019). (10) M. T. Islam, E. S. Ali, S. J. Uddin, S. Shaw, M. A. Islam, M. I. Ahmed, S. M. Chandra, U. K. Karmakar, N. S. Yarla, I. N. Khan, M. M. Billah, M. D. Pieczynska, G. Zengin, C. Malainer, F. Nicoletti, D. Gulei, I. Berindan-Neagoe, A. Apostolov, M. Banach, A. W. K. Yeung, A. El-Demerdash, J. Xiao, P. Dey, S. Yele, A. Jóźwik, N. Strzalkowska, J. Marchewka, K. R. R. Rengasamy, J. Horbańczuk, M. A. Kamal, M. S. Mubarak, S. K. Mishra, J. A. Shilpi, A. G. Atanasov, Phytol: a review of biomedical activities, Food Chem. Toxicol., 121, 82–94 (2018). (11) R. O. Silva, F. B. Sousa, S. R. Damasceno, N. S. Carvalho, V. G. Silva, F. R. Oliveira, D. P. Sousa, K. S. Aragão, A. L. Barbosa, R. M. Freitas, J. V. Medeiros, Phytol, a diterpene alcohol, inhibits the infl amma- tory response by reducing cytokine production and oxidative stress, Fundam. Clin. Pharmacol., 28(4), 455–464 (2014). (12) G. A . Ko and S. K. Cho, Phytol suppresses melanogenesis through proteasomal degradation of MITF via the ROS-ERK signaling pathway, Chem. Biol. Interact., 286, 132–140 (2018). (13) S.- K . Kim and F. Karadeniz, Biological importance and applications of squalene and squalane, Adv. Food Nutr. Res., 65, 223–233 (2012). (14) K. W o losik, M. Knas, A. Zalewska, M. Niczyporuk, and A. W. Przystupa, The importance and perspec- tive of plant-based squalene in cosmetology, J. Cosmet. Sci., 64(1), 59–65 (2013). (15) H. P. He, Y. Cai, M. Sun, and H. Corke, Extraction and purifi cation of squalene from Amaranthus grain, J. Agric. Food Chem., 50(2), 368–372 (2002). (16) C. De Luca and G. Valacchi, Surface lipids as multifunctional mediators of skin responses to environ- mental stimuli, Mediat. Infl amm., 2010, 321494 (2010). (17) Z.-R. Huang, Y.-K. Lin, and J.-Y. Fang, Biological and pharmacological activities of squalene and re- lated compounds: potential uses in cosmetic dermatology, Molecules, 14(1), 540–554 (2009). (18) C. n chez-Quesada, A. López-Biedma, E. Toledo, and J. J. Gaforio, Squalene stimulates a key innate immune cell to foster wound healing and tissue repair, Evid. Based. Complement. Alternat. Med., 2018, 9473094 (2018). (19) M. Mura k oshi, H. Nishino, H. Tokuda, A. Iwashima, J. Okuzumi, H. Kitano, and R. Iwasaki, Inhibi- tion by squalene of the tumor-promoting activity of 12-O-Tetradecanoylphorbol-13-acetate in mouse- skin carcinogenesis, Int. J. Canc., 52, 950–952 (1992). (20) S. Cho, C.-W. C hoi, D. H. Lee, C.-H. Won, S. M. Kim, S. Lee, M.-J. Lee, and J. H. Chung, High-dose squalene ingestion increases type I procollagen and decreases ultraviolet-induced DNA damage in human skin in vivo but is associated with transient adverse effects, Clin. Exp. Dermatol., 34, 500–508 (2009). (21) T. Akihisa, N. Kojima, N. Katoh, Y. Ichimura, H. Suzuki, M. Fukatsu, S. Maranz, and E. T. Masters, Triterpene alcohol and fatty acid composition of shea nuts from seven African countries, J. Oleo Sci., 59(7), 351–360 (2010). (22) T. Akihisa, K. Yasukawa, Y. Kimura, S. I. Takase, S. Yamanouchi, and T. Tamura, Triterpene alcohols from Camellia and sasanqua oils and their anti- infl ammatory effects, Chem. Pharm. Bull., 45(12), 2016– 2023 (1997). (23) M. A. Fernánde z , B. de las Heras, M. D. García, M. T. Sáenz, and A. Villar, New insights into the mechanism of action of the anti-infl ammatory triterpene lupeol, J. Pharm. Pharmacol., 53(11), 1533– 1539 (2001). (24) T. Akihisa, K. Ya s ukawa, H. Oinuma, Y. Kasahara, S. Yamanouchi, M. Takido, K. Kumaki, and T. Tamura, Triterpene alcohols from the fl owers of compositae and their anti-infl ammatory effects, Phyto- chemistry, 43(6), 1255–1260 (1996). (25) K. P. P. Ananthap a dmanabhan, S. Mukherjee, and P. Chandar, Stratum corneum fatty acids: their critical role in preserving barrier integrity during cleansing, Int. J. Cosmet. Sci., 35(4), 337–345 (2013). (26) B. Miras-Moreno, A . B. Sabater-Jara, M. A. Pedreño, and L. Almagro, Bioactivity of phytosterols and their production in plant in vitro cultures, J. Agric. Food Chem., 64(38), 7049–7058 (2016). (27) S. Bardaa, N. B. H a lima, F. Aloui, R. B. Mansour, H. Jabeur, M. Bouaziz, and Z. Sahnoun, Oil from pumpkin (Cucurbita pepo L.) seeds: evaluation of its functional properties on wound healing in rats, Lip- ids Health Dis., 15(1), 73, (2016). (28) L. Alappat, M. Val e rio, and A. B. Awad, Effect of vitamin D and β-sitosterol on immune function of macrophages, Int. Immunopharmacol., 10, 1390–1396 (2010). (29) N. Shahzad, W. Khan, S. Md, A. Ali, S.S. Saluja, S. Sharma, F. A. Al-Allaf, Z. Abduljaleel, I. A. A. Ibrahim, A. F. Abdel-Wahab, M. A. Afi fy, S. S. Al-Ghamdi, P h ytosterols as a natural anticancer agent: current status and future perspective, Biomed. Pharmacother., 88, 786–794 (2017).
JOURNAL OF COSMETIC SCIENCE 226 (30) T. Doering O. Holtköt t er, K. Schlotmann, C. Jassoy, D. Petersohn, A. Wadle M. Waldmann-Laue, Cutaneous restructuration by apple seed phytosterols: from DNA chip analysis to morphological altera- tions, Int. J. Cosmet. Sci., 27(2), 142 (2005). (31) J.-H. Riedel, K. Körbächer, R. H e ngel, and H. Schmidt-Lewerkihne, United States Patent (19) 11 Pat- ent Number: 6,156,296 (2000). (32) A. Milani, M. Basirnejad, S. Shahb a zi, and A. Bolhassani, Carotenoids: biochemistry, pharmacology and treatment, Br. J. Pharmacol., 174(11), 1290–1324 (2017). (33) K. Jomova and M. Valko, Health pro t ective effects of carotenoids and their interactions with other bio- logical antioxidants, Eur. J. Med. Chem., 70, 102–110 (2013). (34) R. K. Saini, S. H. Nile, and S. W. Park, Carotenoids from fruits and vegetables: chemistry, analysis, occurrence, bioavailability and biological activities, Food Res. Int., 76, 735–750 (2015). (35) H. Tapiero, D. M. Townsend, and K. D. Tew, The role of carotenoids in the prevention of human pa- thologies, Biomed. Pharmacother., 58, 100–110 (2004). (36) W. Stahl and H. Sies, Bioactivity a nd protective effects of natural carotenoids, Biochim. Biophys. Acta, 1740, 101–107 (2005). (37) A. H. Souza, A. K. Gohara, Â. C. Rodrigues, G. L. Ströher, D. C. Silva, J. V. Visentainer, N. E. Souza, M. Matsushita, Optimizatio n conditions of samples saponifi cation for tocopherol analysis, Food Chem., 158, 315–318 (2014). (38) N. Hussain, F. Irshad, Z. Jabeen, I . H. Shamsi, Z. Li, and L. Jiang, Biosynthesis, structural, and func- tional attributes of tocopherols in planta past, present, and future perspectives, J. Agric. Food Chem., 61(26), 6137–6149 (2013). (39) J. J. Thiele and S. Ekanayake-Mudi y anselage, Vitamin E in human skin: organ-specifi c physiology and considerations for its use in dermatology, Mol. Aspects Med., 28(5–6), 646–667 (2007). (40) N. C. Cook and S. Samman, Flavonoi d s - chemistry, metabolism, cardioprotective effects, and dietary sources, J. Nutr. Biochem., 7, 66–76 (1996). (41) C. A. Rice-evans, N. J. Miller, P. G. Bolwell, P. M. Bramley, and J. B. Pridham, The relative antioxidant activities of plant-derived polyphenolic fl avonoids, Free Radic. Res., 22, 375–383 (1995). (42) K. E. Heim, A. R. Tagliaferro, and D. J. Bobilya, Flavonoid antioxidants: chemistry, metabolism and structure-activity relationships, J. Nutr. Biochem., 13, 572–584 (2002). (43) S. Kumar, A. Mishra, and A. K. Pan d ey, Antioxidant mediated protective effect of Parthenium hys- terophorus against oxidative damage using in vitro models, BMC Complement. Altern. Med., 13, 120 (2013). (44) A. K. Pandey, A. K. Mishra, and A. Mishra, Antifungal and antioxidative potential of oil and extracts derived from leaves of indian spice plant Cinnamomum tamala, Cell. Mol. Biol., 58, 142–147 (2012). (45) A. Mishra, S. Kumar, A. Bhargava, B . Sharma, and A. K. Pandey, Studies on in vitro antioxidant and antistaphylococcal activities of some important medicinal plants, Cell. Mol. Biol., 57, 16–25 (2011). (46) A. K. Pandey, A. K. Mishra, A. Mis h ra, S. Kumar, and A. Chandra, Therapeutic potential of C. zeyla- nium extracts: an antifungal and antioxidant perspective, Int. J. Biol. Med. Res., (1), 228–233 (2010). (47) S. Kumar and A. K. Pandey, Chemist r y and biological activities of fl avonoids: an overview, Scientifi c- WorldJournal., 2013, 162750 (2013). (48) K. Zandi, B. T. Teoh, S. S. Sam, P . F. Wong, M. Mustafa, and S. Abubakar, Antiviral activity of four types of biofl avonoid against dengue virus type-2, Virol. J., 8, 560 (2011). (49) J. A. Manthey, Biological properti e s of fl avonoids pertaining to infl ammation, Microcirculation, 7, S29– S34 (2000). (50) K. Zduńska, A. Dana, A. Kolodziejc z ak, and H. Rotsztejn, Antioxidant properties of ferulic acid and its possible application, Skin Pharmacol. Physiol., 31(6), 332–336 (2018). (51) D. D. A. Peres, F. D. Sarruf, C. A. d e Oliveira, M. V. R. Velasco, and A. R. Baby, Ferulic acid photopro- tective properties in association with UV fi lters: multifunctional sunscreen with improved SPF and UVA-PF, J. Photochem. Photobiol. B Biol., 185, 46–49 (2018). (52) H. J. Park J.-H. Cho, S.-H. Hong, D. - H. Kim, H.-Y. Jung, I.-K. Kang, and Y.-J. Cho, Whitening and anti-wrinkle activities of ferulic acid isolated from Tetragonia tetragonioides in B16F10 melanoma and CCD-986sk fi broblast cells, J. Nat. Med., 72(1), 127–135 (2018). (53) H.-Y. Lo, C.-C. Li, H.-M. Cheng, I.- C . Liu, T.-Y. Ho, and C.-Y. Hsiang, Ferulic acid altered IL-17A/ IL-17RA interaction and protected against imiquimod-induced psoriasis-like skin injury in mice, Food Chem. Toxicol., 129, 365–375 (2019). (54) Z. Zhou, T. Shi, J. Hou, and M. Li, F erulic acid alleviates atopic dermatitis-like symptoms in mice via its potent anti-infl ammatory effect, Immunopharmacol. Immunotoxicol., 42, 156–164 (2020).
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