Gene-Specific Intron Retention Serves as Molecular Signature that Distinguishes Melanoma from Non-Melanoma Cancer Cells in Greek Patients
Abstract
:1. Introduction
2. Results
2.1. Melanoma-Specific Intron Retention of c-MYC Gene
2.2. The MCT4 Gene is Subjected to an Intron Retention Process both in Non-Melanoma and Melanoma Biopsy Specimens
2.3. Intron Retention of Sestrin-1 Gene can Distinguish Non-Melanoma from Melanoma Tissue
2.4. Mapping the miRNA Landscape of c-MYC, MCT4 and Sestrin-1 Retained Introns: from Target Genes to Protein Interactomes
2.5. Intronic miRNA Target Gene-Specific Silencing and Aberrant Splicing in Melanoma
2.6. SRPX2 Gene Undergoes a Strong Intron Retention Process in Melanoma
2.7. “ORFing” the c-MYC, MCT4, Sestrin-1, and SRPX2 Introns
2.8. Molecular Modeling of “LLTSQ”- or “STPSV”-Rich Proteins
2.9. The “LLTSQ”-Rich Protein CA1ICL-861 Is Predicted to form Dimers and Tetramers, and to Also Recognize Acetylated Lysine
3. Discussion
4. Materials and Methods
4.1. Study Population
4.2. Total RNA Extraction
4.3. RT-sqPCR
4.4. DNA Sequencing of PCR Products
4.5. Bioinformatics Analysis
4.5.1. miRNA Alignments to Intron Sequences—miRNA Target Predictions
4.5.2. Intronic Open Reading Frame (ORF) Identification
4.5.3. Protein Sequence Alignments
4.5.4. Molecular Assembly of Protein Interactomes
4.5.5. Protein Molecular Modeling—Structural Prediction of Protein–Protein Interactions
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
BCC | basal cell carcinoma |
NMD | nonsense-mediated mRNA decay |
PCR | polymerase chain reaction |
RT | reverse transcription |
SCC | squamous cell carcinoma |
sq | semi-quantitative |
UV | ultraviolet |
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miRNAs | Number of Genes | Target Genes | Intron Retained | Target Score |
---|---|---|---|---|
hsa-miR-5585-3p | 2 | TSTD3 | c-MYC + Sestrin-1 | 50 |
HGF | 52 | |||
hsa-miR-1273g-3p | 4 | PRR11 | c-MYC + Sestrin-1 | 50 |
SUSD6 | 76 | |||
CAMK1D | 87 | |||
HGF | 89 | |||
hsa-miR-619-5p | 4 | TSTD3 | c-MYC + Sestrin-1 | 58 |
PRR11 | 65 | |||
SUSD6 | 75 | |||
CAMK1D | 81 | |||
hsa-miR-5096 | 5 | TSTD3 | c-MYC + Sestrin-1 | 52 |
HGF | 71 | |||
PRR11 | 74 | |||
SUSD6 | 85 | |||
CAMK1D | 94 |
Patient Number | Age Ranges | Lesion | Affected Tissue | Ulceration | Actinic (Solar) Elastosis (Neighboring Papillary Chorion Tissue) | Infiltration | Foci Number |
---|---|---|---|---|---|---|---|
1 | 80–85 | BCC | Nose (Left Pterygium) | Yes | Yes | No | 2 |
2 | 70–75 | BCC | Cheek | Yes | Yes | No | 1 |
3 | 70–75 | BCC | Eye (Right Upper Eyelid/Inner Canthus) | No | Yes | No | 2 |
4 | 70–75 | BCC | Eye (Left Inner Canthus) | No | Yes | No | 1 |
5 | 80–85 | BCC | Cheek (Right) | No | No | Yes (Subcutaneous Fat Tissue) | 1 |
6 | 65–70 | SCC | Forehead | No | Yes | Yes (Subcutaneous Fat Tissue) | 1 |
14 | 85–90 | SCC | Cheek (Left) | Yes | Yes | No | 1 |
18 | 70–75 | BCC | Dorsum (Back)/Thoracic Wall | Yes | No | Yes | Several (Some with BCC-SCC Features) |
Patient Number | Age Ranges | Lesion | Histogenic Type: Nodular Features | Growth Pattern | Lymphocyte Infiltration | Mitotic Index | Ulceration | Epidermal Infiltration | Neurotropism | Regression | Satellite Foci | Clark Staging: Melanoma Invasion |
---|---|---|---|---|---|---|---|---|---|---|---|---|
64 | 80–85 | Malignant Nevus | No | Horizontal | Absent | 0–5 mitoses/mm3 | No | No | No | No | No | I–III: Early Stage |
65 | 60–65 | Melanoma | No | Horizontal | Absent | 0–5 mitoses/mm3 | No | No | No | No | No | I–III: Early Stage |
69 | 80–85 | Melanoma | No | Horizontal | Absent | 0–5 mitoses/mm3 | No | No | No | No | No | I–III: Early Stage |
70 | 45–50 | Melanoma | No | Horizontal | Brisk | 0–5 mitoses/mm3 | No | Yes | No | Yes | No | I–III: Early Stage |
72 | 80–85 | Melanoma | No | Horizontal | Brisk | 0–5 mitoses/mm3 | No | Yes | No | Yes | No | I–III: Early Stage |
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Giannopoulou, A.F.; Konstantakou, E.G.; Velentzas, A.D.; Avgeris, S.N.; Avgeris, M.; Papandreou, N.C.; Zoi, I.; Filippa, V.; Katarachia, S.; Lampidonis, A.D.; et al. Gene-Specific Intron Retention Serves as Molecular Signature that Distinguishes Melanoma from Non-Melanoma Cancer Cells in Greek Patients. Int. J. Mol. Sci. 2019, 20, 937. https://doi.org/10.3390/ijms20040937
Giannopoulou AF, Konstantakou EG, Velentzas AD, Avgeris SN, Avgeris M, Papandreou NC, Zoi I, Filippa V, Katarachia S, Lampidonis AD, et al. Gene-Specific Intron Retention Serves as Molecular Signature that Distinguishes Melanoma from Non-Melanoma Cancer Cells in Greek Patients. International Journal of Molecular Sciences. 2019; 20(4):937. https://doi.org/10.3390/ijms20040937
Chicago/Turabian StyleGiannopoulou, Aikaterini F., Eumorphia G. Konstantakou, Athanassios D. Velentzas, Socratis N. Avgeris, Margaritis Avgeris, Nikos C. Papandreou, Ilianna Zoi, Vicky Filippa, Stamatia Katarachia, Antonis D. Lampidonis, and et al. 2019. "Gene-Specific Intron Retention Serves as Molecular Signature that Distinguishes Melanoma from Non-Melanoma Cancer Cells in Greek Patients" International Journal of Molecular Sciences 20, no. 4: 937. https://doi.org/10.3390/ijms20040937
APA StyleGiannopoulou, A. F., Konstantakou, E. G., Velentzas, A. D., Avgeris, S. N., Avgeris, M., Papandreou, N. C., Zoi, I., Filippa, V., Katarachia, S., Lampidonis, A. D., Prombona, A., Syntichaki, P., Piperi, C., Basdra, E. K., Iconomidou, V., Papadavid, E., Anastasiadou, E., Papassideri, I. S., Papavassiliou, A. G., ... Stravopodis, D. J. (2019). Gene-Specific Intron Retention Serves as Molecular Signature that Distinguishes Melanoma from Non-Melanoma Cancer Cells in Greek Patients. International Journal of Molecular Sciences, 20(4), 937. https://doi.org/10.3390/ijms20040937