| Literature DB >> 28279219 |
Francesc X Guix1,2, Ragna Sannerud3,4, Fedor Berditchevski5, Amaia M Arranz3,4, Katrien Horré3,4, An Snellinx3,4, Amantha Thathiah6, Takaomi Saido7, Takashi Saito7, Sundaresan Rajesh5, Michael Overduin8, Samir Kumar-Singh9, Enrico Radaelli3,4, Nikky Corthout3,4, Julien Colombelli10, Sébastien Tosi10, Sebastian Munck3,4, Isabel H Salas3,4, Wim Annaert3,4, Bart De Strooper11,12,13.
Abstract
BACKGROUND: The mechanisms behind Aβ-peptide accumulation in non-Entities:
Keywords: Alzheimer’s disease; Amyloid precursor protein; Intraluminal vesicles; Multivesicular bodies; Tetraspanin-6
Mesh:
Substances:
Year: 2017 PMID: 28279219 PMCID: PMC5345265 DOI: 10.1186/s13024-017-0165-0
Source DB: PubMed Journal: Mol Neurodegener ISSN: 1750-1326 Impact factor: 14.195
Fig. 1TSPAN6 affects the normal proteostasis of the cell. a TSPAN6 was transfected in HEK-APPwt (n = 3 technical repeats) and analyzed by western blot using antibodies against APP, APLP2 and LRP1. The CTF levels of APP (APP-CTF), APLP2 (APLP2-CTF) and LRP1 (LRP1-CTF) were elevated by overexpressing TSPAN6. No changes in the levels of full-length proteins for APP (APP-FL), APLP2 (APLP2-FL) and LRP1 (LRP1-FL) were observed. b Quantification of bands in panel a confirmed the increase in CTF levels of APP, APLP2 and LRP1. c Aβ determination by ELISA in the 24 h conditioned medium of HEK-APPwt cells like those in panel a shows increased Aβ40 levels (n = 3 experiments). d Cell lysates of HEK-APPwt cells treated 48 h with a scrambled siRNA (siRNA-cnt) or a siRNA against TSPAN6 (siRNA-TSPAN6) were analyzed by western blot as in panel a (n = 3 experiments). In contrast to panel a, the levels of APP-CTF, APLP2-CTF and LRP1-CTF were strongly reduced in siRNA-TSPAN6-treated cells. e Quantification of bands in panel d. f Aβ levels determined by ELISA in the 24 h-conditioned medium of the cells in panel d show a significant decrease in Aβ40 levels. g HEK293 cells were co-transfected with FlagAPP-C99 and TSPAN6 or an empty vector and lysates analyzed by western blot with antibodies against FlagM2 and 6E10 (n = 3 experiments). h Quantification of FlagAPP-C99 from panel g. i Aβ in the 24 h conditioned medium of the cells from panel g measured by ELISA. TSPAN6 overexpression increases Aβ40 and Aβ42 levels. j Transfected HEK293 analyzed by pulse-chase labeling. Cells were incubated for two hours with 35S-Met/Cys and FlagAPP-C99 was immunoprecipitated at specific time-points with FlagM2-affinity gel. The density of the bands in the autoradiography was quantified and plotted (n = 3 experiments). This shows a slower disappearance of FlagAPP-C99 during the first 30 min in cells overexpressing TSPAN6. k HEK293 cells co-transfected with myc-tagged NotchΔE and TSPAN6 or an empty vector (n = 3 experiments). TSPAN6 overexpression do not change myc-NΔE levels. l Quantification of panel k shows no differences in terms of NICD production in TSPAN6. Statistical significance was determined by t-test (*p <0.05, **p <0.01, ***p <0.001)
Fig. 2Subcellular localization of TSPAN6 in HEK293 cells. HEK293 cells were transfected with myc-tagged TSPAN6 (myc-TSPAN6), fixed and immunostained for EEA1 as an early-endosomes marker (upper panels), LAMP1 and CD63 as markers for late-compartments (middle panels), and GM130 to visualize the Golgi organelle (lower panels). Myc-TSPAN6 (detected with a rat monoclonal anti-myc antibody) shows a high degree of co-localization (arrows) with late-compartments (detected with a mouse monoclonal antibody against LAMP1 and a rabbit polyclonal antibody against CD63), and a lower co-localization with early endosomes (detected with a mouse monoclonal antibody against EEA1). Low co-localization was observed with the Golgi organelle (detected with a monoclonal antibody against GM130). Scale bars = 10 μm
Fig. 3APP-CTF accumulates in endosomal compartments in TSPAN6-overexpressing cells. a Immunofluorescence microscopy of HEK293 cells overexpressing myc-tagged TSPAN6, fixed and probed with a rat monoclonal antibody against myc, a rabbit monoclonal antibody against APP-CTF (Y188), and mouse monoclonal antibodies against EEA1 and LAMP1 to visualize early and late endosomal compartments, respectively. Cells overexpressing myc-TSPAN6 show more APP co-localizing with EEA1 and LAMP1 (filled arrowheads) compared to non-overexpressing cells (empty arrowheads). b Quantification of the number of cells non-overexpressing or overexpressing TSPAN6 showing co-localization of APP-CTF with early (EEA1) or late endosomal (LAMP1) compartments. c Immunoisolation of LAMP1-containing compartments as described [33], after overexpressing Flag-tagged LAMP1 in non-overexpressing or overexpressing myc-tagged TSPAN6. The total inputs and the immunoisolated compartments were analyzed by western blot with specific antibodies against APP, APP-CTF, TSPAN6 and LAMP1. Statistical significance was determined by t-test (***p <0.001)
Fig. 4Endosomal alterations in TSPAN6-overexpressing cells. a EM images showing enlarged compartments in HEK293 cells overexpressing TSPAN6. HEK293 cells expressing an empty vector (control) present endosomes (a a) showing a normal aspect and multivesicular bodies (MVBs; a c and a e) containing normal-sized intraluminal vesicles (ILVs, empty arrowheads). In comparison, HEK293 cells overexpressing TSPAN6 show a higher number of endosomal compartments (a b), some of them with non-degraded material in the lumen (a b, arrowheads) and MVBs with enlarged ILVs (ad and a f; arrowheads). The nucleus is indicated with an N. b Quantification of the number of endosomes from TEM images of HEK293 cells like those shown in panel a. Overexpression of TSPAN6 increases the number of endosomal compartments per cell (n = 72 control cells; n = 59 TSPAN6-transfected cells; 2 independent experiments). c Analysis of the size of endosomal compartments from TEM images. Larger endosomal compartments are found in HEK293 cells overexpressing TSPAN6 in comparison to controls cells expressing an empty vector (n = 167 endosomes for control cells; n = 267 for TSPAN6-transfected cells; 2 independent experiments). d Determination of the surface of ILVs from TEM images like those shown in panel a. All the ILVs from the control or the TSPAN6-overexpressing cells were grouped according to their size in μm2 (n = 202 ILVs from control cells; n = 204 ILVs from TSPAN6-overexpressing cells; 2 independent experiments). This demonstrates enrichment for larger structures in the TSPAN6 overexpressing cells. The mean of the surface plotted for each range shows larger ILVs in cells overexpressing TSPAN6 when comparing ILVs larger than 0.1 μm2. Statistical significance was determined by t- test (*p <0.05, ***p <0.001)
Fig. 5TSPAN6 is found in ILVs and enhances the formation of exosomes. a Representative staining of 2 independent experiments showing HEK293 cells overexpressing the Rab5Q79L mutant together with an empty vector (upper panels) or myc-TSPAN6 (lower panels). Immunofluorescence studies were carried out with monoclonal antibodies against myc (to detect TSPAN6), APP-CTF and Rab5. APP-CTF is observed in the lumen (filled arrowheads) and the limiting membrane (empty arrowheads) of endosomes in both conditions; however, cells overexpressing myc-TSPAN6 show enlarged endosomes. Scale bar = 10 μm. b Percentage of APP-CTF in the lumen or the rim of endosomes in cells overexpressing an empty vector (n = 109 endosomes; 2 independent experiments) or myc-TSPAN6 (n = 106 endosomes; 2 independent experiments). c The average area (pixels2) of Rab5Q79L endosomes in cells overexpressing myc-TSPAN6 (n = 75 endosomes; 2 independent experiments) was increased in comparison to control cells expressing an empty vector (n = 65 endosomes; 2 independent experiments). d Western blot analysis of total HEK293 lysates (transfected with Flag-TSPAN6 or left untransfected) or the exosomal fraction (Exo) isolated from their conditioned medium. The blot was probed with a monoclonal antibody against FlagM2 and a polyclonal antibody against TSPAN6 to assess the overexpression of protein, a monoclonal antibody against calnexin (non-exosomal protein), a polyclonal antibody against Tsg101 (exosomal protein) and a monoclonal antibody against actin. e The western blot of total HEK293 lysates and their exosomal fractions shows no differences in the APP-CTF levels for the same amount (2.5 μg) of exosome lysates when TSPAN6 is overexpressed. f Quantification of the concentration of secreted exosomes (vesicles/ml) by the nanovesicles tracking system Nanosight from control HEK293 cells or overexpressing TSPAN6 (3 independent experiments per condition), shows that TSPAN6 increases the secretion of exosomes. g Graph showing the distribution of the concentrations of the vesicles grouped by size (nm) and found in the exosomal fractions of TSPAN6-overexpressing HEK293 cells and control cells (data from panel f). TSPAN6-overexpressing cells show a higher concentration for all the vesicle sizes. Statistical significance was determined by t-test (**p <0.01)
Fig. 6The C-terminal cytoplasmic region mediates the interaction of TSPAN6 with syntenin-1. a Table illustrating the location of the point mutations on the myc-tagged TSPAN6 mutants used in the co-immunoprecipitation experiment shown in b. b Co-expression of Flag-tagged syntenin in HEK293 cells together with myc-tagged TSPAN6-wt or lacking one of the last c-terminal amino acids (TSPAN6(-1) to TSPAN6(-7)). After immunoprecipitation of Flag-tagged syntenin, the interaction with the different TSPAN6 mutants was evaluated by western blot with an anti-myc antibody. The last 2 amino acids of TSPAN6 are essential for the interaction with syntenin. c N-terminally biotinylated peptides corresponding to the indicated C-termini of tetraspanins were synthesized and conjugated to avidin-agarose beads. HEK293 cells ectopically expressing HA-tagged syntenin were lysed in immunoprecipitation buffer (0.5% Brij 98-0.5% Triton X-100-PBS), incubated with the avidin-immobilized peptides and the interaction to syntenin was analyzed by western blot. TSPAN6 (Tsp6) and CD63 (positive control) C-terminal peptides also interacted with syntenin. Net-5, Net 2 (negative controls reported not to interact to syntenin), CD231 or CD81 did not interact to syntenin
Fig. 7The interaction of syntenin with TSPAN6 mediates the enhanced formation of exosomes. a Flag-tagged TSPAN6 (Flag-TSPAN6) and HA-tagged syntenin (SynWt-HA) or syntenin lacking either the N-terminal fragment (SynΔN-HA) or the C-terminal fragment (SynΔC-HA) were co-transfected in HEK293 cells. Flag-TSPAN6 was immunoprecipitated with an anti-Flag antibody from cell lysates and the interaction was evaluated by western blot using an anti-HA antibody. Total lysates (first 3 lanes) show that the 3 syntenin constructs were expressed. However only SynWt-HA and SynΔN-HA but not SynΔC-HA were immunoprecipitated with Flag-TSPAN6. The absence of anti-Flag antibody gives no bands (negative control, last 3 lanes). b Nuclear magnetic resonance spectroscopy (NMR) analysis of syntenin-1 and TSPAN6 interaction. The left panel shows the superposition of six two-dimensional 1H-15 N-HSQC spectra of uniformly 15 N-labeled syntenin-1 PDZ domain (200 μM) titrated with increasing concentrations of C-terminal peptide of TSPAN6. The right panel shows the locations of syntenin PDZ residues involved in binding. c Exosomes isolated from the conditioned medium of HEK293 cells stably knocked down for syntenin (HEK-Syn KD) and overexpressing an empty vector (control) or TSPAN6 were analyzed by Nanosight. Overall, the number of exosomes is lower in HEK-Syn KD cells compared to HEK293 wt cells (Fig. 5). Overexpression of TSPAN6 in HEK-Syn KD did not alter the number of exosomes secreted. d Same plot as in Fig. 5 g but for HEK293 cells stably knocked down for syntenin (HEK293-KD Syntenin). Neither number of exosomes nor size distribution change between TSPAN6-overexpressing and control cells (data from panel c). e HEK293 or HEK-Syn KD were co-transfected with an empty vector (control) or with TSPAN6 (n = 3 technical replicates). TSPAN6 overexpression increases the APP-CTF levels in both HEK293 and HEK-Syn KD cells. f Quantification of the western blots of panel e. g HEK293 cells were transfected with an empty vector (control), TSPAN6 alone or with either syntenin (Syn) or syntenin with a point mutation in PDZ1 domain (PDZ1) that prevents the interaction to TSPAN6. Lysates were analyzed by western blot (n = 3 technical replicates). Overexpression of TSPAN6 increases the APP-CTF levels. This effect is potentiated by co-expression of Syn or PDZ1 mutant. h Quantification of APP-CTF levels from the western blot shown in panel g. Statistical analysis was carried out with t-test (** p <0.01 vs vector; ## p0.01;vs TSPAN6 alone)
Fig. 8Overexpression of TSPAN6 compromises autophagy. a HEK293 cells overexpressing TSPAN6 analyzed by TEM show phagosomes (aa) multilamellar bodies (ad) and large vacuoles containing undegraded heterogeneous material in the lumen (ab-ac, arrowheads). In comparison, HEK293 cells expressing an empty vector present a reduced number of enlarged vesicles with homogeneous luminal material (ae-af, empty arrowheads). Nucleus is indicated with an N. b Representative experiment showing autophagy induction in control (empty vector) or TSPAN6-overexpressing HEK293 cells by 2 h and 4 h starvation. Lysates were analyzed by western blot with antibodies against TSPAN6, APP, P62, LC3β, PS1-CTF and actin. TSPAN6-overexpressing cells show no degradation of APP-CTF after 4 h starvation compared to control cells. Activation of autophagy was assessed by conversion of LC3-I into LC3-II and the degradation of P62. The levels of PS1-CTF and actin were used as negative controls. c Quantification of APP-CTF levels from western blots like in panel b (n = 3 experiments). d Quantification of P62 levels from western blots like in panel b (n = 3 experiments). e HEK293 cells co-transfected with LC3-GFP-RFP and an empty vector or myc-TSPAN6 were starved for 3 h to induce autophagy. The fusion of autophagosomes (red and green) with lysosomes (red) is reflected in the loss of the fluorescence of GFP protein due to the low pH found in lysosomes. TSPAN6 overexpression is detected with an anti-myc antibody (blue) (scale bar = 10 μm). f Ratio between the number of autophagosomes fused to lysosomes versus the total number of autophagosomes (2 independent experiment; n = 43 autophagosomes for control; n = 43 autophagosomes for TSPAN6). g The number of phagosomes not fused to lysosomes (red and green) per cell is increased in cells overexpressing TSPAN6 (2 independent experiments, n = 59 cells for control; n = 80 cells for TSPAN6). h Scheme showing the cellular pathways affected by TSPAN6. 1-Increased levels of TSPAN6 increment the secretion of exosomes by a syntenin-dependent mechanism. 2-TSPAN6 impairs the fusion between autophagosomes and lysosomes affecting the cellular proteostasis. Statistical significance was determined by t- test (*p <0.05, **p <0.01, ***p <0.001), Ɨ p <0.05)
Fig. 9TSPAN6 controls neural protein homeostasis in vivo. a Immunohistochemistry on cerebral sections of the cortex (layer 4) of Tspan6 and Tspan6 adult mice (1 year old, scale bar = 40 μm). Sections were probed with a polyclonal anti-Tspan6 antibody. Only neuronal bodies of Tspan6 were positive. b Western blot analysis of the cerebral cortex of Tspan6 and Tspan6 adult mice (7 x Tspan6 and 7 x Tspan6 1 year old mice). c Quantification of bands shown in panel b shows a statistically significant decrease of the App levels in Tspan6 mice and slightly decreased levels of App-CTF and Bace1 that do not reach statistical significance. d ELISA determinations of the Aβ content in the cerebral cortex of the mice in panel b. Aβ40 levels were significantly decreased in Tspan6 mice. e Western blot analysis of lysates of Tspan6 wt (Tspan6 or Tspan6 ) , Tspan6 het (Tspan6 ) and Tspan6 KO (Tspan6 or Tspan6 ) E15 primary neuronal cultures showing a reduction in the protein levels of App, App-CTF, sAppβ and Bace1 in Tspan6 het and KO cultures. f Quantification of the intensity of the bands of western blot experiments as in panel e show a statistically significant reduction in the protein levels of App, App-CTF, sAppβ and Bace1 in Tspan6 KO primary neuronal cultures (n = 8 for wt, n = 8 for het, n = 8 for KO). g Aβ levels measured by ELISA in 24 h conditioned medium show a statistical significant reduction of Aβ40 levels in Tspan 6 KO neurons (n = 8 for wt, n = 3 for het, and n = 4 for KO). Statistical significance was determined by t-test (*p <0.05, **p <0.01)
Fig. 106 DIV primary cortical neurons derived from Tspan6 wt (Tspan6 ) E14.5 embryos were infected with an empty lentiviral vector (LV-cnt) or a lentiviral vector overexpressing Tspan6 (LV-Tspan6). At 9 DIV neurons were washed and processed for EM analysis. Tspan6 wt neurons that overexpressed Tspan6 (e-h) show alterations by EM consisting of accumulation of electron dense material inside large vesicles (arrow) in the soma compared to control neurons (a-d)