Department of Biosciences, Durham University, Durham, UK.
Department of Health and Life Sciences, Northumbria University, Newcastle, UK.
J Anat. 2019 Apr;234(4):438-455. doi: 10.1111/joa.12942. Epub 2019 Feb 10.
Recreating the structure of human tissues in the laboratory is valuable for fundamental research, testing interventions, and reducing the use of animals. Critical to the use of such technology is the ability to produce tissue models that accurately reproduce the microanatomy of the native tissue. Current artificial cell-based skin systems lack thorough characterisation, are not representative of human skin, and can show variation. In this study, we have developed a novel full thickness model of human skin comprised of epidermal and dermal compartments. Using an inert porous scaffold, we created a dermal construct using human fibroblasts that secrete their own extracellular matrix proteins, which avoids the use of animal-derived materials. The dermal construct acts as a foundation upon which epidermal keratinocytes were seeded and differentiated into a stratified keratinised epithelium. In-depth morphological analyses of the model demonstrated very close similarities with native human skin. Extensive immunostaining and electron microscopy analysis revealed ultrastructural details such as keratohyalin granules and lamellar bodies within the stratum granulosum, specialised junctional complexes, and the presence of a basal lamina. These features reflect the functional characteristics and barrier properties of the skin equivalent. Robustness and reproducibility of in vitro models are important attributes in experimental practice, and we demonstrate the consistency of the skin construct between different users. In summary, a new model of full thickness human skin has been developed that possesses microanatomical features reminiscent of native tissue. This skin model platform will be of significant interest to scientists researching the structure and function of human skin.
在实验室中重建人体组织的结构对于基础研究、干预措施的测试和减少动物的使用都是非常有价值的。此类技术的关键是能够生产出准确再现天然组织微观解剖结构的组织模型。目前的人工基于细胞的皮肤系统缺乏全面的特征描述,不能代表人类皮肤,并且可能存在差异。在这项研究中,我们开发了一种新型的全层人类皮肤模型,包括表皮和真皮部分。我们使用惰性多孔支架,使用分泌自身细胞外基质蛋白的人成纤维细胞构建了真皮结构,避免了使用动物源性材料。真皮结构作为基础,在此基础上接种了表皮角质形成细胞,并分化为具有分层角质化上皮的表皮。对模型的深入形态分析表明,其与天然人类皮肤非常相似。广泛的免疫染色和电子显微镜分析揭示了表皮颗粒层和板层体内的超微结构细节,如角质透明颗粒和板层体、特殊的连接复合体以及基底膜的存在。这些特征反映了皮肤等效物的功能特征和屏障特性。体外模型的稳健性和可重复性是实验实践中的重要属性,我们证明了不同使用者之间皮肤结构的一致性。总之,已经开发出一种具有类似于天然组织的微观解剖特征的全层人类皮肤模型。该皮肤模型平台将对研究人类皮肤结构和功能的科学家具有重要意义。