Downregulation of the α- and β-subunit of sGC in Arterial Smooth Muscle Cells of OPSCC Is HPV-Independent.

Y Korkmaz, H C Roggendorf, O G Siefer, J Seehawer, T Imhof, M Plomann, W Bloch, A Friebe, C U Huebbers

Journal: Journal of dental research 2019;97(11):1214-1221

PMID: 29775416

Abstract

The nitric oxide (NO)-sensitive soluble guanylyl cyclase (sGC) is a heterodimeric enzyme with an α and β subunit. NO binds to heme of the β-subunit of sGC, activates the enzyme in the reduced heme iron state in vascular smooth muscle cells (VSMCs), and generates cGMP-inducing vasodilatation and suppression of VSMC proliferation. In the complex tumor milieu with higher levels of reactive oxygen species (ROS), sGC heme iron may become oxidized and insensitive to NO. To change sGC from an NO-insensitive to NO-sensitive state or NO-independent manner, protein expression of sGC in VSMC is required. Whether sGCαβ exists at the protein level in arterial VSMCs of oropharyngeal squamous cell carcinoma (OPSCC) is unknown. In addition, whether differences in the genetic profile between human papillomavirus (HPV)-positive and HPV-negative OPSCC contributes to the regulation of sGCαβ is unclear. Therefore, we compared the effects of HPV-positive and HPV-negative OPSCC on the expression of sGCαβ in arterial VSMCs from tumor-free and tumor-containing regions of human tissue sections using quantitative immunohistochemistry. In comparison to the tumor-free region, we found a decrease in expression of both α- and β-subunits in the arterial VSMC layer of the tumor-containing areas. The OPSCC-induced significant downregulation of the α- and β-subunits of sGC in arterial VSMC was HPV-independent. We conclude that the response of sGC to NO in tumor arterial VSMCs may be impaired by oxidation of the heme of the β-subunit, and thus, α- and β-subunits of sGC could be targeted to degradation under oxidative stress in OPSCC in an HPV-independent manner. The degradation of sGCαβ in VSMCs may result in increased proliferation of VSMCs, promoting tumor arteriogenesis in OPSCC. This can be interrupted by preserving the active heterodimer sGCαβ in arterial VSMCs.

Address: 1 Institute for Experimental Dental Research and Oral Musculoskeletal Biology, University of Cologne, Cologne, Germany.; 2 Department I of Anatomy, University of Cologne, Cologne, Germany.; 3 Center for Biochemistry, University of Cologne, Cologne, Germany.; 4 Department of Operative Craniomaxillofacial and Plastic Surgery, University of Cologne, Cologne, Germany.; 5 Jean-Uhrmacher-Institute for Otorhinolaryngological Research, University of Cologne, Cologne, Germany.; 6 Department of Otorhinolaryngology, Head and Neck Surgery, University of Cologne, Germany.; 7 Department of Molecular and Cellular Sport Medicine, German Sport University, Cologne, Germany.; 8 Institute of Physiology, Julius-Maximilians-University, Würzburg, Germany.

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