The proton-sensing G-protein coupled receptor GPR4 promotes angiogenesis in head and neck cancer

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Abstract

Squamous cell carcinoma of the head and neck (SCCHN) is an aggressive disease with poor survival and is the sixth most common cancer worldwide. Gastroesophageal reflux is a common event in SCCHN patients. GPR4 is a proton-sensing G-protein coupled receptor, which can be activated by acidosis. The objective of this study was to explore the role of GPR4 in acid exposure and tumor angiogenesis in SCCHN. In this study, we confirmed that overexpressing GPR4 in SCCHN cells could increase the expression and secretion of IL6, IL8 and VEGFA at pH 5.9. This effect could be inhibited by SB203580 (a p38 inhibitor). Western blot analysis indicated that phosphorylation of p38 increased in GPR4 infected cells at pH 5.9, which could be inhibited by SB203580. In tube formation assay, HMEC-1 cells were incubated with conditioned medium (CM, pH 5.9, 6.5, 7.4) derived from control and GPR4 infected SCCHN cells. Tube length was significantly increased in HMEC-1 cells incubated with CM from GPR4 infected cells compared with control cells at pH5.9, which indicated the pro-angiogenic effect of GPR4 in acidic pH. The neutralizing antibodies of IL6, IL8 and VEGFA could inhibit tube formation of HMEC-1 cells. In vivo, the effect of GPR4 on angiogenesis was investigated with the chick chorioallantoic membrane (CAM) model. Control and GPR4 infected SCCHN cells were seeded onto the upper CAM surface (n = 5 in each group) and 5 μL DMEM/F12 (pH 5.9, 6.5, 7.4) was added to the surface of the cell every 24 h. Four days later, the upper CAM were harvested and the ratio of the vascular area to the CAM area was quantified using Image-Pro Plus 6.0 software. GPR4 infected cells could recruit more vascular than control cells at pH5.9. In conclusion, we suggested that GPR4 induces angiogenesis via GPR4-induced p38-mediated IL6, IL8 and VEGFA secretion at acidic extracellular pH in SCCHN.

Figures

  • Fig 1. GPR4 stimulates cytokine secretion at acidic pH. Total RNA and protein of Ad-GPR4-FaDu cells, Ad-null-FaDu cells were isolated after acid stimulation for 6 h. qPCR and western blot were performed. (A)Overexpression of GPR4 in Ad-GPR4-FaDu cells was comfirmed by qPCR and western blot. (B) The expression of IL6, IL8, and VEGFA increased significantly in GPR4 infected cells at pH 5.9. (C) The supernatants of the cells were collected and the concentrations of IL6, IL8 and VEGFA were detected by ELISA. Similar results were observed in Tca8113 cells (S1 Fig).
  • Fig 2. SB203580 reduces cytokine secretion by inhibiting p38 phosphorylation. (A) In Ad-GPR4-FaDu cells, SB203580 reduced the expression of IL6, IL8 and VEGFA at pH 5.9. (B) SB203580 reduced secretion of IL6, IL8 and VEGFA. (C)GPR4 increased p38 phosphorylation at pH5.9. (D) SB203580 inhibit phosphorylation of p38 in GPR4 overexpressed cells. Similar results were observed in Tca8113 cells (S2 Fig).
  • Fig 3. Tube formation assay. (A) The tube length (arrows) of HMEC-1 cells was increased in CM derived from Ad-GPR4-FaDu cells compared with Ad-nullFaDu cells at pH 5.9. (B) The neutralizing antibodies of IL6, IL8 and VEGFA inhibited tube formation in HMEC-1 cells. Isotype IgG antibody was used as a control in neutralizing antibody test. (C) VEGFA (1 ng/mL) was used as a positive control and DMEM served as a negative control in tube formation assay. Tube lengths (pixels) were quantified from 6 representative fields using Image-Pro Plus 6.0 software. (D)GPR4 increased VEGFR2 phosphorylation in HMEC-1 cells at pH 5.9. Similar results were observed in Tca8113 cells (S4 Fig).
  • Fig 4. GPR4 induced angiogenesis in CAMmodel. The Ad-GPR4-FaDu cells recruited more vascular than Ad-null-FaDu cells only at pH 5.9. No differences were observed between Ad-GPR4-FaDu cells and Ad-GPR4-FaDu cells at pH 7.4 and 6.5. The ratios of vascular area to CAM area were quantified using Image-Pro Plus 6.0 software. Similar results were observed in Tca8113 cells (S5 Fig).
  • Table 1. The average expression intensities of GPR4 in multiple cancers.
  • Table 2. Clinical features of the SCCHN samples and corresponding GPR4 expression in IHC.
  • Fig 5. GPR4 is overexpressed in SCCHN. (A) RT-PCR of GPR4 in cancerous tissues. (B) RT-PCR of GPR4 in peri-cancerous normal tissues. GAPDH was used as an internal standard. (C) Representative image of IHC of moderately differentiated hypopharyngeal cancer. (D) Peri-cancerous normal tissue from the same patient as C. (E) Integrated optical density (IOD) of positive expression cells (arrows) was calculated using Image-Pro Plus 6.0 software. In total, 12 cases of SCCHNwere included. The level of immunoreactivity was graded by calculating the integrated optical density (IOD) of positive expression cells.

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APA

Jing, Z., Xu, H., Chen, X., Zhong, Q., Huang, J., Zhang, Y., … Huang, Z. (2016). The proton-sensing G-protein coupled receptor GPR4 promotes angiogenesis in head and neck cancer. PLoS ONE, 11(4). https://doi.org/10.1371/journal.pone.0152789

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