The protein cross-linking enzyme tissue transglutaminase binds in vitro with high affinity to fibronectin via its 42-kD gelatin-binding domain. Here we report that cell surface transglutaminase mediates adhesion and spreading of cells on the 42-kD fibronectin fragment, which lacks integrin-binding motifs. Overexpression of tissue transglutaminase increases its amount on the cell surface, enhances adhesion and spreading on fibronectin and its 42-kD fragment, enlarges focal adhesions, and amplifies adhesion-dependent phosphorylation of focal adhesion kinase. These effects are specific for tissue transglutaminase and are not shared by its functional homologue, a catalytic subunit of factor XIII. Adhesive function of tissue transglutaminase does not require its cross-linking activity but depends on its stable noncovalent association with integrins. Transglutaminase interacts directly with multiple integrins of β1 and β3 subfamilies, but not with β2 integrins. Complexes of transglutaminase with integrins are formed inside the cell during biosynthesis and accumulate on the surface and in focal adhesions. Together our results demonstrate that tissue transglutaminase mediates the interaction of integrins with fibronectin, thereby acting as an integrin-associated coreceptor to promote cell adhesion and spreading.
Transglutaminases are a family of Ca++-dependent enzymes that mediate covalent cross-linking of proteins by forming amide bonds between glutamines and ε-amino groups of lysine residues (
tTG localizes primarily in the cytoplasm, with a small part of its intracellular pool present in the nucleus (
Emerging evidence suggests a role for tTG in cell adhesion. Overexpression of tTG in fibroblasts increased cell spreading and reduced susceptibility to detachment with trypsin (
A cDNA encoding human endothelial tTG (
C277→S tTG mutant was generated by PCR-based mutagenesis and confirmed by sequencing.
WI-38 fibroblasts and human erythroleukemia (HEL) cells were obtained from ATCC and cultured by standard methods. Rat embryonic fibroblasts REF52 and rat smooth muscle cells PAC-1 were kindly provided by Dr. K. Burridge (University of North Carolina, Chapel Hill, NC) and Dr. V.E. Koteliansky (Biogen Inc., Cambridge, MA). REF52 cells were transfected with wild-type or mutant tTG cDNAs or FXIIIa cDNA in pcDNA3.1-zeo vector (Invitrogen) using Superfect™ (Quiagen) and selected with 100 μg/ml zeocin™ (Invitrogen). β1 integrin cDNAs, CHO cell lines expressing β1 integrin cytoplasmic domain variants, and antibodies against integrin subunits were described previously (
Glass coverslips or 24-well plastic wells were coated with 10 μg/ml Fn, 110-kD cell-binding, or 42-kD gelatin-binding Fn fragment for 1 h at 37°C, blocked with 10 mg/ml BSA, and then used for cell plating. Since trypsin rapidly degrades cell surface tTG, we used EDTA for cell detachment in adhesion and spreading experiments. 35S-labeled WI-38 fibroblasts, REF52 transfectants, and untreated or 12-
For spreading assays, unlabeled WI-38, REF52 fibroblasts, or HEL cells were plated for 4 h on protein-coated glass coverslips using the conditions of adhesion experiments. Coverslips were washed with PBS, fixed with 3% formaldehyde, stained with Coomassie blue, destained, and photographed. To quantitate the degree of spreading of WI-38 fibroblasts and REF52 transfectants on Fn and Fn fragments over a time course, the cells were plated on the substrates for 30–180 min using the above mentioned conditions. The cells were fixed at certain timepoints, stained with Coomassie blue, and the average spreading areas were determined for 90–120 cells not contacting each other using a video monitor to trace the perimeters of adherent cells.
Adherent or suspended cells were washed with PBS and lysed in ice-cold RIPA buffer, containing 1% Triton X-100, 0.5% Na-deoxycholate, 0.1% SDS, 150 mM NaCl, 50 mM TrisCl, pH 7.5, with 0.5 mM PMSF, 0.5 mM benzamidine, 10 μg/ml leupeptin, and 10 μg/ml aprotinin. Cell lysates were precleared by centrifugation (14,000 rpm for 30 min at 4°C). 1 mg of total cellular protein or 3 × 108 cpm of protein-incorporated 35S radioactivity was used for each sample in immunoprecipitation or affinity binding experiments. RIPA cell lysates were used for immunoprecipitation with antibodies (2–8 μg per sample) against integrins or tTG, followed by protein G–Sepharose, or used for binding assays with 100 μl of immobilized Fn and Fn fragments (1 mg protein/ml Sepharose).
Cell surface biotinylation of 2 × 107 EDTA-detached TPA-differentiated HEL cells was performed in PBS containing 0.1 mg/ml membrane-impermeable biotinylation agent Sulfo-NHS-Biotin (Pierce) for 20 min, and the reaction was quenched with 20 mM Tris in PBS. Biotinylated proteins were visualized on the blots with neutravidin-peroxidase (Pierce).
Immunodepletion analysis and reprecipitation were performed as described (
To analyze association of tTG and Fn with β1 integrins in WI-38 fibroblasts, cells were labeled overnight with 50 μCi/ml [35S]Translabel. 35S-labeled RIPA lysates were subjected to immunoprecipitation with mAb CUB7402 against tTG or mAb 9EG7 against human β1 integrin. An excess (1 μM) of unlabeled Fn, 110-kD Fn fragment, 42-kD Fn fragment, or 5 μM unlabeled tTG fragment tTG1-165 was added to some immunoprecipitation samples during incubations with primary antibodies and protein G–Sepharose. After immunoprecipitation, the immune complexes were split into halves and half of each sample was boiled in SDS sample buffer. The other half was boiled in 1% SDS, the eluate was reconstituted with 1% Triton X-100, 150 mM NaCl, 50 mM TrisCl, pH 7.5, to a final SDS concentration of 0.1%, and subjected to reprecipitation with polyclonal antibody to Fn. Immunoprecipitates were washed several times with RIPA buffer, and analyzed by SDS-PAGE and autoradiography.
For coimmunoprecipitation and affinity isolation experiments with HEL cells, they were labeled overnight with 50 μCi/ml [35S]Translabel. To increase tTG synthesis, HEL cells were plated on Fn and treated with 150 ng/ml TPA for 24–48 h. After the treatment, 85–90% of cells in the population became adherent and spread. Both untreated and TPA-treated 35S-labeled cells were lysed in RIPA buffer, and precleared lysates were used for immunoprecipitation or affinity binding to Fn and Fn fragments.
To visualize 35S-labeled proteins, SDS-PAGE in 10% acrylamide/0.25% bis-acrylamide gels was followed by treatment of gels with Autofluor (Amersham Pharmacia Biotech) and fluorography. tTG was detected on blots with 0.4 μg/ml mAb TG100 and FXIIIa with 0.5 μg/ml polyclonal antibody. For immunoblotting of β1 and β3 integrins, antibodies to β1A cytodomain or β3 integrin subunit (Chemicon) were used at 0.5 μg/ml. Blots were developed with peroxidase-conjugated secondary IgG (Chemicon) and ECL reagents (Pierce).
To analyze association of cell surface tTG with integrins, cross-linking experiments were performed as follows. 2 × 107 TPA-treated HEL cells were detached with EDTA and live cells were incubated for 20 min at 20°C in PBS containing 0.5 mM membrane-impermeable cross-linker Dithiobis (sulfosuccinimidylpropionate) (DTSSP; Pierce). The reaction was stopped by adding 20 mM TrisCl, pH 7.5. The cells were pelleted, washed twice with PBS, and lysed in ice-cold RIPA buffer with protease inhibitors. β1, β2, and β3 integrins and tTG were immunoprecipitated from RIPA lysates of DTSSP-treated cells as described above. Immunoprecipitation samples were divided into halves and boiled in SDS-PAGE sample buffer either without or with reducing agents, and analyzed on 10% gels. To avoid an appearance of large IgG bands on the blot with the nonreduced immunoprecipitates, it was developed with 0.3 μg/ml biotinylated mAb TG100 against tTG, followed by neutravidin-peroxidase.
Live nonpermeabilized REF52 cells transfected either with vector alone or with tTG cDNA were double stained with 10 μg/ml anti-tTG mAb CUB7402 and 20 μg/ml hamster mAb HM β1-1 to rat β1 integrin. To localize tTG and β1 integrins during spreading of tTG transfectants on 42-kD Fn fragment, the cells were fixed with 3% formaldehyde in PBS 1 or 2 h after plating and then double stained without cell permeabilization. A combination of rhodamine-conjugated donkey anti–mouse IgG and fluorescein-conjugated goat anti–hamster IgG (Chemicon) were used as secondary antibodies. To visualize focal adhesions and actin stress fibers, cells were fixed with 3% formaldehyde, permeabilized with 0.5% Triton X-100 in PBS, and then costained with 10 μg/ml antivinculin mAb 7F9 and rhodamine-phalloidin (1:500), followed by fluorescein-conjugated donkey anti–mouse IgG (Chemicon).
For flow cytometry, live REF52 transfectants were stained for cell surface tTG with 10 μg/ml polyclonal anti-tTG antibody. Staining for cell surface FXIIIa was performed with 10 μg/ml polyclonal antibody. After incubation with secondary fluorescein-labeled IgG, the cells were analyzed in FACScan™ flow cytometer (Becton Dickinson).
Transglutaminase activity in cell lysates (cytosolic fractions) of REF52 transfectants was measured by incorporation of [3H]putrescine into N,N-dimethylcaseine as described previously (
For focal adhesion kinase (FAK) phosphorylation experiments, 2 × 105 REF52 transfectants were either kept in suspension or plated for 3 h in serum-free medium containing 20 μg/ml cycloheximide on dishes precoated with Fn, Fn fragments, laminin, or anti-tTG antibodies. To perform a time course analysis of FAK phosphorylation with the transfectants, the cells were plated on Fn for 45, 90, and 180 min. Immunoprecipitation of FAK from cell lysates with polyclonal antibody 5158 and immunoblotting for phosphotyrosine were describred earlier (
tTG binds in vitro with high affinity to the 42-kD gelatin-binding domain of Fn (
It was reported earlier that HEL cells that normally grow in suspension adhere to Fn after treatment with TPA (
To explore further the role of tTG in cell adhesion, rat REF52 fibroblasts were transfected with human tTG or its enzymatically inactive mutant C277→S. Flow cytometry of live REF52 transfectants was performed with a polyclonal anti-tTG antibody that recognizes both rat and human tTG. The cells expressing human tTG or tTG[C277→S] had increased amounts of tTG on the surface compared with vector controls, showing that both proteins were exported to the cell surface (
When plated on Fn in the presence of cycloheximide, tTG transfectants displayed increased spreading compared with control cells, as did the tTG[C277→S] mutant transfectants (
Quantitative adhesion assays with REF52 cells overexpressing tTG or its enzymatically inactive mutant C277→S showed that their adhesion on Fn or its 110-kD fragment was not significantly altered, but adhesion on the 42-kD Fn fragment was strongly promoted (
Cell spreading on ECM is an active process that requires outside-in signaling. Surprisingly, surface tTG is capable of promoting cell spreading on Fn and its 42-kD fragment, even though it lacks a transmembrane domain (
Immunoprecipitation in RIPA buffer, which disrupts integrin–ligand interactions (data not shown), was used to isolate integrin–tTG complexes from cell lysates. We initiated the analysis with HEL cells because they do not synthesize any detectable Fn (
Pulse-chase analysis and immunoprecipitation of β1 integrins from TPA-induced HEL cells showed that immediately after 1 h labeling, an 80-kD protein was complexed with β1 integrins (
Analysis of complex formation between αβ integrin heterodimers and tTG in PAC-1 rat smooth muscle cells by coimmunoprecipitation and immunoblotting for tTG showed that tTG associates with α1β1, α3β1, α5β1, as well as αvβ3 integrins (
To test association of tTG with other integrins on the cell surface, we biotinylated cell surface proteins on live TPA-differentiated HEL cells that express high levels of β1, β2, and β3 integrins. Immunoprecipitation with antiintegrin antibodies followed by blotting with avidin-peroxidase revealed an 80-kD protein that comigrated with tTG and was associated with β1 and β3, but not with β2 integrins (
We also tested whether tTG can be chemically cross-linked to cell surface integrins (
The foregoing data demonstrate that tTG functions as a cell adhesion receptor for the gelatin-binding region of Fn and interacts with β1 and β3 integrins. We next examined biochemically whether tTG by itself can mediate association of integrins with this part of Fn, which lacks integrin-binding motifs. First, a protein corresponding to Fn was observed in both tTG and β1 integrin immunoprecipitates from 35S-labeled WI-38 human fibroblasts (
An even more convincing proof of this concept came from experiments with HEL cells, which synthesize essentially no endogenous Fn even when treated with TPA, and express large amounts of α5β1 and αIIbβ3 integrins, which serve as Fn receptors (
Since tTG mediates binding of integrins to Fn, we next analyzed whether tTG functionally collaborates with integrins in adhesion-dependent signal transduction. Analysis of integrin-mediated tyrosine phosphorylation of FAK was performed with REF52 cells overexpressing tTG (
Since tTG is physically and functionally associated with integrins, we compared their localization on the cell surface. Immunostaining of live nonpermeabilized REF52 cells on Fn revealed codistribution of tTG and β1 integrins at focal adhesions (
In this study we describe a novel function of cell surface tTG as an integrin-associated adhesion coreceptor for Fn. tTG exerts this function by associating with several β1 and β3 integrins while simultaneously binding to Fn via its NH2-terminal domain. The latter interaction involves a previously unrecognized adhesive site on Fn that is located within the 42-kD gelatin-binding domain (modules I6II1,2I7-9) and is distinct from its classical RGD-containing and all other known cell-binding motifs. Experiments presented in this study prove that cells can adhere, spread, and form focal adhesions on the isolated 42-kD Fn fragment, and that surface tTG is critical for these processes. tTG also promotes adhesion and enhances spreading, focal adhesion formation, and adhesion-triggered signaling of cells adhering to whole Fn.
A recent work by
The adhesive function of tTG strictly depends on its interaction with integrins. We estimate that in different cell types, 5–40% of β1 integrins are complexed with tTG. In contrast, only 0.5–10% of the total tTG cellular pool is associated with integrins; the great majority of tTG resides in the cytoplasm, making it often difficult to detect integrins in tTG immunoprecipitates from whole cell lysates. On the other hand, the chemical cross-linking experiments indicate that all the tTG on the cell surface is present as 1:1 complexes with integrins. The interaction of tTG with integrins occurs primarily via the extracellular domains of integrin β subunits. Among several integrins containing homologous β1, β2, and β3 subunits, only members of the β1 and β3 subfamilies interact with tTG, whereas β2 integrins do not. This emphasizes the specificity of this interaction and implies new functional differences between integrin subgroups.
In this study, we show that integrin–tTG complexes are formed inside the cell early during biosynthesis. We were unable to reconstitute integrin interaction with tTG in vitro using purified proteins, most likely because the formation of these complexes involves some as-yet unidentified intracellular intermediate(s) (data not shown). These facts might explain some previous data showing inability of purified tTG added to cells to influence cell adhesion and spreading (
How does the integrin–tTG interaction promote cell adhesion? Integrins are relatively low affinity receptors for ECM proteins, including Fn. In contrast, tTG binds with high affinity to Fn and its 42-kD fragment (
Based on the interaction of tTG with several ECM proteins reported previously (
The authors wish to thank P. Davies, E. Davie, P. Birckbichler, L. Lorand, L. Romer, K. Burridge, V.E. Koteliansky, R. Fässler, S.F. Retta, and G. Tarone for valuable reagents and cell lines used in this study. We thank L. Zaritskaya for help with flow cytometry experiments. We are particularly grateful to K. Ingham for many stimulating discussions, providing Fn fragments, and critical reading of the manuscript.
This study was supported by National Institutes of Health grants R29 CA 77697 to A.M. Belkin and HL 21791 to K. Ingham.
Surface tTG mediates adhesion and spreading of WI-38 fibroblasts on 42-kD Fn fragment. (A) A scheme of modular structure of Fn and its 42-kD and 110-kD proteolytic fragments. (B and C) Spreading assays with WI-38 fibroblasts. (B) Cells were plated for 4 h on Fn, 110-kD, or 42-kD Fn fragments either untreated or in the presence of 10 μg/ml polyclonal anti-tTG antibody. (C) Cells were plated for 4 h on 42-kD Fn fragment in the presence of 10 μM recombinant NH2-terminal tTG domain tTG1-165, 200 μM GRGDSP or GRGESP peptides, or 10 μg/ml function-blocking mAb JB1A against human β1 integrins. Bar, 20 μM. (D) Quantitative adhesion assays with WI-38 fibroblasts plated for 1 h on Fn (open bars), 110-kD (crossed bars), and 42-kD (filled bars) fragments without treatment or in the presence of 10 μM tTG1-165, 10 μg/ml mAb CUB7402, 10 μg/ml polyclonal anti-tTG antibody, or 10 μg/ml blocking anti-β1 integrin mAb JB1A. Shown are the means of quadruplicate measurements. (E) Quantitative spreading assays with WI-38 fibroblasts plated on Fn or 42-kD Fn fragment for 30–180 min either without treatment or in the presence of 10 μg/ml polyclonal anti-tTG antibody. Shown are the average areas on substrate for 120 cells. (B–E) Adhesion and spreading assays were performed with cells in serum-free medium in the presence of cycloheximide.
TPA-induced adhesion and spreading of HEL cells on 42-kD Fn fragment is mediated by surface tTG. (A) Expression levels of tTG on the surface of live untreated and TPA-treated cells were determined by immunostaining with 10 μg/ml polyclonal anti-tTG antibody and flow cytometry. (B) Transglutaminase activity on the surface of live untreated and TPA-treated cells was quantified by measuring cell-mediated incorporation of [3H]putrescine into N,N-dimethylcaseine. Bars show the means of triplicate measurements. (C) Quantitative adhesion assays with untreated and TPA-treated cells plated for 1 h on Fn (open bars), 110-kD (crossed bars), and 42-kD (filled bars) fragments either without or in the presence of 10 μg/ml polyclonal anti-tTG antibody. (D) Spreading assays with untreated and TPA-treated cells. Cells were plated for 4 h on Fn, 110-kD, or 42-kD Fn fragments without any treatment or after TPA treatment either in the absence or with 10 μg/ml polyclonal anti-tTG antibody. Bar, 20 μM. (C and D) For adhesion and spreading assays HEL cells were plated in serum-free medium in the presence of cycloheximide.
Expression of exogenous tTG or its enzymatically inactive mutant tTG[C277→S], but not of FXIIIa promotes cell spreading. (A–E) REF52 cells were transfected with vector (vect.), wild-type tTG (tTG), tTG noncatalytic mutant C277→S (tTG[C277-S]), or FXIIIa (FXIIIa). (A) Expression levels of tTG on the surface of live transfectants were determined by immunostaining with 10 μg/ml polyclonal anti-tTG antibody and flow cytometry. (B) Expression levels of FXIIIa on the surface of live transfectants were determined by immunostaining with 10 μg/ml polyclonal antibody against FXIIIa and flow cytometry. (C) Transglutaminase activity in the cytosolic fractions of the transfectants was quantified by incorporation of [3H]putrescine into N,N-dimethylcaseine by transamidating enzymes present in cell lysates (
tTG-dependent stimulation of cell adhesion and spreading on Fn and its 42-kD fragment does not require the cross-linking activity. (A) Spreading assays with REF52 transfectants. Cells expressing vector, tTG, tTG[C277→S], or FXIIIa were plated for 4 h on Fn, 110-kD, or 42-kD Fn fragments. Bar, 20 μM. (B) Quantitative adhesion assays with REF52 transfectants plated for 1 h on Fn (open bars), 110-kD (crossed bars), and 42-kD (filled bars) fragments. Shown are the means of quadruplicate measurements. (C and D) Quantitative spreading assays with REF52 transfectants. Cells expressing vector, tTG, tTG[C277→S], or FXIIIa were plated for 30–180 min on Fn (C) or the 42-kD Fn fragment (D). Shown are the average areas on the substrates for 90 cells. (A–D) Cells were plated for adhesion and spreading assays in serum-free cycloheximide-containing medium. (E) Analysis of tTG association with β1 integrins. FGF receptor, β1 integrins, and tTG were immunoprecipitated with polyclonal antibody Flg(H-76) or HMβ1-1 and CUB7402 mAbs, respectively, from REF52 cells expressing vector, tTG or tTG[C277→S]. The resulting immunoprecipitates were blotted for tTG. Large arrow marks the transfected human tTG and small arrow indicates the endogenous rat tTG. (F) FXIIIa is not associated with β1 integrins. FGF receptor, β1 integrins, and FXIIIa were immunoprecipitated from FXIIIa-expressing REF52 cells and the resulting immunoprecipitates were probed for FXIIIa with a polyclonal antibody.
tTG associates with multiple β1 and β3 integrins in different cell types. (A) Immunodepletion. An 80-kD protein associated with β1 integrins is immunodepleted with anti-tTG antibody. β1 integrins and tTG were immunoprecipitated from RIPA lysates of TPA-treated 35S-labeled HEL cells with mAb 9EG7 or polyclonal anti-tTG antibody, respectively. Note a comigration of 80-kD protein coprecipitating with β1 integrins, with tTG (arrow). Preadsorbtion of 35S-labeled RIPA lysates with polyclonal anti-tTG antibody followed by immunoprecipitation of β1 integrins with mAb 9EG7 caused a disappearance of 80-kD protein from the β1 integrin immunoprecipitates. Arrows in A–E point to tTG bands. Brackets in A and B mark α5β1 integrin. (A–C) Molecular weight markers are shown to the right of the gels. (B) Reprecipitation. An 80-kD protein associated with β1 integrins is reprecipitated by three antibodies against tTG. β1 integrins were immunoprecipitated from RIPA lysates of TPA-treated 35S-labeled HEL cells with 9EG7 mAb. The 35S-labeled β1 integrin immune complexes were treated with 0.4% SDS (left panel) or boiled in 1% SDS (right panel). 35S-labeled eluates from the β1 integrin immune complexes were divided into four equal aliquots and subjected to reprecipitation in RIPA buffer with antibody against β1A integrin cytodomain (lane 1), anti-tTG polyclonal antibody (lane 2), mAb CUB7402 (lane 3), or mAb TG100 (lane 4) against tTG. (C) tTG interacts with β1 integrins inside the cell during biosynthesis. TPA-treated HEL cells were labeled with [35S]Translabel for 1 h, then chased with regular medium for 0, 2, 6, or 18 h. β1 integrins were immunoprecipitated from 35S-labeled RIPA lysates with 9EG7 mAb. The resulting immunoprecipitates were divided into halves. Half of each sample was run on the gel (upper panel), whereas another half was boiled in 1% SDS and tTG was reprecipitated from these samples using anti-tTG polyclonal antibody (lower panel). Large and small arrowheads point to mature β1 integrin and its underglycosylated precursor, respectively. (D) Association of tTG with multiple integrins. Immunoprecipitates from PAC-1 smooth muscle cells with antibodies against α1, α3, α5, αv, β1, and β3 integrins, FGF receptor, tTG, or without primary antibody (cont.) were blotted for tTG. (E) β1 integrin cytodomain is not required for binding tTG. Transfected human and endogenous hamster β1 integrins were immunoprecipitated with mAbs TS2/16 and 7E2, respectively, from CHO cells expressing exogenous β1A, β1D, or β1 integrin with deleted cytodomain. No primary antibody was used in control immunoprecipitations (cont.). The immunoprecipitates were blotted for tTG.
tTG is associated with β1 and β3, but not with β2 integrins on the cell surface. (A) Interaction of tTG with β1 and β3 integrins on the cell surface. (Upper panel) TPA-differentiated HEL cells were biotinylated in suspension and β1, β2, and β3 integrins and tTG were immunoprecipitated from RIPA lysates of surface-biotinylated cells. Anti–mouse IgG was used in control immunoprecipitations (cont.). Biotinylated proteins in the immunoprecipitates were visualized on blots by neutravidin-peroxidase. (Lower panel) The same immunoprecipitates as in the top panel were blotted for tTG. Note association of tTG with β1 and β3 but not with β2 integrins. β1, β2, and β3 integrin bands are marked by arrowheads. Asterisks mark IgG heavy chains. Molecular weight markers are shown to the right of the blot. (B) tTG can be cross-linked to β1 and β3 integrins on the cell surface. TPA-differentiated HEL cells were treated for 20 min with 0.5 mM membrane-impermeable reducible cross-linker DTSSP in suspension and β1, β2, and β3 integrins and tTG were immunoprecipitated from RIPA lysates. After immunoprecipitation samples were run on 8% gels under nonreducing (upper panel) or reducing (lower panel) conditions. To avoid the appearance of IgG bands, the blots were probed for tTG using biotinylated anti-tTG mAb TG100 followed by neutravidin-peroxidase. Arrow in A and B points to tTG bands. Molecular weight markers (nonreduced: myosin heavy chain, 200 kD; IgG, 160 kD; and BSA, 68 kD) are shown to the right of the blots.
Interaction of tTG with β1 integrins allows formation of ternary complexes with Fn. (A) tTG (left lane) or β1 integrins (all other lanes) were immunoprecipitated from RIPA lysates of 35S-labeled WI-38 fibroblasts either in the presence of 1 μM unlabeled Fn, its 42-kD fragment, its 110-kD fragment or without any of these proteins added. (B) tTG (left two lanes) or β1 integrins (right two lanes) were immunoprecipitated from RIPA lysates of 35S-labeled WI-38 fibroblasts either in the absence or with 5 μM unlabeled NH2-terminal tTG fragment tTG1-165. After immunoprecipitation half of each sample shown in A and B was boiled in 1% SDS, reconstituted with 10 volumes of 1% Triton X-100 in TBS and subjected to reprecipitation with polyclonal antibody against Fn (C and D). Note a disappearance of 35S-labeled Fn bands in the samples treated with excess unlabeled Fn, 42-kD Fn fragment, or tTG1-165, but not with excess unlabeled 110-kD Fn fragment. Arrowheads indicate Fn bands. Brackets mark α5β1 integrin. Arrows point to tTG bands. Molecular weight markers are shown to the right of the gels.
tTG mediates association of α5β1 and αIIbβ3 integrins with Fn via its 42-kD fragment. 35S-labeled untreated (A) and TPA-treated (B) HEL cells were extracted with RIPA buffer (lanes 1). Cell extracts were incubated with Sepharose-immobilized Fn (lanes 2), 110-kD (lanes 3), or 42-kD (lanes 4) Fn fragments, or immunoprecipitated with polyclonal anti-tTG antibody (lanes 5), anti–β1 integrin mAb 9EG7 (lanes 6), anti–β3 integrin mAb 25E11 (lanes 7) or control Sepharose beads (lanes 8). 35S-labeled eluates from immobilized Fn and Fn fragments, and immunoprecipitates were analyzed by SDS-PAGE and autoradiography. Unlabeled RIPA extracts of untreated (C, E, and G) or TPA-treated (D, F, and H) HEL cells, analogous to those in A and B, respectively, were incubated with immobilized Fn and Fn fragments or immunoprecipitated with antibodies against tTG, β1, and β3 integrins. Eluates from immobilized Fn and Fn fragments and immunoprecipitates were analyzed by SDS-PAGE and immunoblotting with polyclonal antibody to β1A integrin cytodomain (C and D), polyclonal antibody to β3 integrin (E and F), or anti-tTG mAb tTG100 (G and H). (A and B) Protein bands corresponding to α5, αIIb, β1, and β3 integrins and tTG are marked to the right of each gel. Molecular weight markers are shown to the left of the gels.
tTG amplifies integrin-mediated tyrosine phosphorylation of FAK and colocalizes with β1 integrins at focal adhesions. (A and B) tTG potentiates FAK phosphorylation. (A) Time course of FAK phosphorylation in REF52 cells expressing vector (vect.) or wild-type tTG (tTG), plated on Fn. Cells were either kept in suspension (susp.) or plated on Fn for 45, 90, or 180 min. (B) REF52 cells expressing vector (vect.) or wild-type tTG (tTG), were plated for 3 h on dishes coated with Fn, 110-kD, or 42-kD Fn fragments, polyclonal anti-tTG antibody or laminin (Ln). (A and B) The transfectants were plated on ECM proteins or anti-tTG antibody in serum-free medium in the presence of cycloheximide. The cells were lysed and FAK was immunoprecipitated from cell lysates followed by SDS-PAGE and immunoblotting of the immune complexes for phosphotyrosine with PY20 mAb (
A model proposing the role of tTG in cell adhesion. Association of integrins with tTG promotes cell adhesion and spreading due to formation of ternary adhesion complexes with Fn. (A) Integrin-mediated adhesion to Fn in the absence of tTG. (B) tTG enhances adhesion acting as a bridge between integrins and Fn. (C) tTG enhances adhesion by mediating the formation of ternary complexes where all three proteins interact with each other.