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Loss of serum response factor in keratinocytes results in hyperproliferative skin disease in mice
Heidi Koegel1, Lukas von Tobel, Matthias Schäfer
1Institute of Cell Biology, Department of Biology, ETH Zürich, Zürich, Switzerland.
Abstract:
The transcription factor serum response factor (SRF) plays a crucial role in the development of several organs. However, its role in the skin has not been explored. Here, we show that keratinocytes in normal human and mouse skin expressed high levels of SRF but that SRF expression was strongly downregulated in the hyperproliferative epidermis of wounded and psoriatic skin. Keratinocyte-specific deletion within the mouse SRF locus during embryonic development caused edema and skin blistering, and all animals died in utero. Postnatal loss of mouse SRF in keratinocytes resulted in the development of psoriasis-like skin lesions. These lesions were characterized by inflammation, hyperproliferation, and abnormal differentiation of keratinocytes as well as by disruption of the actin cytoskeleton. Ultrastructural analysis revealed markedly reduced cell-cell and cell-matrix contacts and loss of cell compaction in all epidermal layers. siRNA-mediated knockdown of SRF in primary human keratinocytes revealed that the cytoskeletal abnormalities and adhesion defects were a direct consequence of the loss of SRF. In contrast, the hyperproliferation observed in vivo was an indirect effect that was most likely a consequence of the inflammation. These results reveal that loss of SRF disrupts epidermal homeostasis and strongly suggest its involvement in the pathogenesis of hyperproliferative skin diseases, including psoriasis.
Insights
Serum response factor (SRF) is vital for skin development. Loss of SRF in skin cells causes severe defects, leading to conditions like psoriasis.
Area of Science:
- Dermatology
- Molecular Biology
- Developmental Biology
Background:
- Serum response factor (SRF) is essential for organ development.
- SRF's role in skin biology remained largely unexplored.
- SRF is highly expressed in normal keratinocytes but downregulated in diseased skin.
Purpose of the Study:
- To investigate the function of SRF in skin development and homeostasis.
- To determine SRF's role in hyperproliferative skin conditions like psoriasis.
Main Methods:
- Generated mouse models with keratinocyte-specific SRF deletion (embryonic and postnatal).
- Analyzed skin phenotypes, including histology, ultrastructure, and keratinocyte behavior.
- Utilized siRNA-mediated knockdown in primary human keratinocytes.
Main Results:
- Embryonic SRF deletion in keratinocytes led to embryonic lethality with skin defects.
- Postnatal SRF loss induced psoriasis-like skin lesions with inflammation and hyperproliferation.
- SRF loss disrupted keratinocyte actin cytoskeleton, cell-cell/matrix adhesion, and epidermal compaction.
- Cytoskeletal and adhesion defects were direct consequences of SRF loss; hyperproliferation was indirect.
Conclusions:
- SRF is critical for maintaining epidermal homeostasis and skin barrier function.
- Loss of SRF disrupts keratinocyte structure and adhesion, contributing to skin pathology.
- SRF deficiency is implicated in the pathogenesis of hyperproliferative skin diseases, notably psoriasis.
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