Cargando…

Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response

Models for regulation of the eukaryotic heat shock response typically invoke a negative feedback loop consisting of the transcriptional activator Hsf1 and a molecular chaperone. Previously we identified Hsp70 as the chaperone responsible for Hsf1 repression and constructed a mathematical model that...

Descripción completa

Detalles Bibliográficos
Autores principales: Krakowiak, Joanna, Zheng, Xu, Patel, Nikit, Feder, Zoë A, Anandhakumar, Jayamani, Valerius, Kendra, Gross, David S, Khalil, Ahmad S, Pincus, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5809143/
https://www.ncbi.nlm.nih.gov/pubmed/29393852
http://dx.doi.org/10.7554/eLife.31668
_version_ 1783299536942268416
author Krakowiak, Joanna
Zheng, Xu
Patel, Nikit
Feder, Zoë A
Anandhakumar, Jayamani
Valerius, Kendra
Gross, David S
Khalil, Ahmad S
Pincus, David
author_facet Krakowiak, Joanna
Zheng, Xu
Patel, Nikit
Feder, Zoë A
Anandhakumar, Jayamani
Valerius, Kendra
Gross, David S
Khalil, Ahmad S
Pincus, David
author_sort Krakowiak, Joanna
collection PubMed
description Models for regulation of the eukaryotic heat shock response typically invoke a negative feedback loop consisting of the transcriptional activator Hsf1 and a molecular chaperone. Previously we identified Hsp70 as the chaperone responsible for Hsf1 repression and constructed a mathematical model that recapitulated the yeast heat shock response (Zheng et al., 2016). The model was based on two assumptions: dissociation of Hsp70 activates Hsf1, and transcriptional induction of Hsp70 deactivates Hsf1. Here we validate these assumptions. First, we severed the feedback loop by uncoupling Hsp70 expression from Hsf1 regulation. As predicted by the model, Hsf1 was unable to efficiently deactivate in the absence of Hsp70 transcriptional induction. Next, we mapped a discrete Hsp70 binding site on Hsf1 to a C-terminal segment known as conserved element 2 (CE2). In vitro, CE2 binds to Hsp70 with low affinity (9 µM), in agreement with model requirements. In cells, removal of CE2 resulted in increased basal Hsf1 activity and delayed deactivation during heat shock, while tandem repeats of CE2 sped up Hsf1 deactivation. Finally, we uncovered a role for the N-terminal domain of Hsf1 in negatively regulating DNA binding. These results reveal the quantitative control mechanisms underlying the heat shock response.
format Online
Article
Text
id pubmed-5809143
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-58091432018-02-14 Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response Krakowiak, Joanna Zheng, Xu Patel, Nikit Feder, Zoë A Anandhakumar, Jayamani Valerius, Kendra Gross, David S Khalil, Ahmad S Pincus, David eLife Biochemistry and Chemical Biology Models for regulation of the eukaryotic heat shock response typically invoke a negative feedback loop consisting of the transcriptional activator Hsf1 and a molecular chaperone. Previously we identified Hsp70 as the chaperone responsible for Hsf1 repression and constructed a mathematical model that recapitulated the yeast heat shock response (Zheng et al., 2016). The model was based on two assumptions: dissociation of Hsp70 activates Hsf1, and transcriptional induction of Hsp70 deactivates Hsf1. Here we validate these assumptions. First, we severed the feedback loop by uncoupling Hsp70 expression from Hsf1 regulation. As predicted by the model, Hsf1 was unable to efficiently deactivate in the absence of Hsp70 transcriptional induction. Next, we mapped a discrete Hsp70 binding site on Hsf1 to a C-terminal segment known as conserved element 2 (CE2). In vitro, CE2 binds to Hsp70 with low affinity (9 µM), in agreement with model requirements. In cells, removal of CE2 resulted in increased basal Hsf1 activity and delayed deactivation during heat shock, while tandem repeats of CE2 sped up Hsf1 deactivation. Finally, we uncovered a role for the N-terminal domain of Hsf1 in negatively regulating DNA binding. These results reveal the quantitative control mechanisms underlying the heat shock response. eLife Sciences Publications, Ltd 2018-02-02 /pmc/articles/PMC5809143/ /pubmed/29393852 http://dx.doi.org/10.7554/eLife.31668 Text en © 2018, Krakowiak et al http://creativecommons.org/licenses/by/4.0/ http://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Krakowiak, Joanna
Zheng, Xu
Patel, Nikit
Feder, Zoë A
Anandhakumar, Jayamani
Valerius, Kendra
Gross, David S
Khalil, Ahmad S
Pincus, David
Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title_full Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title_fullStr Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title_full_unstemmed Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title_short Hsf1 and Hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
title_sort hsf1 and hsp70 constitute a two-component feedback loop that regulates the yeast heat shock response
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5809143/
https://www.ncbi.nlm.nih.gov/pubmed/29393852
http://dx.doi.org/10.7554/eLife.31668
work_keys_str_mv AT krakowiakjoanna hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT zhengxu hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT patelnikit hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT federzoea hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT anandhakumarjayamani hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT valeriuskendra hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT grossdavids hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT khalilahmads hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse
AT pincusdavid hsf1andhsp70constituteatwocomponentfeedbackloopthatregulatestheyeastheatshockresponse