335
Views
4
CrossRef citations to date
0
Altmetric
Original Article

Chemiluminescence imaging of UVA induced reactive oxygen species in mouse skin using L-012 as a probe

, , , , &
Pages 1424-1431 | Received 22 Jan 2018, Accepted 08 Jul 2018, Published online: 11 Sep 2018

References

  • Ichihashi M, Ueda M, Budiyanto A, et al. UV-induced skin damage. Toxicology. 2003;189:21–39.
  • Fuchs J, Huflejt ME, Rothfuss LM, et al. Impairment of enzymic and nonenzymic antioxidants in skin by UVB irradiation. J Invest Dermatol. 1989;93:769–773.
  • Schroeder P, Lademann J, Darvin ME, et al. Infrared radiation-induced matrix metalloproteinase in human skin: implications for protection. J Invest Dermatol. 2008;128:2491–2497.
  • Ando O, Suemoto Y, Kurimoto M, et al. Deficient Th1-type immune responses via impaired CD28 signaling in ultraviolet B-induced systemic immunosuppression and the restorative effect of IL-12. J Dermatol Sci. 2000;24:190–202.
  • Cheng KC, Cahill DS, Kasai H, et al. 8-hydroxyguanine, an abundant form of oxidative DNA damage, causes G–T and A–. J Biol Chem. 1992;267:166–172.
  • He G, Samouilov A, Kuppusamy P, et al. In vivo EPR imaging of the distribution and metabolism of nitroxide radicals in human skin. J Magn Reson. 2001;148:155–164.
  • Herrling T, Fuchs J, Rehberg J, et al. UV-induced free radicals in the skin detected by ESR spectroscopy and imaging using nitroxides. Free Radic Biol Med. 2003;35:59–67.
  • Evelson P, Ordóñez CP, Llesuy S, et al. Oxidative stress and in vivo chemiluminescence in mouse skin exposed to UVA radiation. J Photochem Photobiol B. 1997;38:215–219.
  • Sauermann G, Mei WP, Hoppe U, et al. Ultraweak photon emission of human skin in vivo: influence of topically applied antioxidants on human skin. Methods Enzymol 1999;300:419–428.
  • Jain A, Rieger I, Rohr M, et al. Antioxidant efficacy on human skin in vivo investigated by UVA-induced chemiluminescence decay analysis via induced chemiluminescence of human skin. Skin Pharmacol Physiol. 2010;23:266–272.
  • Nishimura H, Yasui H, Sakurai H. Generation and distribution of reactive oxygen species in the skin of hairless mice under UVA: studies on in vivo chemiluminescent detection and tape stripping methods. Exp Dermatol. 2006;15:891–899.
  • Yasui H, Sakurai H. Chemiluminescent detection and imaging of reactive oxygen species in live mouse skin exposed to UVA. Biochem Biophys Res Commun. 2000;269:131–136.
  • Sakurai H, Yasui H, Yamada Y, et al. Detection of reactive oxygen species in the skin of live mice and rats exposed to UVA light: a research review on chemiluminescence and trials for UVA protection. Photochem Photobiol Sci. 2005;4:715–720.
  • Nishinaka Y, Aramaki Y, Yoshida H, et al. A new sensitive chemiluminescence probe, L-012, for measuring the production of superoxide anion by cells. Biochem Biophys Res Commun. 1993;193:554–559.
  • Sohn H-Y, Gloe T, Keller M, et al. Sensitive superoxide detection in vascular cells by the new chemiluminescence dye L-012. J Vasc Res. 1999;36:456–464.
  • Kielland A, Blom T, Nandakumar KS, et al. In vivo imaging of reactive oxygen and nitrogen species in inflammation using the luminescent probe L-012. Free Radic Biol Med. 2009;47:760–766.
  • Imada I, Sato EF, Miyamoto M, et al. Analysis of reactive oxygen species generated by neutrophils using a chemiluminescence probe L-012. Anal Biochem. 1999;271:53–58.
  • Daiber A, Oelze M, August M, et al. Detection of superoxide and peroxynitrite in model systems and mitochondria by the luminol analogue L-012. Free Radic Res. 2004;38:259–269.
  • Paufique J-J, Process for the extraction of an active principle from yeast for the treatment of wrinkles and cosmetic compositions thereof. Google Patents. 2003; 09:630611.
  • Liu C-G, Hao X-M, Lin Y-H, et al. Redox potential driven aeration during very-high-gravity ethanol fermentation by using flocculating yeast. Sci Rep. 2016;6:25763.
  • Liu CG, Lin YH, Bai FW. Ageing vessel configuration for continuous redox potential-controlled very-high-gravity fermentation. J Biosci Bioeng. 2011;111:61–66.
  • Liu X-M, Yang B, Wang Y-L, et al. Photoisomerisable cholesterol derivatives as photo-trigger of liposomes: effect of lipid polarity, temperature, incorporation ratio, and cholesterol. Biochim Biophys Acta. 2005;1720:28–34.
  • Yang B, Geng S-Y, Liu X-M, et al. Positively charged cholesterol derivative combined with liposomes as an efficient drug delivery system, in vitro and in vivo study. Soft Matter. 2012;8:518–525.
  • Dai Y-Q, Qin G, Geng S-Y, et al. Photo-responsive release of ascorbic acid and catalase in CDBA-liposome for commercial application as a sunscreen cosmetic. RSC Adv. 2012;2:3340–3346.
  • Xu Q, Geng S, Dai Y, et al. CDBA-liposome as an effective sunscreen with longer UV protection and longer shelf life. J Photochem Photobiol B. 2013;129:78–86.
  • Liu X-M, Yang B, Wang Y-L, et al. New nanoscale pulsatile drug delivery system. Chem Mater. 2005;17:2792–2795.
  • Hruza LL, Pentland AP. Mechanisms of UV-induced inflammation. J Invest Dermatol. 1993;100:S35–41S.
  • Haywood R, Andrady C, Kassouf N, et al. Intensity-dependent direct solar radiation- and UVA-induced radical damage to human skin and DNA, lipids and proteins. Photochem Photobiol. 2011;87:117–130.
  • Kogan G, Stasko A, Bauerova K, et al. Antioxidant properties of yeast (1→3)-β-D-glucan studied by electron paramagnetic resonance spectroscopy and its activity in the adjuvant arthritis. Carbohydr Polym. 2005;61:18–28.
  • Natakankitkul S, Homdok P, Wandee P, et al. Development of skincare cosmetic from yeast beta-glucans. Thai J Pharm Sci. 2016;40:9–12.
  • Liu C-G, Liu L-Y, Lin Y-H, et al. Kinetic modeling for redox potential-controlled repeated batch ethanol fermentation using flocculating yeast. Proc Biochem. 2015;50:1–7.
  • Gardiner T. A review: beta-glucan biological activities. Glycoscience. 2000;1:1–6.
  • Liu CG, Lin YH, Bai FW. A kinetic growth model for Saccharomyces cerevisiae grown under redox potential-controlled very-high-gravity environment. Biochem Eng J.2011;56:63–68.
  • Geng S, Yang B, Wang G, et al. Two cholesterol derivative-based pegylated liposomes as drug delivery system, study on pharmacokinetics and drug delivery to retina. Nanotechnology 2014;25:275103.
  • Geng S, Wang Y, Wang L, et al. A light-responsive selfassembly formed by a cationic azobenzene derivative and SDS as a drug delivery system. Sci Rep. 2017;7:39202.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.