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Updated: Jul 19, 2025

Generation and Culturing of Primary Human Keratinocytes from Adult Skin
Published on: December 22, 2017
Repressive Control of Keratinocyte Cytoplasmic Inflammatory Signaling
Liam E Carman1, Michael L Samulevich1, Brian J Aneskievich2
1Graduate Program in Pharmacology & Toxicology, University of Connecticut, Storrs, CT 06269-3092, USA.
Abstract:
The overactivity of keratinocyte cytoplasmic signaling contributes to several cutaneous inflammatory and immune pathologies. An important emerging complement to proteins responsible for this overactivity is signal repression brought about by several proteins and protein complexes with the native role of limiting inflammation. The signaling repression by these proteins distinguishes them from transmembrane receptors, kinases, and inflammasomes, which drive inflammation. For these proteins, defects or deficiencies, whether naturally arising or in experimentally engineered skin inflammation models, have clearly linked them to maintaining keratinocytes in a non-activated state or returning cells to a post-inflamed state after a signaling event. Thus, together, these proteins help to resolve acute inflammatory responses or limit the development of chronic cutaneous inflammatory disease. We present here an integrated set of demonstrated or potentially inflammation-repressive proteins or protein complexes (linear ubiquitin chain assembly complex [LUBAC], cylindromatosis lysine 63 deubiquitinase [CYLD], tumor necrosis factor alpha-induced protein 3-interacting protein 1 [TNIP1], A20, and OTULIN) for a comprehensive view of cytoplasmic signaling highlighting protein players repressing inflammation as the needed counterpoints to signal activators and amplifiers. Ebb and flow of players on both sides of this inflammation equation would be of physiological advantage to allow acute response to damage or pathogens and yet guard against chronic inflammatory disease. Further investigation of the players responsible for repressing cytoplasmic signaling would be foundational to developing new chemical-entity pharmacologics to stabilize or enhance their function when clinical intervention is needed to restore balance.
Insights
Cytoplasmic signaling proteins that repress inflammation are crucial for skin health. Understanding these repressors, like LUBAC and A20, could lead to new treatments for inflammatory skin diseases.
Area of Science:
- Dermatology
- Immunology
- Molecular Biology
Background:
- Keratinocyte cytoplasmic signaling overactivity drives cutaneous inflammatory diseases.
- Signal-repressing proteins counterbalance pro-inflammatory pathways.
- Defects in repressors are linked to persistent skin inflammation.
Purpose of the Study:
- To provide a comprehensive overview of inflammation-repressing proteins in keratinocytes.
- To highlight the role of these repressors as counterpoints to pro-inflammatory signaling.
- To establish a foundation for developing new therapeutics targeting these pathways.
Main Methods:
- Review and integration of existing research on inflammation-repressing proteins.
- Analysis of the function of specific proteins (LUBAC, CYLD, TNIP1, A20, OTULIN) in keratinocyte signaling.
- Examination of experimental skin inflammation models.
Main Results:
- Identified key inflammation-repressing proteins and complexes: LUBAC, CYLD, TNIP1, A20, and OTULIN.
- Demonstrated their role in maintaining keratinocyte quiescence or resolving inflammation.
- Highlighted their importance in preventing chronic inflammatory conditions.
Conclusions:
- Inflammation-repressing proteins are essential for regulating cutaneous immune responses.
- Understanding these repressors is key to developing novel treatments for inflammatory skin disorders.
- Targeting these repressors offers a promising therapeutic strategy for restoring skin homeostasis.
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