Structural and functional analysis of tunneling nanotubes (TnTs) using gCW STED and gconfocal approaches

被引:43
作者
Benard, Magalie [1 ,2 ]
Schapman, Damien [1 ,2 ]
Lebon, Alexis [1 ,2 ]
Monterroso, Baptiste [1 ,2 ]
Bellenger, Marine [1 ,2 ]
Le Foll, Frank [3 ]
Pasquier, Jennifer [3 ,4 ,5 ]
Vaudry, Hubert [1 ,2 ]
Vaudry, David [1 ,2 ]
Galas, Ludovic [1 ,2 ]
机构
[1] INSERM, Cell Imaging Platform Normandy PRIMACEN, Infrastruct Biol Sante & Agron IBiSA, Mont St Aignan, France
[2] Normandie Univ, IRIB, Rouen, France
[3] Univ Havre, Unite Stress Environm & BIOsurveillance Milieux A, INERIS, URCA,ULH,SEBIO,UMR I 02, Le Havre, France
[4] Weill Cornell Med Coll, Dept Med Genet, New York, NY USA
[5] Weill Cornell Med Coll Qatar, Stem Cell & Microenvironm Lab, Doha, Qatar
关键词
Deconvolution; PC12; cells; Time-gated confocal microscopy; Time-gated Continuous Wave STED nanoscopy; Tunneling nanotubes; ANIMAL-CELLS; CANCER-CELLS;
D O I
10.1111/boc.201500004
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Background information. Tunneling nanotubes (TnTs) are thin plasma membrane bridges mediating transfers of materials and signals between cells. Heterogeneity of heterocellular and homocellular TnTs is largely described but ultrafine imaging of these light-sensitive floating nanometric structures represents a real challenge in microscopy. We propose here imaging strategies designed to dissect structural and dynamic aspects of TnT formation and function in fixed or living PC12 cells. Results. Through time-gated Continuous Wave STimulated Emission Depletion (gCW STED) nanoscopy associated with deconvolution, we provided nanoscale details of membrane and cytoskeleton organisations in two subtypes of TnTs, namely type 1 TnT (TnT1) and type 2 TnT (TnT2). In fixed PC12 cells, TnT1 (length, several tens of micrometres; diameter, 100-650 nm) exhibited a large trumpet-shaped origin, a clear cytosolic tunnel and different bud-shaped connections from closed-ended to open-ended tips. TnT1 contained both actin and tubulin. TnT2 (length, max 20 m, diameter, 70-200 nm) only contained actin without clear cytosolic tunnel. In living PC12 cells, we observed through gCW STED additional details, unrevealed so far, including a filament spindle emerging from an organising centre at the origin of TnT1 and branched or bulbous attachments of TnT2. However, the power of depletion laser in STED nanoscopy was deleterious for TnTs and prolonged time-lapse experiments were almost prohibited. By circumventing the hazard of photoxicity, we were able to monitor dynamics of bud-shaped tips and intercellular transfer of wheat germ agglutinin labelled cellular elements through time-gated confocal microscopy. Conclusions. Our work identified new structural characteristics of two subtypes of TnTs in PC12 cells as well as dynamics of formation and transfer through complementary imaging methods combined with image processing. Therefore, we could achieve maximum lateral resolution and sample preservation during acquisitions to reveal new insights into TnT studies. Significance. Due to large disparity of TnT-like structures in neuronal, immune, cancer or epithelial cells, high- and superresolution approaches can be utilised for full characterisation of these yet poorly understood routes of cell-to-cell communication.
引用
收藏
页码:419 / 425
页数:7
相关论文
共 11 条
[1]  
Austefjord Magnus Wiger, 2014, Commun Integr Biol, V7, pe27934, DOI 10.4161/cib.27934
[2]   Membrane nanotubes: dynamic long-distance connections between animal cells [J].
Davis, Daniel M. ;
Sowinski, Stefanie .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2008, 9 (06) :431-436
[3]   Prions hijack tunnelling nanotubes for intercellular spread [J].
Gousset, Karine ;
Schiff, Edwin ;
Langevin, Christelle ;
Marijanovic, Zrinka ;
Caputo, Anna ;
Browman, Duncan T. ;
Chenouard, Nicolas ;
de Chaumont, Fabrice ;
Martino, Angelo ;
Enninga, Jost ;
Olivo-Marin, Jean-Christophe ;
Maennel, Daniela ;
Zurzolo, Chiara .
NATURE CELL BIOLOGY, 2009, 11 (03) :328-U232
[4]   Preliminary characterisation of nanotubes connecting T-cells and their use by HIV-1 [J].
Lachambre, Simon ;
Chopard, Christophe ;
Beaumelle, Bruno .
BIOLOGY OF THE CELL, 2014, 106 (11) :394-404
[5]   Is super-resolution microscopy right for you? [J].
Marx, Vivien .
NATURE METHODS, 2013, 10 (12) :1157-1163
[6]   Multifaceted roles of tunneling nanotubes in intercellular communication [J].
Marzo, Ludovica ;
Gousset, Karine ;
Zurzolo, Chiara .
FRONTIERS IN PHYSIOLOGY, 2012, 3
[7]   Preferential transfer of mitochondria from endothelial to cancer cells through tunneling nanotubes modulates chemoresistance [J].
Pasquier, Jennifer ;
Guerrouahen, Bella S. ;
Al Thawadi, Hamda ;
Ghiabi, Pegah ;
Maleki, Mahtab ;
Abu-Kaoud, Nadine ;
Jacob, Arthur ;
Mirshahi, Massoud ;
Galas, Ludovic ;
Rafii, Shahin ;
Le Foll, Frank ;
Rafii, Arash .
JOURNAL OF TRANSLATIONAL MEDICINE, 2013, 11
[8]   Different Modalities of Intercellular Membrane Exchanges Mediate Cell-to-cell P-glycoprotein Transfers in MCF-7 Breast Cancer Cells [J].
Pasquier, Jennifer ;
Galas, Ludovic ;
Boulange-Lecomte, Celine ;
Rioult, Damien ;
Bultelle, Florence ;
Magal, Pierre ;
Webb, Glenn ;
Le Foll, Frank .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (10) :7374-7387
[9]   Pituitary adenylate cyclase-activating polypeptide (PACAP) stimulates the expression and the release of tissue plasminogen activator (tPA) in neuronal cells: involvement of tPA in the neuroprotective effect of PACAP [J].
Raoult, Emilie ;
Roussel, Benoit Denis ;
Benard, Magalie ;
Lefebvre, Thomas ;
Ravni, Aurelia ;
Ali, Carine ;
Vivien, Denis ;
Komuro, Hitoshi ;
Fournier, Alain ;
Vaudry, Hubert ;
Vaudry, David ;
Galas, Ludovic .
JOURNAL OF NEUROCHEMISTRY, 2011, 119 (05) :920-931
[10]   Nanotubular highways for intercellular organelle transport [J].
Rustom, A ;
Saffrich, R ;
Markovic, I ;
Walther, P ;
Gerdes, HH .
SCIENCE, 2004, 303 (5660) :1007-1010