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Psoriasiform Inflammation Is Associated with Mitochondrial Fission/GDAP1L1 Signaling in Macrophages
Ahmed Alalaiwe1, Chi-Yuan Chen2,3,4, Zi-Yu Chang5,6
1Department of Pharmaceutics, College of Pharmacy, Prince Sattam Bin Abdulaziz University, Al Kharj 11942, Saudi Arabia.
Abstract:
While psoriasis is known as a T cell- and dendritic cell-driven skin inflammation disease, macrophages are also reported to play some roles in its development. However, the signaling pathway of activated macrophages contributing to psoriasis is not entirely understood. Thus, we aimed to explore the possible mechanisms of how macrophages initiate and sustain psoriasis. The differentiated THP1 cells, stimulated by imiquimod (IMQ), were utilized as the activated macrophage model. IMQ was also employed to produce psoriasis-like lesions in mice. A transcriptomic assay of macrophages revealed that the expressions of pro-inflammatory mediators and GDAP1L1 were largely increased after an IMQ intervention. The depletion of GDAP1L1 by short hairpin (sh)RNA could inhibit cytokine release by macrophages. GDAP1L1 modulated cytokine production by activating the phosphorylation of mitogen-activated protein kinases (MAPKs) and nuclear factor (NF)-κB pathways. Besides GDAP1L1, another mitochondrial fission factor, Drp1, translocated from the cytosol to mitochondria after IMQ stimulation, followed by the mitochondrial fragmentation according to the immunofluorescence imaging. Clodronate liposomes were injected into the mice to deplete native macrophages for examining the latter's capacity on IMQ-induced inflammation. The THP1 cells, with or without GDAP1L1 silencing, were then transplanted into the mice to monitor the deposition of macrophages. We found a significant THP1 accumulation in the skin and lymph nodes. The silencing of GDAP1L1 in IMQ-treated animals reduced the psoriasiform severity score from 8 to 2. After depleting GDAP1L1, the THP1 recruitment in the lymph nodes was decreased by 3-fold. The skin histology showed that the GDAP1L1-mediated macrophage activation induced neutrophil chemotaxis and keratinocyte hyperproliferation. Thus, mitochondrial fission can be a target for fighting against psoriatic inflammation.
Insights
Macrophages play a key role in psoriasis. This study reveals that GDAP1L1 and mitochondrial fission in macrophages drive psoriasis development by promoting inflammation and cell recruitment. Targeting these pathways may offer new psoriasis treatments.
Area of Science:
- Immunology
- Dermatology
- Cell Biology
Background:
- Psoriasis is a T cell- and dendritic cell-driven inflammatory skin disease.
- The precise role and signaling pathways of activated macrophages in psoriasis pathogenesis remain incompletely understood.
Purpose of the Study:
- To elucidate the mechanisms by which macrophages initiate and sustain psoriasis.
- To investigate the role of GDAP1L1 and mitochondrial fission in macrophage-mediated psoriatic inflammation.
Main Methods:
- Utilized imiquimod (IMQ)-stimulated THP1 cells as an activated macrophage model and to induce psoriasis-like lesions in mice.
- Performed transcriptomic assays, short hairpin (sh)RNA-mediated gene silencing of GDAP1L1, and immunofluorescence imaging.
- Depleted native macrophages using clodronate liposomes and transplanted GDAP1L1-silenced THP1 cells into mice.
Main Results:
- IMQ stimulation significantly increased pro-inflammatory mediators and GDAP1L1 expression in macrophages.
- GDAP1L1 depletion inhibited cytokine release by activating mitogen-activated protein kinases (MAPKs) and nuclear factor (NF)-κB pathways.
- Mitochondrial fission factor Drp1 translocated to mitochondria, leading to fragmentation; GDAP1L1 silencing reduced psoriatic severity, macrophage accumulation in skin and lymph nodes, and neutrophil chemotaxis.
Conclusions:
- GDAP1L1 and mitochondrial fission are critical in macrophage activation and contribute to psoriasis development.
- GDAP1L1-mediated macrophage activation drives neutrophil chemotaxis and keratinocyte hyperproliferation, key features of psoriasis.
- Targeting mitochondrial fission presents a potential therapeutic strategy for managing psoriatic inflammation.
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