| Literature DB >> 26993604 |
Audrey Gambade1, Sami Zreika2, Maxime Guéguinou1,3, Igor Chourpa4, Gaëlle Fromont1,3,5, Ana Maria Bouchet1,3, Julien Burlaud-Gaillard4, Marie Potier-Cartereau1,3, Sébastien Roger1, Vincent Aucagne6, Stéphan Chevalier1, Christophe Vandier1,3, Caroline Goupille1,5, Günther Weber1,4.
Abstract
Expression of the antimicrobial peptideEntities:
Keywords: LL-37; breast cancer; calcium signaling; cell migration; membrane association
Mesh:
Substances:
Year: 2016 PMID: 26993604 PMCID: PMC5029663 DOI: 10.18632/oncotarget.8122
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1LL-37 induces Ca2+ influx that promotes migration of MDA-MB-435s cells
(A) LL-37 induced migration is blocked by La3+. The level of induction by LL-37 in presence and absence of 100 μM LaCl3 (La), and scrambled peptide (scr) is displayed relative to cell migration (Ctl) without LL-37. n ≥ 8. (B) LL-37 increases intracellular Ca2+. Upper graphs showing the time course of fura-2 fluorescence ratio detected at 510 nm with both excitations at 340 and 380 nm. Lower graphs, compilations of experiments where the fluorescence ratio is normalized against the basal level of each experiment. Left panels display results obtained using a constant external 2 mM Ca2+. The dotted line shows the normalized basal level and La3+ inhibitory effect is indicated relative to LL-37 alone (n ≥ 6). Right panels display results obtained by shifting the extracellular Ca2+ from 0 to 2 mM after 20s of measurement without depletion of the intracellular store. Ctl : fluorescence ratio without LL-37 after applying of 2 mM Ca2+, LL-37 : fluorescence ratio with LL-37 after applying of 2 mM Ca2+. n = 10. (C) (D)-LL-37 induces cell migration (left panel, n = 10). By shifting the extracellular Ca2+ from 0 to 2 mM, (D)-LL-37 increases fura-2 fluorescence ratio detected at 510 nm with excitations at 340 and 380 nm.(right panel, n = 7).
Figure 2LL-37 binds to pseudopodia and caveolae membranes altering their fluidity
(A) LL-37 attachment to plasma membrane and its internalisation after 5 min. Detection of LL-37 by immunofluorescence performed on non-permeabilized and permeabilized MDA-MB-435s cells treated with LL-37 for 5 min. DAPI is used for nuclear staining. (B) Localisation of LL-37 in an apolar environment at and inside the MDA-MB-435s cells. Labelling of LL-37 using azido-functionalized LL-37 (LL-37-Asp26Ile) coupled with Cy5 fluorochrome (Cy5fluo-LL-37) detected by confocal microspectrometry. The graph shows the characteristic emission (Cy5fluo-LL-37), measured in a apolar (green) environment when attached to the cell or a polar (red) environment when located outside. Images below show the superposition of a visible cell image with its Cy5fluo-LL37 spectral card after 5 min, in absence (left) or presence (right) of 1% NaN3. (C) Localisation of LL-37 on pseudopodia and caveolae membranes in the MDA-MB-435s cell by immunoelectron microscopy. Cells were incubated with LL-37 for 5 min, fixed and then immunogold labelling was performed. Identification of pseudopodia (left, structures indicated with a P) and caveolae (mid, indication with (C) at the extracellular membrane, and of caveosome membranes at the intracellular membrane (right, indicated with Cs). (D) Increase of the generalized polarisation value of by LL-37. The upper graph shows an emission spectrum of the Laurdan probe before (1) and after (2) treatment of MDA-MB-435s cells with LL-37. The lower graph shows the time course of GP measurement as described in materials and methods, arrows with numbers (1) and (2) indicating when the emission spectrum (upper graph) was recorded. Right diagram shows the compilation of ΔGP value after addition of scrambled (scr), (L)-LL-37 or (D)-LL-37 peptides (n ≥ 8).
Figure 3LL-37 increases PI3K/AKT signaling and Ca2+-influx through TRPV2, promoting MDA-MB-435s cell migration
(A) RNA interference against TRPV2 reduces Ca2+ entry and cell migration caused by LL-37. Upper panel: time course of intracellular Ca2+ by shifting the extracellular Ca2+ from 0 to 2 mM after 20s on cells treated with siRNA against TRPV2 (siV2) or control siRNA (siCt) in presence and absence of LL-37. The mid panel displays compilation of results. Fura-2 fluorescence ratio is normalized against the basal level of each individual experiment. The dotted line shows the normalized basal level and the inhibitory effect of siV2 is indicated relative to siCtl with LL-37 (n = 8). Bottom panel: (L-)LL-37- and (D)-LL-37 induced (n ≥ 8) cell migration is suppressed by TRPV2 siRNA. Values are displayed relative to the migration of cells induced by LL-37. FCS is used to control cell mobility in presence of siRNAs (n = 3). (B) PI3K/AKT pathway activation by LL-37 contributes to Ca2+ entry and cell migration. Upper panel: Western blot analysis of AKT phosphorylation in MDA-MB-435s protein extracts treated or not with LL-37 and/or PI3K inhibitor LY2940042 (1 μM). Blots were reprobed with a panAKT antibody. Mid panel: Ca2+ entry by LL-37 is decreased in presence of PI3K inhibitor Wortmannin (n ≥ 10). Condition and evaluation as above. Bottom panel: Suppression of LL-37 induced cell migration in presence of 1 μM LY294002 (n = 8) or 100 nM Wortmannin (n = 5). Values are displayed relative to the migration of cells induced by LL-37.
Figure 4LL-37 induces PI3K-dependent TRPV2 translocation to pseudopodia membranes
(A) Immunofluorescence analysis on non-permeabilized cells revealing the translocation of TRPV2 to the plasma membrane by (L)-LL-37 and (D)-LL-37 peptides and blocked by PI3K inhibitor LY2940042 (1 μM). (B) Localisation of TRPV2 by immunoelectron microscopy. The location of immunogold signals, intracellularly and sporadically at pseudopodia (P) before and accumulated at pseudopodia after 5 min of cell treatment with LL-37, is indicated with arrows.
Figure 5TRPV2 cooperates with BKCa
(A) BKCa inhibitor IbTx decreases LL-37 induced outward potassium current on MDA-MB-435s cells. Left panel shows examples of currents obtained with I-V protocol on MDA-MB-435s cells in presence (LL-37) or absence (PSS) of the peptide. Currents were measured for each voltage clamp (V) from −90 at +80 mV during 500 ms, every 10 mV increase. Mid panel displays a representative Current-Voltage curves which shown the current density-voltage relationships obtained using ramp protocol recorded in PSS or in presence of LL-37 and with or without pretreatment with 100 nM Ibtx. Right panel represents the compilation of the outward current at the membrane voltage at 0 mV normalized to PSS condition (5 < n < 12). (B) IbTx decreases LL-37 induced Ca2+ influx without additional effect of anti-TRPV2 siRNA (siV2). Fura-2 probe is used to measure Ca2+ influx after 2 mM Ca2+ application as described in Materials and Methods. The effects of LL-37 and IbTx (100 nM) are evaluated on MDA-MB-435s cells transfected with siRNA against TRPV2 or control siRNA (siCt). Fura-2 fluorescence ratio is normalized against the basal level of each individual experiment. The dotted line shows the normalized basal level and the inhibitory effect of siV2 and/or IbTx is indicated relative to siCtl with LL-37 (n = 13). (C) IbTx decreases LL-37 induced cell migration without additional effect of anti-TRPV2 siRNA (siV2). The inhibitory effect of siV2 and/or IbTx is indicated relative to siCtl with LL-37 (n = 8). (D) BKCa membrane location remains unaltered after application of LL-37. Left panels show the detection of BKCa by immunofluorescence performed on non-permeabilized MDA-MB-435s cells treated or not with LL-37 for 5 min. DAPI is used for nuclear staining. Right panels show the localisation of BKCa on pseudopodia (P) and intracellularly by immunoelectron microscopy. The location of immunogold signals, intracellularly and at pseudopodia (P) is indicated with arrows.
Figure 6LL-37 and TRPV2 cooperate in cell cancer lines and breast tumors
(A) Immunohistochemical analysis of breast tumors reveals coexpreussion of LL-37 and TRPV2. Left panel: representative example of sections from two breast carcinomas showing strong signals for both LL-37 and TRPV2 staining, or low immunoreactivity for either of them. Right panel displays the evaluation of 101 breast tumors, and revealing significant coexpression of LL-37 and TRPV2 (chi-square: p < 10−4). (B) Immunohistochemistry on the MCF7 cell line, revealing an increased signal for TRPV2 in cells with transgenic expression of hCAP18/LL-37. (C) RNA interference against TRPV2 decreases LL-37 induced cell migration of MCF7 (left panel) and MDA-MB-231 (right panel) cells.
Figure 7Mechanism proposed for the stimulatory activity of LL-37 on cell migration
LL-37 binds to the membranes of caveolae and pseudopodia (1), and activates PI3K/AKT signaling (2). AKT induces the recruitment of the TRPV2 channel (3) from intracellular vesicles to plasma membranes of pseudopodia. The increase of intracellular Ca2+ induced by TRPV2 is accompanied by K+ efflux through BKCa (4), which preserves the ion balance and helps to maintain the Ca2+ entry, which promotes cancer cell migration.