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◆ Skin pharmacology and physiology2026-09-25

Imaging Active Drug Transport in Viable Human Skin: A Functional ex vivo skin Model for Mechanistic and Regulatory Applications.

Krishna Chaitanya Telaprolu, Jonathan Wei, Jeffrey E Grice, Yousuf Mohammed, Michael S Roberts

一句话结论 · In one sentence

This study establishes a viable, structurally intact epidermal model suitable for evaluating both passive and active transport in human skin. Functional imaging confirmed the role of P-gp in modulating drug diffusion across the VE. This platform supports the generation of mechanistic data for improving dermal pharmacokinetic models and has translational relevance for formulation design and regulatory assessment of topical therapies.

原始摘要(英文原文)· Original abstract
BACKGROUND: Understanding drug diffusion and active transport in the viable epidermis (VE) is critical for optimizing topical and transdermal drug delivery. However, the VE remains understudied due to challenges in isolating physiologically intact membranes and limited functional data on cutaneous transporters. OBJECTIVE: This study aimed to develop and validate a viable human epidermal model to assess molecular diffusion and transporter activity using high-resolution imaging, with a focus on P-glycoprotein (P-gp)-mediated transport. METHODS: Viable epidermis was enzymatically separated from dermatomed human skin using dispase II. Tissue viability was confirmed by MPT-FLIM, MTT assay, and H&E staining. Multiphoton microscopy (MPM) was employed to visualize the diffusion of rhodamine 123 (RD123), a fluorescent P-gp substrate, in dispase-separated epidermis (DSE), and heat-separated epidermis (HSE). The influence of P-gp was evaluated by pretreatment with verapamil, a known inhibitor. ImageJ and MATLAB were used for quantitative image analysis. RESULTS: RD123 diffusion was faster and more extensive in verapamil-treated DSE, with increased fluorescence intensity in the basal and suprabasal layers at early time points compared to controls. HSE exhibited significantly reduced fluorescence and compromised cellular architecture. MPT-FLIM analysis confirmed that the average NAD(P)H fluorescence lifetime and a₁/a₂ metabolic ratios in DSE were comparable to DTM, indicating preservation of metabolic activity. CONCLUSION: This study establishes a viable, structurally intact epidermal model suitable for evaluating both passive and active transport in human skin. Functional imaging confirmed the role of P-gp in modulating drug diffusion across the VE. This platform supports the generation of mechanistic data for improving dermal pharmacokinetic models and has translational relevance for formulation design and regulatory assessment of topical therapies.
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Imaging Active Drug Transport in Viable Human Skin: A Functional ex vivo skin Model for Mechanistic and Regulatory Applications. — 科研速览 Science Skim