Human keloid cultured fibroblasts irradiated with blue LED light: evidence from an in vitro study
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Giada Magni | Federica Cherchi | Elisabetta Coppi | Marco Fraccalvieri | Roberto Pini | Felicita Pedata | Antongiulio Mangia | Stefano Gasperini | Francesco S. Pavone | Duccio Rossi Degl'Innocenti | Lorenzo Targetti | Francesca Rossi | Martina Banchelli | Anna Maria Pugliese | Paolo Matteini | F. Pedata | R. Pini | F. Pavone | P. Matteini | F. Rossi | E. Coppi | M. Fraccalvieri | M. Banchelli | A. Pugliese | Giada Magni | D. Rossi degl'Innocenti | F. Cherchi | S. Gasperini | A. Mangia | Lorenzo Targetti
[1] R. Pini,et al. Triggering molecular assembly at the mesoscale for advanced Raman detection of proteins in liquid , 2018, Scientific Reports.
[2] D. Tobin,et al. Photobiomodulation devices for hair regrowth and wound healing: a therapy full of promise but a literature full of confusion , 2016, Experimental dermatology.
[3] Giada Magni,et al. Blue LED induced thermal effects in wound healing: experimental evidence in an in vivo model of superficial abrasions , 2017, BiOS.
[4] Ardeshir Bayat,et al. Genetic Susceptibility to Keloid Disease and Hypertrophic Scarring: Transforming Growth Factor &bgr;1 Common Polymorphisms and Plasma Levels , 2003, Plastic and reconstructive surgery.
[5] T. Karu,et al. Primary and secondary mechanisms of action of visible to near-IR radiation on cells. , 1999, Journal of photochemistry and photobiology. B, Biology.
[6] A. Bayat,et al. Studies of transforming growth factors beta 1-3 and their receptors I and II in fibroblast of keloids and hypertrophic scars. , 2005, Acta dermato-venereologica.
[7] D. Batstone,et al. Real-Time Measurements of the Redox States of c-Type Cytochromes in Electroactive Biofilms: A Confocal Resonance Raman Microscopy Study , 2014, PloS one.
[8] Giada Magni,et al. In-vivo wound healing modulation after irradiation with a blue LED photocoagulator , 2017, European Conference on Biomedical Optics.
[9] H. Huynh,et al. Suppression of insulin‐like growth factor signalling pathway and collagen expression in keloid‐derived fibroblasts by quercetin: its therapeutic potential use in the treatment and/or prevention of keloids , 2003, The British journal of dermatology.
[10] Giada Magni,et al. Blue light-irradiated human keloid fibroblasts: an in vitro study , 2018, BiOS.
[11] M. Menziani,et al. Site-Selective Surface-Enhanced Raman Detection of Proteins. , 2017, ACS nano.
[12] S. Shi,et al. Tumor-Like Stem Cells Derived from Human Keloid Are Governed by the Inflammatory Niche Driven by IL-17/IL-6 Axis , 2009, PloS one.
[13] J. Lamb,et al. Genetic susceptibility to Keloid scarring: SMAD gene SNP frequencies in Afro‐Caribbeans , 2008, Experimental dermatology.
[14] Giada Magni,et al. Blue light effects in human keloid fibroblasts , 2019, BiOS.
[15] A Bayat,et al. Genetic susceptibility to keloid disease and transforming growth factor beta 2 polymorphisms. , 2002, British journal of plastic surgery.
[16] Da Ma,et al. Expression of insulin-like growth factor-1 receptor in keloid and hypertrophic scar , 2014, Clinical and experimental dermatology.
[17] Zhunan Gong,et al. Asiatic Acid Isolated From Centella Asiatica Inhibits TGF-β1-induced Collagen Expression in Human Keloid Fibroblasts via PPAR-γ Activation , 2013, International journal of biological sciences.
[18] Guozheng Xu,et al. Expression Profile of Long Noncoding RNAs in Human Earlobe Keloids: A Microarray Analysis , 2016, BioMed research international.
[19] Andrew Leask,et al. TGF‐β signaling and the fibrotic response , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[20] R. Ogawa. Keloid and Hypertrophic Scars Are the Result of Chronic Inflammation in the Reticular Dermis , 2017, International journal of molecular sciences.
[21] A. Bayat,et al. Genetic susceptibility to keloid disease: Transforming growth factor β receptor gene polymorphisms are not associated with keloid disease , 2004, Experimental dermatology.
[22] Chenyu Huang,et al. The relationship between skin stretching/contraction and pathologic scarring: The important role of mechanical forces in keloid generation , 2012, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[23] D. Glass. Current Understanding of the Genetic Causes of Keloid Formation. , 2017, The journal of investigative dermatology. Symposium proceedings.
[24] Karl Hormann,et al. Effect of the abrogation of TGF-beta1 by antisense oligonucleotides on the expression of TGF-beta-isoforms and their receptors I and II in isolated fibroblasts from keloid scars. , 2010, International journal of molecular medicine.
[25] F. Pedata,et al. P 2 Y 1 receptor modulation of Ca 2-activated K currents in medium-sized neurons from neonatal rat striatal slices , 2012 .
[26] L. Mao,et al. Hepatoma-derived growth factor and its role in keloid pathogenesis , 2009, Journal of cellular and molecular medicine.
[27] B. Wang,et al. Keloid progression: a stiffness gap hypothesis , 2017, International wound journal.
[28] Olga Sosnovtseva,et al. In Situ Raman Study of Redox State Changes of Mitochondrial Cytochromes in a Perfused Rat Heart , 2013, PloS one.
[29] D. Alfieri,et al. Observation of an improved healing process in superficial skin wounds after irradiation with a blue‐LED haemostatic device , 2016, Journal of biophotonics.
[30] F. Pedata,et al. P2Y1 receptor modulation of Ca2+-activated K+ currents in medium-sized neurons from neonatal rat striatal slices , 2011, Journal of neurophysiology.
[31] W. Liu,et al. Differential expression of transforming growth factor-beta receptors I and II and activation of Smad 3 in keloid fibroblasts. , 2001, Plastic and reconstructive surgery.
[32] M. Erecińska,et al. Spectral evidence for interactions between membrane‐bound hemes: Resonance Raman spectra of mitochondrial cytochrome b–c 1 complex as a function of redox potential , 1977, FEBS letters.
[33] Raymond J Lanzafame,et al. Low-level light/laser therapy versus photobiomodulation therapy. , 2015, Photomedicine and laser surgery.
[34] R. Ogawa,et al. The Relationship Between Keloid Growth Pattern and Stretching Tension: Visual Analysis Using the Finite Element Method , 2008, Annals of plastic surgery.
[35] F. Pedata,et al. UDP‐glucose enhances outward K+ currents necessary for cell differentiation and stimulates cell migration by activating the GPR17 receptor in oligodendrocyte precursors , 2013, Glia.
[36] Giada Magni,et al. Blue LED treatment of superficial abrasions: in vivo experimental evidence of wound healing improvement , 2018, Photonics Europe.
[37] A. Bayat,et al. Genetic susceptibility to keloid disease: mutation screening of the TGFbeta3 gene. , 2005, British journal of plastic surgery.
[38] I. Osticioli,et al. Spot‐on SERS Detection of Biomolecules with Laser‐Patterned Dot Arrays of Assembled Silver Nanowires , 2019, ChemNanoMat.