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Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense

Accumulated evidence shows that some phytochemicals provide beneficial effects for human health. Recently, a number of mechanistic studies have revealed that direct interactions between phytochemicals and functional proteins play significant roles in exhibiting their bioactivities. However, their bi...

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Autores principales: Ohnishi, Kohta, Ohkura, Shinya, Nakahata, Erina, Ishisaka, Akari, Kawai, Yoshichika, Terao, Junji, Mori, Taiki, Ishii, Takeshi, Nakayama, Tsutomu, Kioka, Noriyuki, Matsumoto, Shinya, Ikeda, Yasutaka, Akiyama, Minoru, Irie, Kazuhiro, Murakami, Akira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3594166/
https://www.ncbi.nlm.nih.gov/pubmed/23536805
http://dx.doi.org/10.1371/journal.pone.0058641
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author Ohnishi, Kohta
Ohkura, Shinya
Nakahata, Erina
Ishisaka, Akari
Kawai, Yoshichika
Terao, Junji
Mori, Taiki
Ishii, Takeshi
Nakayama, Tsutomu
Kioka, Noriyuki
Matsumoto, Shinya
Ikeda, Yasutaka
Akiyama, Minoru
Irie, Kazuhiro
Murakami, Akira
author_facet Ohnishi, Kohta
Ohkura, Shinya
Nakahata, Erina
Ishisaka, Akari
Kawai, Yoshichika
Terao, Junji
Mori, Taiki
Ishii, Takeshi
Nakayama, Tsutomu
Kioka, Noriyuki
Matsumoto, Shinya
Ikeda, Yasutaka
Akiyama, Minoru
Irie, Kazuhiro
Murakami, Akira
author_sort Ohnishi, Kohta
collection PubMed
description Accumulated evidence shows that some phytochemicals provide beneficial effects for human health. Recently, a number of mechanistic studies have revealed that direct interactions between phytochemicals and functional proteins play significant roles in exhibiting their bioactivities. However, their binding selectivities to biological molecules are considered to be lower due to their small and simple structures. In this study, we found that zerumbone, a bioactive sesquiterpene, binds to numerous proteins with little selectivity. Similar to heat-denatured proteins, zerumbone-modified proteins were recognized by heat shock protein 90, a constitutive molecular chaperone, leading to heat shock factor 1-dependent heat shock protein induction in hepa1c1c7 mouse hepatoma cells. Furthermore, oral administration of this phytochemical up-regulated heat shock protein expressions in the livers of Sprague-Dawley rats. Interestingly, pretreatment with zerumbone conferred a thermoresistant phenotype to hepa1c1c7 cells as well as to the nematode Caenorhabditis elegans. It is also important to note that several phytochemicals with higher hydrophobicity or electrophilicity, including phenethyl isothiocyanate and curcumin, markedly induced heat shock proteins, whereas most of the tested nutrients did not. These results suggest that non-specific protein modifications by xenobiotic phytochemicals cause mild proteostress, thereby inducing heat shock response and leading to potentiation of protein quality control systems. We considered these bioactivities to be xenohormesis, an adaptation mechanism against xenobiotic chemical stresses. Heat shock response by phytochemicals may be a fundamental mechanism underlying their various bioactivities.
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spelling pubmed-35941662013-03-27 Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense Ohnishi, Kohta Ohkura, Shinya Nakahata, Erina Ishisaka, Akari Kawai, Yoshichika Terao, Junji Mori, Taiki Ishii, Takeshi Nakayama, Tsutomu Kioka, Noriyuki Matsumoto, Shinya Ikeda, Yasutaka Akiyama, Minoru Irie, Kazuhiro Murakami, Akira PLoS One Research Article Accumulated evidence shows that some phytochemicals provide beneficial effects for human health. Recently, a number of mechanistic studies have revealed that direct interactions between phytochemicals and functional proteins play significant roles in exhibiting their bioactivities. However, their binding selectivities to biological molecules are considered to be lower due to their small and simple structures. In this study, we found that zerumbone, a bioactive sesquiterpene, binds to numerous proteins with little selectivity. Similar to heat-denatured proteins, zerumbone-modified proteins were recognized by heat shock protein 90, a constitutive molecular chaperone, leading to heat shock factor 1-dependent heat shock protein induction in hepa1c1c7 mouse hepatoma cells. Furthermore, oral administration of this phytochemical up-regulated heat shock protein expressions in the livers of Sprague-Dawley rats. Interestingly, pretreatment with zerumbone conferred a thermoresistant phenotype to hepa1c1c7 cells as well as to the nematode Caenorhabditis elegans. It is also important to note that several phytochemicals with higher hydrophobicity or electrophilicity, including phenethyl isothiocyanate and curcumin, markedly induced heat shock proteins, whereas most of the tested nutrients did not. These results suggest that non-specific protein modifications by xenobiotic phytochemicals cause mild proteostress, thereby inducing heat shock response and leading to potentiation of protein quality control systems. We considered these bioactivities to be xenohormesis, an adaptation mechanism against xenobiotic chemical stresses. Heat shock response by phytochemicals may be a fundamental mechanism underlying their various bioactivities. Public Library of Science 2013-03-11 /pmc/articles/PMC3594166/ /pubmed/23536805 http://dx.doi.org/10.1371/journal.pone.0058641 Text en © 2013 Ohnishi et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ohnishi, Kohta
Ohkura, Shinya
Nakahata, Erina
Ishisaka, Akari
Kawai, Yoshichika
Terao, Junji
Mori, Taiki
Ishii, Takeshi
Nakayama, Tsutomu
Kioka, Noriyuki
Matsumoto, Shinya
Ikeda, Yasutaka
Akiyama, Minoru
Irie, Kazuhiro
Murakami, Akira
Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title_full Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title_fullStr Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title_full_unstemmed Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title_short Non-Specific Protein Modifications by a Phytochemical Induce Heat Shock Response for Self-Defense
title_sort non-specific protein modifications by a phytochemical induce heat shock response for self-defense
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3594166/
https://www.ncbi.nlm.nih.gov/pubmed/23536805
http://dx.doi.org/10.1371/journal.pone.0058641
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