Stratum corneum architecture of reconstructed human skin models monitored by fluorescent confocal laser scanning microscopy

被引:20
作者
Kandarova, H. [1 ]
Richter, H.
Liebsch, M.
Lademann, J.
机构
[1] Ctr Alternat Methods Anim Expt ZEBET, Fed Inst Risk Assessment BfR, Berlin, Germany
[2] Charite Univ Med Berlin, Dept Dermatol Venerol & Allergol, Ctr Expt & Appl Cutaneous Physiol, Berlin, Germany
关键词
confocal laser scanning microscopy (CLSM); reconstructed human skin models; stratum corneum;
D O I
10.1002/lapl.200610107
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Fluorescence confocal scanning laser microscopy (CLSM) using a handheld scanner, was performed to visualize the microscopic architecture of stratum corneum (SC) of the three reconstructed human epidermal (RHE) models: EpiDerm (TM) (MatTek Corporation, Ashland, MA), EPISKIN (R) (EPISKIN SNC, Lyon, France) and SkinEthic (R) (SkinEthic Laboratories, I Nice, France). To compare the differences between the SC structure of the RHE models and human SC, experiments were also performed on normal human epidermis in vivo. Sodium fluorescein stained skin cultures and human skin were imaged continuously using the confocal laser microscope Stratum, Optiscan. Fluorescein was excited at 488 nm and the fluorescent emission was detected at > 505 nm. In each experiment, a series of representative images of each visualized layer of the RHE models and human SC was collected. Our early observations confirmed that the reconstructed human skin models closely resemble human SC. After improving the experimental conditions, the method might be used for studying the effects of topically applied compounds e.g. pharmaceuticals and cosmetic to the SC.
引用
收藏
页码:308 / 311
页数:4
相关论文
共 19 条
[1]   Time-sequence histologic imaging of laser-treated cherry angiomas with in vivo confocal microscopy [J].
Aghassi, D ;
Anderson, RR ;
González, S .
JOURNAL OF THE AMERICAN ACADEMY OF DERMATOLOGY, 2000, 43 (01) :37-41
[2]   In vivo detection of small subsurface melanomas in athymic mice using noninvasive fiber optic confocal imaging [J].
Anikijenko, P ;
Vo, LT ;
Murr, ER ;
Carrasco, J ;
McLaren, WJ ;
Chen, QY ;
Thomas, SG ;
Delaney, PM ;
King, RG .
JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2001, 117 (06) :1442-1448
[3]  
Boelsma E, 2000, ACTA DERM-VENEREOL, V80, P82
[4]   Fibre optic confocal imaging (FOCI) of keratinocytes, blood vessels and nerves in hairless mouse skin in vivo [J].
Bussau, LJ ;
Vo, LT ;
Delaney, PM ;
Papworth, GD ;
Barkla, DH ;
King, RG .
JOURNAL OF ANATOMY, 1998, 192 :187-194
[5]   NOVEL MICROSCOPY USING FIBER OPTIC CONFOCAL IMAGING AND ITS SUITABILITY FOR SUBSURFACE BLOOD-VESSEL IMAGING INVIVO [J].
DELANEY, PM ;
HARRIS, MR ;
KING, RG .
CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 1993, 20 (03) :197-198
[6]   Allergic contact dermatitis:: Correlation of in vivo confocal imaging to routine histology [J].
González, S ;
González, E ;
White, WM ;
Rajadhyaksha, M ;
Anderson, RR .
JOURNAL OF THE AMERICAN ACADEMY OF DERMATOLOGY, 1999, 40 (05) :708-713
[7]  
KLAUSNER M, 2003, J INVEST DERMATOL, V121
[8]  
LEESON DT, 2002, OSA BIOM TOP M OPT S
[9]  
Meyer LE, 2005, LASER PHYS LETT, V2, P148, DOI 10.1002/apl.200410156
[10]   In vivo fibre optic confocal imaging of microvasculature and nerves in the rat vas deferens and colon [J].
Papworth, GD ;
Delaney, PM ;
Bussau, LJ ;
Vo, LT ;
King, RG .
JOURNAL OF ANATOMY, 1998, 192 :489-495