دورية أكاديمية

Effect of low-level light therapy before radiotherapy in oral squamous cell carcinoma: An in vitro study.

التفاصيل البيبلوغرافية
العنوان: Effect of low-level light therapy before radiotherapy in oral squamous cell carcinoma: An in vitro study.
المؤلفون: Tabosa ATL; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Souza MG; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., de Jesus SF; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Rocha DF; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Queiroz LDRP; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Santos EM; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Guimarães VHD; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Andrade LAA; Dilson Godinho Hospital, Montes Claros, Minas Gerais, Brazil., Santos SH; Institute of Agricultural Sciences, Universidade Federal de Minas Gerais (UFMG), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., de Paula AMB; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., de Souza PEN; Institute of Physics of the University of Brasilia, University of Brasilia, Brasília, Federal District, Brazil., Farias LC; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil., Guimarães ALS; Department of Dentistry, Universidade Estadual de Montes Claros (Unimontes), Montes Claros, Minas Gerais, Brazil. andreluizguimaraes@gmail.com.; Dilson Godinho Hospital, Montes Claros, Minas Gerais, Brazil. andreluizguimaraes@gmail.com.; Hospital Universitário Clemente Faria, Laboratório de Pesquisa em Saúde, Universidade Estadual de Montes Claros, 562 Av. Cula Mangabeira Santo Expedito, Montes Claros, MG, Brazil. andreluizguimaraes@gmail.com.
المصدر: Lasers in medical science [Lasers Med Sci] 2022 Dec; Vol. 37 (9), pp. 3527-3536. Date of Electronic Publication: 2022 Aug 24.
نوع المنشور: Journal Article
اللغة: English
بيانات الدورية: Publisher: Springer Country of Publication: England NLM ID: 8611515 Publication Model: Print-Electronic Cited Medium: Internet ISSN: 1435-604X (Electronic) Linking ISSN: 02688921 NLM ISO Abbreviation: Lasers Med Sci Subsets: MEDLINE
أسماء مطبوعة: Publication: London : Springer
Original Publication: London : Baillière Tindall, c1986-
مواضيع طبية MeSH: Mouth Neoplasms*/radiotherapy , Mouth Neoplasms*/pathology , Carcinoma, Squamous Cell*/radiotherapy , Carcinoma, Squamous Cell*/pathology , Low-Level Light Therapy*/methods , Head and Neck Neoplasms*/radiotherapy, Humans ; Squamous Cell Carcinoma of Head and Neck/radiotherapy ; Squamous Cell Carcinoma of Head and Neck/etiology ; Reactive Oxygen Species
مستخلص: Radiation therapy for head and neck squamous cell carcinoma (HNSCC) is associated with several complications. Although photobiomodulation (PBM) has radioprotective effects in normal tissue, it could also enhance the growth of neoplastic cells. Thus, the present study aimed to investigate the cellular response of oral squamous cell carcinoma with pre-exposure to low-level phototherapy before radiotherapy. SCC9, Cal-27, A431, and HaCaT cell lines were subjected to low-level light therapy and radiotherapy. The cells were treated with a single energy density (300 J/cm 2 ) of a light-emitting diode (660 nm) prior to ionizing radiation at different doses (0, 2, 4, and 6 Gy). After 24 h, wound scratch, proliferation, clonogenic cell survival, cell death, and reactive oxygen species (ROS) analyses were performed to evaluate cell response. The cell lines pre-exposed to PBM at the analyzed dosage were radiosensitive. The treatment significantly reduced cell proliferation and clonogenic cell survival. Migration and cell death assays also revealed positive results, with the treatment group showing lower rate of migration and higher cell death than did the control group. Moreover, PBM effectively increased the intracellular levels of ROS. PBM at 300 J/cm 2 is a promising radiosensitizing modality to reduce the radiation dose and avoid the intolerable side effects of radiotherapy for HNSCC, thus increasing the probability of successful treatment. However, further studies are needed to support and confirm the results.
(© 2022. The Author(s), under exclusive licence to Springer-Verlag London Ltd., part of Springer Nature.)
References: AlGhamdi KM, Kumar A, Moussa NA (2012) Low-level laser therapy: a useful technique for enhancing the proliferation of various cultured cells. Lasers Med Sci 27(1):237–249. (PMID: 2127473310.1007/s10103-011-0885-2)
Guimaraes TA et al (2016) Metformin increases PDH and suppresses HIF-1alpha under hypoxic conditions and induces cell death in oral squamous cell carcinoma. Oncotarget 7(34):55057–55068. (PMID: 27474170534240110.18632/oncotarget.10842)
Bhat GR, Hyole RG, Li J (2021) Head and neck cancer: current challenges and future perspectives. Adv Cancer Res 152:67–102. (PMID: 3435344410.1016/bs.acr.2021.05.002)
Ferlay J et al (2015) Cancer incidence and mortality worldwide: sources, methods and major patterns in GLOBOCAN 2012. Int J Cancer 136(5):E359–E386. (PMID: 2522084210.1002/ijc.29210)
Sung H et al (2021) Global cancer statistics 2020: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. CA Cancer J Clin 71(3):209–249. (PMID: 3353833810.3322/caac.21660)
Califano J et al (1996) Genetic progression model for head and neck cancer: implications for field cancerization. Cancer Res 56(11):2488–2492. (PMID: 8653682)
Johnson DE et al (2020) Head and neck squamous cell carcinoma. Nat Rev Dis Primers 6(1):92. (PMID: 33243986794499810.1038/s41572-020-00224-3)
Hanahan D, Weinberg RA (2000) The hallmarks of cancer. Cell 100(1):57–70. (PMID: 1064793110.1016/S0092-8674(00)81683-9)
Patel SG, Shah JP (2005) TNM staging of cancers of the head and neck: striving for uniformity among diversity. CA Cancer J Clin 55(4):242–258 quiz 261-2, 264. (PMID: 1602042510.3322/canjclin.55.4.242)
Capodiferro S et al (2008) Oral laser surgical pathology: a preliminary study on the clinical advantages of diode laser and on the histopathological features of specimens evaluated by conventional and confocal laser scanning microscopy. Minerva Stomatol 57(1-2):1-6–6-7. (PMID: 18427366)
Schalch TD et al (2019) Photobiomodulation is associated with a decrease in cell viability and migration in oral squamous cell carcinoma. Lasers Med Sci 34(3):629–636. (PMID: 3023264610.1007/s10103-018-2640-4)
Limongelli L, Capodiferro S, Tempesta A, Sportelli P, Dell'Olio F, Angelelli G, Maiorano E, Favia G (2020) Early tongue carcinomas (clinical stage I and II): echo-guided three-dimensional diode laser mini-invasive surgery with evaluation of histological prognostic parameters. A study of 85 cases with prolonged follow-up. Lasers Med Sci 35(3):751–758.  https://doi.org/10.1007/s10103-019-02932-z.
Prise KM, O'Sullivan JM (2009) Radiation-induced bystander signalling in cancer therapy. Nat Rev Cancer 9(5):351–360. (PMID: 19377507285595410.1038/nrc2603)
Ishigami T et al (2008) Inhibition of ICAM2 induces radiosensitization in oral squamous cell carcinoma cells. Br J Cancer 98(8):1357–1365. (PMID: 18349842236170010.1038/sj.bjc.6604290)
Parvathaneni U, Laramore GE, Liao JJ (2012) Technical advances and pitfalls in head and neck radiotherapy. J Oncol 2012:597467. (PMID: 22701482336948710.1155/2012/597467)
Gudkov AV, Komarova EA (2010) Radioprotection: smart games with death. J Clin Invest 120(7):2270–2273. (PMID: 20577043289862010.1172/JCI43794)
Jorgensen TJ (2009) Enhancing radiosensitivity: targeting the DNA repair pathways. Cancer Biol Ther 8(8):665–670. (PMID: 1928720910.4161/cbt.8.8.8304)
Maier P, Wenz F, Herskind C (2014) Radioprotection of normal tissue cells. Strahlenther Onkol 190(8):745–752. (PMID: 2463826910.1007/s00066-014-0637-x)
Djavid GE, Goliaie B, Nikoofar A (2015) Analysis of radiomodulatory effect of low-level laser irradiation by clonogenic survival assay. Photomed Laser Surg 33(9):452–459. (PMID: 26332916456085510.1089/pho.2015.3893)
Chung H et al (2012) The nuts and bolts of low-level laser (light) therapy. Ann Biomed Eng 40(2):516–533. (PMID: 2204551110.1007/s10439-011-0454-7)
Huang YY et al (2011) Biphasic dose response in low level light therapy - an update. Dose Response 9(4):602–618. (PMID: 22461763331517410.2203/dose-response.11-009.Hamblin)
Kim WS, Calderhead RG (2011) Is light-emitting diode phototherapy (LED-LLLT) really effective? Laser Ther 20(3):205–215. (PMID: 24155530379903410.5978/islsm.20.205)
Pereira CS et al (2012) Impact of the epithelial dysplasia grading and Ki67 proliferation index in the adjacent non-malignant mucosa on recurrence and survival in head and neck squamous cell carcinoma. Pathol Res Pract 208(11):651–656. (PMID: 2299563410.1016/j.prp.2012.08.002)
Slaughter DP, Southwick HW, Smejkal W (1953) Field cancerization in oral stratified squamous epithelium; clinical implications of multicentric origin. Cancer 6(5):963–968. (PMID: 1309464410.1002/1097-0142(195309)6:5<963::AID-CNCR2820060515>3.0.CO;2-Q)
Bensadoun RJ, Nair RG (2012) Efficacy of low-level laser therapy (LLLT) in oral mucositis: what have we learned from randomized studies and meta-analyses? Photomed Laser Surg 30(4):191–192. (PMID: 2248672410.1089/pho.2012.9890)
Oberoi S et al (2014) Effect of prophylactic low level laser therapy on oral mucositis: a systematic review and meta-analysis. PLoS One 9(9):e107418. (PMID: 25198431415787610.1371/journal.pone.0107418)
Gomes Henriques AC et al (2014) Low-level laser therapy promotes proliferation and invasion of oral squamous cell carcinoma cells. Lasers Med Sci 29(4):1385–1395. (PMID: 24526326)
Soares RG et al (2018) Treatment of mucositis with combined 660- and 808-nm-wavelength low-level laser therapy reduced mucositis grade, pain, and use of analgesics: a parallel, single-blind, two-arm controlled study. Lasers Med Sci 33(8):1813–1819. (PMID: 2994845610.1007/s10103-018-2549-y)
Al Okail MS (2010) Cobalt chloride, a chemical inducer of hypoxia-inducible factor-1α in U251 human glioblastoma cell line. J Saudi Chem Soc 14(2):197–201. (PMID: 10.1016/j.jscs.2010.02.005)
Schneider CA, Rasband WS, Eliceiri KW (2012) NIH Image to ImageJ: 25 years of image analysis. Nat Methods 9(7):671–675. (PMID: 22930834555454210.1038/nmeth.2089)
da Rocha RG et al (2019) Leptin impairs the therapeutic Effect of ionizing radiation in oral squamous cell carcinoma cells. J Oral Pathol Med 48(1):17–23. (PMID: 3029001410.1111/jop.12786)
Gomes Henriques ÁC et al (2014) Low-level laser therapy promotes proliferation and invasion of oral squamous cell carcinoma cells. Lasers Med Sci 29(4):1385–1395. (PMID: 24526326)
Djavid GE et al (2017) Photobiomodulation leads to enhanced radiosensitivity through induction of apoptosis and autophagy in human cervical cancer cells. J Biophotonics 10(12):1732–1742. (PMID: 28464474566820210.1002/jbio.201700004)
Huang L, Wu S, Xing D (2011) High fluence low-power laser irradiation induces apoptosis via inactivation of Akt/GSK3β signaling pathway. J Cell Physiol 226(3):588–601. (PMID: 2068391610.1002/jcp.22367)
Zhang L, Zhang Y, Xing D (2010) LPLI inhibits apoptosis upstream of Bax translocation via a GSK-3beta-inactivation mechanism. J Cell Physiol 224(1):218–228. (PMID: 20333643)
Courtois E et al (2021) Photobiomodulation by a new optical fiber device: analysis of the in vitro impact on proliferation/migration of keratinocytes and squamous cell carcinomas cells stressed by X-rays. Lasers Med Sci 36(7):1445–1454. (PMID: 3316927510.1007/s10103-020-03185-x)
Ramos Silva C et al (2016) Exploring the effects of low-level laser therapy on fibroblasts and tumor cells following gamma radiation exposure. J Biophotonics 9(11-12):1157–1166. (PMID: 2732266010.1002/jbio.201600107)
Wu S et al (2009) High fluence low-power laser irradiation induces mitochondrial permeability transition mediated by reactive oxygen species. J Cell Physiol 218(3):603–611. (PMID: 1900612110.1002/jcp.21636)
Chu J, Wu S, Xing D (2010) Survivin mediates self-protection through ROS/cdc25c/CDK1 signaling pathway during tumor cell apoptosis induced by high fluence low-power laser irradiation. Cancer Lett 297(2):207–219. (PMID: 2057980610.1016/j.canlet.2010.05.013)
Sun X, Wu S, Xing D (2010) The reactive oxygen species-Src-Stat3 pathway provokes negative feedback inhibition of apoptosis induced by high-fluence low-power laser irradiation. Febs j 277(22):4789–4802. (PMID: 2097767210.1111/j.1742-4658.2010.07884.x)
Zorov DB, Juhaszova M, Sollott SJ (2014) Mitochondrial reactive oxygen species (ROS) and ROS-induced ROS release. Physiol Rev 94(3):909–950. (PMID: 24987008410163210.1152/physrev.00026.2013)
Schwartz-Filho HO et al (2011) Effects of low-level laser therapy (685 nm) at different doses in osteogenic cell cultures. Lasers Med Sci 26(4):539–543. (PMID: 2138715710.1007/s10103-011-0902-5)
Albuquerque-Pontes GM et al (2015) Effect of pre-irradiation with different doses, wavelengths, and application intervals of low-level laser therapy on cytochrome c oxidase activity in intact skeletal muscle of rats. Lasers Med Sci 30(1):59–66. (PMID: 2495718910.1007/s10103-014-1616-2)
فهرسة مساهمة: Keywords: Head and neck cancer; Ionizing radiation; LED; Low-level light therapy; Photobiomodulation; Radiosensitization
المشرفين على المادة: 0 (Reactive Oxygen Species)
تواريخ الأحداث: Date Created: 20220824 Date Completed: 20221201 Latest Revision: 20221201
رمز التحديث: 20221213
DOI: 10.1007/s10103-022-03632-x
PMID: 36001245
قاعدة البيانات: MEDLINE
الوصف
تدمد:1435-604X
DOI:10.1007/s10103-022-03632-x