JOURNAL OF COSMETIC SCIENCE 200 ACKNOWLEDGMENTS We are grateful for many helpful discussions with Ed Smith, Kathy Kerr, and Robert Binder from Procter & Gamble. REFERENCES (1) K. D. Ertel, B. H. Keswick, and P. B. Bryant, A forearm controlled application technique for estimating the relative mildness of personal cleansing products, J. Soc. Cosmet. Chem., 46, 67–76 (1995). (2) A. V. Rawlings, A. Watkinson, J. Rogers, A. Mayo, J. Hope, and I. A. Scott, Abnormalities in stratum corneum structure, lipid composition, and desmosome degradation in soap-induced winter xerosis, J. Soc. Cosmet. Chem., 45, 203–220 (1994). (3) D. A. Basketter, H. A. Griffi ths, X. M. Wang, K. P. Wilhelm, and J. McFadden, Individual, ethnic and seasonal variability in irritant susceptibility of skin: The implications for a predictive human patch test, Contact Dermatitis, 35, 208–213 (1996). (4) J. Canning, B. Barford, D. Sullivan, R. Wickett, and M. Visscher, Use of digital photography and image analysis techniques to quantify erythema in health care workers, Skin Res. Technol., 15, 24–34 (2009). (5) E. Larson, K. J. McGinley, G. L. Grove, J. J. Leyden, and G. H. Talbot, Physiologic, microbiologic, and seasonal effects of handwashing on the skin of health care personnel, Am. J. Infect. Control, 14, 51–59 (1986). (6) M. Visscher, J. Canning, D. Said, R. Wickett, and P. Bondurant, Effect of hand hygiene regimens on skin condition in health care workers, Am. J. Infect. Control, 34, S111–S123 (2006). (7) M. J. Wan, X. Y. Su, Y. Zheng, Z. J. Gong, J. L. Yi, Y. Zhao, X. M. Guan, and W. Lai, Seasonal vari- ability in the biophysical properties of forehead skin in women in Guangzhou City, China, Int. J. Der- matol., 54, 12–29 (2014). (8) D. Black, A. Del Pozo, J. M. Lagarde, and Y. Gall, Seasonal variability in the biophysical properties of stratum corneum from different anatomical sites, Skin Res. Technol., 6, 70–76 (2000). (9) M. Egawa and H. Tagami, Comparison of the depth profi les of water and water-binding substances in the stratum corneum determined in vivo by Raman spectroscopy between the cheek and volar forearm skin: Effects of age, seasonal changes and artifi cial forced hydration, Br. J. Dermatol., 158, 251–260 (2008). (10) K. Kikuchi, H. Kobayashi, I. Le Fur, E. Tschachler, and H. Tagami, The winter season affects more se- verely the facial skin than the forearm skin: Comparative biophysical studies conducted in the same Japanese females in later summer and winter, Exogenous Dermatol., 1, 32–38 (2002). (11) N. Muizzuddin, M. Ingrassia, K. D. Marenus, D. H. Maes, and T. Mammone, Effect of seasonal and geographical differences on skin and effect of treatment with an osmoprotectant: Sorbitol, J. Cosmet Sci., 64, 165–174 (2013). (12) H. Qiu, X. Long, J. C. Ye, J. Hou, J. Senee, A. Laurent, R. Bazin, F. Flament, A. Adam, J. Coutet, and B. Piot, Infl uence of season on some skin properties: Winter vs. summer, as experienced by 354 Shang- haiese women of various ages, Int. J. Cosmet. Sci., 33, 377–383 (2011). (13) G. W. Nam, J. H. Baek, J. S. Koh, and J. K. Hwang, The seasonal variation in skin hydration, sebum, scaliness, brightness and elasticity in Korean females, Skin Res. Technol., 21, 1–8 (2015). (14) N. Nakagawa, S. Sakai, M. Matsumoto, K. Yamada, M. Nagano, T. Yuki, Y. Sumida, and H. Uchiwa, Relationship between NMF (lactate and potassium) content and the physical properties of the stratum corneum in healthy subjects, J. Invest. Dermatol., 122, 755–763 (2004). (15) J. Rogers, C. Harding, A. Mayo, J. Banks, and A. Rawlings, Stratum corneum lipids: The effect of age- ing and the seasons, Arch. Dermatol. Res., 288, 765–770 (1996). (16) A. Conti, J. Rogers, P. Verdejo, C. R. Harding, and A. V. Rawlings, Seasonal infl uences on stratum corneum ceramide 1 fatty acids and the infl uence of topical essential fatty acids, Int. J. Cosmet. Sci., 18, 1–12 (1996). (17) J. Ishikawa, Y. Shimotoyodome, S. Ito, Y. Miyauchi, T. Fujimura, T. Kitahara, and T. Hase, Variations in the ceramide profi le in different seasons and regions of the body contribute to stratum corneum func- tions, Arch. Dermatol. Res., 305, 151–162 (2013). (18) C. M. de Jongh, M. M. Verberk, S. W. Spiekstra, S. Gibbs, and S. Kezic, Cytokines at different stratum corneum levels in normal and sodium lauryl sulphate-irritated skin, Skin Res. Technol., 13, 390–398 (2007).
EFFECTS OF SEASON ON STRATUM CORNEUM 201 (19) C. M. de Jongh, M. M. Verberk, C. E. Withagen, J. J. Jacobs, T. Rustemeyer, and S. Kezic, Stratum corneum cytokines and skin irritation response to sodium lauryl sulfate, Contact Dermatitis, 54, 325–333 (2006). (20) K. Kerr, T. Darcy, J. Henry, H. Mizoguchi, J. R. Schwartz, S. Morrall, T. Filloon, R. Wimalasena, G. Fadayel, and K. J. Mills, Epidermal changes associated with symptomatic resolution of dandruff: Bio- markers of scalp health, Int .J. Dermatol., 50, 102–113 (2011). (21) V. Narendran, M. O. Visscher, I. Abril, S. W. Hendrix, and S. B. Hoath, Biomarkers of epidermal innate immunity in premature and full-term infants, Pediatr. Res., 67, 382–386 (2010). (22) M. O. Visscher, D. Said, and R. Wickett, Stratum corneum cytokines, structural proteins, and transepi- dermal water loss: Effect of hand hygiene, Skin Res. Technol., 16, 229–236 (2010). (23) T. B. Fitzpatrick, The validity and practicality of sun-reactive skin types I through VI, Arch. Dermato., 124, 869–871 (1988). (24) M. F. Lukacovic, F. E. Dunlap, S. E. Michaels, M. O. Visscher, and D. D. Watson, Forearm wash test to evaluate the clinical mildness of cleansing products, J. Soc. Cosmet. Chem., 39, 355–366 (1988). (25) R. Voegeli, J. Heiland, S. Doppler, A. V. Rawlings, and T. Schreier, Effi cient and simple quantifi ca- tion of stratum corneum proteins on tape strippings by infrared densitometry, Skin Res. Technol., 13, 242–251 (2007). (26) E. Berardesca, EEMCO guidance for the assessment of stratum corneum hydration: Electrical methods, Skin Res. Technol., 3, 126–132 (1997). (27) J. W. Fluhr, M. Gloor, S. Lazzerini, P. Kleesz, R Grieshaber, and E. Berardesca, Comparative study of fi ve instruments measuring stratum corneum hydration (Corneometer CM 820 and CM 825, Skicon 200, Nova DPM 9003, DermLab). Part I. In vitro, Skin Res. Technol., 5, 161–170 (1999). (28) J. W. Fluhr, M. Gloor, S. Lazzerini, P. Kleesz, R Grieshaber, and E. Berardesca, Comparative study of fi ve instruments measuring stratum corneum hydration (Corneometer CM 820 and CM 825, Skicon 200, Nova DPM 9003, DermLab). Part II. In vivo, Skin Res. Technol., 5, 171–178 (1999). (29) P. Clarys, A. O. Barel, and B. Gabard, Non-invasive electrical measurements for the evaluation of the hydration state of the skin: Comparison between three conventional instruments—The Corneometer, the Skicon and the Nova DPM, Skin Res. Technol., 5, 14–20 (1999). (30) B. M. Morrison and D. Scala, Comparison of instrumental measurements of skin hydration, J. Toxicol. Cut. Ocular. Toxicol., 15, 305–314 (1996). (31) J. W. Fluhr, K. R. Feingold, and P. M. Elias, Transepidermal water loss refl ects permeability barrier status: Validation in human and rodent in vivo and ex vivo models, Exp. Dermatol., 15, 483–492 (2006). (32) K. Hammarlund, G. E. Nilsson, P. A. Oberg, and G. Sedin, Transepidermal water loss in newborn in- fants. I. Relation to ambient humidity and site of measurement and estimation of total transepidermal water loss, Acta. Paediatr. Scand., 66, 553–562 (1977). (33) J. L. Leveque, J. C. Garson, and J. de Rigal, Transepidermal water loss from dry and normal skim, J. Soc. Cosmet. Chem., 30, 333–373 (1979). (34) J. Pinnagoda, R. A. Tupker, T. Agner, and J. Serup, Guidelines for transepidermal water loss (TEWL) measurement. A report from the Standardization Group of the European Society of Contact Dermatitis, Contact Dermatitis, 22, 164–178 (1990). (35) J. Pinnagoda, R. A. Tupker, P. J. Coenraads, and J. P. Nater, Prediction of susceptibility to an irritant response by transepidermal water loss, Contact Dermatitis, 20, 341–346 (1989). (36) T. Hahn, S. Hansen, D. Neumann, K. H. Kostka, C. M. Lehr, L. Muys, and U. F. Schaefer, Infrared densitometry: A fast and non-destructive method for exact stratum corneum depth calculation for in vitro tape-stripping, Skin Pharmacol. Physiol., 23, 183–192 (2010). (37) D. Mohammed, Q. Yang, R. H. Guy, P. J. Matts, J. Hadgraft, and M. E. Lane, Comparison of gravimet- ric and spectroscopic approaches to quantify stratum corneum removed by tape-stripping, Eur. J. Pharm. Biopharm., 82, 171–174 (2012). (38) N. Lu, P. Chandar, D. Tempesta, C. Vincent, J. Bajor, and H. McGuiness, Characteristic differences in barrier and hygroscopic properties between normal and cosmetic dry skin. I. Enhanced barrier analysis with sequential tape-stripping, Int. J. Cosmet. Sci., 36, 167–174 (2014). (39) M. Simon, D. Bernard, A. M. Minondo, C. Camus, F. Fiat, P. Corcuff, R. Schmidt, and G. Serre, Persis- tence of both peripheral and non-peripheral corneodesmosomes in the upper stratum corneum of winter xerosis skin versus only peripheral in normal skin, J. Invest. Dermatol., 116, 23–30 (2001). (40) S. J. Chapman and A. Walsh, Desmosomes, corneosomes and desquamation. An ultrastructural study of adult pig epidermis, Arch. Dermatol. Res., 282, 304–310 (1990).
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