| [1] |
吕中茜, 郭义. 反观中医临床提出“皮肤是人的第三大脑”[J]. 江西中医药, 2016, 47 (7) : 11-13.
|
| [2] |
Granstein R D, Luger T A. Neuroimmunology of the skin[M]. Springer Berlin Heidelberg, 2009.
|
| [3] |
龚石, 刘巧. 神经介质与皮肤美容关系的研究进展[J]. 中国美容医学, 2011, 20 (5) : 861-862.
|
| [4] |
Bove D, Lupoli A, Caccavale S, et al. Dermatological and immunological conditions due to nerve lesions[J]. Functional Neurology, 2013, 28 (2) : 83.
|
| [5] |
Roosterman D, Goerge T, Schneider S W, et al. Neuronal control of skin function: the skin as a neuroimmunoendocrine organ[J]. Physiological Reviews, 2006, 86 (4) : 1309-1379.
|
| [6] |
Rizzi V, Gubitosa J, Fini P, et al. Neurocosmetics in skincare-the fascinating world of skin-brain connection: a review to explore ingredients, commercial products for skin aging, and cosmetic regulation[J]. Cosmetics, 2021, 8 (3) : 66.
|
| [7] |
Schmidt R, Schmelz M, Forster C, et al. Novel classes of responsive and unresponsive C nociceptors in human skin[J]. Journal of Neuroscience, 1995, 15 (1) : 333-341.
|
| [8] |
Ständer S, Schneider S W, Weishaupt C, et al. Putative neuronal mechanisms of sensitive skin[J]. Experimental Dermatology, 2009, 18 (5) : 417-423.
|
| [9] |
Misery L. Sensitive skin[J]. Expert Review of Dermatology, 2013, 8(6) : 631-637.
|
| [10] |
Farage M A, Maibach H I. Sensitive skin: closing in on a physiological cause[J]. Contact Dermatitis, 2010, 62 (3) : 137-149.
|
| [11] |
Tóth B I, Oláh A, Szöllősi A G, et al. TRP channels in the skin[J]. British Journal of Pharmacology, 2014, 171 (10) : 2568-2581.
|
| [12] |
Zhang M, Ma Y, Ye X, et al. TRP (transient receptor potential) ion channel family: structures, biological functions and therapeutic interventions for diseases[J]. Signal Transduction and Targeted Therapy, 2023, 8 (1) : 261.
|
| [13] |
Huet F, Misery L. Sensitive skin is a neuropathic disorder[J]. Experimental Dermatology, 2019, 28 (12) : 1470-1473.
|
| [14] |
Kumagai M, Nagano M, Suzuki H, et al. Effects of stress memory by fear conditioning on nerve-mast cell circuit in skin[J]. The Journal of Dermatology, 2011, 38 (6) : 553-561.
|
| [15] |
Yam M F, Loh Y C, Tan C S, et al. General pathways of pain sensation and the major neurotransmitters involved in pain regulation[J]. International Journal of Molecular Sciences, 2018, 19 (8) : 2164.
|
| [16] |
Buhé V, Vié K, Guéré C, et al. Pathophysiological study of sensitive skin[J]. Acta Dermato-venereologica, 2016, 96 (3) : 314-318.
|
| [17] |
Huet F, Dion A, Batardière A, et al. Sensitive skin can be small fibre neuropathy: results from a case-control quantitative sensory testing study[J]. British Journal of Dermatology, 2018, 179 (5) : 1157-1162.
|
| [18] |
Huggenberger R, Detmar M. The cutaneous vascular system in chronic skin inflammation[J]. Journal of Investigative Dermatology Symposium Proceedings, 2011, 15 (1) : 24-32.
|
| [19] |
Jiang W, Zhang H, Xu Y, et al. Cutaneous vessel features of sensitive skin and its underlying functions[J]. Skin Research and Technology, 2020, 26 (3) : 431-437.
|
| [20] |
Ойвин И А. 血管通透性的生理学和病理学问题[J]. 周钟鸣, 译. 青岛医学院学报, 1962 (2) : 25.
|
| [21] |
Ono S, Egawa G, Kabashima K. Regulation of blood vascular permeability in the skin[J]. Inflammation and Regeneration, 2017, 37: 1-8.
|
| [22] |
Koller A, Huang A. Impaired nitric oxide-mediated flow-induced dilation in arterioles of spontaneously hypertensive rats[J]. Circulation Research, 1994, 74 (3) : 416-421.
|
| [23] |
Breard M, Sari M A, Frapart Y, et al. The endogenous neurotransmitter, serotonin, modifies neuronal nitric oxide synthase activities[J]. Free Radical Research, 2007, 41 (4) : 413-423.
|
| [24] |
Murohara T, Horowitz J R, Silver M, et al. Vascular endothelial growth factor/vascular permeability factor enhances vascular permeability via nitric oxide and prostacyclin[J]. Circulation, 1998, 97 (1) : 99-107.
|
| [25] |
Schwenger N, Dux M, Col R, et al. Interaction of calcitonin gene-related peptide, nitric oxide and histamine release in neurogenic blood flow and afferent activation in the rat cranial dura mater[J]. Cephalalgia, 2007, 27 (6) : 481-491.
|
| [26] |
Chi Y, Liu X, Chai J. A narrative review of changes in microvascular permeability after burn[J]. Annals of Translational Medicine, 2021, 9 (8).
|
| [27] |
Mehta D, Malik A B. Signaling mechanisms regulating endothelial permeability[J]. Physiological Reviews, 2006, 86 (1) : 279-367.
|
| [28] |
Bull H A, Hothersall J, Chowdhury N, et al. Neuropeptides induce release of nitric oxide from human dermal microvascular endothelial cells[J]. Journal of Investigative Dermatology, 1996, 106 (4) : 655-660.
|
| [29] |
Wilkins B W, Chung L H, Tublitz N J, et al. Mechanisms of vasoactive intestinal peptide-mediated vasodilation in human skin[J]. Journal of Applied Physiology, 2004, 97 (4) : 1291-1298.
|
| [30] |
Mehta D, Granstein R D. Immunoregulatory effects of neuropeptides on endothelial cells: relevance to dermatological disorders[J]. Dermatology, 2019, 235 (3) : 175-186.
|
| [31] |
Reich A, Orda A, Wiśnicka B, et al. Plasma concentration of selected neuropeptides in patients suffering from psoriasis[J]. Experimental Dermatology, 2007, 16 (5) : 421-428.
|
| [32] |
李卫平. 咪唑斯汀治疗慢性荨麻疹219例临床观察[J]. 临床和实验医学杂志, 2010, 9 (19) : 1500.
|
| [33] |
Mendes D A G B, da Silva H C D, da Silveira P A, et al. In vivo participation of nitric oxide in hyperproliferative epidermal phenomena in mice[J]. European Journal of Pharmacology, 2012, 687 (1-3) : 1-8.
|
| [34] |
Van Aanhold C C L, Bus P, Zandbergen M, et al. The vascular endothelial growth factor inhibitor soluble FLT-1 ameliorates atopic dermatitis in APOC1 transgenic mice[J]. The Journal of Investigative Dermatology, 2020, 140 (2) : 491-494.
|
| [35] |
Kim M, Kim K E, Jung H Y, et al. Recombinant erythroid differentiation regulator 1 inhibits both inflammation and angiogenesis in a mouse model of rosacea[J]. Experimental Dermatology, 2015, 24 (9) : 680-685.
|
| [36] |
Zhang Y, Matsuo H, Morita E. Increased production of vascular endothelial growth factor in the lesions of atopic dermatitis[J]. Archives of Dermatological Research, 2006, 297: 425-429.
|
| [37] |
Xie B, Li X Y. Inflammatory mediators causing cutaneous chronic itch in some diseases via transient receptor potential channel subfamily V member 1 and subfamily A member 1[J]. The Journal of Dermatology, 2019, 46 (3) : 177-185.
|
| [38] |
Nykolaichuk K Y, Torous I M. Comparative characteristics of pathogenic features in rosacea and psoriasis (literature review)[J]. Art of Medicine, 2024: 129-132.
|
| [39] |
Brain S D, Tippins J R, Morris H R, et al. Potent vasodilator activity of calcitonin gene-related peptide in human skin[J]. Journal of Investigative Dermatology, 1986, 87 (4) : 533-536.
|
| [40] |
杨雁, 唐宗湘. 痒觉信号通路与相关受体研究进展[J]. 生物化学与生物物理进展, 2013, 40 (3) : 209-215.
|
| [41] |
Tsagareli M G, Follansbee T, Iodi Carstens M, et al. Targeting transient receptor potential (TRP) channels, mas-related g-protein-coupled receptors (Mrgprs), and protease-activated Receptors (PARs) to relieve itch[J]. Pharmaceuticals, 2023, 16 (12) : 1707.
|
| [42] |
Liu T, Ji R R. New insights into the mechanisms of itch: are pain and itch controlled by distinct mechanisms?[J]. Pflügers Archiv-European Journal of Physiology, 2013, 465: 1671-1685.
|
| [43] |
Basbaum A I, Bautista D M, Scherrer G, et al. Cellular and molecular mechanisms of pain[J]. Cell, 2009, 139 (2) : 267-284.
|
| [44] |
Dubin A E, Patapoutian A. Nociceptors: the sensors of the pain pathway[J]. The Journal of Clinical Investigation, 2010, 120 (11) : 3760-3772.
|
| [45] |
Soattin L, Fiore M, Gavazzo P, et al. The biophysics of Piezo1 and Piezo2 mechanosensitive channels[J]. Biophysical Chemistry, 2016, 208: 26-33.
|
| [46] |
魏娟, 陈旻, 庞颖, 等. 情绪护肤的生理学基础综述[J]. 日用化学品科学, 2024, 47 (6).
|
| [47] |
Rosalia Di Gesu. 英敏特2024年美容与个人护理趋势:神形俱美[R]. Mintel Group Ltd., 2024.
|
| [48] |
Misery L. Skin, immunity and the nervous system[J]. British Journal of Dermatology, 1997, 137 (6) : 843-850.
|
| [49] |
Misery L. Les nerfsàfleur de peau[J]. International Journal of Cosmetic Science, 2002, 24 (2) : 111-116.
|
| [50] |
Lugović-Mihić L, Mihatović D, Šitum M. Psychoneuroimmunology and skin diseases[J]. Rad Hrvatske Akademije Znanosti i Umjetnosti. Medicinske Znanosti, 2019 (46-47) : 25-36.
|
| [51] |
Slominski A. A nervous breakdown in the skin: stress and the epidermal barrier[J]. The Journal of Clinical Investigation, 2007, 117 (11) : 3166-3169.
|
| [52] |
Slominski A T, Slominski R M, Raman C, et al. Neuroendocrine signaling in the skin with a special focus on the epidermal neuropeptides[J]. American Journal of Physiology-Cell Physiology, 2022, 323 (6) : 1757-1776.
|
| [53] |
Wölbing F, Fischer J, Köberle M, et al. About the role and underlying mechanisms of cofactors in anaphylaxis[J]. Allergy, 2013, 68 (9) : 1085-1092.
|
| [54] |
Dfarhud D, Malmir M, Khanahmadi M. Happiness & health: the biological factors-systematic review article[J]. Iranian Journal of Public Health, 2014, 43 (11) : 1468.
|
| [55] |
Martins A M, Ascenso A, Ribeiro H M, et al. The brain-skin connection and the pathogenesis of psoriasis: a review with a focus on the serotonergic system[J]. Cells, 2020, 9 (4) : 796.
|
| [56] |
Vaughn A R, Davis M J, Sivamani R K, et al. A concise review of the conflicting roles of dopamine-1 versus dopamine-2 receptors in wound healing[J]. Molecules, 2017, 23 (1) : 50.
|
| [57] |
Ono K, Viet C T, Ye Y, et al. Cutaneous pigmentation modulates skin sensitivity via tyrosinase-dependent dopaminergic signalling[J]. Scientific Reports, 2017, 7 (1) : 9181.
|
| [58] |
Labarrade F, Perrin A, Ferreira Y, et al. Modulation of Piezo1 influences human skin architecture and oxytocin expression[J]. International Journal of Cosmetic Science, 2023, 45 (5) : 604-611.
|
| [59] |
Uvnäs-Moberg K, Handlin L. Self-soothing behaviors with particular reference to oxytocin release induced by non-noxious sensory stimulation[J]. Frontiers in Psychology, 2015, 5: 116675.
|