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Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR

[Image: see text] In the cytosolic environment, protein crowding and Brownian motions result in numerous transient encounters. Each such encounter event increases the apparent size of the interacting molecules, leading to slower rotational tumbling. The extent of transient protein complexes formed i...

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Autores principales: Leeb, Sarah, Yang, Fan, Oliveberg, Mikael, Danielsson, Jens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7735724/
https://www.ncbi.nlm.nih.gov/pubmed/33179918
http://dx.doi.org/10.1021/acs.jpcb.0c08274
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author Leeb, Sarah
Yang, Fan
Oliveberg, Mikael
Danielsson, Jens
author_facet Leeb, Sarah
Yang, Fan
Oliveberg, Mikael
Danielsson, Jens
author_sort Leeb, Sarah
collection PubMed
description [Image: see text] In the cytosolic environment, protein crowding and Brownian motions result in numerous transient encounters. Each such encounter event increases the apparent size of the interacting molecules, leading to slower rotational tumbling. The extent of transient protein complexes formed in live cells can conveniently be quantified by an apparent viscosity, based on NMR-detected spin-relaxation measurements, that is, the longitudinal (T(1)) and transverse (T(2)) relaxation. From combined analysis of three different proteins and surface mutations thereof, we find that T(2) implies significantly higher apparent viscosity than T(1). At first sight, the effect on T(1) and T(2) seems thus nonunifiable, consistent with previous reports on other proteins. We show here that the T(1) and T(2) deviation is actually not a inconsistency but an expected feature of a system with fast exchange between free monomers and transient complexes. In this case, the deviation is basically reconciled by a model with fast exchange between the free-tumbling reporter protein and a transient complex with a uniform 143 kDa partner. The analysis is then taken one step further by accounting for the fact that the cytosolic content is by no means uniform but comprises a wide range of molecular sizes. Integrating over the complete size distribution of the cytosolic interaction ensemble enables us to predict both T(1) and T(2) from a single binding model. The result yields a bound population for each protein variant and provides a quantification of the transient interactions. We finally extend the approach to obtain a correction term for the shape of a database-derived mass distribution of the interactome in the mammalian cytosol, in good accord with the existing data of the cellular composition.
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spelling pubmed-77357242020-12-15 Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR Leeb, Sarah Yang, Fan Oliveberg, Mikael Danielsson, Jens J Phys Chem B [Image: see text] In the cytosolic environment, protein crowding and Brownian motions result in numerous transient encounters. Each such encounter event increases the apparent size of the interacting molecules, leading to slower rotational tumbling. The extent of transient protein complexes formed in live cells can conveniently be quantified by an apparent viscosity, based on NMR-detected spin-relaxation measurements, that is, the longitudinal (T(1)) and transverse (T(2)) relaxation. From combined analysis of three different proteins and surface mutations thereof, we find that T(2) implies significantly higher apparent viscosity than T(1). At first sight, the effect on T(1) and T(2) seems thus nonunifiable, consistent with previous reports on other proteins. We show here that the T(1) and T(2) deviation is actually not a inconsistency but an expected feature of a system with fast exchange between free monomers and transient complexes. In this case, the deviation is basically reconciled by a model with fast exchange between the free-tumbling reporter protein and a transient complex with a uniform 143 kDa partner. The analysis is then taken one step further by accounting for the fact that the cytosolic content is by no means uniform but comprises a wide range of molecular sizes. Integrating over the complete size distribution of the cytosolic interaction ensemble enables us to predict both T(1) and T(2) from a single binding model. The result yields a bound population for each protein variant and provides a quantification of the transient interactions. We finally extend the approach to obtain a correction term for the shape of a database-derived mass distribution of the interactome in the mammalian cytosol, in good accord with the existing data of the cellular composition. American Chemical Society 2020-11-12 2020-11-25 /pmc/articles/PMC7735724/ /pubmed/33179918 http://dx.doi.org/10.1021/acs.jpcb.0c08274 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Leeb, Sarah
Yang, Fan
Oliveberg, Mikael
Danielsson, Jens
Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title_full Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title_fullStr Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title_full_unstemmed Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title_short Connecting Longitudinal and Transverse Relaxation Rates in Live-Cell NMR
title_sort connecting longitudinal and transverse relaxation rates in live-cell nmr
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7735724/
https://www.ncbi.nlm.nih.gov/pubmed/33179918
http://dx.doi.org/10.1021/acs.jpcb.0c08274
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