Laser Therapy in Basal Cell Carcinoma: Current Evidence, Literature Gaps and Future Perspectives
Abstract
1. Introduction
2. Laser Therapy Modalities in Basal Cell Carcinoma
2.1. Ablative Lasers (CO2 and Er:YAG)
2.2. Vascular Lasers (Pulsed Dye Laser and Nd:YAG)
2.3. Laser-Assisted Photodynamic Therapy
| Laser Source | Treated BCC Type | Typical Treatment Pattern | Main Clinical Outcome (Clearance Rate) | Adverse Events |
|---|---|---|---|---|
| CO2 Laser (Ablative) 10,600 nm [32,33,34,35,36,37] | Superficial, small nodular | Multiple passes, cleansing between passes. Peripheral clinical margin often treated. | Varies from 78.8% (vs. surgery) to 93.7% clearance (with intraoperative control). Long-term recurrence rate ~3% in selected cases. | Minor: erythema, crusting. Major: hypertrophic scar (1 case), hypopigmentation (1 case). |
| Pulsed Dye Laser (PDL) 595 nm [44,45] | Superficial, low-risk | 1–5 sessions; fluence commonly ~6.5–8 J/cm2, pulse ~0.5–1.5 ms, spot ~7–10 mm, purpuric endpoint often used. | 78.6% complete remission (vs 4.5% sham) at 6 months. 16/20 lesions with complete clinical response in a prospective study. | Minor: transient purpura, erythema, edoema; hypo/hyperpigmentation. Major: not reported. |
| Nd:YAG Laser 1064 nm [46] | Non-facial, < 2.1 cm | Often single session; spot ~5–6 mm, pulse ~7–10 ms, fluence commonly ~125–140 J/cm2; margins treated (~5 mm); no epidermal cooling in reported protocols. | Histological clearance around ~90% at short interval excision-based checks | Minor: erythema, edoema; hypo/hyperpigmentation; blistering. Major: not reported. |
| PDL + Nd:YAG Sequential Protocol [47] | BCCs smaller than 2 cm | Multiple sessions, PDL then Nd:YAG within the same visit. | Histology-verified clearance ~58% overall, higher (≈75%) in tumours <1 cm. | Minor: transient purpura, erythema, edoema; hypo/hyperpigmentation, blistering. Major: not reported. |
| Laser-Assisted PDT (CO2/Er:YAG + PDT) [52,53,54,55] | Superficial and selected nodular | Fractional or continuous modes before PDT; repeated sessions in some protocols. | High clearance rates (e.g., 97.2% relapse-free rate at 3 months with CO2 + PDT; ~99% clearance with Er:YAG + PDT at 2 years). | Minor: erythema, edoema, crusting, hypo/hyperpigmentation. Major: not reported. |
3. Literature Gaps
3.1. Heterogeneity in Tumour Subtypes
3.2. Lack of Tumour Size Specification
3.3. Methodological Heterogeneity
3.4. Limited Follow-Up Duration
4. Future Perspectives and Conclusions
5. Limitations
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Crowson, A.N. Basal Cell Carcinoma: Biology, Morphology and Clinical Implications. Mod. Pathol. 2006, 19, S127–S147. [Google Scholar] [CrossRef]
- Verkouteren, J.A.C.; Ramdas, K.H.R.; Wakkee, M.; Nijsten, T. Epidemiology of Basal Cell Carcinoma: Scholarly Review. Br. J. Dermatol. 2017, 177, 359–372. [Google Scholar] [CrossRef] [PubMed]
- Epstein, E.H. Basal Cell Carcinomas: Attack of the Hedgehog. Nat. Rev. Cancer 2008, 8, 743–754. [Google Scholar] [CrossRef]
- Bakshi, A.; Chaudhary, S.C.; Rana, M.; Elmets, C.A.; Athar, M. Basal Cell Carcinoma Pathogenesis and Therapy Involving Hedgehog Signaling and Beyond. Mol. Carcinog. 2017, 56, 2543–2557. [Google Scholar] [CrossRef]
- Von Hoff, D.D.; LoRusso, P.M.; Rudin, C.M.; Reddy, J.C.; Yauch, R.L.; Tibes, R.; Weiss, G.J.; Borad, M.J.; Hann, C.L.; Brahmer, J.R.; et al. Inhibition of the Hedgehog Pathway in Advanced Basal-Cell Carcinoma. N. Engl. J. Med. 2009, 361, 1164–1172. [Google Scholar] [CrossRef]
- Peris, K.; Fargnoli, M.C.; Garbe, C.; Kaufmann, R.; Bastholt, L.; Seguin, N.B.; Bataille, V.; del Marmol, V.; Dummer, R.; Harwood, C.A.; et al. Diagnosis and Treatment of Basal Cell Carcinoma: European Consensus–Based Interdisciplinary Guidelines. Eur. J. Cancer 2019, 118, 10–34. [Google Scholar] [CrossRef] [PubMed]
- Lang, B.M.; Balermpas, P.; Bauer, A.; Blum, A.; Dirschka, T.; Follmann, M.; Frank, J.; Frerich, B.; Fritz, K.; Hauschild, A.; et al. S2k Guideline Basal Cell Carcinoma of the Skin (Update 2023). JDDG—J. Ger. Soc. Dermatol. 2024, 22, 1697–1714. [Google Scholar] [CrossRef] [PubMed]
- Rowe, D.E.; Carroll, R.J.; Day, C.L. Mohs Surgery Is the Treatment of Choice for Recurrent (Previously Treated) Basal Cell Carcinoma. J. Dermatol. Surg. Oncol. 1989, 15, 424–431. [Google Scholar] [CrossRef]
- Connolly, S.M.; Baker, D.R.; Coldiron, B.M.; Fazio, M.J.; Storrs, P.A.; Vidimos, A.T.; Zalla, M.J.; Brewer, J.D.; Smith Begolka, W.; Berger, T.G.; et al. AAD/ACMS/ASDSA/ASMS 2012 Appropriate Use Criteria for Mohs Micrographic Surgery: A Report of the American Academy of Dermatology, American College of Mohs Surgery, American Society for Dermatologic Surgery Association, and the American Society for Mohs Surgery. J. Am. Acad. Dermatol. 2012, 67, 531–550. [Google Scholar] [CrossRef]
- Bath-Hextall, F.; Ozolins, M.; Armstrong, S.J.; Colver, G.B.; Perkins, W.; Miller, P.S.J.; Williams, H.C. Surgical Excision versus Imiquimod 5% Cream for Nodular and Superficial Basal-Cell Carcinoma (SINS): A Multicentre, Non-Inferiority, Randomised Controlled Trial. Lancet Oncol. 2014, 15, 96–105. [Google Scholar] [CrossRef]
- Thissen, M.R.T.M.; Neumann, M.H.A.; Schouten, L.J. A Systematic Review of Treatment Modalities for Primary Basal Cell Carcinomas. Arch. Dermatol 1999, 135, 1177–1183. [Google Scholar] [CrossRef]
- Sharon, E.; Snast, I.; Lapidoth, M.; Kaftory, R.; Mimouni, D.; Hodak, E.; Levi, A. Laser Treatment for Non-Melanoma Skin Cancer: A Systematic Review and Meta-Analysis. Am. J. Clin. Dermatol. 2020, 22, 25–38. [Google Scholar] [CrossRef]
- Koumprentziotis, I.A.; Rompoti, N.; Liopyris, K.; Nicolaidou, E.; Stratigos, A. Photodynamic Therapy for the Treatment of Basal Cell Carcinoma: A Comprehensive Review of Randomized Controlled Trials. Dermatol. Pract. Concept. 2024, 14, e2024105. [Google Scholar] [CrossRef] [PubMed]
- Kim, D.P.; Kus, K.J.B.; Ruiz, E. Basal Cell Carcinoma Review. Hematol. Oncol. Clin. N. Am. 2019, 33, 13–24. [Google Scholar] [CrossRef]
- Goldgeier, M.; Fox, C.A.; Zavislan, J.M.; Harris, D.; Gonzalez, S. Noninvasive Imaging, Treatment, and Microscopic Confirmation of Clearance of Basal Cell Carcinoma. Dermatol. Surg. 2003, 29, 205–210. [Google Scholar] [CrossRef] [PubMed]
- Khalil, A.A.; Enezei, H.H.; Aldelaimi, T.N.; Mohammed, K.A. Advances in Diagnosis and Treatment of Basal Cell Carcinoma. J. Craniofacial Surg. 2024, 35, e204–e208. [Google Scholar] [CrossRef] [PubMed]
- Minars, N.; Blyumin-Karasik, M. Treatment of Basal Cell Carcinomas with Pulsed Dye Laser: A Case Series. J. Skin Cancer 2012, 2012, 286480. [Google Scholar] [CrossRef]
- Markowitz, O.; Bressler, M.Y. Combining Nd:YAG Laser with Optical Coherence Tomography for Nonsurgical Treatment of Basal Cell Carcinoma. Lasers Surg. Med. 2022, 54, 105–112. [Google Scholar] [CrossRef]
- Shokrollahi, K.; Javed, M.; Aeuyung, K.; Ghattaura, A.; Whitaker, I.S.; O’Leary, B.; James, W.; Murison, M. Combined carbon dioxide laser with photodynamic therapy for nodular and superficial basal cell carcinoma. Ann. Plast. Surg. 2014, 73, 552–558. [Google Scholar] [CrossRef] [PubMed]
- Ahluwalia, J.; Avram, M.M.; Ortiz, A.E. Outcomes of Long-Pulsed 1064 Nm Nd:YAG Laser Treatment of Basal Cell Carcinoma: A Retrospective Review. Lasers Surg. Med. 2019, 51, 34–39. [Google Scholar] [CrossRef]
- Kash, N.; Silapunt, S. Laser Therapy for the Treatment of Basal Cell Carcinoma. In Basal Cell Carcinoma; Springer: Cham, Switzerland, 2020; pp. 213–232. [Google Scholar] [CrossRef]
- Zeitouni, N.C.; Shieh, S.; Oseroff, A.R. Laser and photodynamic therapy in the management of cutaneous malignancies. Clin. Dermatol 2001, 19, 328–338. [Google Scholar] [CrossRef] [PubMed]
- Borbas, S.; May, J.; Gruzmark, F.; Eathara, A.; Beirami, M.J.; Puyana, C.; Tsoukas, M.; Siegel, A.P.; Avanaki, K. Noninvasive Basal Cell Carcinoma Detection Algorithm with OCT. In Photonics in Dermatology and Plastic Surgery 2025; SPIE: Bellingham, WA, USA, 2025; Volume 13292, pp. 144–158. [Google Scholar] [CrossRef]
- Mogensen, M.; Thrane, L.; Jørgensen, T.M.; Andersen, P.E.; Jemec, G.B.E. OCT Imaging of Skin Cancer and Other Dermatological Diseases. J. Biophotonics 2009, 2, 442–451. [Google Scholar] [CrossRef]
- Mandache, D.; Dalimier, E.; Durkin, J.R.; Boceara, C.; Olivo-Marin, J.C.; Meas-Yedid, V. Basal Cell Carcinoma Detection in Full Field OCT Images Using Convolutional Neural Networks. In Proceedings of the 2018 IEEE 15th International Symposium on Biomedical Imaging (ISBI 2018), Washington, DC, USA, 4–7 April 2018; IEEE: New York, NY, USA, 2018; pp. 784–787. [Google Scholar] [CrossRef]
- Castro, R.P.; Stephens, A.; Fraga-Braghiroli, N.A.; Oliviero, M.C.; Rezze, G.G.; Rabinovitz, H.; Scope, A. Accuracy of in Vivo Confocal Microscopy for Diagnosis of Basal Cell Carcinoma: A Comparative Study between Handheld and Wide-Probe Confocal Imaging. J. Eur. Acad. Dermatol. Venereol. 2015, 29, 1164–1169. [Google Scholar] [CrossRef] [PubMed]
- Dinnes, J.; Deeks, J.J.; Chuchu, N.; Saleh, D.; Bayliss, S.E.; Takwoingi, Y.; Davenport, C.; Patel, L.; Matin, R.N.; O’sullivan, C.; et al. Reflectance Confocal Microscopy for Diagnosing Keratinocyte Skin Cancers in Adults. Cochrane Database Syst. Rev. 2018, 12, CD013191. [Google Scholar] [CrossRef]
- Ruini, C.; Schuh, S.; Sattler, E.; Welzel, J. Line-field Confocal Optical Coherence Tomography—Practical Applications in Dermatology and Comparison with Established Imaging Methods. Skin Res. Technol. 2021, 27, 340–352. [Google Scholar] [CrossRef]
- Nouri, K.; Chang, A.; Trent, J.T.; Jimenez, G.P. Ultrapulse CO2 Used for the Successful Treatment of Basal Cell Carcinomas Found in Patients with Basal Cell Nevus Syndrome. Dermatol. Surg. 2002, 28, 287–290. [Google Scholar] [CrossRef]
- Omi, T.; Numano, K. The Role of the CO2 Laser and Fractional CO2 Laser in Dermatology. Laser Ther. 2014, 23, 49–60. [Google Scholar] [CrossRef]
- Lukač, M.; Košir, J.; Žel, T.; Kažič, M.; Šavli, D.; Jezeršek, M. Influence of tissue desiccation on critical temperature for thermal damage during Er:YAG laser skin treatments. Lasers Surg. Med. 2024, 56, 107–118. [Google Scholar] [CrossRef] [PubMed]
- Horlock, N.; Grobbelaar, A.O.; Gault, D.T. Can the Carbon Dioxide Laser Completely Ablate Basal Cell Carcinomas? A Histological Study. Br. J. Plast. Surg. 2000, 53, 286–293. [Google Scholar] [CrossRef]
- Campolmi, P.; Brazzini, B.; Urso, C.; Ghersetich, I.; Mavilia, L.; Hercogova, J.; Lotti, T. Superpulsed CO2 Laser Treatment of Basal Cell Carcinoma with Intraoperatory Histopathologic and Cytologic Examination. Dermatol. Surg. 2002, 28, 909–912. [Google Scholar] [CrossRef]
- Iyer, S.; Bowes, L.; Kricorian, G.; Friedli, A.; Fitzpatrick, R.E. Treatment of Basal Cell Carcinoma with the Pulsed Carbon Dioxide Laser: A Retrospective Analysis. Dermatol. Surg. 2004, 30, 1214–1218. [Google Scholar] [CrossRef] [PubMed]
- Kavoussi, H.; Ebrahimi, A. Treatment and Cosmetic Outcome of Superpulsed CO2 Laser for Basal Cell Carcinoma. Acta Dermatovenerol. Alp. Pannonica Adriat. 2013, 22, 57–61. [Google Scholar] [PubMed]
- Zane, C.; Facchinetti, E.; Arisi, M.; Ortel, B.; Calzavara-Pinton, P. Pulsed CO2 Laser Ablation of Superficial Basal Cell of Limbs and Trunk: A Comparative Randomized Clinical Trial With Cryotherapy and Surgical Ablation. Dermatol. Surg. 2017, 43, 920–927. [Google Scholar] [CrossRef]
- Navarrete-Dechent, C.; Cordova, M.; Liopyris, K.; Yélamos, O.; Aleissa, S.; Hibler, B.; Sierra, H.; Sahu, A.; Blank, N.; Rajadhyaksha, M.; et al. Reflectance Confocal Microscopy-Guided Carbon Dioxide Laser Ablation of Low-Risk Basal Cell Carcinomas: A Prospective Study. J. Am. Acad. Dermatol. 2019, 81, 984–988. [Google Scholar] [CrossRef]
- Ko, D.Y.; Jeon, S.Y.; Kim, K.H.; Song, K.H. Fractional erbium: YAG laser-assisted photodynamic therapy for facial actinic keratoses: A randomized, comparative, prospective study. J. Eur. Acad. Dermatol. Venereol. 2014, 28, 1529–1539. [Google Scholar] [CrossRef]
- Soleymani, T.; Abrouk, M.; Kelly, K.M. An Analysis of Laser Therapy for the Treatment of Nonmelanoma Skin Cancer. Dermatol. Surg. 2017, 43, 615–624. [Google Scholar] [CrossRef]
- Liu, A.; Moy, R.L.; Ross, E.V.; Hamzavi, I.; Ozog, D.M. Pulsed Dye Laser and Pulsed Dye Laser–Mediated Photodynamic Therapy in the Treatment of Dermatologic Disorders. Dermatol. Surg. 2012, 38, 351–366. [Google Scholar] [CrossRef] [PubMed]
- Clementi, A.; Cannarozzo, G.; Amato, S.; Zappia, E.; Bennardo, L.; Michelini, S.; Morini, C.; Sannino, M.; Longo, C.; Nistico, S.P. Dye Laser Applications in Cosmetic Dermatology: Efficacy and Safety in Treating Vascular Lesions and Scars. Cosmetics 2024, 11, 227. [Google Scholar] [CrossRef]
- Wang, X. Light and lasers for vascular and skin diseases: From bench to clinic–An update. Photonics Lasers Med. 2016, 5, 171–175. [Google Scholar] [CrossRef]
- Haedersdal, M.; Gniadecka, M.; Efsen, J.; Bech-Thomsen, N.; Keiding, J.; Wulf, H.C. Side effects from the pulsed dye laser: The importance of skin pigmentation and skin redness. Acta Derm.-Venereol. 1998, 78, 445–450. [Google Scholar] [CrossRef]
- Campolmi, P.; Troiano, M.; Bonan, P.; Cannarozzo, G.; Lotti, T. Vascular Based Non Conventional Dye Laser Treatment for Basal Cell Carcinoma. Dermatol. Ther. 2008, 21, 402–405. [Google Scholar] [CrossRef]
- Karsai, S.; Friedl, H.; Buhck, H.; Jünger, M.; Podda, M. The Role of the 595-Nm Pulsed Dye Laser in Treating Superficial Basal Cell Carcinoma: Outcome of a Double-Blind Randomized Placebo-Controlled Trial. Br. J. Dermatol. 2015, 172, 677–683. [Google Scholar] [CrossRef] [PubMed]
- Ortiz, A.E.; Anderson, R.R.; DiGiorgio, C.; Jiang, S.I.B.; Shafiq, F.; Avram, M.M. An Expanded Study of Long-Pulsed 1064 Nm Nd:YAG Laser Treatment of Basal Cell Carcinoma. Lasers Surg. Med. 2018, 50, 727–731. [Google Scholar] [CrossRef]
- Ray Jalian, H.; Avram, M.M.; Stankiewicz, K.J.; Shofner, J.D.; Tannous, Z. Combined 585 Nm Pulsed-Dye and 1,064 Nm Nd:YAG Lasers for the Treatment of Basal Cell Carcinoma. Lasers Surg. Med. 2014, 46, 1–7. [Google Scholar] [CrossRef]
- Ballard, C.J.; Rivas, M.P.; McLeod, M.P.; Choudhary, S.; Elgart, G.W.; Nouri, K. The pulsed dye laser for the treatment of basal cell carcinoma. Lasers Med. Sci. 2011, 26, 641–644. [Google Scholar] [CrossRef] [PubMed]
- Chow, M.; Eimpunth, S.; Hamman, M.S.; Jiang, S.I.B. Effectiveness of a 595-nm Pulsed Dye Laser for the Treatment of Basal Cell Carcinoma Using One Double-Stacked Pulse Session: A Randomized, Double-Blinded Controlled Trial. Dermatol. Surg. 2021, 47, 630–633. [Google Scholar] [CrossRef]
- Clementi, A.; Cassalia, F.; Cannarozzo, G.; Guarino, L.; Zappia, E.; Bennardo, L.; Mazzetto, R.; Danese, A.; Longo, C.; Nisticò, S.P. Laser-Assisted Exosome Delivery (LAED) with Fractional CO2 Laser: A Pilot Two-Case Report and Narrative Review. Cosmetics 2025, 12, 199. [Google Scholar] [CrossRef]
- Collier, N.J.; Rhodes, L.E. Photodynamic Therapy for Basal Cell Carcinoma: The Clinical Context for Future Research Priorities. Molecules 2020, 25, 5398. [Google Scholar] [CrossRef] [PubMed]
- Ferrara, F.; Lacava, R.; Barisani, A.; Messori, S.; Patrizi, A.; Bardazzi, F.; Vaccari, S. Combined CO2 Laser and Photodynamic Therapy Enhances the Efficacy of Treatment of Basal Cell Carcinomas. JDDG—J. Ger. Soc. Dermatol. 2019, 17, 1251–1256. [Google Scholar] [CrossRef]
- Genouw, E.; Verheire, B.; Ongenae, K.; De Schepper, S.; Creytens, D.; Verhaeghe, E.; Boone, B. Laser-Assisted Photodynamic Therapy for Superficial Basal Cell Carcinoma and Bowen’s Disease: A Randomized Intrapatient Comparison between a Continuous and a Fractional Ablative CO2 Laser Mode. J. Eur. Acad. Dermatol. Venereol. 2018, 32, 1897–1905. [Google Scholar] [CrossRef]
- Šmucler, R.; Vlk, M. Combination of Er:YAG Laser and Photodynamic Therapy in the Treatment of Nodular Basal Cell Carcinoma. Lasers Surg. Med. 2008, 40, 153–158. [Google Scholar] [CrossRef] [PubMed]
- Alma, A.; Pongetti, L.; Clementi, A.; Chester, J.; Toccaceli, M.; Ciardo, S.; Zappia, E.; Manfredini, M.; Pellacani, G.; Greco, M.; et al. Combined Carbon Dioxide Laser with Photodynamic Therapy for Nodular Basal Cell Carcinoma Monitored by Reflectance Confocal Microscopy. Medicina 2023, 60, 30. [Google Scholar] [CrossRef] [PubMed]
- Cameron, M.C.; Lee, E.; Hibler, B.P.; Barker, C.A.; Mori, S.; Cordova, M.; Nehal, K.S.; Rossi, A.M. Basal Cell Carcinoma: Epidemiology; Pathophysiology; Clinical and Histological Subtypes; and Disease Associations. J. Am. Acad. Dermatol. 2019, 80, 303–317. [Google Scholar] [CrossRef] [PubMed]
- Drucker, A.M.; Adam, G.P.; Rofeberg, V.; Gazula, A.; Smith, B.; Moustafa, F.; Weinstock, M.A.; Trikalinos, T.A. Treatments of Primary Basal Cell Carcinoma of the Skin: A Systematic Review and Network Meta-Analysis. Ann. Intern. Med. 2018, 169, 456–466. [Google Scholar] [CrossRef]
- Fransen, F.; Tio, D.C.K.S.; Prinsen, C.A.C.; Haedersdal, M.; Hedelund, L.; Laubach, H.J.; Marini, L.; Paasch, U.; Passeron, T.; Wolkerstorfer, A. A Systematic Review of Outcome Reporting in Laser Treatments for Dermatological Diseases. J. Eur. Acad. Dermatol. Venereol. 2020, 34, 47–53. [Google Scholar] [CrossRef]
- Rhodes, L.E.; De Rie, M.A.; Leifsdottir, R.; Yu, R.C.; Bachmann, I.; Goulden, V.; Wong, G.A.E.; Richard, M.A.; Anstey, A.; Wolf, P. Five-Year Follow-up of a Randomized, Prospective Trial of Topical Methyl Aminolevulinate Photodynamic Therapy vs Surgery for Nodular Basal Cell Carcinoma. Arch. Dermatol 2007, 143, 1131–1136. [Google Scholar] [CrossRef]
- Campanella, G.; Navarrete-Dechent, C.; Liopyris, K.; Monnier, J.; Aleissa, S.; Minhas, B.; Scope, A.; Longo, C.; Guitera, P.; Pellacani, G.; et al. Deep Learning for Basal Cell Carcinoma Detection for Reflectance Confocal Microscopy. J. Investig. Dermatol. 2022, 142, 97–103. [Google Scholar] [CrossRef]
- Clementi, A.; Cannarozzo, G.; Guarino, L.; Zappia, E.; Cassalia, F.; Danese, A.; Gratteri, M.; Dattola, A.; Longo, C.; Nisticò, S.P. Combined Laser Strategies for Scar Treatment: A Comprehensive Review of Synergistic Protocols. Bioengineering 2025, 12, 1368. [Google Scholar] [CrossRef]
- Haus, A.; Clementi, A.; Cannarozzo, G.; Guarino, L.; Zappia, E.; Gratteri, M.; Dattola, A.; Nisticò, S.P. Combining 675 Nm Laser with Isotretinoin for Enhanced Acne Vulgaris Treatment Outcomes. Healthcare 2025, 13, 3068. [Google Scholar] [CrossRef]
- Chauvel-Picard, J.; Tognetti, L.; Cinotti, E.; Habougit, C.; Suppa, M.; Lenoir, C.; Rubegni, P.; Del Marmol, V.; Berot, V.; Gleizal, A.; et al. Role of ultra-high-frequency ultrasound in the diagnosis and management of basal cell carcinoma: Pilot study based on 117 cases. Clin. Exp. Dermatol 2023, 48, 468–475. [Google Scholar] [CrossRef]
| Literature Gap | Description of the Limitation | Standard for Future Studies |
|---|---|---|
| Heterogeneity in Tumour Subtypes | Frequent use of generic terms (“basal cell carcinoma”) without distinguishing subtypes (superficial vs. nodular vs. infiltrative). | Mandatory histologic stratification and subgroup reporting. |
| Lack of Tumour Size Specification | Lack of standardised reporting; vague definitions (“small/medium”) instead of precise metric cut-offs. | Predefined size categories (e.g., <10 mm, 10–15 mm, >15 mm) and separate outcomes. |
| Methodological Heterogeneity | High variability in laser parameters (fluence, pulse duration, cooling) and treatment protocols (single vs. multiple sessions, interval timing). | Standardised, fully reproducible protocols with complete parameter reporting and predefined treatment algorithms. |
| Limited Follow-Up Duration | Most studies report outcomes at 12–24 months; data exceeding 3–5 years are rare. | Standardised follow-up monitoring with predefined recurrence criteria and minimum long-term observation targets. |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Clementi, A.; Cannarozzo, G.; Guarino, L.; Gargano, L.; Tolone, M.; Zappia, E.; Gratteri, M.; Dattola, A.; Longo, C.; Pellacani, G.; et al. Laser Therapy in Basal Cell Carcinoma: Current Evidence, Literature Gaps and Future Perspectives. Bioengineering 2026, 13, 244. https://doi.org/10.3390/bioengineering13020244
Clementi A, Cannarozzo G, Guarino L, Gargano L, Tolone M, Zappia E, Gratteri M, Dattola A, Longo C, Pellacani G, et al. Laser Therapy in Basal Cell Carcinoma: Current Evidence, Literature Gaps and Future Perspectives. Bioengineering. 2026; 13(2):244. https://doi.org/10.3390/bioengineering13020244
Chicago/Turabian StyleClementi, Alessandro, Giovanni Cannarozzo, Luca Guarino, Luca Gargano, Martina Tolone, Elena Zappia, Marco Gratteri, Annunziata Dattola, Caterina Longo, Giovanni Pellacani, and et al. 2026. "Laser Therapy in Basal Cell Carcinoma: Current Evidence, Literature Gaps and Future Perspectives" Bioengineering 13, no. 2: 244. https://doi.org/10.3390/bioengineering13020244
APA StyleClementi, A., Cannarozzo, G., Guarino, L., Gargano, L., Tolone, M., Zappia, E., Gratteri, M., Dattola, A., Longo, C., Pellacani, G., & Nisticò, S. P. (2026). Laser Therapy in Basal Cell Carcinoma: Current Evidence, Literature Gaps and Future Perspectives. Bioengineering, 13(2), 244. https://doi.org/10.3390/bioengineering13020244

