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Tsuru, A.

Publications and source records attributed to Tsuru, A..

2 recordsLinked to original sources

Gelsolin Counteracts ER Stress-Driven Inflammatory Circuits in Psoriasis-like Dermatitis

Psoriasis is a chronic inflammatory skin disorder driven by amplified communication between immune cells and keratinocytes. Here, we show that imiquimod (IMQ) triggers organelle stress responses that directly contribute to this pathogenic circuit. In dendritic cells (DCs), IMQ promotes formation of ER-mitochondria contact sites (MAMs), inducing ER stress and activation of the unfolded protein response (UPR). These pathways act independently of, yet converge with, TLR7/MyD88 signaling to enhance IL-23 expression. IMQ also increases cytosolic Ca{superscript 2}+, facilitating NLRP3 inflammasome activation and release of mitochondrial DNA (mtDNA). In parallel, keratinocytes exposed to IMQ activate UPR-dependent genes, including Defb14 (mBD14), a psoriasis-associated antimicrobial peptide. Extracellular mtDNA and mBD14 then cooperatively stimulate plasmacytoid DCs through TLR9, establishing a feed-forward inflammatory loop. We further identify Gelsolin as a direct IMQ-binding protein that mitigates IMQ-induced ER stress; its loss amplifies ER stress, UPR activation, and oxidative stress, and its expression is reduced in human psoriatic lesions. Thus, MAM-UPR signaling links intracellular organelle stress to the intercellular networks that drive psoriatic inflammation, with Gelsolin acting as a critical intrinsic safeguard.

immunology↗

Pathogenicity and intestinal barrier disruptive ability of Malassezia furfur in an alternative model host Caenorhabditis elegans is partially alleviated by Lacticaseibacillus rhamnosus

Malassezia furfur is associated with various diseases; however, the mechanisms underlying its pathogenicity remain largely unknown. In the present study, Caenorhabditis elegans was used as the model host to evaluate M. furfur pathogenicity. Additionally, effects of lactic acid bacteria against M. furfur pathogenicity were evaluated. Compared to Escherichia coli OP50 (OP, control), both live and heat-killed M. furfur reduced the lifespan and body size of C. elegans, although heat-killed M. furfur was less effective than live M. furfur in lifespan shortening. Furthermore, unlike heat-killed M. furfur, live M. furfur disrupted the nematode intestinal barrier. nsy-1 and sek-1 loss-of-function mutants were susceptible to M. furfur, suggesting their involvement in the defense against M. furfur infection. Expression of genes involved in host defense and of those coding for C-type lectin domain-containing proteins and antimicrobial peptides was upregulated in M. furfur-infected C. elegans. Lacticaseibacillus rhamnosus (LR) significantly ameliorated lifespan shortening and body size reduction in M. furfur-infected C. elegans and protected against intestinal barrier disruption, suggesting that LR protects nematodes from M. furfur virulence. This study highlights M. furfur pathogenicity and intestinal barrier disruptive ability in C. elegans and suggests that the M. furfur virulence is partially attenuated by LR. ImportanceInfection with Malassezia furfur shortens the lifespan and disrupts the intestinal barrier in the model host C. elegans. The probiotic Lacticaseibacillus rhamnosus (LR) attenuates M. furfur virulence, thus partially protecting the intestinal tract. Signaling of the innate immune response to M. furfur in C. elegans is mediated by nsy-1 and sek-1, suggesting that the expression of genes involved in the biological defense response may be regulated downstream of nsy-1 and sek-1. This study enhances our understanding of the diseases associated with M. furfur and offers insights into potential preventive and therapeutic methods using probiotics.

microbiology↗