Lowered humidity produces human epidermal equivalents with enhanced barrier properties.
暂无分享,去创建一个
P. Elias | K. Feingold | D. Crumrine | D. Ilic | T. Mauro | A. Celli | S. Pennypacker | M. Hupe | Kyungho Park | Y. Uchida | Richard Sun | Lillian C. Adame | R. Sun | L. Adame | Dusko Ilic
[1] J. Bouwstra,et al. Water distribution and natural moisturizer factor content in human skin equivalents are regulated by environmental relative humidity. , 2008, The Journal of investigative dermatology.
[2] P. Elias,et al. Ionic calcium reservoirs in mammalian epidermis: ultrastructural localization by ion-capture cytochemistry. , 1985, The Journal of investigative dermatology.
[3] P. Elias,et al. Functional consequences of a neutral pH in neonatal rat stratum corneum. , 2004, The Journal of investigative dermatology.
[4] D. Häussinger,et al. The osmolyte strategy of normal human keratinocytes in maintaining cell homeostasis. , 2004, The Journal of investigative dermatology.
[5] R. Guy,et al. Barrier function of human keratinocyte cultures grown at the air-liquid interface. , 1991, The Journal of investigative dermatology.
[6] D. Skerrow,et al. Changes to desmosomal antigens and lectin-binding sites during differentiation in normal human epidermis: a quantitative ultrastructural study. , 1989, Journal of cell science.
[7] M. Ponec,et al. Impaired desquamation in the in vitro reconstructed human epidermis , 1996, Cell and Tissue Research.
[8] P. Elias,et al. Selective obliteration of the epidermal calcium gradient leads to enhanced lamellar body secretion. , 1994, The Journal of investigative dermatology.
[9] S. Boyce,et al. Lipid supplemented medium induces lamellar bodies and precursors of barrier lipids in cultured analogues of human skin. , 1993, The Journal of investigative dermatology.
[10] A. Weerheim,et al. Incorporation of linoleic acid by cultured human keratinocytes , 1999, Archives of Dermatological Research.
[11] M. Rosdy,et al. Terminal epidermal differentiation of human keratinocytes grown in chemically defined medium on inert filter substrates at the air-liquid interface. , 1990, The Journal of investigative dermatology.
[12] D. Woodley,et al. Methods for cultivation of keratinocytes with an air-liquid interface. , 1983, The Journal of investigative dermatology.
[13] A. Weerheim,et al. Epidermal growth factor and temperature regulate keratinocyte differentiation , 1997, Archives of Dermatological Research.
[14] M. Naghizadeh,et al. Variation of Biophysical Parameters of the Skin with Age, Gender, and Body Region , 2012, TheScientificWorldJournal.
[15] Kenneth R Feingold,et al. Origin of the epidermal calcium gradient: regulation by barrier status and role of active vs passive mechanisms. , 2002, The Journal of investigative dermatology.
[16] A. Vahlquist,et al. In vivo studies concerning a pH gradient in human stratum corneum and upper epidermis. , 1994, Acta dermato-venereologica.
[17] P. Elias,et al. Tight junction properties change during epidermis development , 2012, Experimental dermatology.
[18] H. Ogawa,et al. Host defense (Antimicrobial) peptide, human β-defensin-3, improves the function of the epithelial tight-junction barrier in human keratinocytes. , 2014, The Journal of investigative dermatology.
[19] H. Boddé,et al. Visualization of diffusion pathways across the stratum corneum of native and in-vitro-reconstructed epidermis by confocal laser scanning microscopy , 2004, Archives of Dermatological Research.
[20] K. Takei,et al. Low environmental humidity induces synthesis and release of cortisol in an epidermal organotypic culture system , 2013, Experimental dermatology.
[21] J. Ågren,et al. Ambient humidity influences the rate of skin barrier maturation in extremely preterm infants. , 2006, The Journal of pediatrics.
[22] P. Elias,et al. Regulation of Cathelicidin Antimicrobial Peptide Expression by an Endoplasmic Reticulum (ER) Stress Signaling, Vitamin D Receptor-independent Pathway* , 2011, The Journal of Biological Chemistry.
[23] Kenneth R Feingold,et al. pH directly regulates epidermal permeability barrier homeostasis, and stratum corneum integrity/cohesion. , 2003, The Journal of investigative dermatology.
[24] P. Wertz,et al. Effects of Growth Conditions on the Barrier Properties of a Human Skin Equivalent , 2009, Pharmaceutical Research.
[25] F. Otsuka,et al. Human epidermal glucosylceramides are major precursors of stratum corneum ceramides. , 2002, The Journal of investigative dermatology.
[26] K. Feingold. Thematic review series: Skin Lipids. The role of epidermal lipids in cutaneous permeability barrier homeostasis Published, JLR Papers in Press, September 13, 2007. , 2007, Journal of Lipid Research.
[27] M. Ponec,et al. Normalization of epidermal calcium distribution profile in reconstructed human epidermis is related to improvement of terminal differentiation and stratum corneum barrier formation. , 1998, The Journal of investigative dermatology.
[28] J. Bouwstra,et al. The formation of competent barrier lipids in reconstructed human epidermis requires the presence of vitamin C. , 1997, The Journal of investigative dermatology.
[29] E. Gratton,et al. Neonatal development of the stratum corneum pH gradient: localization and mechanisms leading to emergence of optimal barrier function. , 2003, The Journal of investigative dermatology.
[30] A. Billich,et al. Comparison of human skin or epidermis models with human and animal skin in in-vitro percutaneous absorption. , 2001, International journal of pharmaceutics.
[31] P. Elias,et al. The aged epidermal permeability barrier. Structural, functional, and lipid biochemical abnormalities in humans and a senescent murine model. , 1995, The Journal of clinical investigation.
[32] K. Feingold. The role of epidermal lipids in cutaneous permeability barrier homeostasis , 2007 .
[33] N. Zghoul,et al. Reconstructed skin equivalents for assessing percutaneous drug absorption from pharmaceutical formulations. , 2001, ALTEX.
[34] P. Elias,et al. Ontogeny of the epidermal permeability barrier. , 1998, The journal of investigative dermatology. Symposium proceedings.
[35] P. Elias,et al. Pathogenesis of the permeability barrier abnormality in epidermolytic hyperkeratosis. , 2001, The Journal of investigative dermatology.
[36] H. Schwarz,et al. E‐cadherin is essential for in vivo epidermal barrier function by regulating tight junctions , 2005, The EMBO journal.
[37] P. Elias,et al. Exposure to a dry environment enhances epidermal permeability barrier function. , 1998, The Journal of investigative dermatology.
[38] J. Bouwstra,et al. Unraveling barrier properties of three different in-house human skin equivalents. , 2012, Tissue engineering. Part C, Methods.
[39] Kenneth R Feingold,et al. pH-regulated mechanisms account for pigment-type differences in epidermal barrier function. , 2009, The Journal of investigative dermatology.
[40] P. Elias,et al. Induction of selected lipid metabolic enzymes and differentiation-linked structural proteins by air exposure in fetal rat skin explants. , 1999, The Journal of investigative dermatology.
[41] J. Bouwstra,et al. Generation of human skin equivalents under submerged conditions-mimicking the in utero environment. , 2010, Tissue engineering. Part A.
[42] E. Gratton,et al. Major translocation of calcium upon epidermal barrier insult: imaging and quantification via FLIM/Fourier vector analysis , 2011, Archives of Dermatological Research.
[43] R. Soll,et al. Topical ointment for preventing infection in preterm infants. , 1998, The Cochrane database of systematic reviews.
[44] G. M. Gray,et al. Sphingomyelinase in pig and human epidermis. , 1978, The Journal of investigative dermatology.
[45] Tetsuo Noda,et al. Claudin-based tight junctions are crucial for the mammalian epidermal barrier , 2002, The Journal of cell biology.
[46] Karen Holbrook,et al. Calcium regulation of growth and differentiation of mouse epidermal cells in culture , 1980, Cell.
[47] P. Elias,et al. Acceleration of Barrier Ontogenesis in Vitro through Air Exposure , 1997, Pediatric Research.
[48] H. Boddé,et al. Nitroglycerin and sucrose permeability as quality markers for reconstructed human epidermis. , 1990, Skin pharmacology : the official journal of the Skin Pharmacology Society.
[49] E. Sideras-Haddad,et al. Formation of the epidermal calcium gradient coincides with key milestones of barrier ontogenesis in the rodent. , 1998, The Journal of investigative dermatology.
[50] K. Suzuki,et al. Characterization of human glucosylsphingosine glucosyl hydrolase and comparison with glucosylceramidase. , 1985, European journal of biochemistry.
[51] H. Kiyonari,et al. Targeted deletion of the murine corneodesmosin gene delineates its essential role in skin and hair physiology , 2008, Proceedings of the National Academy of Sciences.
[52] E Gratton,et al. The epidermal Ca(2+) gradient: Measurement using the phasor representation of fluorescent lifetime imaging. , 2010, Biophysical journal.
[53] T. Hasegawa,et al. Dietary Glucosylceramide Enhances Tight Junction Function in Skin Epidermis via Induction of Claudin-1 , 2013, Bioscience, biotechnology, and biochemistry.