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Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies

The mechanisms by which the innate immune system senses damage have been extensively explored in multicellular organisms. In Drosophila, various types of tissue damage, including epidermal injury, tumor formation, cell competition, and apoptosis deficiency, induce sterile activation of the Toll path...

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Autores principales: Nakano, Shotaro, Kashio, Soshiro, Nishimura, Kei, Takeishi, Asuka, Kosakamoto, Hina, Obata, Fumiaki, Kuranaga, Erina, Chihara, Takahiro, Yamauchi, Yoshio, Isobe, Toshiaki, Miura, Masayuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10270351/
https://www.ncbi.nlm.nih.gov/pubmed/37319131
http://dx.doi.org/10.1371/journal.pgen.1010761
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author Nakano, Shotaro
Kashio, Soshiro
Nishimura, Kei
Takeishi, Asuka
Kosakamoto, Hina
Obata, Fumiaki
Kuranaga, Erina
Chihara, Takahiro
Yamauchi, Yoshio
Isobe, Toshiaki
Miura, Masayuki
author_facet Nakano, Shotaro
Kashio, Soshiro
Nishimura, Kei
Takeishi, Asuka
Kosakamoto, Hina
Obata, Fumiaki
Kuranaga, Erina
Chihara, Takahiro
Yamauchi, Yoshio
Isobe, Toshiaki
Miura, Masayuki
author_sort Nakano, Shotaro
collection PubMed
description The mechanisms by which the innate immune system senses damage have been extensively explored in multicellular organisms. In Drosophila, various types of tissue damage, including epidermal injury, tumor formation, cell competition, and apoptosis deficiency, induce sterile activation of the Toll pathway, a process that requires the use of extracellular serine protease (SP) cascades. Upon infection, the SP Spätzle (Spz)-processing enzyme (SPE) cleaves and activates the Toll ligand Spz downstream of two paralogous SPs, Hayan and Persephone (Psh). However, upon tissue damage, it is not fully understood which SPs establish Spz activation cascades nor what damage-associated molecules can activate SPs. In this study, using newly generated uncleavable spz mutant flies, we revealed that Spz cleavage is required for the sterile activation of the Toll pathway, which is induced by apoptosis-deficient damage of wing epidermal cells in adult Drosophila. Proteomic analysis of hemolymph, followed by experiments with Drosophila Schneider 2 (S2) cells, revealed that among hemolymph SPs, both SPE and Melanization Protease 1 (MP1) have high capacities to cleave Spz. Additionally, in S2 cells, MP1 acts downstream of Hayan and Psh in a similar manner to SPE. Using genetic analysis, we found that the upstream SPs Hayan and Psh contributes to the sterile activation of the Toll pathway. While SPE/MP1 double mutants show more impairment of Toll activation upon infection than SPE single mutants, Toll activation is not eliminated in these apoptosis-deficient flies. This suggests that Hayan and Psh sense necrotic damage, inducing Spz cleavage by SPs other than SPE and MP1. Furthermore, hydrogen peroxide, a representative damage-associated molecule, activates the Psh-Spz cascade in S2 cells overexpressing Psh. Considering that reactive oxygen species (ROS) were detected in apoptosis-deficient wings, our findings highlight the importance of ROS as signaling molecules that induce the activation of SPs such as Psh in response to damage.
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spelling pubmed-102703512023-06-16 Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies Nakano, Shotaro Kashio, Soshiro Nishimura, Kei Takeishi, Asuka Kosakamoto, Hina Obata, Fumiaki Kuranaga, Erina Chihara, Takahiro Yamauchi, Yoshio Isobe, Toshiaki Miura, Masayuki PLoS Genet Research Article The mechanisms by which the innate immune system senses damage have been extensively explored in multicellular organisms. In Drosophila, various types of tissue damage, including epidermal injury, tumor formation, cell competition, and apoptosis deficiency, induce sterile activation of the Toll pathway, a process that requires the use of extracellular serine protease (SP) cascades. Upon infection, the SP Spätzle (Spz)-processing enzyme (SPE) cleaves and activates the Toll ligand Spz downstream of two paralogous SPs, Hayan and Persephone (Psh). However, upon tissue damage, it is not fully understood which SPs establish Spz activation cascades nor what damage-associated molecules can activate SPs. In this study, using newly generated uncleavable spz mutant flies, we revealed that Spz cleavage is required for the sterile activation of the Toll pathway, which is induced by apoptosis-deficient damage of wing epidermal cells in adult Drosophila. Proteomic analysis of hemolymph, followed by experiments with Drosophila Schneider 2 (S2) cells, revealed that among hemolymph SPs, both SPE and Melanization Protease 1 (MP1) have high capacities to cleave Spz. Additionally, in S2 cells, MP1 acts downstream of Hayan and Psh in a similar manner to SPE. Using genetic analysis, we found that the upstream SPs Hayan and Psh contributes to the sterile activation of the Toll pathway. While SPE/MP1 double mutants show more impairment of Toll activation upon infection than SPE single mutants, Toll activation is not eliminated in these apoptosis-deficient flies. This suggests that Hayan and Psh sense necrotic damage, inducing Spz cleavage by SPs other than SPE and MP1. Furthermore, hydrogen peroxide, a representative damage-associated molecule, activates the Psh-Spz cascade in S2 cells overexpressing Psh. Considering that reactive oxygen species (ROS) were detected in apoptosis-deficient wings, our findings highlight the importance of ROS as signaling molecules that induce the activation of SPs such as Psh in response to damage. Public Library of Science 2023-06-15 /pmc/articles/PMC10270351/ /pubmed/37319131 http://dx.doi.org/10.1371/journal.pgen.1010761 Text en © 2023 Nakano et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Nakano, Shotaro
Kashio, Soshiro
Nishimura, Kei
Takeishi, Asuka
Kosakamoto, Hina
Obata, Fumiaki
Kuranaga, Erina
Chihara, Takahiro
Yamauchi, Yoshio
Isobe, Toshiaki
Miura, Masayuki
Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title_full Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title_fullStr Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title_full_unstemmed Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title_short Damage sensing mediated by serine proteases Hayan and Persephone for Toll pathway activation in apoptosis-deficient flies
title_sort damage sensing mediated by serine proteases hayan and persephone for toll pathway activation in apoptosis-deficient flies
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10270351/
https://www.ncbi.nlm.nih.gov/pubmed/37319131
http://dx.doi.org/10.1371/journal.pgen.1010761
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