Journal of Peking University(Health Sciences) ›› 2015, Vol. 47 ›› Issue (4): 667-673. doi: 10.3969/j.issn.1671-167X.2015.04.024

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Diffusion of fluorescent and magnetic molecular probes in brain interstitial space

LI Huai-ye1,2,3, ZHAO Yue1,2,3, ZUO Long3,4, FU Yu3,5, LI Nan6, YUAN Lan2△, ZHANG Shu-jia1△, HAN Hong-bin3,4△   

  1. (1. College of Environment and Chemical Engineering, Dalian University, Liaoning Dalian 116622, China; 2. Peking University Medical and Health Analysis Center, Beijing 100191, China; 3. Beijing Key Lab of Magnetic Resonance Imaging Device and Technique, Beijing 100191, China; 4. Department of Radiology,Peking University Third Hospital, Beijing 100191, China; 5.Department of  Neurology, Peking University Third Hospital, Beijing 100191, China; 6. Research Center of Clinical Epidemiology, Peking University Third Hospital, Beijing 100191, China)
  • Online:2015-08-18 Published:2015-08-18
  • Contact: YUAN Lan, ZHANG Shu-jia, HAN Hong-bin E-mail:hanhongbin@bjmu.edu.cn; yuan_lan@bjmu.edu.cn; shujiazhang@163.com
  • Supported by:

    Supported by the National Natural Science Foundation of China (61450004,91330103),Beijing Science and Technology Projects(z141107004414031) and the Special Scientific Research Foundation for Doctoral Discipline Area of the Institution of Higher Learning(20130001130013)

Abstract:

Objective: To compare the diffusion properties of fluorescent probes dextran-tetramethylrhodamine (DT) and lucifer yellow CH (LY) and magnetic probe gadolinium-diethylene triamine pentaacetic acid (Gd-DTPA) in porous media and to screen out a suitable fluorescent probe for optical imaging of brain interstitial space (ISS). Methods:Agarose gels sample were divided into DT group, LY group and Gd-DTPA group, and the corresponding molecular probes were imported in each group. The dynamic diffusions of DT and LY in agarose gels at different time points (15, 30, 45, 60, 90, and 120 min) were scanned with laser scanning confocal microscope, the dynamic diffusion of Gd-DTPA was imaged with magnetic resonance imaging. The average diffusion speed of LY were demonstrated to be consistent with those of Gd-DTPA. The LY was introduced into caudate putamen of 18 rats, respectively, the diffusion of LY in the sequential slices of rat brain at different time points (0.5, 1, 2, 3, 7, 11 h) were scanned, and the results were compared with those of rats’ brain with Gd-DTPA imported and imaged in vivo with magnetic resonance imaging.Results:The diffusions of the three probes were isotropic in the agarose gels, and the average diffusion speeds of DT, LY and Gd-DTPA were: (0.07±0.02)×10-2 mm2/s, (1.54±0.47)×10-2  mm2/s, (1.45±0.50)×10-2 mm2/s, respectively. The speed of DT was more slower than both LY and Gd-DTPA (ANOVA, F=367.15, P<0.001; Post-Hoc LSD, P<0.001), and there was no significant difference between the speeds of LY and Gd-DTPA (Post-Hoc LSD, P=0.091). The variation tendency of diffusion area of DT was different with both that of LY and that of Gd-DTPA (Bonferroni correction, α=0.0125, P<0.001), and there was no significant difference between LY and Gd-DTPA (Bonferroni correction, α=0.0125, P=0.203),  in analysis by repeated measures data of ANOVA. The diffusions of LY and Gd-DTPA were anisotropy in rat caudate putamen,and the average diffusion speeds of LY and Gd-DTPA were: (1.03±0.29)×10-3 mm2/s, (0.81±0.27)×10-3 mm2/s, respectively, no significant difference was demonstrated (t=0.759, P=0.490); half-time of single intensity of LY and Gd-DTPA was (2.58±0.04) h, (2.46±0.10) h, respectively, no significant difference was found (t=2.025, P=0.113). The diffusion area ratios between LY and Gd-DTPA in rat caudate putamen was not statistically different at hours 0.5, 1, 2, 3 and 7 (t=2.249, P=0.088; t=2.582, P=0.061; t=1.966, P=0.121; t=0.132, P=0.674; t=0.032, P=0.976), while, a slightly difference was found at 11 h (t=2.917, P=0.043,in analysis by t test) .Conclusion:LY present the same diffusion property with GdDTPA in porous media witch including agarose gels and live rat brain tissue, indicates that LY is a suitable fluorescent probe for optical imaging of brain ISS, and it can be used for microscopic, macro and in vitro measure of brain ISS.

Key words: Brain, Interstitial space, Molecular probes, Magnetic resonance imaging, Fluorescent dye

CLC Number: 

  • R329.481
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