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Neto, M. V.

Publications and source records attributed to Neto, M. V..

3 recordsLinked to original sources

Reconstructed human pigmented skin/epidermis models achieve epidermal pigmentation through melanocore transfer.

The skin acts as a barrier to environmental insults and provides many vital functions. One of these is to shield DNA from harmful UV radiation, which is achieved by skin pigmentation arising as melanin is produced and dispersed within the epidermal layer. This is a crucial defence against DNA damage, photo-ageing and skin cancer. The mechanisms and regulation of melanogenesis and melanin transfer involve extensive crosstalk between melanocytes and keratinocytes in the epidermis, as well as fibroblasts in the dermal layer. Although the predominant mechanism of melanin transfer continues to be debated and several plausible models have been proposed, we and others previously provided evidence for a coupled exo/phagocytosis of melanocore model. Herein, we performed histology and immunohistochemistry analyses and demonstrated that a newly developed full-thickness 3D reconstructed human pigmented skin model and an epidermis-only model exhibit dispersed pigment throughout keratinocytes in the epidermis. Transmission electron microscopy revealed melanocores between melanocytes and keratinocytes, suggesting that melanin is transferred through coupled exocytosis/phagocytosis of the melanosome core similar to our previous observations in human skin biopsies. We therefore present evidence that our in vitro models of pigmented human skin show epidermal pigmentation comparable to human skin. These findings have a high value for studies of skin pigmentation mechanisms and pigmentary disorders, whilst reducing the reliance on animal models and human skin biopsies. SignificanceCurrently, many approaches to study skin pigmentation and pigmentary disorders use 2D cultures or co-culture of melanocytes and/or keratinocytes, as well as skin biopsies obtained from consenting donors. However, challenges are faced when it is necessary to mimic the tissue microenvironment as there is a limited availability of skin biopsies, especially for the case of rare pigmentary disorders. Through this study, we show the potential of 3D in vitro reconstructed pigmented skin/epidermis models for both general and specific pigmentary research questions, which could reduce reliance on animal models and human skin biopsies.

cell biology↗

Rab3a regulates melanin exocytosis induced by keratinocyte-conditioned medium

Skin pigmentation relies on melanin and is crucial for photoprotection against ultraviolet radiation-induced toxicity. Melanin is synthesized and stored in melanosomes, within melanocytes and then transferred to keratinocytes. While the molecular players involved in melanogenesis have been extensively studied, those underlying melanin transfer remain poorly characterized. Previously, our group proposed that coupled exo/phagocytosis is the predominant mechanism of melanin transfer in human skin and showed an essential role for Rab11b and the exocyst tethering complex in this process. Using a fluorescence-based assay, we show here that keratinocyte-conditioned medium (KCM) specifically induces melanin exocytosis from melanocytes. Moreover, we found that Rab3a, but not Rab11b, regulates melanin exocytosis upon KCM stimulation. In fact, melanosomes accumulate in melanocyte dendrites upon KCM stimulation, co-localizing with Rab3a mainly in the vicinity of the plasma membrane. Additionally, Rab3a silencing does not affect melanin transfer in melanocyte/keratinocyte co-cultures, in contrast with Rab11b depletion, indicating that Rab11b regulates non-KCM-stimulated melanin exocytosis. Thus, our results suggest the existence of at least two distinct routes of melanin exocytosis: one controlled by Rab11b and another Rab3a-dependent, stimulated by KCM. Furthermore, these results provide evidence that soluble factors secreted by keratinocytes can control skin pigmentation via induction of melanocyte signaling pathways that promote peripheral transport of melanosomes and a Rab3a-mediated exocytosis mechanism.

molecular biology↗

Melanocore uptake by keratinocytes occurs through phagocytosis and involves Protease-activated receptor-2 activation

In the skin epidermis, melanin is produced and stored within melanosomes in melanocytes and then transferred to keratinocytes. Different models have been proposed to explain the melanin transfer mechanism, which differ essentially in how melanin is transferred - either in a membrane-bound melanosome or as a melanosome core, i.e. melanocore. Here we investigated the endocytic route followed by melanocores and melanosomes during internalization by keratinocytes, by comparing the uptake of melanocores isolated from the supernatant of melanocyte cultures with melanosomes isolated from melanocytes. We show that inhibition of actin dynamics impairs the uptake of both melanocores and melanosomes. Moreover, depletion of critical proteins involved in actin-dependent uptake mechanisms, namely Rac1 and CtBP1/BARS, together with inhibition of Rac1-dependent signaling pathways or macropinocytosis suggest that melanocores are internalized by phagocytosis, whereas melanosomes are internalized by macropinocytosis. Furthermore, we confirmed that melanocore, but not melanosome uptake is dependent on the Protease-activated receptor-2 (PAR-2) and found that PAR-2 can be specifically activated by melanocores. As skin pigmentation was shown to be regulated by PAR-2 activation, our results further support the melanocore mechanism of melanin transfer and further refine this model, which can now be described as coupled melanocore exo/phagocytosis.

cell biology↗