[1] Vanstone S, Cordery SF, Stone JM, et al. Precise laser poration to control drug delivery into and through human nail[J]. J Control Release, 2017, 268:72-77. doi:10.1016/j.jconrel.2017.10.014. [2] Zhang J, Lin P, Li J, et al. Efficacy of laser therapy combined with topical antifungal agents for onychomy-cosis: a systematic review and Meta-analysis of randomised controlled trials[J]. Lasers Med Sci, 2022, 37:2557-2569. doi:10.1007/s10103-022-03561-9. [3] Soutou B, Kaikati J, Afiouni R, et al. Resolution of refractory single-nail psoriasis through a single session of fractional CO2 laser-asssited methotrexate delivery[J]. Ann Dermatol Venereol, 2024, 151:103255. doi:10.1016/j.annder.2024.103255. [4] Fernandes FAV, Arruda DC, Santana GNP, et al. Morphological and ultrastructural changes in fungal agents after LASER application[J]. Int J Dermatol, 2024, 63:217-223. doi:10.1111/ijd.16919. [5] Omi T, Numano K. The role of the CO2 laser and fractional CO2 laser in dermatology[J]. Laser Ther, 2014, 23:49-60. doi:10.5978/islsm.14-RE-01. [6] Yue X, Wang H. Application of reflectance confocal microscopy to investigate the non-ablative, micro-ablative, and ablative effects of CO2 fractional laser irradiation on skin[J]. Lasers Med Sci, 2020, 35:957-964. doi:10.1007/s10103-019-02910-5. [7] Ortner VK, Nguyen N, Brewer JR, et al. Fractional CO2 laser ablation leads to enhanced permeation of a fluore-scent dye in healthy and mycotic nails-An imaging investigation of laser-tissue effects and their impact on ungual drug delivery[J]. Lasers Surg Med, 2022, 54:861-874. doi:10.1002/lsm.23541. [8] Tsai MT, Tsai TY, Shen SC, et al. Evaluation of laser-assisted trans-nail drug delivery with optical coherence tomography[J]. Sensors (Basel), 2016, 16:2111. doi:10.3390/s16122111. [9] Dong Y, Li Z, Zhu L, et al. Topography measurement and reconstruction of inner surfaces based on white light interference[J]. Measurement, 2021, 186:110199. doi:10.1016/j.measurement.2021.110199. [10] Xue L, Hu Ca, Lv F. Application and research of the white light interferometer[J]. J Phys Conf Ser, 2023, 2419:012043. doi:10.1088/1742-6596/2419/1/012043. [11] Dobler D, Gerber M, Schmidts TM, et al. Comparative ungual drug uptake studies: equine hoof membrane vs. human nail plate[J]. Pharmaceutics, 2022, 14:2552. doi:10.3390/pharmaceutics14122552. [12] Gupta AK, Polla Ravi S, Choi SY, et al. Strategies for the enhancement of nail plate permeation of drugs to treat onychomycosis[J]. J Eur Acad Dermatol Venereol, 2023, 37:243-255. doi:10.1111/jdv.18638. [13] André J, Sass U, Richert B, et al. Nail pathology[J]. Clin Dermatol, 2013, 31:526-539. doi:10.1016/j.clindermatol.2013.06.005. [14] Purwar P, Han S, Lee Y, et al. High-resolution cost-effective compact portable inverted light microscope[J]. J Microsc, 2019, 273:199-209. doi:10.1111/jmi.12775. [15] Johnson MR, Codd PJ, Hill WM, et al. Ablation of porcine ligamentum flavum with Ho:YAG, q-switched Ho:YAG, and quadrupled Nd:YAG lasers[J]. Lasers Surg Med, 2015, 47:839-851. doi:10.1002/lsm.22424. [16] Hypsh S. Femtosecond laser processing overcomes barriers for use in medical device manufacturing[J]. Adv Mater Process, 2014, 172:26-29. doi:10.31399/asm.amp.2014-11.p026. |