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Updated: Oct 3, 2025

The Three-Dimensional Human Skin Reconstruct Model: a Tool to Study Normal Skin and Melanoma Progression
Published on: August 3, 2011
Adverse Effects of Vemurafenib on Skin Integrity: Hyperkeratosis and Skin Cancer Initiation Due to Altered
Marius Tham1, Hans-Jürgen Stark2, Anna Jauch3
1Department of Genetics of Skin Carcinogenesis, German Cancer Research Center (DKFZ), Heidelberg, Germany.
Abstract:
The BRAF inhibitor vemurafenib, approved for treating patients with BRAF V600E-mutant and unresectable or metastatic melanomas, rapidly induces cutaneous adverse events, including hyperkeratotic skin lesions and cutaneous squamous cell carcinomas (cSCC). To determine, how vemurafenib would provoke these adverse events, we utilized long-term in vitro skin equivalents (SEs) comprising epidermal keratinocytes and dermal fibroblasts in their physiological environment. We inserted keratinocytes with different genetic background [normal keratinocytes: NHEK, HaCaT (p53/mut), and HrasA5 (p53/mut+Hras/mut)] to analyze effects depending on the stage of carcinogenesis. We now show that vemurafenib activates MEK-ERK signaling in both, keratinocytes, and fibroblasts in vitro and in the in vivo-like SEs. As a consequence, vemurafenib does not provide a growth advantage but leads to a differentiation phenotype, causing accelerated differentiation and hyperkeratosis in the NHEK and normalized stratification and cornification in the transformed keratinocytes. Although all keratinocytes responded very similarly to vemurafenib in their expression profile, particularly with a significant induction of MMP1 and MMP3, only the HrasA5 cells revealed a vemurafenib-dependent pathophysiological shift to tumor progression, i.e., the initiation of invasive growth. This was shown by increased proteolytic activity allowing for penetration of the basement membrane and invasion into the disrupted underlying matrix. Blocking MMP activity, by the addition of ilomastat, prevented invasion with all corresponding degradative activities, thus substantiating that the RAS-RAF-MEK-ERK/MMP axis is the most important molecular basis for the rapid switch towards tumorigenic conversion of the HrasA5 keratinocytes upon vemurafenib treatment. Finally, cotreatment with vemurafenib and the MEK inhibitor cobimetinib prevented MEK-ERK hyperactivation and with that abolished both, the epidermal differentiation and the tumor invasion phenotype. This suggests that both cutaneous adverse events are under direct control of vemurafenib-dependent MEK-ERK hyperactivation and confirms the dependence on preexisting genetic alterations of the skin keratinocytes that determine the basis towards induction of tumorigenic progression.
Insights
Vemurafenib causes skin issues by activating MEK-ERK signaling, leading to accelerated differentiation and hyperkeratosis. Only cells with specific mutations showed tumor progression, preventable by blocking MMPs or using a MEK inhibitor.
Area of Science:
- Dermatology
- Oncology
- Molecular Biology
Background:
- Vemurafenib, a BRAF inhibitor, treats melanoma but causes skin adverse events like hyperkeratosis and squamous cell carcinomas.
- The precise mechanisms underlying these vemurafenib-induced cutaneous toxicities remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular mechanisms by which vemurafenib induces cutaneous adverse events.
- To investigate the role of MEK-ERK signaling and matrix metalloproteinases (MMPs) in vemurafenib's effects on skin cells.
Main Methods:
- Utilized long-term in vitro skin equivalents (SEs) with keratinocytes of varying genetic backgrounds (normal, p53/mut, p53/mut+Hras/mut).
- Analyzed vemurafenib's impact on MEK-ERK signaling, keratinocyte differentiation, MMP expression, and invasive growth.
- Investigated the effects of MMP inhibition (ilomastat) and MEK inhibition (cobimetinib).
Main Results:
- Vemurafenib activated MEK-ERK signaling in both keratinocytes and fibroblasts within SEs.
- Accelerated differentiation and hyperkeratosis occurred in normal keratinocytes; transformed keratinocytes showed normalized stratification.
- Only HrasA5 cells (p53/mut+Hras/mut) exhibited vemurafenib-dependent invasive growth, mediated by MMPs.
- MMP inhibition prevented invasion, and combined vemurafenib/cobimetinib treatment abolished both differentiation and invasion phenotypes.
Conclusions:
- The RAS-RAF-MEK-ERK/MMP axis is crucial for vemurafenib-induced tumorigenic conversion in susceptible keratinocytes.
- Cutaneous adverse events are directly controlled by vemurafenib-dependent MEK-ERK hyperactivation.
- Preexisting genetic alterations in skin keratinocytes dictate the susceptibility to vemurafenib-induced tumor progression.
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