一种用于皮肤刺激和纳米颗粒风险评估的新型重建皮肤等效模型的预验证。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Nanoscale Advances Pub Date : 2025-01-08 DOI:10.1039/d4na00804a
Priscila Laviola Sanches, Rosana Bizon Vieira Carias, Gutember Gomes Alves, Carolina Motter Catarino, Bruna Bosquetti, Meg Cristina De Castilho Costa, Andrezza Di Pietro Micali, Desirée Cigaran Schuck, José Mauro Granjeiro, Ana R Ribeiro
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引用次数: 0

摘要

为了配合全球减少动物试验的运动,已经创建了几种重建的人类表皮(RHE)模型,用于进行皮肤刺激试验。这些模型经历了发展,验证,验证,并纳入经合组织TG 439。我们的团队已经推出了一种名为GB-RHE的新型内部RHE,我们坚持OECD TG 439来预验证模型并测试其在纳米颗粒刺激研究中的潜在应用。GB-RHE具有与人类表皮相当的形态学、生化和生理特性,具有良好分化的多层活角质形成细胞和强大的屏障功能。根据OECD TG 439的性能标准,使用10种标准化学品对GB-RHE模型的性能进行了评估。结果显示出值得称赞的预测能力,并表明二氧化钛纳米颗粒(TiO2 NPs)对人体表皮具有“无刺激性”,符合全球统一的分类系统。然而,尽管组织学分析没有显示形态变化,但透射电子显微镜显示TiO2 NPs可以内化,到达表皮的外部活层。本研究表明,除了GB-RHE模型具有评估皮肤刺激的潜力外,该模型还具有评估NPs皮肤毒性和开展细胞内化研究的潜力。
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Pre-validation of a novel reconstructed skin equivalent model for skin irritation and nanoparticle risk assessment.

In alignment with the global movement toward reducing animal testing, several reconstructed human epidermis (RHE) models have been created for conducting skin irritation tests. These models have undergone development, verification, validation, and integration into OECD TG 439. Our team has introduced a novel in-house RHE named GB-RHE, and we adhere to OECD TG 439 to pre-validate the model and test its potential employment for nanoparticle irritation studies. GB-RHE exhibits morphological, biochemical, and physiological attributes equivalent to the human epidermis, featuring well-differentiated multilayered viable keratinocytes with a robust barrier function. The performance of the GB-RHE model was evaluated using ten reference chemicals, following the performance standard of OECD TG 439. The results demonstrated commendable predictive capacity and showed that titanium dioxide nanoparticles (TiO2 NPs) are 'non-irritant' to the human epidermis following the globally harmonized classification system. However, although the histological analysis did not show morphological changes, transmission electron micrographs demonstrated that TiO2 NPs can be internalized, reaching the external viable layers of the epidermis. This study demonstrates that in addition to the potential of the GB-RHE model to evaluate skin irritation, this model also has the potential to evaluate the skin toxicity of NPs and carry out cell internalization studies.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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