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Наука
Watanabe Y, Nagashima T, Hanzawa N, Ishino A, Nakazawa Y, Ogo M, et al. Topical adenosine increases thick hair ratio in Japanese men with androgenetic alopecia. Int J Cosmet Sci. 2015; 37(6):579–87.
Iwabuchi T, Ideta R, Ehama R, Yamanishi H, Iino M, Nakazawa Y, et al. Topical adenosine increases the proportion of thick hair in Caucasian men with androgenetic alopecia. J Dermatol. 2016; 43(5):567–70.
Oura H, Iino M, Nakazawa Y, Tajima M, Ideta R, Nakaya Y, et al. Adenosine increases anagen hair growth and thick hairs in Japanese women with female pattern hair loss: a pilot, double-blind, randomized, placebo-controlled trial. J Dermatol. 2008; 35(12):763–7
Faghihi G, Iraji F, Rajaee Harandi M, Nilforoushzadeh MA, Askari G. Comparison of the efficacy of topical minoxidil 5% and adenosine 0.75% solutions on male androgenetic alopecia and measuring patient satisfaction rate. Acta Dermatovenerol Croat. 2013; 21(3):155–9.
Park M. A., Sim M. J., Kim Y. C. Anti-photoaging effects of Angelica acutiloba root ethanol extract in human dermal fibroblasts //Toxicological research. – 2017. – Т. 33. – №. 2. – С. 125-134.
Uysal S. et al. Chemical profile, antioxidant properties and enzyme inhibitory effects of the root extracts of selected Potentilla species //South African Journal of Botany. – 2019. – Т. 120. – С. 124-128.
Haihaywanshi M. S. et al. Arnica hydrogel: an oil replacement for hair loss treatment //Journal of Drug Delivery and Therapeutics. – 2017. – Т. 7. – №. 7. – С. 23-25.
Kriplani P., Guarve K., Baghael U. S. Arnica montana L.–a plant of healing //Journal of Pharmacy and Pharmacology. – 2017. – Т. 69. – №. 8. – С. 925-945.
Craciunescu O. et al. Evaluation of antioxidant and cytoprotective activities of Arnica montana L. and Artemisia absinthium L. ethanolic extracts //Chemistry Central Journal. – 2012. – Т. 6. – №. 1. – С. 1-11.
El Abbassi A. et al. Physicochemical characteristics, nutritional properties, and health benefits of argan oil: A review //Critical reviews in food science and nutrition. – 2014. – Т. 54. – №. 11. – С. 1401-1414.
El Abbassi A. et al. Physicochemical characteristics, nutritional properties, and health benefits of argan oil: A review //Critical reviews in food science and nutrition. – 2014. – Т. 54. – №. 11. – С. 1401-1414.
de Aguiar C. M. et al. Crambe abyssinica Hochst. Oil //Fruit Oils: Chemistry and Functionality. – Springer, Cham, 2019. – С. 433-450.
Anconi G. L. Aplicação de peptídeos em cosméticos: Desenvolvimento de formulações, estabilidade e eficácia : дис. – Universidade de São Paulo, 2008.
Krishna T. P. A., Edachery B., Athalathil S. Bakuchiol–a natural meroterpenoid: structure, isolation, synthesis and functionalization approaches //RSC Advances. – 2022. – Т. 12. – №. 14. – С. 8815-8832.
Dhaliwal S. et al. Prospective, randomized, double‐blind assessment of topical bakuchiol and retinol for facial photoageing //British Journal of Dermatology. – 2019. – Т. 180. – №. 2. – С. 289-296.
Spierings N. M. K. Cosmetic commentary: Is bakuchiol the new" skincare hero"? //Journal of Cosmetic Dermatology. – 2020. – Т. 19. – №. 12. – С. 3208-3209.
Chen X. et al. Mapping and breeding value evaluation of a semi-dominant semi-dwarf gene in upland rice //Plant diversity. – 2018. – Т. 40. – №. 5. – С. 238-244.
Chaudhuri R. K., Bojanowski K. Bakuchiol: a retinol‐like functional compound revealed by gene expression profiling and clinically proven to have anti‐aging effects //International journal of cosmetic science. – 2014. – Т. 36. – №. 3. – С. 221-230.
Gafner F., Schweikert K., Dell'Acqua G. Oat‐based complex stimulates skin barrier protein synthesis and reduces skin ageing //International Journal of Cosmetic Science. – 2009. – Т. 31. – №. 5. – С. 403-403.
Esfandi R., Willmore W. G., Tsopmo A. Peptidomic analysis of hydrolyzed oat bran proteins, and their in vitro antioxidant and metal chelating properties //Food chemistry. – 2019. – Т. 279. – С. 49-57.
Becker L. C. et al. Safety Assessment of Avena sativa (Oat)-Derived Ingredients As Used in Cosmetics //International journal of toxicology. – 2019. – Т. 38. – №. 3_suppl. – С. 23S-47S.
Vaughn A. R. et al. Natural oils for skin-barrier repair: ancient compounds now backed by modern science //American journal of clinical dermatology. – 2018. – Т. 19. – №. 1. – С. 103-117.
Farboud E. S., Amin G., Akbari L. Avena sativa: An effective natural ingredient in herbal shampoos for the treatment of hair greasiness //Journal of Advances in Medicine and Medical Research. – 2013. – С. 361-371.
Kim J. S. Effect of Oatmeal Oil on Hair Texture Improvement //Asian Journal of Beauty and Cosmetology. – 2020. – Т. 18. – №. 4. – С. 599-608.
Sumit K. et al. Herbal cosmetics: used for skin and hair //Inven. J. – 2012. – Т. 2012. – С. 1-7.
Vieira I. R. S. et al. Development and in vivo evaluation of the moisturising potential of cosmetic formulations containing Babassu (Orbignya phalerata Martius) oily extract //Journal Biomedical and Biopharmaceutical Research. – 2017. – Т. 14. – С. 204-219.
Abdel-Mageed W. M. et al. Antioxidant lipoxygenase inhibitors from the leaf extracts of Simmondsia chinensis //Asian Pacific journal of tropical medicine. – 2014. – Т. 7. – С. S521-S526.
Joshi L. S., Pawar H. A. Herbal cosmetics and cosmeceuticals: An overview //Nat Prod Chem Res. – 2015. – Т. 3. – №. 2. – С. 170.
Ranzato E., Martinotti S., Burlando B. Wound healing properties of jojoba liquid wax: an in vitro study //Journal of ethnopharmacology. – 2011. – Т. 134. – №. 2. – С. 443-449.
Satoto G. et al. An Overview on the Properties of Ximenia Oil Used as Cosmetic in Angola //Biomolecules. – 2020. – Т. 10. – №. 1. – С. 18.
Koskovac M. et al. Sea buckthorn oil—A valuable source for cosmeceuticals //Cosmetics. – 2017. – Т. 4. – №. 4. – С. 40.
Zielińska A., Nowak I. Abundance of active ingredients in sea-buckthorn oil //Lipids in health and disease. – 2017. – Т. 16. – №. 1. – С. 1-11.
Trombetta D. et al. Effect of polysaccharides from Opuntia ficus-indica (L.) cladodes on the healing of dermal wounds in the rat //Phytomedicine. – 2006. – Т. 13. – №. 5. – С. 352-358.
Ribeiro R. C. A. et al. Production and characterization of cosmetic nanoemulsions containing Opuntia ficus-indica (L.) Mill extract as moisturizing agent //Molecules. – 2015. – Т. 20. – №. 2. – С. 2492-2509.
Silva M. A. et al. Opuntia ficus-indica (L.) Mill.: A Multi-Benefit Potential to Be Exploited //Molecules. – 2021. – Т. 26. – №. 4. – С. 951.
Kamatou G. P. P., Viljoen A. M. A review of the application and pharmacological properties of α‐Bisabolol and α‐Bisabolol‐rich oils //Journal of the American oil chemists' society. – 2010. – Т. 87. – №. 1. – С. 1-7.
Kim S. et al. Inhibitory effects of (−)-α-bisabolol on LPS-induced inflammatory response in RAW264. 7 macrophages //Food and Chemical Toxicology. – 2011. – Т. 49. – №. 10. – С. 2580-2585.
Zhu F., Du B., Xu B. A critical review on production and industrial applications of beta-glucans //Food Hydrocolloids. – 2016. – Т. 52. – С. 275-288.
Du B., Bian Z., Xu B. Skin health promotion effects of natural beta‐glucan derived from cereals and microorganisms: a review //Phytotherapy Research. – 2014. – Т. 28. – №. 2. – С. 159-166.
Aboushanab S. A. S. et al. The potential use of β-Glucan in the industry, medicine and cosmetics //AIP Conference Proceedings. – AIP Publishing LLC, 2019. – Т. 2174. – №. 1. – С. 020198.
Togni S. et al. A cosmeceutical formulation based on boswellic acids for the treatment of erythematous eczema and psoriasis

Clinical, cosmetic and investigational dermatology. – 2014. – Т. 7. – С. 321.
Assimopoulou A. N., Zlatanos S. N., Papageorgiou V. P. Antioxidant activity of natural resins and bioactive triterpenes in oil substrates

Food chemistry. – 2005. – Т. 92. – №. 4. – С. 721-727.
Kamatou G. P. P., Viljoen A. M. A review of the application and pharmacological properties of α‐Bisabolol and α‐Bisabolol‐rich oils

Journal of the American oil chemists' society. – 2010. – Т. 87. – №. 1. – С. 1-7.
Kim S. et al. Inhibitory effects of (−)-α-bisabolol on LPS-induced inflammatory response in RAW264. 7 macrophages

Food and Chemical Toxicology. – 2011. – Т. 49. – №. 10. – С. 2580-2585.
Abbas S., Shanbhag T., Kothare A. Applications of bromelain from pineapple waste towards acne //Saudi Journal of Biological Sciences. – 2021. – Т. 28. – №. 1. – С. 1001-1009.
Taussig S. J., Batkin S. Bromelain, the enzyme complex of pineapple (Ananas comosus) and its clinical application. An update //Journal of ethnopharmacology. – 1988. – Т. 22. – №. 2. – С. 191-203.
Sung Y. Y., Kim Y. S., Kim H. K. Illicium verum extract inhibits TNF-α-and IFN-γ-induced expression of chemokines and cytokines in human keratinocytes //Journal of Ethnopharmacology. – 2012. – Т. 144. – №. 1. – С. 182-189.
Park S. H. et al. Protective activity ethanol extract of the fruits of Illicium verum against atherogenesis in apolipoprotein E knockout mice //BMC complementary and alternative medicine. – 2015. – Т. 15. – №. 1. – С. 1-10.
Ermis E. et al. Characterization of in vitro antifungal activities of small and American cranberry (Vaccinium oxycoccos L. and V. macrocarpon Aiton) and lingonberry (Vaccinium vitis-idaea L.) concentrates in sugar reduced fruit spreads //International journal of food microbiology. – 2015. – Т. 204. – С. 111-117.
Mihok E., György É., Máthé E. The Carpathian lingonberry, raspberry and blackberry fruit extracts feature variable antimicrobial efficiency //Acta Agraria Debreceniensis. – 2019. – №. 1. – С. 27-32.
Yoshioka A. et al. Anti-oxidant effects of retinoids on inflammatory skin diseases //Archives of dermatological research. – 1986. – Т. 278. – №. 3. – С. 177-183.
Zasada M., Budzisz E. Retinoids: Active molecules influencing skin structure formation in cosmetic and dermatological treatments //Advances in Dermatology and Allergology/Postȩpy Dermatologii i Alergologii. – 2019. – Т. 36. – №. 4. – С. 392.
Słoczyńska K. et al. Skin metabolism established with the use of MetaSite for selected retinoids employed in topical and systemic treatment of various skin disorders and found in cosmeceuticals //Acta Biochimica Polonica. – 2015. – Т. 62. – №. 2.
Stettler H. et al. A new topical panthenol-containing emollient: Results from two randomized controlled studies assessing its skin moisturization and barrier restoration potential, and the effect on skin microflora

Journal of Dermatological Treatment. – 2017. – Т. 28. – №. 2. – С. 173-180.
Bissett D. L. Common cosmeceuticals

Clinics in dermatology. – 2009. – Т. 27. – №. 5. – С. 435-445.
Pavlačková J. et al. In vivo efficacy and properties of semisolid formulations containing panthenol

Journal of cosmetic dermatology. – 2019. – Т. 18. – №. 1. – С. 346-354.
Cosmetic Ingredient Review Expert Panel et al. Final report of the safety assessment of niacinamide and niacin

International journal of toxicology. – 2005. – Т. 24. – С. 1-31.
Wohlrab J., Kreft D. Niacinamide-mechanisms of action and its topical use in dermatology

Skin pharmacology and physiology. – 2014. – Т. 27. – №. 6. – С. 311-315.
Spagnol C. M. et al. Ascorbic acid in cosmetic formulations: Stability, in vitro release, and permeation using a rapid, inexpensive, and simple method //Journal of Dispersion Science and Technology. – 2017. – Т. 38. – №. 6. – С. 901-908.
Ravetti S. et al. Ascorbic acid in skin health //Cosmetics. – 2019. – Т. 6. – №. 4. – С. 58.
Ehrlich M. et al. Improvement in the Appearance of Wrinkles with Topical Transforming Growth Factor β1 and l‐Ascorbic Acid //Dermatologic surgery. – 2006. – Т. 32. – №. 5. – С. 618-625.
Trommer H. et al. Role of ascorbic acid in stratum corneum lipid models exposed to UV irradiation //Pharmaceutical research. – 2002. – Т. 19. – №. 7. – С. 982-990.
Kim S., Lee T. G. Stabilization of l-ascorbic acid in cosmetic emulsions //Journal of industrial and engineering chemistry. – 2018. – Т. 57. – С. 193-198.
Raschke T. et al. Topical activity of ascorbic acid: from in vitro optimization to in vivo efficacy //Skin pharmacology and physiology. – 2004. – Т. 17. – №. 4. – С. 200-206.
Мурашкин Н. Н. и др. Инновации в терапии атопического дерматита, осложненного вторичной инфекцией //Педиатрическая фармакология. – 2018. – Т. 15. – №. 4.
Yang M., Zhou M., Song L. A review of fatty acids influencing skin condition //Journal of cosmetic dermatology. – 2020. – Т. 19. – №. 12. – С. 3199-3204.
Ramos-e-Silva M. et al. Anti-aging cosmetics: Facts and controversies //Clinics in dermatology. – 2013. – Т. 31. – №. 6. – С. 750-758.
Packer L., Valacchi G. Antioxidants and the response of skin to oxidative stress: vitamin E as a key indicator //Skin Pharmacology and Physiology. – 2002. – Т. 15. – №. 5. – С. 282-290.
Nachbar F., Korting H. C. The role of vitamin E in normal and damaged skin //Journal of Molecular Medicine. – 1995. – Т. 73. – №. 1. – С. 7-17.
Thiele J. J., Ekanayake-Mudiyanselage S. Vitamin E in human skin: organ-specific physiology and considerations for its use in dermatology //Molecular aspects of medicine. – 2007. – Т. 28. – №. 5-6. – С. 646-667.
Straccia M. C. et al. Extraction and characterization of vegetable oils from cherry seed by different extraction processes //Chemical Engineerin g Transactions. – 2012. – Т. 27. – С. 391-396.
Górnaś P. et al. Impact of cultivar on profile and concentration of lipophilic bioactive compounds in kernel oils recovered from sweet cherry (Prunus avium L.) by-products //Plant Foods for Human Nutrition. – 2016. – Т. 71. – №. 2. – С. 158-164.
Jeong Y. U. et al. Studies on antioxidant, anti-inflammation and tyrosinase inhibitory activities of Melissa officinalis extracts and their fractions //Journal of the Society of Cosmetic Scientists of Korea. – 2018. – Т. 44. – №. 4. – С. 465-475.
Teymouri G. S., Teimouri M. S. The comparative effect of hydro alcoholic and hydro distillation extracts of Melissa officinalis on acne and pimple //International Journal of Pharmacology. Phytochemistry and Ethnomedicine. – 2019. – Т. 12. – С. 35-43.
Deters A. et al. High molecular compounds (polysaccharides and proanthocyanidins) from Hamamelis virginiana bark: influence on human skin keratinocyte proliferation and differentiation and influence on irritated skin //Phytochemistry. – 2001. – Т. 58. – №. 6. – С. 949-958.
Abbas T. F., Abbas M. F., Lafta A. J. Antibacterial activity and medical properties of Witch Hazel Hamamelis virginiana //Ann Trop Med Public Health. – 2020. – Т. 23. – №. 11.
Turgut A. C. et al. Chemical characterization of Lavandula angustifolia Mill. which is a phytocosmetic species and investigation of its antimicrobial effect in cosmetic products //Journal of the Turkish Chemical Society Section A: Chemistry. – 2017. – Т. 4. – №. 1. – С. 283-298.
Prusinowska R., Śmigielski K. B. Composition, biological properties and therapeutic effects of lavender L). A review //Herba polonica. – 2014. – Т. 60. – №. 2. – С. 56-66.
Johnson Jr W. et al. Amended Safety Assessment of Chamomilla recutita-Derived Ingredients as Used in Cosmetics //International journal of toxicology. – 2018. – Т. 37. – №. 3_suppl. – С. 51S-79S.
Garbossa W. A. C., Campos P. M. B. G. M. Euterpe oleracea, Matricaria chamomilla, and Camellia sinensis as promising ingredients for development of skin care formulations //Industrial Crops and Products. – 2016. – Т. 83. – С. 1-10.
Pozharitskaya O. N. et al. Anti-inflammatory activity of a HPLC-fingerprinted aqueous infusion of aerial part of Bidens tripartita L //Phytomedicine. – 2010. – Т. 17. – №. 6. – С. 463-468.
Tomczykowa M. et al. Novel gel formulations as topical carriers for the essential oil of Bidens tripartita for the treatment of candidiasis //Molecules. – 2018. – Т. 23. – №. 10. – С. 2517.
Tomczykowa M. et al. Antimicrobial and antifungal activities of the extracts and essential oils of Bidens tripartita //Folia Histochemica et cytobiologica. – 2008. – Т. 46. – №. 3. – С. 389-393.
Jayakar V., Lokapur V., Shantaram M. Identification of the volatile bioactive compounds by GC-MS analysis from the leaf extracts of Garcinia cambogia and Garcinia indica //Medicinal Plants-International Journal of Phytomedicines and Related Industries. – 2020. – Т. 12. – №. 4. – С. 580-590.
Choppa T., Selvaraj C. I., Zachariah A. Evaluation and Characterization of Malabar Tamarind [Garcinia cambogia (Gaertn.) Desr.] Seed Oil //Journal of food science and technology. – 2015. – Т. 52. – №. 9. – С. 5906-5913.
Dal Belo S. E. et al. Skin penetration of epigallocatechin-3-gallate and quercetin from green tea and Ginkgo biloba extracts vehiculated in cosmetic formulations //Skin pharmacology and physiology. – 2009. – Т. 22. – №. 6. – С. 299-304.
Hong H. et al. Differential down-regulation of COX-2 and MMP-13 in human skin fibroblasts by glucosamine-hydrochloride //Journal of dermatological science. – 2009. – Т. 56. – №. 1. – С. 43-50.
Bissett D. L. Glucosamine: an ingredient with skin and other benefits //Journal of cosmetic dermatology. – 2006. – Т. 5. – №. 4. – С. 309-315.
Kim C. H. et al. Mechanism underlying the effect of combined therapy using glucosamine and low-dose cyclosporine A on the development of atopic dermatitis-like skin lesions in NC/Nga mice //International immunopharmacology. – 2013. – Т. 15. – №. 2. – С. 424-432.
Pyo Y., Kim Y., Moon J. Study on the N-Acetyl-D-glucosamine as the Anti-aging Cosmetic Ingredients //Journal of the Korean Applied Science and Technology. – 2016. – Т. 33. – №. 4. – С. 706-716.
Yasurin P., Sriariyanun M., Phusantisampan T. the bioavailability activity of Centella asiatica //Applied Science and Engineering Progress. – 2016. – Т. 9. – №. 1. – С. 1-9.
Ratz-Łyko A., Arct J., Pytkowska K. Moisturizing and antiinflammatory properties of cosmetic formulations containing Centella asiatica extract //Indian journal of pharmaceutical sciences. – 2016. – Т. 78. – №. 1. – С. 27.
Hashim P. The effect of Centella asiatica, vitamins, glycolic acid and their mixtures preparations in stimulating collagen and fibronectin synthesis in cultured human skin fibroblast //Pakistan journal of pharmaceutical sciences. – 2014. – Т. 27. – №. 2.
Togni S. et al. A cosmeceutical formulation based on boswellic acids for the treatment of erythematous eczema and psoriasis //Clinical, cosmetic and investigational dermatology. – 2014. – Т. 7. – С. 321
Assimopoulou A. N., Zlatanos S. N., Papageorgiou V. P. Antioxidant activity of natural resins and bioactive triterpenes in oil substrates //Food chemistry. – 2005. – Т. 92. – №. 4. – С. 721-727.
Secchi G. Role of protein in cosmetics //Clinics in dermatology. – 2008. – Т. 26. – №. 4. – С. 321-325.
Burnett C. et al. Safety assessment of hydrolyzed wheat protein and hydrolyzed wheat gluten as used in cosmetics //International journal of toxicology. – 2018. – Т. 37. – №. 1_suppl. – С. 55S-66S.
Lourith N., Kanlayavattanakul M. Natural surfactants used in cosmetics: glycolipids //International journal of cosmetic science. – 2009. – Т. 31. – №. 4. – С. 255-261.
Onwosi C. O. et al. Microbial-derived glycolipids in the sustainable formulation of biomedical and personal care products: a consideration of the process economics towards commercialization //Process Biochemistry. – 2021. – Т. 100. – С. 124-139.
Ragusa I. et al. Spirulina for Skin Care: A Bright Blue Future. Cosmetics 2021, 8, 7. – 2021.
Oh S. H. et al. Enhancement of skin immune activities of Spirulina maxima by high pressure extraction process //Ocean and Polar Research. – 2010. – Т. 32. – №. 2. – С. 157-164.
Ahsan H. Immunopharmacology and immunopathology of peptides and proteins in personal products //Journal of Immunoassay and Immunochemistry. – 2019. – Т. 40. – №. 4. – С. 439-447.
Chen H. J. et al. Evaluating the Antioxidants, Whitening and Antiaging Properties of Rice Protein Hydrolysates //Molecules. – 2021. – Т. 26. – №. 12. – С. 3605.
Wattanasiritham L. et al. Isolation and identification of antioxidant peptides from enzymatically hydrolyzed rice bran protein //Food Chemistry. – 2016. – Т. 192. – С. 156-162.
Zhang R. et al. Protection effects of rice protein hydrolysate on UVB-irradiated photodamage in Hartley guinea pigs skin and human skin fibroblasts //Journal of Functional Foods. – 2021. – Т. 82. – С. 104504.
Hubert J. et al. In vitro dermo-cosmetic evaluation of bark extracts from common temperate trees //Planta medica. – 2016. – Т. 82. – №. 15. – С. 1351-1358.
Goyal S. et al. Investigating therapeutic potential of Trigonella foenum-graecum L. as our defense mechanism against several human diseases //Journal of toxicology. – 2016. – Т. 2016.
Sibi G. et al. Susceptibility pattern of Malassezia species to selected plant extracts and antifungal agents //International Journal of Green Pharmacy (IJGP). – 2014. – Т. 8. – №. 4.
Efstratiou E. et al. Antimicrobial activity of Calendula officinalis petal extracts against fungi, as well as Gram-negative and Gram-positive clinical pathogens //Complementary Therapies in Clinical Practice. – 2012. – Т. 18. – №. 3. – С. 173-176.
Vinola S. M. J. et al. Comparative evaluation of Calendula officinalis and 2% chlorhexidine against Enterococcus faecalis and Candida albicans //Journal of Interdisciplinary Dentistry. – 2021. – Т. 11. – №. 3. – С. 119.
Saffari E. et al. Comparing the effects of Calendula officinalis and clotrimazole on vaginal Candidiasis: A randomized controlled trial //Women & health. – 2017. – Т. 57. – №. 10. – С. 1145-1160.
Shen X. R. et al. Development of salmon milt DNA/salmon collagen composite for wound dressing //Journal of Materials Science: Materials in Medicine. – 2008. – Т. 19. – №. 12. – С. 3473-3479.
Sasaki Y., Miyoshi D., Sugimoto N. Utilization of salmon milt DNA against UV damage //Applied biochemistry and biotechnology. – 2010. – Т. 160. – №. 8. – С. 2458-2466.
Kwon, O.S., Han, J.H., Yoo, H.G., Chung, J.H., Cho, K.H., Eun, H.C. and Kim, K.H. Human hair growth enhancement in vitro by green tea epigallocatechin-3-gallate (EGCG). Phytomedicine 14(7–8), 551–555 (2007). 65. Shin, S., Kim, K. and Lee, M.J. et al.
Shin S. et al. Epigallocatechin gallate-mediated alteration of the Microrna expression profile in 5α-dihydrotestosterone-treated human dermal papilla cells //Annals of dermatology. – 2016. – Т. 28. – №. 3. – С. 327-334.
Chiang H. M. et al. Role of Coffea arabica extract and related compounds in preventing photoaging and photodamage of the skin //Coffee in Health and Disease Prevention. – Academic Press, 2015. – С. 523-530.
Del Carmen Velazquez Pereda M. et al. Effect of green Coffea arabica L. seed oil on extracellular matrix components and water‐channel expression in in vitro and ex vivo human skin models //Journal of Cosmetic Dermatology. – 2009. – Т. 8. – №. 1. – С. 56-62.
Calcabrini C. et al. Rhodiola rosea ability to enrich cellular antioxidant defences of cultured human keratinocytes //Archives of dermatological research. – 2010. – Т. 302. – №. 3. – С. 191-200.
Panossian A., Wikman G., Sarris J. Rosenroot (Rhodiola rosea): traditional use, chemical composition, pharmacology and clinical efficacy //Phytomedicine. – 2010. – Т. 17. – №. 7. – С. 481-493.
Toh W. H. et al. The Effects of Phenolic Compounds Isolated from Chinese Herbal Medicine Rhodiola Rosea on Preventing Photoaging of Keratinocytes //bioRxiv. – 2021.
Penna S. C. et al. Anti-inflammatory effect of the hydralcoholic extract of Zingiber officinale rhizomes on rat paw and skin edema //Phytomedicine. – 2003. – Т. 10. – №. 5. – С. 381-385.
Malhotra S., Singh A. P. Medicinal properties of ginger (Zingiber officinale Rosc.). – 2003.
Minghetti P. et al. Evaluation of the topical anti-inflammatory activity of ginger dry extracts from solutions and plasters //Planta medica. – 2007. – Т. 73. – №. 15. – С. 1525-1530.
Nizioł-Łukaszewska Z. et al. Inulin as an effectiveness and safe ingredient in cosmetics //Polish Journal of Chemical Technology. – 2019. – Т. 21. – №. 1.
Tripodo G., Mandracchia D. Inulin as a multifaceted (active) substance and its chemical functionalization: From plant extraction to applications in pharmacy, cosmetics and food //European Journal of Pharmaceutics and Biopharmaceutics. – 2019. – Т. 141. – С. 21-36.
Byun S. Y. et al. Efficacy of slimming cream containing 3.5% water-soluble caffeine and xanthenes for the treatment of cellulite: Clinical study and literature review //Annals of dermatology. – 2015. – Т. 27. – №. 3. – С. 243-249.
Femenia A. High-value co-products from plant foods: cosmetics and pharmaceuticals //Handbook of waste management and co-product recovery in food processing. – Woodhead Publishing, 2007. – С. 470-501.
Burnett C. L. et al. Final report on the safety assessment of Cocos nucifera (coconut) oil and related ingredients //International journal of toxicology. – 2011. – Т. 30. – №. 3_suppl. – С. 5S-16S.
Dong Y. et al. Phytochemicals and biological studies of plants in genus Hedysarum //Chemistry Central Journal. – 2013. – Т. 7. – №. 1. – С. 1-13.
Shin B. H., Lee J. N. A Study on the Effects of Hair Nutrient Containing Saponin Astragaloside from Astragalus membranaceus Bunge on Eyebrows growth and development //Journal of the Korea Academia-Industrial cooperation Society. – 2017. – Т. 18. – №. 10. – С. 227-236.
Bae H. K. et al. Biological activity study on anti-oxidant, whitening, and anti-inflammatory effects of Astragalus membranaceus ethanol extracts and bioconversion extracts //Asian Journal of Beauty and Cosmetology. – 2017. – Т. 15. – №. 4. – С. 489-499.
Kwon H. J., Kim M. H., Yang W. M. Effects of Topical application of Astragalus membranaceus in Spontaneous Alopecia Mice Model //The Journal of Korean Medicine. – 2018. – Т. 39. – №. 1. – С. 1-12.
Moon J., Lee J. H., You S. Antioxidant Activity and Cytotoxicity on cell of Arctium lappa L. root extract //Journal of the Korean Applied Science and Technology. – 2017. – Т. 34. – №. 1. – С. 41-49.
Chan Y. S. et al. A review of the pharmacological effects of Arctium lappa (burdock) //Inflammopharmacology. – 2011. – Т. 19. – №. 5. – С. 245-254.
Sohn E. H. et al. Anti-allergic and anti-inflammatory effects of butanol extract from Arctium Lappa L //Clinical and molecular allergy. – 2011. – Т. 9. – №. 1. – С. 1-11.
Kenny O. et al. Antioxidant properties and quantitative UPLC-MS/MS analysis of phenolic compounds in dandelion (Taraxacum officinale) root extracts //Free Radicals and Antioxidants. – 2014. – Т. 4. – №. 1. – С. 55-61.
Law S. et al. Traditional Chinese Herbal,"Dandelion" and Its Applications on Skin-Care //Traditional and Integrative Medicine. – 2021.
Oktyabrsky O. et al. Assessment of anti‐oxidant activity of plant extracts using microbial test systems //Journal of Applied Microbiology. – 2009. – Т. 106. – №. 4. – С. 1175-1183.
Luo Z., Wang S., Wang D. Phenolic profiles and antioxidant capacities of crude extracts and subsequent fractions from Potentilla fruticosa L. leaves //Natural product research. – 2016. – Т. 30. – №. 16. – С. 1890-1895.
Miliauskas G., Venskutonis P. R., Van Beek T. A. Screening of radical scavenging activity of some medicinal and aromatic plant extracts //Food chemistry. – 2004. – Т. 85. – №. 2. – С. 231-237.
Fritea L. et al. Perspectives on the Combined Effects of Ocimum basilicum and Trifolium pratense Extracts in Terms of Phytochemical Profile and Pharmacological Effects //Plants. – 2021. – Т. 10. – №. 7. – С. 1390.
Manzoureh R., Farahpour M. R. Topical administration of hydroethanolic extract of Trifolium pratense (red clover) accelerates wound healing by apoptosis and re-epithelialization //Biotechnic & Histochemistry. – 2021. – Т. 96. – №. 4. – С. 276-286.
Lee S. G. et al. Anti-inflammatory and antioxidant effects of anthocyanins of Trifolium pratense (Red Clover) in lipopolysaccharide-stimulated RAW-267.4 macrophages //Nutrients. – 2020. – Т. 12. – №. 4. – С. 1089.
Achel D. G. et al. A review of the medicinal properties and applications of Pycnanthus angolensis (Welw) Warb. – 2012.
Khanc I. O. et al. Antioxidant activity of the crude extract of the fruits of Pycnanthus angolensis and α-glucosidase inhibitory activity of its constituents. – 2008.
Tyśkiewicz K. et al. Characterization of bioactive compounds in the biomass of black locust, poplar and willow //Trees. – 2019. – Т. 33. – №. 5. – С. 1235-1263.
Piątczak E. et al. Identification and accumulation of phenolic compounds in the leaves and bark of Salix alba (L.) and their biological potential //Biomolecules. – 2020. – Т. 10. – №. 10. – С. 1391.
Bassino E., Gasparri F., Munaron L. Pleiotropic effects of white willow bark and 1, 2-decanediol on human adult keratinocytes //Skin pharmacology and physiology. – 2018. – Т. 31. – №. 1. – С. 10-18.
Tong T., Kim N., Park T. Topical application of oleuropein induces anagen hair growth in telogen mouse skin //PLoS One. – 2015. – Т. 10. – №. 6. – С. e0129578.
Spadaro F. et al. Volatile composition and biological activity of key lime Citrus aurantifolia essential oil //Natural product communications. – 2012. – Т. 7. – №. 11. – С. 1934578X1200701128.
Burnett C. L. et al. Safety Assessment of Citrus-Derived Peel Oils as Used in Cosmetics //International journal of toxicology. – 2019. – Т. 38. – №. 2_suppl. – С. 33S-59S.
Klimek-Szczykutowicz M., Szopa A., Ekiert H. Citrus limon (Lemon) phenomenon—a review of the chemistry, pharmacological properties, applications in the modern pharmaceutical, food, and cosmetics industries, and biotechnological studies //Plants. – 2020. – Т. 9. – №. 1. – С. 119.
Dauqan E. M. A., Abdullah A. Medicinal and functional values of thyme (Thymus vulgaris L.) herb //Journal of Applied Biology & Biotechnology. – 2017. – Т. 5. – №. 02. – С. 017-022.
Moghaddam M., Mehdizadeh L. Chemical Composition and Antifungal Activity of Essential Oil of Thymus vulgaris Grown in Iran against Some Plant Pathogenic Fungi //Journal of Essential Oil Bearing Plants. – 2020. – Т. 23. – №. 5. – С. 1072-1083.
Nikolić M. et al. Chemical composition, antimicrobial, antioxidant and antitumor activity of Thymus serpyllum L., Thymus algeriensis Boiss. and Reut and Thymus vulgaris L. essential oils //Industrial Crops and Products. – 2014. – Т. 52. – С. 183-190.
Boukhatem M. N. et al. In vitro antifungal and topical anti-inflammatory properties of essential oil from wild-growing thymus vulgaris (Lamiaceae) used for medicinal purposes in algeria: A new source of carvacrol //Scientia Pharmaceutica. – 2020. – Т. 88. – №. 3. – С. 33.
Tito A. et al. The growth differentiation factor 11 is involved in skin fibroblast ageing and is induced by a preparation of peptides and sugars derived from plant cell cultures //Molecular biotechnology. – 2019. – Т. 61. – №. 3. – С. 209-220.
Softa M. et al. Birch Sap (Betula alba) and Chaga Mushroom (Inonotus obliquus) Extracts Show Anti-Oxidant, Anti-Inflammatory and DNA Protection/Repair Activity In Vitro //Journal of Cosmetics, Dermatological Sciences and Applications. – 2019. – Т. 9. – №. 02. – С. 188.
Iguchi T. et al. Chemical constituents and aldose reductase inhibitory activities of Betula alba bark and leaves //Natural Product Research. – 2020. – С. 1-5.
Reuter J. et al. Which plant for which skin disease? Part 2: Dermatophytes, chronic venous insufficiency, photoprotection, actinic keratoses, vitiligo, hair loss, cosmetic indications //JDDG: Journal der Deutschen Dermatologischen Gesellschaft. – 2010. – Т. 8. – №. 11. – С. 866-873.
Johnson Jr W. et al. Safety Assessment of Lecithin and Other Phosphoglycerides as Used in Cosmetics //International journal of toxicology. – 2020. – Т. 39. – №. 2_suppl. – С. 5S-25S.
Shikov A. N. et al. Bergenia crassifolia (L.) Fritsch–Pharmacology and phytochemistry //Phytomedicine. – 2014. – Т. 21. – №. 12. – С. 1534-1542.
Michalak I., Dmytryk A., Chojnacka K. Algae Cosmetics //Encyclopedia of Marine Biotechnology. – 2020. – Т. 1. – С. 65-85.
Kadam S. U., Tiwari B. K., O'Donnell C. P. Extraction, structure and biofunctional activities of laminarin from brown algae //International Journal of Food Science & Technology. – 2015. – Т. 50. – №. 1. – С. 24-31.
Johnson Jr W. et al. Safety Assessment of Lecithin and Other Phosphoglycerides as Used in Cosmetics //International journal of toxicology. – 2020. – Т. 39. – №. 2_suppl. – С. 5S-25S.
Лечебная реликтовая соль
Евсеева С. Б., Сысуев Б. Б. Использование природных минеральных солей в современных косметических рецептурах: ассортимент продукции, характеристика сырья и особенности технологии //Фармация и фармакология. – 2016. – Т. 4. – №. 2.
Chomnawang M. T. et al. Antimicrobial effects of Thai medicinal plants against acne-inducing bacteria //Journal of Ethnopharmacology. – 2005. – Т. 101. – №. 1-3. – С. 330-333.
Asasutjarit R. et al. Physicochemical properties and anti-Propionibacterium acnes activity of film-forming solutions containing alpha-mangostin-rich extract //Aaps Pharmscitech. – 2014. – Т. 15. – №. 2. – С. 306-316.
Pothitirat W., Chomnawang M. T., Gritsanapan W. Anti-acne-inducing bacterial activity of mangosteen fruit rind extracts //Medical Principles and Practice. – 2010. – Т. 19. – №. 4. – С. 281-286.
Pothitirat W. et al. Free radical scavenging and anti-acne activities of mangosteen fruit rind extracts prepared by different extraction methods //Pharmaceutical biology. – 2010. – Т. 48. – №. 2. – С. 182-186.
Calcabrini C. et al. Rhodiola rosea ability to enrich cellular antioxidant defences of cultured human keratinocytes //Archives of dermatological research. – 2010. – Т. 302. – №. 3. – С. 191-200.
Panossian A., Wikman G., Sarris J. Rosenroot (Rhodiola rosea): traditional use, chemical composition, pharmacology and clinical efficacy //Phytomedicine. – 2010. – Т. 17. – №. 7. – С. 481-493.
Toh W. H. et al. The Effects of Phenolic Compounds Isolated from Chinese Herbal Medicine Rhodiola Rosea on Preventing Photoaging of Keratinocytes //bioRxiv. – 2021.
Oshimura E., Ino M. Effects of arginine on hair damage via oxidative coloring process //Journal of cosmetic science. – 2004. – Т. 55. – С. S155-70.
Baratto G. et al. Hair Strengthening Evaluation of Anisotropic Osmolite Solutions (Inositol+ Arginine): Cross-Talk between Dermal Papilla Fibroblast and Keratinocytes of the Outer Root Sheath Using a µHair Follicle 3D Model //Cosmetics. – 2018. – Т. 5. – №. 4. – С. 56.
Bayer M. et al. The effect of a food supplement and a hair lotion on the progression of androgenetic alopecia //Journal of Cosmetics, Dermatological Sciences and Applications. – 2019. – Т. 9. – №. 04. – С. 292.
Rogers N. E. Cosmeceuticals for Hair Loss and Hair Care //Cosmeceuticals and Cosmetic Practice. – 2013. – С. 234-244.
Foitzik K. et al. L‐Carnitine–L‐tartrate promotes human hair growth in vitro //Experimental dermatology. – 2007. – Т. 16. – №. 11. – С. 936-945.
Pavlačková J. et al. Stability and in vivo efficiency of natural cosmetic emulsion systems with the addition of vegetable oils //Brazilian Journal of Pharmaceutical Sciences. – 2018. – Т. 54.
Berardesca E. et al. Combined effects of silymarin and methylsulfonylmethane in the management of rosacea: clinical and instrumental evaluation //Journal of cosmetic dermatology. – 2008. – Т. 7. – №. 1. – С. 8-14.
Sp N. et al. Natural Sulfurs Inhibit LPS-Induced Inflammatory Responses through NF-κB Signaling in CCD-986Sk Skin Fibroblasts //Life. – 2021. – Т. 11. – №. 5. – С. 427.
Aljabre S. H. M., Alakloby O. M., Randhawa M. A. Dermatological effects of Nigella sativa //Journal of dermatology & dermatologic surgery. – 2015. – Т. 19. – №. 2. – С. 92-98.
Smith W. P. Epidermal and dermal effects of topical lactic acid //Journal of the American Academy of Dermatology. – 1996. – Т. 35. – №. 3. – С. 388-391.
Arif T. Salicylic acid as a peeling agent: a comprehensive review //Clinical, cosmetic and investigational dermatology. – 2015. – Т. 8. – p. 455.
Imayama S., Ueda S., Isoda M. Histologic changes in the skin of hairless mice following peeling with salicylic acid //Archives of Dermatology. – 2000. – Т. 136. – №. 11. – pp. 1390-1395.
Kanlayavattanakul M., Lourith N. An update on cutaneous aging treatment using herbs //Journal of Cosmetic and Laser Therapy. – 2015. – Т. 17. – №. 6. – С. 343-352.
Eberlin S. et al. Effects of a Brazilian herbal compound as a cosmetic eyecare for periorbital hyperchromia ("dark circles") //Journal of cosmetic dermatology. – 2009. – Т. 8. – №. 2. – С. 127-135.
Turgut A. C. et al. Chemical characterization of Lavandula angustifolia Mill. which is a phytocosmetic species and investigation of its antimicrobial effect in cosmetic products //Journal of the Turkish Chemical Society Section A: Chemistry. – 2017. – Т. 4. – №. 1. – С. 283-298.
Prusinowska R., Śmigielski K. B. Composition, biological properties and therapeutic effects of lavender L). A review //Herba polonica. – 2014. – Т. 60. – №. 2. – С. 56-66.
Wells R. et al. Lavandula essential oils: a current review of applications in medicinal, food, and cosmetic industries of lavender //Natural Product Communications. – 2018. – Т. 13. – №. 10. – С. 1934578X1801301038.
Pequeno M. A. et al. Matricaria Recutita Extract (Chamomile) to reduce Candida Albicans and Entrobacter Cloacae biofilms: in vitro study //RGO-Revista Gaúcha de Odontologia. – 2018. – Т. 66. – С. 122-128.
Ebrahimi F., Rohanaii K., Jamalu F. The Comparison of Cichorium IntybusL and Matricaria chamomilla L. Hydroalcoholic Extract Effect Composition with one of them Nystatin on the Isolated Candida albicans from Vaginal Infection under Invitro Conditions //scientific journal of ilam university of medical sciences. – 2018. – Т. 25. – №. 6. – С. 63-72.
Martins N. et al. Plants used in folk medicine: The potential of their hydromethanolic extracts against Candida species //Industrial crops and products. – 2015. – Т. 66. – С. 62-67.
de Macedo L. M. et al. Rosemary (Rosmarinus officinalis L., syn Salvia rosmarinus Spenn.) and its topical applications: a review //Plants. – 2020. – Т. 9. – №. 5. – С. 651.
González-Minero F. J., Bravo-Díaz L., Ayala-Gómez A. Rosmarinus officinalis L.(Rosemary): An Ancient Plant with Uses in Personal Healthcare and Cosmetics //Cosmetics. – 2020. – Т. 7. – №. 4. – С. 77.
Nobile V. et al. Skin photoprotective and antiageing effects of a combination of rosemary (Rosmarinus officinalis) and grapefruit (Citrus paradisi) polyphenols //Food & nutrition research. – 2016. – Т. 60. – №. 1. – С. 31871.
Kumar G. S. et al. Antimicrobial effects of Indian medicinal plants against acne-inducing bacteria //Tropical journal of pharmaceutical research. – 2007. – Т. 6. – №. 2. – С. 717-723.
Souza J. L. S. et al. Aliphatic fatty acids and esters: Inhibition of growth and exoenzyme production of Candida, and their cytotoxicity in vitro: Anti-Candida effect and cytotoxicity of fatty acids and esters //Archives of oral biology. – 2014. – Т. 59. – №. 9. – С. 880-886.
Lee J. H. et al. Antibiofilm and antifungal activities of medium‐chain fatty acids against Candida albicans via mimicking of the quorum‐sensing molecule farnesol //Microbial biotechnology. – 2021. – Т. 14. – №. 4. – С. 1353-1366.
Akula S. T. et al. Antifungal efficacy of lauric acid and caprylic acid–Derivatives of virgin coconut oil against Candida albicans //Biomedical and Biotechnology Research Journal (BBRJ). – 2021. – Т. 5. – №. 2. – С. 229.
Kopustinskiene D. M., Bernatoniene J. Antioxidant Effects of Schisandra chinensis Fruits and Their Active Constituents //Antioxidants. – 2021. – Т. 10. – №. 4. – С. 620.
Szopa A., Ekiert R., Ekiert H. Current knowledge of Schisandra chinensis (Turcz.) Baill.(Chinese magnolia vine) as a medicinal plant species: a review on the bioactive components, pharmacological properties, analytical and biotechnological studies //Phytochemistry Reviews. – 2017. – Т. 16. – №. 2. – С. 195-218.
Kim S. H., Joo M. H., Yoo S. H. Structural identification and antioxidant properties of major anthocyanin extracted from Omija (Schizandra chinensis) fruit //Journal of Food Science. – 2009. – Т. 74. – №. 2. – С. C134-C140.
Pekmezci E., Dündar C., Türkoğlu M. A proprietary herbal extract against hair loss in androgenetic alopecia and telogen effluvium: a placebo-controlled, single-blind, clinical-instrumental study //Acta Dermatovenerol Alp Pannonica Adriat. – 2018. – Т. 27. – №. 2. – С. 51-57.
Lourith N., Kanlayavattanakul M. Hair loss and herbs for treatment //Journal of cosmetic dermatology. – 2013. – Т. 12. – №. 3. – С. 210-222.
Di Virgilio N. et al. The potential of stinging nettle (Urtica dioica L.) as a crop with multiple uses //Industrial Crops and Products. – 2015. – Т. 68. – С. 42-49.
Metabolic dysfunction in human skin: Restoration of mitochondrial integrity and metabolic output by nicotinamide (niacinamide) in primary dermal fibroblasts from older aged donors John E. Oblong, Amy Bowman, Holly A. Rovito etc. Dermatological Sciences, Translational and Clinical Research Institute, Medical School, Newcastle University, Harvard Medical School, Boston, MA, USA.
A novel cosmetic approach to treat thinning hair. M.G. Davis, J.H. Thomas, S. van de Velde, Y. Boissy, T.L. Dawson Jr, R. Iveson, K. Sutton. First published: 15 December 2011 1/
Kang, H. T., & Hwang, E. S. (2009). Nicotinamide enhances mitochondria quality through autophagy activation in human cells. Aging Cell, 8(4), 426–438.
Kang, H. T., Lee, H. I., & Hwang, E. S. (2006). Nicotinamide extends replicative lifespan of human cells. Aging Cell, 5(5), 423–436.
Boudjeko T. et al. Characterisation of cell wall polysaccharides, arabinogalactans-proteins (AGPs) and phenolics of Cola nitida, Cola acuminata and Garcinia kola seeds //Carbohydrate polymers. – 2009. – Т. 78. – №. 4. – С. 820-827.
Blazics B., Kéry Á. Antioxidant activity of compounds in Euphrasia officinalis L.–revaluation of a traditional medicinal plant //Planta Medica. – 2007. – Т. 73. – №. 09. – С. P_266.
Liu Y. et al. Protective effects of Euphrasia officinalis extract against ultraviolet B-induced photoaging in normal human dermal fibroblasts //International journal of molecular sciences. – 2018. – Т. 19. – №. 11. – С. 3327.
Kim S. K., Karadeniz F. Biological importance and applications of squalene and squalane //Advances in food and nutrition research. – 2012. – Т. 65. – С. 223-233.
Lopes D. et al. A new look for the red macroalga palmaria palmata: a seafood with polar lipids rich in EPA and with antioxidant properties //Marine drugs. – 2019. – Т. 17. – №. 9. – С. 533.
Darsih C. et al. In vitro antioxidant activity of macroalgae Sargassum duplicatum and Palmaria palmata extracts collected from Sepanjang Beach, Gunungkidul, Yogyakarta //IOP Conference Series: Materials Science and Engineering. – IOP Publishing, 2021. – Т. 1011. – №. 1. – С. 012052.
Dhariwala M. Y., Ravikumar P. An overview of herbal alternatives in androgenetic alopecia //Journal of cosmetic dermatology. – 2019. – Т. 18. – №. 4. – С. 966-975.
Strauch G, Pedes P,Vergult G, Gabriel M, Cummings S, Malbecq W, Malice MP. Comparison offinasteride (Proscar) and Serenoa repens (Pennixon) in the inhibition of 5-alpha reductase in healthy male volunteers. EurUro11994; 26(3):247-52.
Abe M, Ito Y, Oyunzu L, Oki-Fujino T, Yamada S. Pharmacologically relevant receptor binding characteristics and 5-a-reductase inhibitory activity offree fatty acids contained in saw palmetto extract. Bioi Phann Bull 2009; 32(4):646-50.
Zhu H. L. et al. Serenoa repens extracts promote hair regeneration and repair of hair loss mouse models by activating TGF-β and mitochondrial signaling pathway //European review for medical and pharmacological sciences. – 2018. – Т. 22. – №. 12. – С. 4000-4008.

Pais P. Potency of a novel saw palmetto ethanol extract, SPET-085, for inhibition of 5α-reductase II //Advances in therapy. – 2010. – Т. 27. – №. 8. – С. 555-563.
Rossi A. et al. Comparitive effectiveness and finasteride vs serenoa repens in male androgenetic alopecia: a two-year study //International Journal of Immunopathology and Pharmacology. – 2012. – Т. 25. – №. 4. – С. 1167-1173.
Prager N, Bickett K, French N, Marcovici G: A randomized, double-blind, placebo-controlled trial to determine the effectiveness of botanically derived inhibitors of 5-α-reductase in the treatment of androgenetic alopecia. J Altern Complement Med 2002;8:143–152
Wessagowit V, Tangjaturonrusamee C, Kootiratrakarn T, Bunnag T, Pimonrat T, Muangdang N, et al: Treatment of male androgenetic alopecia with topical products containing Serenoa repens extract. Australas J Dermatol 2016;57:e76–e82.
Ajlia S. A. et al. Efficacy of papain-based wound cleanser in promoting wound regeneration //Pakistan journal of biological sciences: PJBS. – 2010. – Т. 13. – №. 12. – С. 596-603.
Olmoss A. PAPAIN, A PLANT ENZYME OF BIOLOGICAL IMPORTANCE: A //American Journal of Biochemistry and Biotechnology. – 2012. – Т. 8. – №. 2. – С. 99-104.
Johnson Jr W. et al. Safety assessment of silk protein ingredients as used in cosmetics //International journal of toxicology. – 2020. – Т. 39. – №. 3_suppl. – С. 127S-144S.
Sheng J. Y. et al. Study on the application of sericin in cosmetics //Advanced Materials Research. – Trans Tech Publications Ltd, 2013. – Т. 796. – С. 416-423.
Евсеева С. Б., Сысуев Б. Б. Использование природных минеральных солей в современных косметических рецептурах: ассортимент продукции, характеристика сырья и особенности технологии //Фармация и фармакология. – 2016. – Т. 4. – №. 2.
Joshi C., Suthar R., Patel A., Patel F., Makwana D. Probiotics for Skin Health // In: Kothari V., Kumar P., Ray S. (eds) Probiotics, Prebiotics, Synbiotics, and Postbiotics. - Singapore, 2023. - pp. 329–346.
Gueniche A., Benyacoub J., Blum S., Breton L., Castiel I. Probiotics for Skin Benefits // Nutritional Cosmetics. - 2009. - pp. 421–439.
Dou J., Feng N., Guo F., Chen Z., Liang, J., Wang, T., Guo X., Xu Z. Applications of Probiotic Constituents in Cosmetics // Molecules. - 2023. - 28 - 6765.
Noor S. U., Faridah F., Michico M. Formulation Of Liquorice Root Extract (Glycyrrhiza Glabra L.) As Skin Whitening Cream

Indonesian Journal of Plant Medicine. – 2016. – Т. 9. – №. 2. – С. 93-99.
Al‐Rekabi Z. et al. Characterizing the nanomechanical properties of microcomedones after treatment with sodium salicylate ex vivo using atomic force microscopy //International Journal of Cosmetic Science. – 2021. – Т. 43. – №. 5. – С. 610-618.
Arif T. Salicylic acid as a peeling agent: a comprehensive review //Clinical, cosmetic and investigational dermatology. – 2015. – Т. 8. – С. 455.
Imayama S., Ueda S., Isoda M. Histologic changes in the skin of hairless mice following peeling with salicylic acid //Archives of Dermatology. – 2000. – Т. 136. – №. 11. – С. 1390-1395.
Zhang W. et al. Sugar alcohols derived from lactose: lactitol, galactitol, and sorbitol //Applied Microbiology and Biotechnology. – 2020. – С. 1-9.
Al-Ghazzewi F. H., Tester R. F. Impact of prebiotics and probiotics on skin health //Beneficial microbes. – 2014. – Т. 5. – №. 2. – С. 99-107.
Kim S. K., Karadeniz F. Biological importance and applications of squalene and squalane //Advances in food and nutrition research. – 2012. – Т. 65. – С. 223-233.
Seo D. H. et al. Biotechnological production of arbutins (α-and β-arbutins), skin-lightening agents, and their derivatives //Applied microbiology and biotechnology. – 2012. – Т. 95. – №. 6. – С. 1417-1425.
Rendon M. I., Gaviria J. I. Review of skin‐lightening agents //Dermatologic surgery. – 2005. – Т. 31. – С. 886-890.
Binic I. et al. Skin ageing: natural weapons and strategies //Evidence-Based Complementary and Alternative Medicine. – 2013. – Т. 2013.
Migas P., Krauze-Baranowska M. The significance of arbutin and its derivatives in therapy and cosmetics //Phytochemistry Letters. – 2015. – Т. 13. – С. 35-40.
Chen H. J. et al. Evaluating the Antioxidants, Whitening and Antiaging Properties of Rice Protein Hydrolysates //Molecules. – 2021. – Т. 26. – №. 12. – С. 3605.
Wattanasiritham L. et al. Isolation and identification of antioxidant peptides from enzymatically hydrolyzed rice bran protein //Food Chemistry. – 2016. – Т. 192. – С. 156-162.
Zhang R. et al. Protection effects of rice protein hydrolysate on UVB-irradiated photodamage in Hartley guinea pigs skin and human skin fibroblasts //Journal of Functional Foods. – 2021. – Т. 82. – С. 104504.
Brunt E. G., Burgess J. G. The promise of marine molecules as cosmetic active ingredients //International journal of cosmetic science. – 2018. – Т. 40. – №. 1. – С. 1-15.
Jimtaisong A., Saewan N. Utilization of carboxymethyl chitosan in cosmetics //International journal of cosmetic science. – 2014. – Т. 36. – №. 1. – С. 12-21.
Aranaz I. et al. Cosmetics and cosmeceutical applications of chitin, chitosan and their derivatives //Polymers. – 2018. – Т. 10. – №. 2. – С. 213.
Morin-Crini N. et al. Applications of chitosan in food, pharmaceuticals, medicine, cosmetics, agriculture, textiles, pulp and paper, biotechnology, and environmental chemistry //Environmental Chemistry Letters. – 2019. – Т. 17. – №. 4. – С. 1667-1692.
Piste P. Cysteine–master antioxidant //International Journal of Pharmaceutical, Chemical and Biological Sci-ences. – 2013. – Т. 3. – №. 1. – С. 143-9.
Choi M. et al. Shikimic acid, a mannose bioisostere, promotes hair growth with the induction of anagen hair cycle //Scientific reports. – 2019. – Т. 9. – №. 1. – С. 1-8.
Lu, F. et al. Shikimic acid promotes oligodendrocyte precursor cell diferentiation and accelerates remyelination in mice. Neurosci. Bull. 35, 434–446,
Sakaguchi, I. et al. The water-soluble extract of Illicium anisatum stimulates mouse vibrissae follicles in organ culture. Exp. Dermatol. 13, 499–504,
Wang, G. W., Hu, W. T., Huang, B. K. & Qin, L. P. Illicium verum: a review on its botany, traditional use, chemistry and pharmacology. J. Ethnopharmacol. 136, 10–20,
Guiomar L. S. L. Evaluation of Humulus lupulus L. Therapeutic Properties for the Treatment of Skin Diseases: Determination of Antimicrobial, Cytotoxic, Anti-inflammatory and Antioxidant Potential of H. lupulus Extracts : дис. – Universidade da Beira Interior (Portugal), 2020.
Astray G. et al. Humulus lupulus L. as a natural source of functional biomolecules //Applied Sciences. – 2020. – Т. 10. – №. 15. – С. 5074.
Alonso-Esteban J. I. et al. Phenolic composition and antioxidant, antimicrobial and cytotoxic properties of hop (Humulus lupulus L.) Seeds //Industrial Crops and Products. – 2019. – Т. 134. – С. 154-159.
Chang M. Y. et al. Effects of the mixture of vitamin C, vitamin E, pycnogenol and evening primrose oil on the UV-induced pigmentation and wrinkle reductions in human skin //Korean Journal of Nutrition. – 2009. – Т. 42. – №. 6. – С. 516-522.
Koo J. H. et al. Saponified Evening Primrose Oil Reduces Melanogenesis in B16 Melanoma Cells and Reduces UV‐Induced Skin Pigmentation in Humans //Lipids. – 2010. – Т. 45. – №. 5. – С. 401-407.
Muggli R. Systemic evening primrose oil improves the biophysical skin parameters of healthy adults //International journal of cosmetic science. – 2005. – Т. 27. – №. 4. – С. 243-249.
Danilenko, D. M., Ring, B. D. & Pierce, G. F. Growth factors and cytokines in hair follicle development and cycling: recent insights from animal models and the potentials for clinical therapy. Mol. Med. Today. 2, 460–467 (1996).
Mas-Chamberlin C. et al. Reduction of hair-loss: matrikines and plant molecules to the rescue //Proceedings of the 7th scientific conference of the Asian society of cosmetic chemists (ASCS): toward a new horizon: uniting cosmetic science with oriental wisdom. – 2005.
Suchonwanit P., Thammarucha S., Leerunyakul K. Minoxidil and its use in hair disorders: a review //Drug design, development and therapy. – 2019. – Т. 13. – С. 2777.
Bowman, A., & Birch-Machin, M. A. (2016). Age-dependent decrease of mitochondrial Complex II activity in human skin fibroblasts. Journal of Investigative Dermatology, 136(5), 912–919.
Bratic, A., & Larsson, N. G. (2013). The role of mitochondria in aging. Journal of Clinical Investigation, 123(3), 951–957.
Bratic, I., & Trifunovic, A. (2010). Mitochondrial energy metabolism and ageing. Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1797 (6–7), 961–967
Chen, G., Kroemer, G., & Kepp, O. (2020). Mitophagy: An emerging role in aging and age-associated diseases. Front Cell and Developmental Biology, 8, 200.
Diot, A., Morten, K., & Poulton, J. (2016). Mitophagy plays a central role in mitochondrial ageing. Mammalian Genome: Official Journal of the International Mammalian Genome Society, 27(7–8), 381–395
Ferrucci, L., Gonzalez-Freire, M., Fabbri, E., Simonsick, E., Tanaka, T., Moore, Z., Salimi, S., Sierra, F., & de Cabo, R. (2020). Measuring biological aging in humans: A quest. Aging Cell, 19(2), e13080.
Greco, M., Villani, G., Mazzucchelli, F., Bresolin, N., Papa, S., & Attardi, G. (2003). Marked aging-related decline in efficiency of oxidative phosphorylation in human skin fibroblasts. FASEB, 17(12), 1706–1708.
Harman, D. (1972). The biologic clock: The mitochondria? Journal of the American Geriatrics Society, 20, 145–147.
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