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PLOS ONE  2012 

Localization Microscopy (SPDM) Reveals Clustered Formations of P-Glycoprotein in a Human Blood-Brain Barrier Model

DOI: 10.1371/journal.pone.0044776

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Abstract:

P-glycoprotein (Pgp; also known as MDR1, ABCB1) is the most important and best studied efflux transporter at the blood-brain barrier (BBB); however, the organization of Pgp is unknown. The aim of this study was to employ the recently developed super-resolution fluorescence microscopy method spectral precision distance microscopy/spectral position determination microscopy (SPDM) to investigate the spatial distribution of Pgp in the luminal plasma membrane of brain capillary endothelial cells. Potential disturbing effects of cell membrane curvatures on the distribution analysis are addressed with computer simulations. Immortalized human cerebral microvascular endothelial cells (hCMEC/D3) served as a model of human BBB. hCMEC/D3 cells were transduced with a Pgp-green fluorescent protein (GFP) fusion protein incorporated in a lentivirus-derived vector. The expression and localization of the Pgp-GFP fusion protein was visualized by SPDM. The limited resolution of SPDM in the z-direction leads to a projection during the imaging process affecting the appeared spatial distribution of fluorescence molecules in the super-resolution images. Therefore, simulations of molecule distributions on differently curved cell membranes were performed and their projected spatial distribution was investigated. Function of the fusion protein was confirmed by FACS analysis after incubation of cells with the fluorescent probe eFluxx-ID Gold in absence and presence of verapamil. More than 112,000 single Pgp-GFP molecules (corresponding to approximately 5,600 Pgp-GFP molecules per cell) were detected by SPDM with an averaged spatial resolution of approximately 40 nm in hCMEC/D3 cells. We found that Pgp-GFP is distributed in clustered formations in hCMEC/D3 cells while the influence of present random cell membrane curvatures can be excluded based on the simulation results. Individual formations are distributed randomly over the cell membrane.

References

[1]  Miller DS (2010) Regulation of P-glycoprotein and other ABC drug transporters at the blood–brain barrier. Trends in pharmacological sciences 31: 246–254.
[2]  Doyle LA, Ross DD (2003) Multidrug resistance mediated by the breast cancer resistance protein BCRP (ABCG2). Oncogene 22: 7340–7358.
[3]  L?scher W, Potschka H (2005) Blood-brain barrier active efflux transporters: ATP-binding cassette gene family. NeuroRx 2: 86–98.
[4]  Miller DS, Bauer B, Hartz AMS (2008) Modulation of P-glycoprotein at the blood-brain barrier: opportunities to improve central nervous system pharmacotherapy. Pharmacological reviews 60: 196–209.
[5]  Miller DS, Nobmann SN, Gutmann H, Toeroek M, Drewe J, et al. (2000) Xenobiotic transport across isolated brain microvessels studied by confocal microscopy. Molecular pharmacology 58: 1357–1367.
[6]  Ambudkar SV, Dey S, Hrycyna CA, Ramachandra M, Pastan I, et al. (1999) Biochemical, cellular, and pharmacological aspects of the multidrug transporter. Annu Rev Pharmacol Toxicol 39: 361–398.
[7]  Higgins CF, Gottesman MM (1992) Is the multidrug transporter a flippase? Trends Biochem Sci 17: 18–21.
[8]  Sharom FJ (1997) The P-glycoprotein efflux pump: how does it transport drugs? J Membr Biol 160: 161–175.
[9]  Orlowski S, Martin S, Escargueil A (2006) P-glycoprotein and ‘lipid rafts’: some ambiguous mutual relationships (floating on them, building them or meeting them by chance?). Cell Mol Life Sci 63: 1038–1059.
[10]  Sai Y, Nies AT, Arias IM (1999) Bile acid secretion and direct targeting of mdr1-green fluorescent protein from Golgi to the canalicular membrane in polarized WIF-B cells. J Cell Sci 112 (Pt 24): 4535–4545.
[11]  Slimane TA, Trugnan G, Van ISC, Hoekstra D (2003) Raft-mediated trafficking of apical resident proteins occurs in both direct and transcytotic pathways in polarized hepatic cells: role of distinct lipid microdomains. Mol Biol Cell 14: 611–624.
[12]  Weksler B, Subileau E, Perriere N, Charneau P, Holloway K, et al. (2005) Blood-brain barrier-specific properties of a human adult brain endothelial cell line. The FASEB journal 19: 1872–1874.
[13]  Betzig E, Patterson GH, Sougrat R, Lindwasser OW, Olenych S, et al. (2006) Imaging intracellular fluorescent proteins at nanometer resolution. Science 313: 1642–1645.
[14]  Hess ST, Girirajan TPK, Mason MD (2006) Ultra-high resolution imaging by fluorescence photoactivation localization microscopy. Biophysical journal 91: 4258–4272.
[15]  Rust MJ, Bates M, Zhuang X (2006) Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM). Nature methods 3: 793–796.
[16]  Bornfleth H, Saetzler K, Eils R, Cremer C (1998) High-precision distance measurements and volume-conserving segmentation of objects near and below the resolution limit in three-dimensional confocal fluorescence microscopy. Journal of Microscopy 189: 118–136.
[17]  Reymann J, Baddeley D, Gunkel M, Lemmer P, Stadter W, et al. (2008) High-precision structural analysis of subnuclear complexes in fixed and live cells via spatially modulated illumination (SMI) microscopy. Chromosome Research 16: 367–382.
[18]  Cremer C, Edelmann P, Bornfleth H, Kreth G, Muench H, et al.. (1999) 40 Principles of Spectral Precision Distance Confocal Microscopy for the Analysis of Molecular Nuclear Structure.
[19]  Lemmer P, Gunkel M, Baddeley D, Kaufmann R, Urich A, et al. (2008) SPDM: light microscopy with single-molecule resolution at the nanoscale. Applied Physics B: Lasers and Optics 93: 1–12.
[20]  Kaufmann R, Müller P, Hildenbrand G, Hausmann M, Cremer C (2011) Analysis of Her2/neu membrane protein clusters in different types of breast cancer cells using localization microscopy. Journal of Microscopy 242: 46–54.
[21]  Huang B, Wang W, Bates M, Zhuang X (2008) Three-dimensional super-resolution imaging by stochastic optical reconstruction microscopy. Science 319: 810–813.
[22]  Baddeley D, Crossman D, Rossberger S, Cheyne JE, Montgomery JM, et al. (2011) 4D Super-resolution microscopy with conventional fluorophores and single wavelength excitation in optically thick cells and tissues. PloS one 6: e20645.
[23]  Maier P, Herskind C, Barzan D, Zeller WJ, Wenz F (2010) SNAI2 as a novel radioprotector of normal tissue by gene transfer using a lentiviral bicistronic SIN vector. Radiation research 173: 612–619.
[24]  Maier P, Herskind C, Fleckenstein K, Spier I, Laufs S, et al. (2008) MDR1 gene transfer using a lentiviral SIN vector confers radioprotection to human CD34+ hematopoietic progenitor cells. Radiation research 169: 301–310.
[25]  Lebedeva IV, Pande P, Patton WF (2011) Sensitive and Specific Fluorescent Probes for Functional Analysis of the Three Major Types of Mammalian ABC Transporters. PloS one 6: e22429.
[26]  Zastre JA, Chan GNY, Ronaldson PT, Ramaswamy M, Couraud PO, et al. (2009) Up-regulation of P-glycoprotein by HIV protease inhibitors in a human brain microvessel endothelial cell line. Journal of neuroscience research 87: 1023–1036.
[27]  Annibale P, Vanni S, Scarselli M, Rothlisberger U, Radenovic A (2011) Quantitative photo activated localization microscopy: Unraveling the effects of photoblinking. PLoS One 6: e22678.
[28]  Kaufmann R, Piontek J, Grüll F, Kirchgessner M, Rossa J, et al. (2012) Visualization and Quantitative Analysis of Reconstituted Tight Junctions Using Localization Microscopy. PLoS One 7: e31128.
[29]  Peterman EJG, Brasselet S, Moerner W (1999) The fluorescence dynamics of single molecules of green fluorescent protein. The Journal of Physical Chemistry A 103: 10553–10560.
[30]  Matsuda A, Shao L, Boulanger J, Kervrann C, Carlton PM, et al. (2010) Condensed mitotic chromosome structure at nanometer resolution using PALM and EGFP-histones. PLoS One 5: e12768.

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