Single-molecule studies of the mechanism of eukaryotic helicase activation

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biology, February, 2021 === Cataloged from the official PDF of thesis. === Includes bibliographical references. === Eukaryotic DNA replication is a fundamental process that must occur accurately and only once per cell cycle. To ens...

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Main Author: De Jesús-Kim, Lorraine.
Other Authors: Stephen P. Bell.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2021
Subjects:
Online Access:https://hdl.handle.net/1721.1/130660
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spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-1306602021-05-28T05:20:00Z Single-molecule studies of the mechanism of eukaryotic helicase activation De Jesús-Kim, Lorraine. Stephen P. Bell. Massachusetts Institute of Technology. Department of Biology. Massachusetts Institute of Technology. Department of Biology Biology. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biology, February, 2021 Cataloged from the official PDF of thesis. Includes bibliographical references. Eukaryotic DNA replication is a fundamental process that must occur accurately and only once per cell cycle. To ensure that origins only initiate once per cell cycle, the events of DNA replication initiation are temporally separated to different phases of the cell cycle. This regulation separates two key events that center the replicative DNA helicase Mcm2-7: helicase loading and helicase activation. During G1 phase, two inactive Mcm2-7 are loaded unto origin DNA. Upon entry into S phase, the association of multiple factors will promote helicase activity. Although loaded helicases mark all potential origins of replication, only the subset that is activated will promote origin initiation, and consequently DNA unwinding. After helicase activation the cell must duplicate its genome prior to chromosome segregation and cell division, making helicase activation the committed step of DNA replication. In my thesis, I describe a novel single-molecule reaction that recapitulates helicase activation in vitro with purified proteins. This single-molecule method allows real-time monitoring of protein associations and dissociations during helicase activation. Through these single-molecule reactions, I found that Cdc45 and GINS are recruited to Mcm2-7 in two stages. First, they are recruited to the unstructured N-terminal tails of Mcm2-7. DDK levels carefully control this initial recruitment, creating binding sites for these proteins that result in the formation of a previously unknown intermediate, which we call the Cdc45-tail-GINS (CtG) complex. Elevated DDK lead to increased numbers of CtG complexes formed on each Mcm2-7, which consequently increases the number of active Cdc45-Mcm2-7-GINS (CMG) helicases formed. This mechanism provides an explanation for the tight control of helicase activation by DDK activity during the cell cycle. by Lorraine De Jesús-Kim. Ph. D. Ph.D. Massachusetts Institute of Technology, Department of Biology 2021-05-24T19:39:33Z 2021-05-24T19:39:33Z 2021 2021 Thesis https://hdl.handle.net/1721.1/130660 1251767012 eng MIT theses may be protected by copyright. Please reuse MIT thesis content according to the MIT Libraries Permissions Policy, which is available through the URL provided. http://dspace.mit.edu/handle/1721.1/7582 142 pages application/pdf Massachusetts Institute of Technology
collection NDLTD
language English
format Others
sources NDLTD
topic Biology.
spellingShingle Biology.
De Jesús-Kim, Lorraine.
Single-molecule studies of the mechanism of eukaryotic helicase activation
description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Biology, February, 2021 === Cataloged from the official PDF of thesis. === Includes bibliographical references. === Eukaryotic DNA replication is a fundamental process that must occur accurately and only once per cell cycle. To ensure that origins only initiate once per cell cycle, the events of DNA replication initiation are temporally separated to different phases of the cell cycle. This regulation separates two key events that center the replicative DNA helicase Mcm2-7: helicase loading and helicase activation. During G1 phase, two inactive Mcm2-7 are loaded unto origin DNA. Upon entry into S phase, the association of multiple factors will promote helicase activity. Although loaded helicases mark all potential origins of replication, only the subset that is activated will promote origin initiation, and consequently DNA unwinding. After helicase activation the cell must duplicate its genome prior to chromosome segregation and cell division, making helicase activation the committed step of DNA replication. In my thesis, I describe a novel single-molecule reaction that recapitulates helicase activation in vitro with purified proteins. This single-molecule method allows real-time monitoring of protein associations and dissociations during helicase activation. Through these single-molecule reactions, I found that Cdc45 and GINS are recruited to Mcm2-7 in two stages. First, they are recruited to the unstructured N-terminal tails of Mcm2-7. DDK levels carefully control this initial recruitment, creating binding sites for these proteins that result in the formation of a previously unknown intermediate, which we call the Cdc45-tail-GINS (CtG) complex. Elevated DDK lead to increased numbers of CtG complexes formed on each Mcm2-7, which consequently increases the number of active Cdc45-Mcm2-7-GINS (CMG) helicases formed. This mechanism provides an explanation for the tight control of helicase activation by DDK activity during the cell cycle. === by Lorraine De Jesús-Kim. === Ph. D. === Ph.D. Massachusetts Institute of Technology, Department of Biology
author2 Stephen P. Bell.
author_facet Stephen P. Bell.
De Jesús-Kim, Lorraine.
author De Jesús-Kim, Lorraine.
author_sort De Jesús-Kim, Lorraine.
title Single-molecule studies of the mechanism of eukaryotic helicase activation
title_short Single-molecule studies of the mechanism of eukaryotic helicase activation
title_full Single-molecule studies of the mechanism of eukaryotic helicase activation
title_fullStr Single-molecule studies of the mechanism of eukaryotic helicase activation
title_full_unstemmed Single-molecule studies of the mechanism of eukaryotic helicase activation
title_sort single-molecule studies of the mechanism of eukaryotic helicase activation
publisher Massachusetts Institute of Technology
publishDate 2021
url https://hdl.handle.net/1721.1/130660
work_keys_str_mv AT dejesuskimlorraine singlemoleculestudiesofthemechanismofeukaryotichelicaseactivation
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