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How transient interactions in the crowded cytosol affect protein mobility and stability
Stockholms universitet, Naturvetenskapliga fakulteten, Institutionen för biokemi och biofysik.
2020 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

Most biochemical reactions have evolved in crowded intracellular environments. However, the complexity of intracellular environments is often neglected in structural or functional studies of proteins. In these cases, reactions involving proteins are deliberately separated from the perturbations of co-solutes in order to simplify data acquisition and interpretation. Having acquired an enormous body of knowledge under these simplified dilute-buffer conditions, methodological progress of the past two decades has made the study of proteins inside living cells increasingly accessible and concomitantly kindled an interest to investigate proteins in their native habitat. Naturally, major questions that arose were to what extent ubiquitous transient interactions alter protein structure, function and thermodynamics and, not least, what role protein surfaces and their physicochemical properties play in determining the frequency and duration of these diffusive encounters.

By looking at the rotational-tumbling rates of three structurally well-characterized proteins in live cells with nuclear magnetic resonance (NMR) relaxation, we expand on previous research performed in the bacterium Escherichia coli and establish the physicochemical principles that determine diffusive interactions in the mammalian cytosol of the human ovarian cancer cell line A2780. Just as in E. coli, net charge is the dominating factor in regulating protein interactivity, albeit with the impact on rotational retardation greatly diminished. We ascribe this to the generally lower macromolecular concentrations in the eukaryotic cytosol, and put forward a hypothesis in which less stringent rules regarding protein surface decoration in eukaryotes could have facilitated the development of multi-cellular organisms. Furthermore, by developing a model where a distribution of differently sized interaction partners is taken into account when examining rotational retardation, we reconcile transverse and longitudinal in-cell relaxation with theory, and are able to estimate the populations of the bound and free form of a set of reporter proteins. Looking at the populations of bound protein instead of a mean-field rotational retardation finally allows us to re-assess the guiding rules behind diffusive cytosolic interactions. Last, we outline a putative mechanism behind the in-cell destabilization of a variant of Superoxide dismutase 1 (SOD1barrel). By mimicking generic poly-anionic intracellular co-solutes with poly-acetic acid (NaPAc1200), we identify the positively charged N-terminal portion of the unfolded form of the protein as the interaction site with the highest affinity. Further examining the unfolded ensemble of SOD1barrel with a mutationally destabilized variant reveals a compact state, that remains almost unchanged upon binding to NaPAc1200. This suggests that NaPAc1200-mediated destabilization occurs mainly through mass action, in full accord with the postulated mechanism for in-cell protein destabilization.

sted, utgiver, år, opplag, sider
Stockholm: Department of Biochemistry and Biophysics, Stockholm University , 2020. , s. 42
Emneord [en]
diffusive transient interactions, macromolecular crowding, protein stability, in-cell NMR, protein evolution
HSV kategori
Forskningsprogram
biofysik
Identifikatorer
URN: urn:nbn:se:su:diva-185866ISBN: 978-91-7911-302-5 (tryckt)ISBN: 978-91-7911-303-2 (digital)OAI: oai:DiVA.org:su-185866DiVA, id: diva2:1476251
Disputas
2020-11-27, Magnélisalen, Kemiska övningslaboratoriet, Svante Arrhenius väg 16 B, Stockholm, 10:00 (engelsk)
Opponent
Veileder
Tilgjengelig fra: 2020-11-04 Laget: 2020-10-14 Sist oppdatert: 2025-02-20bibliografisk kontrollert
Delarbeid
1. Diffusive protein interactions in human versus bacterial cells
Åpne denne publikasjonen i ny fane eller vindu >>Diffusive protein interactions in human versus bacterial cells
Vise andre…
2020 (engelsk)Inngår i: Current Research in Structural Biology, E-ISSN 2665-928X, Vol. 2, s. 68-78Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

Random encounters between proteins in crowded cells are by no means passive, but found to be under selective control. This control enables proteome solubility, helps to optimise the diffusive search for interaction partners, and allows for adaptation to environmental extremes. Interestingly, the residues that modulate the encounters act mesoscopically through protein surface hydrophobicity and net charge, meaning that their detailed signatures vary across organisms with different intracellular constraints. To examine such variations, we use in-cell NMR relaxation to compare the diffusive behaviour of bacterial and human proteins in both human and Escherichia coli cytosols. We find that proteins that ‘stick’ in E. coli are generally less restricted in mammalian cells. Furthermore, the rotational diffusion in the mammalian cytosol is less sensitive to surface-charge mutations. This implies that, in terms of protein motions, the mammalian cytosol is more forgiving to surface alterations than E. coli cells. The cellular differences seem not linked to the proteome properties per se, but rather to a 6-fold difference in protein concentrations. Our results outline a scenario in which the tolerant cytosol of mammalian cells, found in long-lived multicellular organisms, provides an enlarged evolutionary playground, where random protein-surface mutations are less deleterious than in short-generational bacteria.

HSV kategori
Forskningsprogram
biokemi
Identifikatorer
urn:nbn:se:su:diva-175631 (URN)10.1016/j.crstbi.2020.04.002 (DOI)000658373100007 ()2-s2.0-85096580569 (Scopus ID)
Tilgjengelig fra: 2019-11-07 Laget: 2019-11-07 Sist oppdatert: 2022-12-09bibliografisk kontrollert
2. Connecting longitudinal and transverse relaxation rates in live-cell NMR
Åpne denne publikasjonen i ny fane eller vindu >>Connecting longitudinal and transverse relaxation rates in live-cell NMR
(engelsk)Inngår i: Artikkel i tidsskrift (Fagfellevurdert) Submitted
HSV kategori
Identifikatorer
urn:nbn:se:su:diva-185860 (URN)
Tilgjengelig fra: 2020-10-14 Laget: 2020-10-14 Sist oppdatert: 2025-02-20
3. Patchiness regarding protein surface properties modulates diffusive transient interactions in Escherichia coli
Åpne denne publikasjonen i ny fane eller vindu >>Patchiness regarding protein surface properties modulates diffusive transient interactions in Escherichia coli
(engelsk)Manuskript (preprint) (Annet vitenskapelig)
HSV kategori
Identifikatorer
urn:nbn:se:su:diva-185864 (URN)
Tilgjengelig fra: 2020-10-14 Laget: 2020-10-14 Sist oppdatert: 2025-02-20bibliografisk kontrollert
4. Polyanions Cause Protein Destabilization Similar to That in Live Cells
Åpne denne publikasjonen i ny fane eller vindu >>Polyanions Cause Protein Destabilization Similar to That in Live Cells
2021 (engelsk)Inngår i: Biochemistry, ISSN 0006-2960, E-ISSN 1520-4995, Vol. 60, nr 10, s. 735-746Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

The structural stability of proteins is found to markedly change upon their transfer to the crowded interior of live cells. For some proteins, the stability increases, while for others, it decreases, depending on both the sequence composition and the type of host cell. The mechanism seems to be linked to the strength and conformational bias of the diffusive in-cell interactions, where protein charge is found to play a decisive role. Because most proteins, nucleotides, and membranes carry a net-negative charge, the intracellular environment behaves like a polyanionic (Z:1) system with electrostatic interactions different from those of standard 1:1 ion solutes. To determine how such polyanion conditions influence protein stability, we use negatively charged polyacetate ions to mimic the net-negatively charged cellular environment. The results show that, per Na+ equivalent, polyacetate destabilizes the model protein SOD1barrel significantly more than monoacetate or NaCl. At an equivalent of 100 mM Na+, the polyacetate destabilization of SOD1barrel is similar to that observed in live cells. By the combined use of equilibrium thermal denaturation, folding kinetics, and high-resolution nuclear magnetic resonance, this destabilization is primarily assigned to preferential interaction between polyacetate and the globally unfolded protein. This interaction is relatively weak and involves mainly the outermost N-terminal region of unfolded SOD1barrel. Our findings point thus to a generic influence of polyanions on protein stability, which adds to the sequence-specific contributions and needs to be considered in the evaluation of in vivo data.

HSV kategori
Forskningsprogram
biokemi
Identifikatorer
urn:nbn:se:su:diva-185862 (URN)10.1021/acs.biochem.0c00889 (DOI)000636721400001 ()33635054 (PubMedID)2-s2.0-85102963930 (Scopus ID)
Tilgjengelig fra: 2020-10-14 Laget: 2020-10-14 Sist oppdatert: 2025-02-20bibliografisk kontrollert
5. The unfolded β-barrel of SOD1 is in a compact state, stabilised by long-range hydrophobic contacts
Åpne denne publikasjonen i ny fane eller vindu >>The unfolded β-barrel of SOD1 is in a compact state, stabilised by long-range hydrophobic contacts
(engelsk)Manuskript (preprint) (Annet vitenskapelig)
HSV kategori
Identifikatorer
urn:nbn:se:su:diva-185865 (URN)
Tilgjengelig fra: 2020-10-14 Laget: 2020-10-14 Sist oppdatert: 2025-02-20bibliografisk kontrollert

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