| Literature DB >> 31614426 |
Lilla Pethő1, József Murányi2, Kinga Pénzes3, Bianka Gurbi4, Diána Brauswetter5, Gábor Halmos6, Gabriella Csík7, Gábor Mező8,9.
Abstract
Head and neck squamous cell carcinomas (HNSCC) have a high mortality rate, although several potential therapeutic targets have already been identified. Gonadotropin-releasing hormone receptor (GnRH-R) expression is less studied in head and neck cancers, hence, we investigated the therapeutic relevance of GnRH-R targeting in HNSCC patients. Our results indicate that half of the patient-derived samples showed high GnRH-R expression, which was associated with worse prognosis, making this receptor a promising target for GnRH-based drug delivery. Photodynamic therapy is a clinically approved treatment for HNSCC, and the efficacy and selectivity may be enhanced by the covalent conjugation of the photosensitizer to a GnRH-R targeting peptide. Several native ligands, gonadotropin-releasing hormone (GnRH) isoforms, are known to target GnRH-R effectively. Therefore, different 4Lys(Bu) modified GnRH analogs were designed and conjugated to protoporphyrin IX. The receptor binding potency of the novel conjugates was measured on human pituitary and human prostate cancer cells, indicating only slightly lower GnRH-R affinity than the peptides. The in vitro cell viability inhibition was tested on Detroit-562 human pharyngeal carcinoma cells that express GnRH-R in high levels, and the results showed that all conjugates were more effective than the free protoporphyrin IX.Entities:
Keywords: GnRH; GnRH-R; conjugate; head and neck cancer; photodynamic therapy; protoporphyrin; targeted drug delivery
Mesh:
Substances:
Year: 2019 PMID: 31614426 PMCID: PMC6829278 DOI: 10.3390/ijms20205027
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Examples of immunostaining in head and neck squamous cell carcinomas (HNSCC). (A) Low GnRH-R expression; (B) moderate GnRH-R expression; (C) high GnRH-R expression. (Magnification: ×40).
Figure 2Kaplan–Meier survival curves. (A) Correlation between GnRH-R expression and disease-specific survival showing the 3 scores groups—low, moderate, and high expression (p = 0.556); (B) Correlation between GnRH-R expression and disease-specific survival showing the dichotomized scores groups—low and high expression (p = 0.423).
Figure 3Synthesis of the GnRH-protoporphyrin conjugates on the example of GnRH-I[6-Lys] (compound 1) and PpIX reaction (resulting in compound 5, GnRH-I[6-Lys(PpIX)]). The coupling was performed in DMF with PyBOP (benzotriazol-1-yl-oxytripyrrolidinophosphonium hexafluorophosphate) in the presence of DIPEA (diisopropylethylamine) (16 h, r.t.).
The synthesized compounds: the linkable targeting peptides (GnRH analogs; 1–4) and their PpIX conjugated derivatives (5–8).
| Code | Peptide | Code | Conjugate |
|---|---|---|---|
| 1 | GnRH-I[6 | 5 | GnRH-I[6 |
| 2 | GnRH-I[4Lys(Bu), 6 | 6 | GnRH-I[4Lys(Bu), 6 |
| 3 | GnRH-II[4Lys(Bu), 6 | 7 | GnRH-II[4Lys(Bu), 6 |
| 4 | GnRH-III[4Lys(Bu), 6Asp(OMe)] | 8 | GnRH-III[4Lys(Bu), 6Asp(OMe), 8Lys(PpIX)] |
Receptor binding potency of the GnRH analogs and the GnRH-PpIX conjugates measured by the inhibition of [125I]-[6-Trp]-GnRH-I binding to the membranes of human pituitary and human prostate cancer cells.
| Code | Compound | IC50 Values/nM | |
|---|---|---|---|
| Human Pituitary | Human Prostate Cancer | ||
| 1 | GnRH-I[6 | 6.44 ± 0.95 | 4.31 ± 0.83 |
| 2 | GnRH-I[4Lys(Bu), 6 | 9.70 ± 1.07 | 8.61 ± 1.08 |
| 3 | GnRH-II[4Lys(Bu), 6 | 5.56 ± 1.07 | 4.65 ± 0.31 |
| 4 | GnRH-III[4Lys(Bu), 6Asp(OMe)] | 7.27 ± 0.92 | 6.56 ± 1.11 |
| 5 | GnRH-I[6 | 36.29 ± 3.17 | 42.67 ± 7.04 |
| 6 | GnRH-I[4Lys(Bu), 6 | 42.30 ± 4.27 | 41.80 ± 5.74 |
| 7 | GnRH-II[4Lys(Bu), 6 | 79.40 ± 8.88 | 84.50 ± 10.30 |
| 8 | GnRH-III[4Lys(Bu), 6Asp(OMe), 8Lys(PpIX)] | 288.6 ± 17.3 | 341.4 ± 21.1 |
Figure 4UV-Vis spectra of PpIX and the peptide-PpIX conjugates.
Figure 5GnRH-R in Detroit-562 cells. The measurements confirm the high GnRH-R expression of Detroit-562 cells (GnRH-R in permeabilized cells) and the high number of receptors on non-permeabilized cells (nuclei: blue–DRAQ5; GnRH-R: red–Alexa Fluor 594).
Figure 6Optimization of the in vitro cell viability inhibition assay. (A) Effect of different irradiation times using compound 5. (B) Effect of different incubation times using compound 5. (C) Effect of different incubation times using PpIX. Cell viability values are present in % of DMSO control. Statistical significance was determined for the optimized values, i.e., 10 min irradiation time and 5 h incubation time (* p < 0.05; ** p < 0.01; *** p < 0.001).
Figure 7In vitro cell viability inhibition effect of the prepared GnRH-PpIX conjugates (compounds 5–8) and PpIX using 5 h incubation and a 10 min irradiation period. Cell viability values are present in % of DMSO control. (* p < 0.05; ** p < 0.01; *** p < 0.001).
Calculated IC50 values of the prepared conjugates and PpIX.
| Code | Compound | IC50 Values/nM |
|---|---|---|
| 5 | GnRH-I[6 | 62.3 ± 5.9 |
| 6 | GnRH-I[4Lys(Bu), 6 | 89.8 ± 19.4 |
| 7 | GnRH-II[4Lys(Bu), 6 | 71.1 ± 6.2 |
| 8 | GnRH-III[4Lys(Bu), 6Asp(OMe), 8Lys(PpIX)] | 81.8 ± 12.6 |
| PpIX | Protoporphyrin IX | 209.3 ± 119.5 |
Patient characteristics at time of diagnosis.
| Variable | No. of Patients |
|---|---|
| Total no. of patients | 60 |
| Sex | |
| Male | 51 |
| Female | 9 |
| Age (year) | |
| Mean | 58.45 (41–77) |
| Localization | |
| Oropharynx | 19 |
| Larynx | 24 |
| Hypopharynx | 16 |
| Lingua | 1 |
| TNM 1 stage | |
| I | 6 |
| II | 11 |
| III | 15 |
| IV A | 20 |
| IV B | 3 |
| IV C | 5 |
1 TNM: tumor, node, and metastasis, UICC TNM 7th edition.