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Adenoviral Gene Transfer of PLD1-D4 Enhances Insulin Sensitivity in Mice by Disrupting Phospholipase D1 Interaction with PED/PEA-15

  • Angela Cassese ,

    Contributed equally to this work with: Angela Cassese, Gregory A. Raciti

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Gregory A. Raciti ,

    Contributed equally to this work with: Angela Cassese, Gregory A. Raciti

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Francesca Fiory,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Cecilia Nigro,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Luca Ulianich,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Ilenia Castanò,

    Affiliations Dipartimento di Biochimica e Biotecnologie Mediche, Università di Napoli “Federico II”, Naples, Italy, CEINGE-Biotecnologie Avanzate, Naples, Italy

  • Vittoria D’Esposito,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Daniela Terracciano,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Lucio Pastore,

    Affiliations Dipartimento di Biochimica e Biotecnologie Mediche, Università di Napoli “Federico II”, Naples, Italy, CEINGE-Biotecnologie Avanzate, Naples, Italy

  • Pietro Formisano,

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Francesco Beguinot ,

    beguino@unina.it (FB); c.miele@ieos.cnr.it (CM)

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

  • Claudia Miele

    beguino@unina.it (FB); c.miele@ieos.cnr.it (CM)

    Affiliation Dipartimento di Scienze Mediche e Traslazionali, Università di Napoli “Federico II” and Istituto di Endocrinologia e Oncologia Sperimentale Gaetano Salvatore, Consiglio Nazionale delle Ricerche, Naples, Italy

Expression of Concern

After this article [1] was published, concerns were raised about western blots in Figs 3C and 4B.

Specifically:

  • When adjusted for colour and exposure, it appears that Fig 3C is a composite of four separate images.
  • The bands in lanes one and two in the PKCzeta panel in Fig 4B appear similar to the bands in lanes three and four in the PKCzeta panel and to the bands in lanes three and four in the Tubulin panel with different aspect ratios.

In response to queries about these figures, a corresponding author provided the underlying radiograph and replication data for Fig 3C (S1 File). The underlying data confirmed that image fragments were spliced together in preparing Fig 3C but that the fragments originated from the same autoradiograph. The replication data supported the results shown in the figure.

A corresponding author re-reviewed Fig 4B and stated that there are differences between the lanes. They disagree with the concerns raised about Fig 4B and stated that there are differences between all bands shown. The corresponding author stated that the original underlying data for Fig 4B is not available and provided replication data from the original experiments instead (S2 and S3 Files). Due to the unavailability of the original underlying data for Fig 4B, the concerns are not resolved.

In light of the unresolved issues for Fig 4B, the PLOS ONE Editors issue this Expression of Concern.

Supporting information

S1 File. Original and replicate data provided in support of Fig 3C.

https://doi.org/10.1371/journal.pone.0263951.s001

(PDF)

S2 File. Replicate data provided in support of Fig 4B.

https://doi.org/10.1371/journal.pone.0263951.s002

(JPEG)

S3 File. Replicate data provided in support of Fig 4B.

https://doi.org/10.1371/journal.pone.0263951.s003

(JPG)

8 Feb 2022: The PLOS ONE Editors (2022) Expression of Concern: Adenoviral Gene Transfer of PLD1-D4 Enhances Insulin Sensitivity in Mice by Disrupting Phospholipase D1 Interaction with PED/PEA-15. PLOS ONE 17(2): e0263951. https://doi.org/10.1371/journal.pone.0263951 View expression of concern

Abstract

Over-expression of phosphoprotein enriched in diabetes/phosphoprotein enriched in astrocytes (PED/PEA-15) causes insulin resistance by interacting with the D4 domain of phospholipase D1 (PLD1). Indeed, the disruption of this association restores insulin sensitivity in cultured cells over-expressing PED/PEA-15. Whether the displacement of PLD1 from PED/PEA-15 improves insulin sensitivity in vivo has not been explored yet. In this work we show that treatment with a recombinant adenoviral vector containing the human D4 cDNA (Ad-D4) restores normal glucose homeostasis in transgenic mice overexpressing PED/PEA-15 (Tg ped/pea-15) by improving both insulin sensitivity and secretion. In skeletal muscle of these mice, D4 over-expression inhibited PED/PEA-15-PLD1 interaction, decreased Protein Kinase C alpha activation and restored insulin induced Protein Kinase C zeta activation, leading to amelioration of insulin-dependent glucose uptake. Interestingly, Ad-D4 administration improved insulin sensitivity also in high-fat diet treated obese C57Bl/6 mice. We conclude that PED/PEA-15-PLD1 interaction may represent a novel target for interventions aiming at improving glucose tolerance.

Introduction

Type 2 Diabetes (T2D) is a chronic disorder associated with vascular complications and increased risk of cardiovascular disease [1]. Largely because of its contribution to cardio-vascular disease, T2D is also associated to excess mortality. The prevalence of T2D is increasing, making the identification of innovative therapeutic targets an important priority in this field [2], [3].

We recently described that overexpression of the PED/PEA-15 gene is a common abnormality in T2D. PED/PEA-15 mRNA and protein levels are highly expressed in skeletal muscle and adipose tissues from individuals with T2D and their First Degree Relatives (FDR) compared with euglycaemic individuals [4], [5]. In addition, high PED/PEA-15 levels strongly correlate with resistance to insulin action in the lean mass of these individuals [5]. Transgenic mice featuring ubiquitous over-expression of Ped/pea-15 (TgPed/pea-15) exhibit decreased glucose tolerance, due to a combination of fat and skeletal muscle insulin resistance and reduced insulin secretion in response to glucose. These mice develop diabetes when treated with a high fat diet (HFD) [6]. In previous studies, we have shown that PED/PEA-15 over-expression impairs both in vitro and in vivo insulin-stimulated glucose disposal through the interaction with the D4 domain of the Phospholipase D1 (PLD1). Both PLD1 stability and protein expression are increased in cells overexpressing PED/PEA-15, as well as the PLD1-dependent activation of the protein kinase Calpha (PKCalpha) [6][8]. This, in turn, causes inhibition of the insulin-mediated PKCzeta activity, and decreased insulin-induced GLUT4 translocation to the plasma membrane [6][8]. In addition, we showed that in cultured muscle cells stably overexpressing PED/PEA-15, the expression of D4 displaces the interaction of PED/PEA-15 with PLD1. This effect reduces basal PKCalpha activity and restores the insulin-stimulated glucose disposal mediated by PKCzeta [9].

In the present work, we have used a recombinant adenoviral vector containing the human D4 cDNA (Ad-D4) to establish whether the dissociation of PLD1 from PED/PEA-15 improves whole body glucose tolerance, in both TgPed/pea-15 and obese high fat-fed C57BL6 mice.

Materials and Methods

Ad-D4 Cloning and Preparation

The Ad-D4 vector was obtained as previously described by [10]. Briefly, human D4 cDNA was introduced at the HindIII and KpnI sites in pAd-Track-CMV shuttle vector, which contains two distinct gene cassettes for the simultaneous expression of the target protein and of the Green Fluorescent Protein (GFP) (kindly provided by Dr. Bert Vogelstein). The resulting pAd-Track-CMV-D4 plasmid was then linearized by PmeI and transformed with the adenoviral pAdEasy-E1 vector in BJ5183 EC cells. The resulting recombinant vector was linearized with PacI and transfected in HEK293 cells using lipofectamine reagent (Invitrogen). 24 h after transfection, cells were overlaid with agarose to permit isolation of individual virus plaques, and visible plaques were selected and expanded after 7–10 days from transfection. Viruses were then purified from HEK293 cells by freeze/thaw cycles and cesium chloride step gradients, and aliquots of the obtained recombinant adenoviruses were frozen and stored at −80°C.

Cell Culture Procedures, Adenoviral Infection and 2-[1-3H]deoxy-d-glucose Uptake in vitro

Parental L6 rat skeletal muscle cells (L6Wt) and L6 cells over-expressing PED/PEA-15 (L6PED/PEA-15) were grown in DMEM supplemented with 10% (vol./vol.) FBS, 2 mmol/l L-glutamine and antibiotics. L6 myotubes were allowed to differentiate as described previously [11]. Differentiated L6 myotubes were then infected with Ad-D4 or Ad-GFP vector by infections with different concentrations of the virus. Subsequent experiments were performed 48 h after initial addition of virus. Cell lysates and immunoblotting were carried out as described previously [11]. 2-DG uptake was measured as reported previously [11].

Mouse models.

TgPed/pea-15 mice were backcrossed for 8 generations on the C57/Bl6 background. 3–6 months old male and female TgPed/pea-15 mice and their normal littermates (wild type; WT) were used for all studies. Mice were housed in the animal facilities for at least one week before experiments. All procedures and euthanasia were conducted in accordance with adoption of Institutional Animal Care and Utilization Committee (Ministero della Salute, Dipartimento della Sanità Pubblica Veterinaria, della Sicurezza Alimentare e degli Organi Collegiali per la Tutela della Salute, Direzione Generale della Sanità Animale e dei Farmaci Veterinari). The ethics committee of the Ministero della Salute, Dipartimento della Sanità Pubblica Veterinaria, della Sicurezza Alimentare e degli Organi Collegiali per la Tutela della Salute Direzione Generale della Sanità Animale e dei Farmaci Veterinari approved this study. Mice were housed one per cage on a 12-h light/dark cycle (lights on 0600–1800) and fed water and standard diet (11% calories from fat; Research Diets formulas D12328; Research Diets, Inc., New Brunswick, N.J) ad libitum (AL). For the high fat diet (HFD), 2-month-old WT (n = 12) mice were fed with a 60 kcal% fat content (Research Diets formulas D12331; Research Diets, Inc., New Brunswick, N.J.) ad libitum for 11 weeks.

Ad-D4 infection in vivo.

The day of adenoviral injection, mice were anaesthetized by i.p. administration of 2,2,2-tribromoethanol (Sigma Aldrich), and then the Ad-D4 or the control Ad-GFP vectors were i.v. injected into the tail vein at the final concentration of 2×1012 vp/kg. Mice were euthanized after 6 days from infection, and their tissues were quickly collected and frozen in dry-ice.

Lysate preparation, Immunoprecipitation (IP) and Western Blot (WB).

Mice were fasted overnight, anesthetized, and injected i.p. with saline or insulin (10 U/kg body weight). Ten min after injection, skeletal muscle tissues (quadriceps, gastrocnemious and tibialis) were removed and frozen in dry ice. Tissues homogenates and cell lysates were separated by SDS-PAGE and analyzed by western blot as previously described [12]. For each IP experiment about 0.5–1 mg of skeletal muscle protein lysate was precleared with 20 µl of pre-immune serum at 4°C for 30 min and then incubated with 1.5 µg of anti-PED-PEA15 or anti-PLD1 antibody O.N. at 4°C. After incubation, 40 µl of protein A sepharose (Invitrogen) in a 1∶1 mixture of protein A sepharose and Lysis Buffer were added to the IP samples. Purified interacting complex was released from protein A sepharose beads by boiling in SDS-PAGE sample buffer and resolved on SDS-PAGE. Samples were then subjected to WB analysis. Membranes were firstly probed with antibodies to PED/PEA-15 antiserum, PLD1 (Cell Signalling Technology), phospho-PKCalpha, PKCalpha (Millipore), phospho-PKCzeta, PKCzeta, Tubulin (Santa Cruz Biotech Inc), and GFP-peptide living colors (BD Transduction Laboratories), and then with secondary mouse or rabbit antibodies (GE Healthcare) before detection of the signal with ECL plus (GE Healthcare).

Real time quantitative PCR.

Total RNA extraction, cDNA synthesis and Real Time quantitative PCR were performed as described [13]. Primer sequences are as follows: D4 F: 5′-agtccatccacgccgttac-3′; D4 R: 5′-tcctctgggcaatggcatcg-3′; GAPDH F: 5′-gccttccgtgttcctacc-3′; GAPDH R: 5′-agagtgggagttgctgttg-3′.

PLD assay in vitro.

PLD activity assays were carried out using the in vitro head group release assay and the in vivo transphosphatidylation assay as described previously [8]. Briefly, skeletal muscle homogenates were centrifuged at 10,000×g for 5 min, and their supernatants were designated as crude membranes. PLD1 activity was then determined by measuring the transphosphatidylation activity in the presence of butanol. Recombinant ADP-ribosylation factor 1 (ARF1) and Ras homolog gene family, member A (RhoA) were added to the samples and were activated using 10 µM of Guanosine 5′-[γ-thio]-triphosphate (GTP[S]). Lipid products were extracted and then separated on a Silica Gel 60 TLC plate with chloroform/methanol/acetic acid (13∶3∶1 by vol.) as the developing solvent. The spots corresponding to [14C] phosphatidyl-butanol were determined by autoradiography and their radioactivity was counted to obtain analytical values.

Metabolite assays.

Blood glucose levels were measured with glucometers (OneTouch Ultra2, LifeScan); insulin was measured by radioimmunoassay with rat insulin as standard (Linco Research). Fasting plasma free fatty acids were measured with the Wako NEFA C kit (Wako Chemicals), and tricylglycerol was measured with the Infinity triglyceride reagent (Sigma Aldrich).

Glucose and insulin tolerance, and measurement of 2-[1-3H] deoxy-D-glucose uptake.

Glucose tolerance tests (GTTs) and insulin tolerance tests (ITTs) were measured as described [13]. For analyzing glucose utilization, an intravenous injection of 1 µCi of the nonmetabolizable glucose analog 2-[1-3H]deoxy-d-glucose (2-DG) (Amersham Pharmacia Biotech) and an intraperitoneal injection of insulin (0.75 mU/g body wt) were administered to random fed mice. The specific blood 2-DG clearance was determined with 25-µl blood samples (tail vein) obtained 1, 15, and 30 min after injection as previously reported [13]. Quadriceps, soleus and tibialis skeletal muscles and perigonadal adipose tissue were removed 30 min after the injections. Glucose utilization index was determined by measuring the accumulation of radiolabeled compound [13]. The amount of 2-DG-6 phosphate per milligram of protein was then divided by the integral of the concentration ratio of 2-DG to the measured unlabeled glucose. Glucose utilization indexes were expressed as picomoles per milligram of protein per minute.

Statistical analysis.

Data are expressed as means ± SEM and statistical significance between groups was analyzed by 2-tailed Student’s t-test or analysis of variance (ANOVA) as appropriate. P values of <0.05 were considered statistically significant. The total AUC and the inverse AUC for glucose response during GTT and ITT were calculated as [12].

Results

Ad-D4 Transduction in vitro and in vivo.

Untrasfected L6 skeletal muscle cells (L6Wt) and L6 cells over-expressing PED/PEA-15 (L6PED/PEA-15) were transduced with 4 different clones of Ad-D4 vector. D4 levels were indirectly evaluated by measuring the Green Fluorescent Protein (GFP) expression, being the GFP expressed by the Ad-D4 vector. At 48 hours post-transduction, GFP production was detectable in both L6Wt and L6PED/PEA-15 cells transfected with clone 1; lower levels were detectable when the cells were infected with clones 2, 3 and 4 (Figure S1a and b). Then, the biological activity of Ad-D4 vector was analyzed by measuring insulin-induced glucose uptake in the insulin resistant L6PED/PEA-15 cells transduced with clone 1 or with the adenoviral vector expressing only the GFP (Ad-GFP) as a control. Transduction of L6PED/PEA-15 cells with Ad-D4 induced a 2-fold increase of the 2-DG uptake compared to L6PED/PEA-15 cells which were not trasduced (NT) or to L6PED/PEA-15 transduced with Ad-GFP (Figure S1c), indicating that Ad-D4 transduction restores insulin sensitivity in L6PED/PEA-15 cells. D4 was then transduced in vivo by injecting TgPed/pea-15 mice with Ad-D4 or Ad-GFP vector. D4 mRNA expression was measured in different tissues upon 6 days after the adenoviral delivery. D4 mRNA resulted highly expressed in liver, pancreas as well as in tibialis skeletal muscle of the Ad-D4 injected transgenic mice compared to the Ad-GFP injected control mice (Figure 1a, b, c).

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Figure 1. D4 mRNA expression in TgPed/pea-15 mice.

D4 mRNA expression was determined by quantitative Real Time RT-PCR analysis of total RNA isolated from liver (A), pancreas (B), and tibialis skeletal muscle tissue (C) of TgPed/pea-15 mice at one week post Ad-D4 or Ad-GFP infection. GAPDH was used as housekeeping gene. mRNA levels in Ad-D4 treated TgPed/pea-15 mice are relative expression units to those in Ad-GFP treated TgPed/pea-15 mice used as control (mean ± SEM; n = 3). ***p<0.001 vs Ad-GFP treated TgPed/pea-15.

https://doi.org/10.1371/journal.pone.0060555.g001

Ad-D4 treatment improves glucose homeostasis and metabolic parameters in TgPed/pea-15 mice.

We then aimed at evaluating the effect of D4 on glucose tolerance. As previously reported [6], TgPed/pea-15 mice exhibited increased fasting and random fed blood glucose levels and fasting insulin and NEFA concentrations (Table 1). Furthermore, glucose loading (2 g/kg body weight) made these mice significantly more hyperglycaemic than control mice during the following 120 min (Fig. 2a, b). When injected with the Ad-D4 vector, TgPed/pea-15 mice showed fasting and random fed blood glucose levels comparable to those of control mice (Table 1), and exhibited normal glucose tolerance after GTT (Figure 2a, b). The Ad-D4 treatment was also able to lower fasting insulin and NEFA concentrations in TgPed/pea-15 mice, achieving values similar to those of control mice (Table 1). No improvement of either fasting and random fed blood glucose levels, fasting insulin and NEFA levels, and glucose tolerance were observed when TgPed/pea-15 mice were treated with the Ad-GFP (Table 1; Figure 2a, b). TgPed/pea-15 mice injected with both the Ad-D4 and Ad-GFP showed a slight increase in fasting triacyglycerol levels when compared to both the control and TgPed/pea-15 mice before adenoviral delivery (Day 0; Table 1), suggesting that this effect was not due to D4 transduction.

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Figure 2. Glucose tolerance, insulin sensitivity and insulin secretion in TgPed/pea-15 mice.

A) Glucose Tolerance Test (GTT) and (B) Area Under the Curve (AUC) glucose in TgPed/pea-15 mice treated with vehicle (black square and column) or after infection with Ad-GFP (dark grey square and column) or with Ad-D4 (light grey square and column), and wild type mice (Wt, white circle and column) used as controls. C) Insulin Tolerance Test (ITT) and (D) Area Under the Curve (AUC) glucose in TgPed/pea-15 mice treated with vehicle (black square and column) or after infection with Ad-GFP (dark grey square and column) or with Ad-D4 (light grey square and column), and wild type mice (Wt, white circle and column) used as controls. For each experiment, values are expressed as means ± SEM of determinations in at least eight mice per group. ***p<0.001 vs Wt. E) Glucose-induced insulin secretion in 6 TgPed/pea-15 mice treated with vehicle (black square and column) or after infection with Ad-GFP (dark grey square and column) or with Ad-D4 (light grey square and column), and wild type mice (Wt, white circle and column). Data points represent the means ± SEM of determinations in five mice per group. ***p<0.001, t = 3 and t = 30 vs t = 0; #p<0.001, TgPed/Pea-15 t = 0 vs Wt t = 0.

https://doi.org/10.1371/journal.pone.0060555.g002

Ad-D4 treatment improves insulin sensitivity and secretion in TgPed/pea-15 mice.

To verify whether the beneficial effect of Ad-D4 treatment on glucose tolerance is also accompanied by an improvement of whole body insulin sensitivity, we performed insulin tolerance test (ITT). Following i.p. injection of insulin (0.75 U/kg body weight) a strong reduction of the hypoglycaemic response was observed in untreated TgPed/pea-15 mice compared to controls (Fig. 2c, d). On the other hand, insulin was able to lower glucose levels during ITT in the Ad-D4 treated TgPed/pea-15 mice to levels comparable to control mice, but not in the Ad-GFP treated TgPed/pea-15 mice (Fig. 2c, d). We then evaluated glucose-induced insulin secretion. In control mice, a 2.5 fold increase in insulin secretion was observed 3 min after glucose injection, with levels remaining higher than baseline for up to 30 min, indicating a second-phase response (Fig. 2e). In contrast, the acute first-phase insulin secretory response to glucose and the late second-phase response were completely abolished in TgPed/pea-15 mice (Fig. 2e). Interestingly, Ad-D4 treatment improved the insulin secretion in response to glucose loading in TgPed/pea-15 mice, while Ad-GFP treatment did not (Fig. 2e). Thus, Ad-D4 administration ameliorated both insulin sensitivity and secretion in TgPed/pea-15 mice, restoring a normal glucose homeostasis.

Ad-D4 treatment re-establishes insulin sensitivity in skeletal muscle tissue of TgPed/pea-15 mice.

We then evaluated the expression of both PED/PEA-15 and PLD1 and whether PED/PEA-15/PLD1 interaction also occurs in vivo. To this aim, we performed western blot analysis to evaluate the total protein amount and co-immunoprecipitation experiments in tibialis skeletal muscle extracts from TgPed/pea-15 and control mice (Wt). As expected, we found that both PED/PEA-15 and PLD1 protein levels were increased in tibialis skeletal muscle extracts from Ad-GFP treated TgPed/pea-15 compared to control mice (Wt). PLD1 levels were reduced by D4 expression in TgPed/pea-15 mice, wilst D4 did not alter PED/PEA-15 expression (Figure 3a). PED/PEA-15 interacted with PLD1 in the tibialis muscles of both Wt and transgenic mice, and this interaction was increased by 4-fold in TgPed/pea-15 mice (Figure 3b). PLD1 activity was also significantly increased in muscle homogenates from TgPed/pea-15 mice (Figure 3c, d). Following Ad-D4 infection, D4 expression was confirmed by the detection of a 28 KDa protein corresponding to GFP in the tibialis muscle extracts from both Ad-GFP and Ad-D4 infected transgenic mice (Figure 3e). The amount of PLD1 protein co-immunoprecipitated with PED/PEA-15 protein was significantly reduced in the tibialis muscle homogenate from the TgPed/pea-15 mice injected with Ad-D4 (Figure 3f). We further investigated whether the ability of D4 to prevent PED/PEA-15/PLD1 interaction in these samples restores PKCalpha and zeta activation. Basal PKCalpha phosphorylation was increased in the tibialis muscle from TgPed/pea-15 mice injected with either vehicle or Ad-GFP when compared to that of Wt mice, while Ad-D4 treatment lowered PKCalpha activity to levels similar to those of control mice (Figure 4a). In addition, whilst insulin failed in inducing PKCzeta phosphorylation in the muscle of TgPed/pea-15 mice injected with either vehicle or Ad-GFP, insulin-induced PKCzeta activation following Ad-D4 infection was restored to levels comparable to those of control mice (Figure 4b). Finally, insulin-stimulated glucose transport was strongly reduced in the gastrocnemious as well as in the tibialis and quadriceps skeletal muscle of TgPed/pea-15 mice injected with either vehicle or Ad-GFP compared to control mice, whilst infection of Ad-D4 resulted in a marked increase of the glucose uptake to levels comparable to those of controls (Figure 5a, b, c). Thus, Ad-D4 delivery fully restored insulin sensitivity in TgPed/pea-15 mice.

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Figure 3. Protein interaction of PED/PEA-15 with PLD1 and PLD1 activity in TgPed/pea-15 mice.

A) Immunoblots of total protein lysates from skeletal muscle homogenates of wild type (Wt) and TgPed/pea-15 mice at one week post Ad-D4 or Ad-GFP infection. The blots were probed with anti-PLD1, anti-PED/PEA-15 and anti-Tubulin antibodies. PI stands for pre-immune serum. B) Immunoblots of immunoprecipitated from skeletal muscle homogenates of wild type (Wt) and TgPed/pea-15 mice. IP were performed using the anti-PED/PEA-15 antibody as described in Experimental Procedures. The upper blot was probed with anti-PLD1 antibody, while the bottom blot was striped and then probed with anti-PED/PEA-15 antibody. C) PLD1 activity was analyzed in skeletal muscle homogenates from wild type (Wt) and TgPed/pea-15 mice by measuring the transphosphatidyl-butanol levels as described in Materials and methods. The autoradiography shown is representative of three independent assays. D) The bar graph represents the densitometric quantization of the spots in three experiments in triplicate. ***p<0.001 vs. Wt. E) Immunoblots of whole lysates from skeletal muscle homogenates of TgPed/pea-15 mice at one week post Ad-D4 or Ad-GFP infection or PBS injection (vehicle). The upper blot was probed with anti-GFP antibody, while the bottom blot was striped and then probed with anti-tubulin antibody. F) Immunoblots of immunoprecipitated from skeletal muscle homogenates of TgPed/pea-15 mice at one week post Ad-D4 or Ad-GFP infection. IP were performed using the anti-PED/PEA-15 antibody. The upper blot was probed with anti-PLD1 antibody, while the bottom blot was striped and then probed with anti-PED/PEA-15 antibody.

https://doi.org/10.1371/journal.pone.0060555.g003

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Figure 4. Effect of D4 on PKCalpha and zeta activation in TgPed/pea-15 mice.

PKCalpha (A) and zeta (B) activations were determined in the skeletal muscle tissues from TgPed/pea-15 mice at one week post Ad-D4 or Ad-GFP infection. TgPed/pea-15 or wild type (Wt) mice injected with PBS (vehicle) were used as control. For the experiment, mice were fasted over night and then i.p. injected or not with insulin (10 U/kg body weight) 10 min before determination. A) The bar graph represents the densitometric quantization of phospho-PKCalpha in three independent immunoblots. ***p<0.001 vs. Wt. B) The corresponding blots show the levels of PKCzeta (total and phosphorilated forms) and tubulin in mice as indicated. Blots are representative of three independent experiments.

https://doi.org/10.1371/journal.pone.0060555.g004

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Figure 5. Glucose uptake in skeletal muscle tissues of TgPed/pea-15 mice.

Ex vivo Glucose uptake into gastrocnemius (A), tibialis (B) and quadriceps (C) skeletal muscle of TgPed/pea-15 mice treated with vehicle (black column) or after infection with Ad-GFP (light grey column) or with Ad-D4 (dark grey column), and wild type mice (Wt, white column) used as controls. Values are expressed as means ± SEM of determinations in at least five mice per group. ***p<0.001 vs Wt.

https://doi.org/10.1371/journal.pone.0060555.g005

Ad-D4 treatment improves insulin sensitivity in obese C57BL/6 mice.

Recent observation by Ungaro P. et al demonstrated that Ped/pea-15 mRNA expression is increased by 2-fold in the tibialis skeletal muscle tissue of 6 month old diet-induced obese C57BL/6 mice [14]. Therefore, we investigated if Ad-D4 may improve insulin sensitivity also in this model. To this aim, Ad-D4 was injected in two groups of C57BL/6 mice which were fed either a standard isocaloric diet (STD) or an highly palatable high fat diet (HFD). HFD-fed mice reached a 40% increase of the body weight at the end of the 11 weeks of diet regimen when compared to STD-fed mice and their fasting glycaemia was significantly increased as well (Table 2). D4 levels, measured indirectly by GFP detection, were comparable in tibialis skeletal muscle extracts from C57Bl/6 mice fed with either STD or HFD (Figure 6a). ITT studies revealed that in the HFD-fed mice treated with Ad-GFP glucose levels remained higher during the entire length of the tolerance test, indicating the presence of insulin resistance in these mice (Figure 6b, c). At variance, Ad-D4 treatment strongly improvedinsulin sensitivity in the obese C57Bl/6 mice, as shown by a significant decreased of their blood glucose levels within the 120 min of the test (Figure 6b, c). On the other hand, Ad-D4 treatment did not affect insulin sensitivity of lean STD-fed mice (Figure 6b, c).

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Figure 6. Insulin sensitivity in STD and HFD fed C57BL/6 mice.

A) Immunoblots of total protein lysates from skeletal muscle homogenates of C57BL/6 mice fed with standard (STD) or high fat (HFD) diets after infection with Ad-GFP or with Ad-D4. The upper blot was probed with anti-GFP antibody, while the bottom blot was probed with anti-Tubulin antibody. B) Insulin Tolerance Test (ITT) and (C) Area Under the Curve (AUC) glucose in C57BL/6 mice fed with standard (STD, square) or high fat (HFD, circle) diets after infection with Ad-GFP (white and dark gray) or with Ad-D4 (black and light gray). For each experiment, values are expressed as means ± SEM of determinations in at least eight mice per group. ***p<0.001 vs Ad-GFP treated STD fed C57BL/6 mice. ##p<0.01, vs Ad-GFP treated HFD fed C57BL/6 mice.

https://doi.org/10.1371/journal.pone.0060555.g006

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Table 2. Metabolic characteristics and food intake of HFD and STD fed C57Bl/6 mice.

https://doi.org/10.1371/journal.pone.0060555.t002

Discussion

Type 2 Diabetes imposes a major burden on public health at the global level [2]. The pathogenetic heterogeneity of this disorder has long being challenging the development of effective treatment strategies as well as the identification of innovative targets [3], [15].

We have previously identified PED/PED-15 as a gene that contributes to Type 2 Diabetes susceptibility in humans [4], [5]. In different populations of Type 2 diabetics as well as in the first degree relatives of these individuals [4], [5], PED/PEA-15 was found to be commonly over-expressed in skeletal muscle as well as in white adipose tissues and in peripheral blood leukocytes. Furthermore, PED/PEA-15 protein levels negatively correlate to insulin sensitivity in offsprings of Type 2 diabetics [5]. Studies in cellular and animal models over-expressing PED/PEA-15 have shown that increased PED/PEA-15 expression impairs both insulin action and secretion [4], [6], [7], [13]. While the molecular bases of PED/PEA-15 overexpression have not yet been completely clarified, PED/PEA-15 interaction with PLD1 was identified as a major mechanism responsible for reduced glucose tolerance in animals and humans expressing high PED/PEA-15 levels [8]. Accordingly, we have previously shown that dissociation of PLD1 from PED/PEA-15 ameliorates insulin sensitivity in cultured muscle cells stably overexpressing PED/PEA-15 by reducing basal PKCalpha activity and restoring PKCzeta dependent insulin-stimulated glucose disposal [9]. PCKalpha and PKCzeta are members of the PKC superfamily and play a different role in the regulation of insulin signal transduction. Indeed, activation of the atypical PKC isoforms zeta by insulin is required for the regulation of glucose uptake in adipocytes and in skeletal muscle cells [16], [17], whilst the classical PKCalpha isoform acts both in vitro and vivo as an endogenous negative feedback inhibitor of insulin signaling by modulating IRS1, PI3K and PKCzeta and lambda as well [18]. In previous work, we showed that blocking PKCalpha either by a specific antisense or by chemical inhibitors as well as the pharmacological inhibition of PLD1 permits recovery of the glucose uptake into muscle and fat cells over-expressing PED/PEA-15 [7], [9]. The effects of PED/PEA-15 on insulin secretion are also reverted by PKCzeta overexpression [13]. However, overexpression of PKCzeta or inhibition of PLD1 or PKCalpha expression/activity are unlikely to represent feasible pharmacological strategies to improve insulin sensitivity and/or secretion due to the pleiotropic roles of these proteins in the regulation of key events in cellular physiology. Furthermore, the existing non–isoform-specific PKC inhibitors interact with other ATP binding kinases and therefore display toxic and severe side effects in vivo. [19][21]. Alternatively, the inhibition of the interaction between PED/PEA-15 and PLD1 and the development of strategies to convey molecules within the cell that achieve this inhibition may represent an innovative and highly selective approach to improve both insulin sensitivity and beta cell function in vivo.

In the present work, we investigated the effect of the PLD1 D4 peptide in vivo, using a recombinant adenoviral vector to transduce D4 cDNA (Ad-D4). Adenoviral vectors are very well characterized under the pharmacological, toxicological and pharmacokinetic profile. Many studies in different mouse models demonstrated that they are able to revert phatological phenotype of metabolic disorders like PKU [22] and FH [23]. We have shown that Ad-D4 delivery in mice was well tolerated and led to a widespread expression of the D4 peptide in several tissues, such as skeletal muscle, liver and pancreas. Importantly, we found that the D4 expression restored whole body glucose homeostasis and normalized both fasting and random fed glucose levels as well as fasting insulin and FFA concentration in the TgPed/pea-15 mice. An increase in fasting serum triglycerol levels and a slight decrease in body weight (data not shown) were observed one week after the adenoviral delivery in both the Ad-D4 and the Ad-GFP treated transgenic mice and interpreted as side effects caused by recombinant adenovirus infection. We also show that D4 expression significantly improved both insulin sensitivity and pancreatic beta-cells insulin secretion in the TgPed/pea-15 mice, indicating that D4 improvement of glucose tolerance involves actions on insulin target tissues and on pancreatic beta-cells. D4 administration in vivo is able to restore basal insulin levels and to improve insulin secretion upon glucose loading. In particular, we observed in Ad-D4 treated TgPed/pea-15 mice that the secretion of the hormone was slightly increased 3 minutes after glucose loading compared to control mice. Interestingly, this secretory profile is associated with a reduction of the blood glucose levels observed upon 30 minutes from glucose injection during glucose tolerance test, in the Ad-D4 treated TgPed/pea-15 mice compared to control mice (Figure 2a). Lower glucose levels may be thus responsible for a reduced requirement of hormone release and may explain the difference in the second-phase response in the Ad-D4 treated TgPed/pea-15 mice. Finally, we confirmed that the over-expression of the D4 peptide in these mice displaced the interaction of PED/PEA-15 with PLD1. After Ad-D4 treatment, the total protein levels of PLD1 in the skeletal muscles from TgPed/pea-15 mice were similar to those measured in control mice. This, in turns, reduced basal PKCalpha activation, restoring the insulin-stimulated PKCzeta activation and ameliorating glucose disposal in tibialis skeletal muscle. Other molecules implicated in the transduction of insulin signal, such as PI 3-kinase and Akt, apparently, were not affected by the D4 expression (data not shown). These data indicate that, in vivo, forced D4 expression impairs PED/PEA-15 binding to PLD1 and may represent a novel strategy to improve insulin sensitivity in skeletal muscle. Together with the positive effect of D4 expression on glucose-induced insulin secretion, this may contribute to the amelioration of whole body glucose homeostasis. Recently, Doti N. et al have shown that the use of a restricted D4 domain, named D4alpha, or the use of short PLD1 peptides that could mimic PED/PEA-15 binding interface can be used as antagonists to prevent the association of PLD1 from PED/PEA-15 [24]. This study provided thus new short, selective and efficient PED/PEA-15-PLD1 antagonists alternative to the D4 that could be transduced to the cells and tissues by adenoviral gene delivery approach. The possibility to vehiculate these smaller compounds and to evaluate their efficacy in vivo is currently under investigation in our laboratory.

Next, we have investigated whether over-expression of the D4 peptide is also effective in improving insulin sensitivity in a mouse model of obesity and diabetes. Indeed, recent work from our group has shown over-expression of Ped/pea-15 mRNA in the tibialis skeletal muscle of C57Bl/6 mice in which obesity is induced by high fat (HFD) feeding [14]. We now report that the D4 treatment improves insulin sensitivity in HFD induced obese C57BL/6 mice, with no effect on the body weight of animals. These findings suggest that i., the efficacy of D4 treatment is not limited to the TgPed/pea-15 mouse model of insulin resistance; and i.i., Ped/pea-15 over-expression may play a role in the onset and/or maintenance of insulin resistance during diet-induced obesity.

Whether the efficacy of the D4 treatment in the obese mouse model is exclusively due to PED/PEA-15 increased expression occurring as a consequence of the HFD or is caused also by a different modulation of PLD1 activity still needs to be clarified. PLD1 is a pleiotropic enzyme implicated in several cellular pathways, including signal transduction, membrane trafficking, and the regulation of proliferation and survival [25], and, in addition to PED/PEA-15, many members of the ADP-ribosylation factor (ARF) [26], [27], PKCalpha [28] and small G protein RhoA [29], [30] were identified as PLD interactors and/or activators. Thus, the possibility that the D4 peptide modulates in vivo PLD1 activity also by PED/PEA-15-independent mechanisms cannot be excluded.

In conclusion, our findings have established the in vivo efficacy of a gene delivery treatment aiming at improving insulin sensitivity by interfering with the interaction between PED/PEA-15 and PLD1. Our results also suggest that this strategy is effective in a mouse model of obesity-induced insulin resistance, and support further efforts aimed at generating novel molecules that interfere with PED/PEA-15 and/or PLD1 functions mimicking D4 peptide action.

Supporting Information

Figure S1.

Expression of D4 peptide and 2-DG uptake in L6Wt and L6PED/PEA-15 cells. A) GFP expression was determined in lysates from L6Wt and L6PED/PEA-15 cells after 48h from transduction with Ad-D4 clones 1, 2, 3 and 4. GFP expression was compared with L6PED/PEA-15 transfected with Ad-GFP. Not transfected (NT) cells were used as control. B) Insulin-induced glucose uptake into L6Wt and L6PED/PEA-15 cells not transfected (NT) or transfected with Ad-GFP or Ad-D4 vector. Values for each cell type represent the fold induction upon insulin stimulation over their own basal and are expressed as means ± SEM of determinations in 3 independent experiments. ***p<0.001 vs L6PED/PEA-15 NT.

https://doi.org/10.1371/journal.pone.0060555.s001

(TIF)

Acknowledgments

We thank Drs Bert Vogelstein and Kenneth W. Kinzler (The Johns Hopkins University, Baltimore) for kindly providing the AdEasy construct. The Authors are also grateful to Mr. Salvatore Sequino for helpful advice with mice.

Author Contributions

Conceived and designed the experiments: AC GAR PF FB CM. Performed the experiments: AC GAR FF CN IC VD DT. Analyzed the data: AC GAR LU LP PF FB CM. Contributed reagents/materials/analysis tools: LP VD DT. Wrote the paper: AC GAR LU PF FB CM.

References

  1. 1. Malecki MT, Klupa T (2005) Type 2 diabetes mellitus: from genes to disease. Pharmacol Rep 57: 20–32.
  2. 2. Gan D (2006) Diabetes Atlas 2006, 3rd ed. Brussels: International Diabetes Federation.
  3. 3. Zimmet P, Alberti KG, Shaw J (2001) Global and societal implications of the diabetes epidemic. Nature 414: 782–787.
  4. 4. Condorelli G, Vigliotta G, Iavarone C, Caruso M, Tocchetti CG, et al. (1998) PED/PEA-15 gene controls glucose transport and is overexpressed in type 2 diabetes mellitus. EMBO J 17: 3858–3866.
  5. 5. Valentino R, Lupoli GA, Raciti GA, Oriente F, Marinaro E, et al. (2006) The PEA15 gene is overexpressed and related to insulin resistance in healthy first-degree relatives of patients with type 2 diabetes. Diabetologia 49: 3058–3066.
  6. 6. Vigliotta G, Miele C, Santoprietro S, Portella G, Perfetti A, et al. (2004) Overexpression of the ped/pea-15 gene causes diabetes by impairing glucose-stimulated insulin secretion in addition to insulin action. Mol Cell Biol 24: 5005–5015.
  7. 7. Condorelli G, Vigliotta G, Trencia A, Maitan MA, Caruso M, et al. (2001) Protein kinase C (PKC)-alpha activation inhibits PKC-zeta and mediates the action of PED/PEA-15 on glucose transport in the L6 skeletal muscle cells. Diabetes 50: 1244–1252.
  8. 8. Zhang Y, Redina O, Altshuller YM, Yamazaki M, Ramos J, et al. (2000) Regulation of expression of phospholipase D1 and D2 by PEA-15, a novel protein that interacts with them. J Biol Chem 275: 35224–35232.
  9. 9. Viparelli F, Cassese A, Doti N, Paturzo F, Marasco D, et al. (2008) Phospholipase D1 enhances insulin sensitivity in skeletal muscle cells. J Biol Chem 283: 21769–21778.
  10. 10. He TC, Zhou S, Da Costa LT, Yu J, Kinzler KW, et al. (1998) A simplified system for generating recombinant adenoviruses. Proc Natl Acad Sci 95: 2509–2514.
  11. 11. Raciti GA, Iadicicco C, Ulianich L, Vind BF, Gaster M, et al. (2010) Glucosamine-induced endoplasmic reticulum stress affects GLUT4 expression via activating transcription factor 6 in rat and human skeletal muscle cells. Diabetologia 53: 955–965.
  12. 12. Raciti GA, Bera TK, Gavrilova O, Pastan I (2011) Partial inactivation of Ankrd26 causes diabetes with enhanced insulin responsiveness of adipose tissue in mice. Diabetologia 54: 2911–2922.
  13. 13. Miele C, Raciti GA, Cassese A, Romano C, Giacco F, et al. (2007) PED/PEA-15 regulates glucose-induced insulin secretion by restraining potassium channel expression in pancreatic beta-cells. Diabetes 56: 622–633.
  14. 14. Ungaro P, Mirra P, Oriente F, Nigro C, Ciccarelli M, et al. (2012) Peroxisome Proliferator-activated Receptor-γ Activation Enhances Insulin-stimulated Glucose Disposal by Reducing ped/pea-15 Gene Expression in Skeletal Muscle Cells: evidence for involvement of activator protein-1. J Biol Chem 287: 42951–42961.
  15. 15. DeFronzo RA (2010) Current issues in the treatment of type 2 diabetes. Overview of newer agents: where treatment is going. Am J Med 123: S38–48.
  16. 16. Bandyopadhyay G, Standaert ML, Kikkawa U, Ono Y, Moscat J, et al. (1999) Effects of transiently expressed atypical (ζ, λ), conventional (α, β) and novel (δ, ε) protein kinase C isoforms on insulin-stimulated translocation of epitope-tagged GLUT4 glucose transporters in rat adipocytes: specific interchangeable effects of protein kinases C-ζ and C-λ. Biochem J 337: 461–470.
  17. 17. Bandyopadhyay G, Standaert ML, Galloway L, Moscat J, Farese RV (1997) Evidence for involvement of protein kinase C (PKC)-ζ and noninvolvement of diacylglycerol-sensitive PKCs in insulin-stimulated glucose transport in L6 myotubes. Endocrinology 138: 4721–4731.
  18. 18. Leitges M, Plomann M, Standaert ML, Bandyopadhyay G, Sajan MP, et al. (2002) Knockout of PKC alpha enhances insulin signaling through PI3K. Mol Endocrinol 16: 847–858.
  19. 19. Coussens L, Parker PJ, Rhee L, Yang-Feng TL, Chen E, et al. (1986) Multiple, distinct forms of bovine and human protein kinase C suggest diversity in cellular signaling pathways. Science 233: 859–866.
  20. 20. McDermott M, Wakelam MJ, Morris AJ (2004) Phospholipase D. Biochem Cell Biol. 82: 225–253.
  21. 21. Geraldes P, King GL (2010) Activation of protein kinase C isoforms and its impact on diabetic complications. Circ Res 106: 1319–1331.
  22. 22. Cerreto M, Mehdawy B, Ombrone D, Nisticò R, Ruoppolo M, et al. (2012) Reversal of metabolic and neurological symptoms of phenylketonuric mice treated with a PAH containing helper-dependent adenoviral vector. Curr Gene Ther. 12: 48–56.
  23. 23. Pastore L, Belalcazar LM, Oka K, Cela R, Lee B, et al. (2004) Helper-dependent adenoviral vector-mediated long-term expression of human apolipoprotein A-I reduces atherosclerosis in apo E-deficient mice. Gene 327: 153–160.
  24. 24. Doti N, Cassese A, Marasco D, Paturzo F, Sabatella M, et al. (2010) Residues 762–801 of PLD1 mediate the interaction with PED/PEA15. Mol Biosyst 6: 2039–2048.
  25. 25. McDermott M, Wakelam MJ, Morris AJ (2004) Phospholipase D. Biochem Cell Biol. 82: 225–253.
  26. 26. Brown HA, Gutowski S, Moomaw CR, Slaughter C, Sternweis PC (1993) ADP-ribosylation factor, a small GTP-dependent regulatory protein, stimulates phospholipase D activity. Cell 75: 1137–1144.
  27. 27. Cockcroft S, Thomas GM, Fensome A, Geny B, Cunningham E, et al. (1994) Phospholipase D: a downstream effector of ARF in granulocytes. Science 263: 523–526.
  28. 28. Singer WD, Brown HA, Jiang X, Sternweis PC (1996) Regulation of phospholipase D by protein kinase C is synergistic with ADP-ribosylation factor and independent of protein kinase activity. J Biol Chem 271: 4504–4510.
  29. 29. Malcolm KC, Ross AH, Qiu RG, Symons M, Exton JH (1994) Activation of rat liver phospholipase D by the small GTP-binding protein RhoA. J Biol Chem 1994 269: 25951–25954.
  30. 30. Kuribara H, Tago K, Yokozeki T, Sasaki T, Takai Y, et al. (1995) Synergistic activation of rat brain phospholipase D by ADP-ribosylation factor and rhoA p21, and its inhibition by Clostridium botulinum C3 exoenzyme. J Biol Chem 270: 25667–25671.