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Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70

Background: Toll-like receptor 4 (TLR4) is involved in ozone (O(3))-induced pulmonary hyperpermeability and inflammation, although the downstream signaling events are unknown. Objectives: The aims of our study were to determine the mechanism through which TLR4 modulates O(3)-induced pulmonary respon...

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Autores principales: Bauer, Alison K., Rondini, Elizabeth A., Hummel, Kristin A., Degraff, Laura M., Walker, Christopher, Jedlicka, Anne E., Kleeberger, Steven R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Institute of Environmental Health Sciences 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3237361/
https://www.ncbi.nlm.nih.gov/pubmed/21543283
http://dx.doi.org/10.1289/ehp.1003326
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author Bauer, Alison K.
Rondini, Elizabeth A.
Hummel, Kristin A.
Degraff, Laura M.
Walker, Christopher
Jedlicka, Anne E.
Kleeberger, Steven R.
author_facet Bauer, Alison K.
Rondini, Elizabeth A.
Hummel, Kristin A.
Degraff, Laura M.
Walker, Christopher
Jedlicka, Anne E.
Kleeberger, Steven R.
author_sort Bauer, Alison K.
collection PubMed
description Background: Toll-like receptor 4 (TLR4) is involved in ozone (O(3))-induced pulmonary hyperpermeability and inflammation, although the downstream signaling events are unknown. Objectives: The aims of our study were to determine the mechanism through which TLR4 modulates O(3)-induced pulmonary responses and to use transcriptomics to determine potential TLR4 effector molecules. Methods: C3H/HeJ (HeJ; Tlr4 mutant) and C3H/HeOuJ (OuJ; Tlr4 normal) mice were exposed continuously to 0.3 ppm O(3) or filtered air for 6, 24, 48, or 72 hr. We assessed inflammation using bronchoalveolar lavage and molecular analysis by mRNA microarray, quantitative RT-PCR (real-time polymerase chain reaction), immunoblots, immunostaining, and ELISAs (enzyme-linked immunosorbent assays). B6-Hspa1a/Hspa1btm1Dix/NIEHS (Hsp70–/–) and C57BL/6 (B6; Hsp70+/+ wild-type control) mice were used for candidate gene validation studies. Results: O(3)-induced TLR4 signaling occurred through myeloid differentiation protein 88 (MyD88)-dependent and -independent pathways in OuJ mice and involved multiple downstream pathways. Genomewide transcript analyses of lungs from air- and O(3)-exposed HeJ and OuJ mice identified a cluster of genes that were significantly up-regulated in O(3)-exposed OuJ mice compared with O(3)-exposed HeJ mice or air-exposed controls of both strains; this cluster included genes for heat-shock proteins (e.g., Hspa1b, Hsp70). Moreover, O(3)-induced inflammation, MyD88 
up-regulation, extracellular-signal–related kinase-1/2 (ERK1/2) and activator protein-1 (AP-1) activation, and kerotinocyte-derived chemokine (KC) protein content were significantly reduced in Hspa1a/Hspa1b(tm1Dix) (Hsp70(–/–)) compared with Hsp70(+/+) mice (p < 0.05). Conclusions: These studies suggest that HSP70 is an effector molecule downstream of TLR4 and is involved in the regulation of O(3)-induced lung inflammation by triggering similar pathways to TLR4. These novel findings may have therapeutic and preventive implications for inflammatory diseases resulting from environmental exposures.
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spelling pubmed-32373612011-12-15 Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70 Bauer, Alison K. Rondini, Elizabeth A. Hummel, Kristin A. Degraff, Laura M. Walker, Christopher Jedlicka, Anne E. Kleeberger, Steven R. Environ Health Perspect Research Background: Toll-like receptor 4 (TLR4) is involved in ozone (O(3))-induced pulmonary hyperpermeability and inflammation, although the downstream signaling events are unknown. Objectives: The aims of our study were to determine the mechanism through which TLR4 modulates O(3)-induced pulmonary responses and to use transcriptomics to determine potential TLR4 effector molecules. Methods: C3H/HeJ (HeJ; Tlr4 mutant) and C3H/HeOuJ (OuJ; Tlr4 normal) mice were exposed continuously to 0.3 ppm O(3) or filtered air for 6, 24, 48, or 72 hr. We assessed inflammation using bronchoalveolar lavage and molecular analysis by mRNA microarray, quantitative RT-PCR (real-time polymerase chain reaction), immunoblots, immunostaining, and ELISAs (enzyme-linked immunosorbent assays). B6-Hspa1a/Hspa1btm1Dix/NIEHS (Hsp70–/–) and C57BL/6 (B6; Hsp70+/+ wild-type control) mice were used for candidate gene validation studies. Results: O(3)-induced TLR4 signaling occurred through myeloid differentiation protein 88 (MyD88)-dependent and -independent pathways in OuJ mice and involved multiple downstream pathways. Genomewide transcript analyses of lungs from air- and O(3)-exposed HeJ and OuJ mice identified a cluster of genes that were significantly up-regulated in O(3)-exposed OuJ mice compared with O(3)-exposed HeJ mice or air-exposed controls of both strains; this cluster included genes for heat-shock proteins (e.g., Hspa1b, Hsp70). Moreover, O(3)-induced inflammation, MyD88 
up-regulation, extracellular-signal–related kinase-1/2 (ERK1/2) and activator protein-1 (AP-1) activation, and kerotinocyte-derived chemokine (KC) protein content were significantly reduced in Hspa1a/Hspa1b(tm1Dix) (Hsp70(–/–)) compared with Hsp70(+/+) mice (p < 0.05). Conclusions: These studies suggest that HSP70 is an effector molecule downstream of TLR4 and is involved in the regulation of O(3)-induced lung inflammation by triggering similar pathways to TLR4. These novel findings may have therapeutic and preventive implications for inflammatory diseases resulting from environmental exposures. National Institute of Environmental Health Sciences 2011-05-04 2011-08 /pmc/articles/PMC3237361/ /pubmed/21543283 http://dx.doi.org/10.1289/ehp.1003326 Text en http://creativecommons.org/publicdomain/mark/1.0/ Publication of EHP lies in the public domain and is therefore without copyright. All text from EHP may be reprinted freely. Use of materials published in EHP should be acknowledged (for example, ?Reproduced with permission from Environmental Health Perspectives?); pertinent reference information should be provided for the article from which the material was reproduced. Articles from EHP, especially the News section, may contain photographs or illustrations copyrighted by other commercial organizations or individuals that may not be used without obtaining prior approval from the holder of the copyright.
spellingShingle Research
Bauer, Alison K.
Rondini, Elizabeth A.
Hummel, Kristin A.
Degraff, Laura M.
Walker, Christopher
Jedlicka, Anne E.
Kleeberger, Steven R.
Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title_full Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title_fullStr Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title_full_unstemmed Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title_short Identification of Candidate Genes Downstream of TLR4 Signaling after Ozone Exposure in Mice: A Role for Heat-Shock Protein 70
title_sort identification of candidate genes downstream of tlr4 signaling after ozone exposure in mice: a role for heat-shock protein 70
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3237361/
https://www.ncbi.nlm.nih.gov/pubmed/21543283
http://dx.doi.org/10.1289/ehp.1003326
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