Zonula occludens‐1 distribution and barrier functions are affected by epithelial proliferation and turnover rates
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Yasuaki Kobayashi | H. Kitahata | K. Natsuga | A. Kubo | M. Nagayama | H. Ujiie | H. Iwata | K. Imafuku | M. Okumura | Yasuaki Kobayashi
[1] L. March,et al. Skin Barrier Dysregulation in Psoriasis , 2021, International journal of molecular sciences.
[2] Yasuaki Kobayashi,et al. A computational model of the epidermis with the deformable dermis and its application to skin diseases , 2021, Scientific Reports.
[3] H. Shimizu,et al. Zonula occludens-1 demonstrates a unique appearance in buccal mucosa over several layers , 2021, Cell and Tissue Research.
[4] T. Montero-Vílchez,et al. Skin Barrier Function in Psoriasis and Atopic Dermatitis: Transepidermal Water Loss and Temperature as Useful Tools to Assess Disease Severity , 2021, Journal of clinical medicine.
[5] H. Shimizu,et al. Hair follicle stem cell progeny heal blisters while pausing skin development , 2020, bioRxiv.
[6] Hongxiang Chen,et al. Prediction of crucial epigenetically-associated, differentially expressed genes by integrated bioinformatics analysis and the identification of S100A9 as a novel biomarker in psoriasis , 2019, International journal of molecular medicine.
[7] Y. Soini,et al. Alterations in the expression of EMT-related proteins claudin-1, -4 and -7, E-cadherin, TWIST1 and ZEB1 in oral lichen planus. , 2019, Journal of oral pathology & medicine : official publication of the International Association of Oral Pathologists and the American Academy of Oral Pathology.
[8] K. Ebnet,et al. Claudins and JAM-A coordinately regulate tight junction formation and epithelial polarity , 2019, The Journal of cell biology.
[9] R. Bhat,et al. Transepidermal Water Loss in Psoriasis: A Case-control Study , 2019, Indian dermatology online journal.
[10] H. Shimizu,et al. High Expression of Collagen XVII Compensates for its Depletion Induced by Pemphigoid IgG in the Oral Mucosa. , 2018, The Journal of investigative dermatology.
[11] J. Schalkwijk,et al. Immortalized N/TERT keratinocytes as an alternative cell source in 3D human epidermal models , 2017, Scientific Reports.
[12] D. Al-Sharaky,et al. Immunohistochemical Expression of Caspase-3 in Psoriasis. , 2017, Journal of clinical and diagnostic research : JCDR.
[13] Makoto Suematsu,et al. Epidermal cell turnover across tight junctions based on Kelvin's tetrakaidecahedron cell shape , 2016, eLife.
[14] M. Balda,et al. Tight junctions: from simple barriers to multifunctional molecular gates , 2016, Nature Reviews Molecular Cell Biology.
[15] S. Morini,et al. Immunohistochemical expression of VDR is associated with reduced integrity of tight junction complex in psoriatic skin , 2015, Journal of the European Academy of Dermatology and Venereology : JEADV.
[16] F. Dong,et al. Psoriatic T cells reduce epidermal turnover time and affect cell proliferation contributed from differential gene expression , 2015, The Journal of dermatology.
[17] R. Einspanier,et al. Transepithelial electrical resistance (TEER): a functional parameter to monitor the quality of oviduct epithelial cells cultured on filter supports , 2015, Histochemistry and Cell Biology.
[18] M. Amagai,et al. Epidermal tight junction barrier function is altered by skin inflammation, but not by filaggrin-deficient stratum corneum. , 2015, Journal of dermatological science.
[19] Mayte Suárez-Fariñas,et al. Immunology of psoriasis. , 2014, Annual review of immunology.
[20] Hidetoshi Takahashi,et al. Defective barrier function accompanied by structural changes of psoriatic stratum corneum , 2014, The Journal of dermatology.
[21] K. Natsuga. Epidermal barriers. , 2014, Cold Spring Harbor perspectives in medicine.
[22] M. Furuse,et al. Analysis of the ‘angulin’ proteins LSR, ILDR1 and ILDR2 – tricellulin recruitment, epithelial barrier function and implication in deafness pathogenesis , 2013, Journal of Cell Science.
[23] Keisuke Nagao,et al. Functional tight junction barrier localizes in the second layer of the stratum granulosum of human epidermis. , 2013, Journal of dermatological science.
[24] M. Amagai,et al. 3D visualization of epidermal Langerhans cells. , 2013, Methods in molecular biology.
[25] G. Ogg,et al. IL‐17 downregulates filaggrin and affects keratinocyte expression of genes associated with cellular adhesion , 2012, Experimental dermatology.
[26] J. Brandner,et al. Alteration of tight junction proteins is an early event in psoriasis: putative involvement of proinflammatory cytokines. , 2009, The American journal of pathology.
[27] C. V. Van Itallie,et al. Physiology and function of the tight junction. , 2009, Cold Spring Harbor perspectives in biology.
[28] M. Tollefson,et al. Lichen planus , 2009, International journal of dermatology.
[29] C. Griffiths,et al. Altered claudin expression is a feature of chronic plaque psoriasis , 2007, The Journal of pathology.
[30] S. Tsukita,et al. Requirement of ZO-1 for the formation of belt-like adherens junctions during epithelial cell polarization , 2007, The Journal of cell biology.
[31] J. Peltonen,et al. Tight junction components occludin, ZO‐1, and claudin‐1, ‐4 and ‐5 in active and healing psoriasis , 2007, The British journal of dermatology.
[32] S. Tsukita,et al. Tricellulin constitutes a novel barrier at tricellular contacts of epithelial cells , 2005, The Journal of cell biology.
[33] R. Dummer,et al. Psoriasis triggered by toll-like receptor 7 agonist imiquimod in the presence of dermal plasmacytoid dendritic cell precursors. , 2004, Archives of dermatology.
[34] R. D. Lynch,et al. The tight junction: a multifunctional complex. , 2004, American journal of physiology. Cell physiology.
[35] G. Bazzoni. The JAM family of junctional adhesion molecules. , 2003, Current opinion in cell biology.
[36] Tetsuo Noda,et al. Claudin-based tight junctions are crucial for the mammalian epidermal barrier , 2002, The Journal of cell biology.
[37] S. Peltonen,et al. Epidermal tight junctions: ZO-1 and occludin are expressed in mature, developing, and affected skin and in vitro differentiating keratinocytes. , 2001, The Journal of investigative dermatology.
[38] A. Ávila-Flores,et al. MAGUK proteins: structure and role in the tight junction. , 2000, Seminars in cell & developmental biology.
[39] S. Tsukita,et al. Ca2+-independent cell-adhesion activity of claudins, a family of integral membrane proteins localized at tight junctions , 1999, Current Biology.
[40] K. Fujimoto,et al. A Single Gene Product, Claudin-1 or -2, Reconstitutes Tight Junction Strands and Recruits Occludin in Fibroblasts , 1998, The Journal of cell biology.
[41] D. Paul,et al. COOH Terminus of Occludin Is Required for Tight Junction Barrier Function in Early Xenopus Embryos , 1997, The Journal of cell biology.
[42] S. Tyring,et al. Human papillomavirus and human disease. , 1997, The American journal of medicine.
[43] M. Itoh,et al. Occludin: a novel integral membrane protein localizing at tight junctions , 1993, The Journal of cell biology.
[44] J. Siliciano,et al. Identification of ZO-1: a high molecular weight polypeptide associated with the tight junction (zonula occludens) in a variety of epithelia , 1986, The Journal of cell biology.
[45] K. Matsumoto,et al. Effect of mitomycin C on bone marrow cells in mice. , 1984, The Journal of toxicological sciences.
[46] K M Halprin,et al. EPIDERMAL “TURNOVER TIME”—A RE‐EXAMINATION , 1972, The British journal of dermatology.
[47] D. E. Cutright,et al. Cell renewal in the oral mucosa and skin of the rat. I. Turnover time. , 1967, Oral surgery, oral medicine, and oral pathology.
[48] G. Palade,et al. JUNCTIONAL COMPLEXES IN VARIOUS EPITHELIA , 1963, The Journal of cell biology.
[49] S. Cohen,et al. Isolation of a mouse submaxillary gland protein accelerating incisor eruption and eyelid opening in the new-born animal. , 1962, The Journal of biological chemistry.