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Perez-Conesa, SergioORCID iD iconorcid.org/0000-0003-1951-2543
Publications (8 of 8) Show all publications
Chen, Y., Fleetwood, O., Perez-Conesa, S. & Delemotte, L. (2022). Allosteric effect of nanobody binding on ligand-specific active states of the beta 2-adrenergic receptor. Biophysical Journal, 121(3), 53-53
Open this publication in new window or tab >>Allosteric effect of nanobody binding on ligand-specific active states of the beta 2-adrenergic receptor
2022 (English)In: Biophysical Journal, ISSN 0006-3495, E-ISSN 1542-0086, Vol. 121, no 3, p. 53-53Article in journal, Meeting abstract (Other academic) Published
Place, publisher, year, edition, pages
CELL PRESS, 2022
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:kth:diva-310527 (URN)10.1016/j.bpj.2021.11.2463 (DOI)000759523000252 ()
Note

QC 20220405

Available from: 2022-04-05 Created: 2022-04-05 Last updated: 2025-02-20Bibliographically approved
Delemotte, L., Fleetwood, O., Chen, Y. & Perez-Conesa, S. (2022). Details of G-protein coupled receptor activation via data-driven molecular modeling. Biophysical Journal, 121(3), 285A-285A
Open this publication in new window or tab >>Details of G-protein coupled receptor activation via data-driven molecular modeling
2022 (English)In: Biophysical Journal, ISSN 0006-3495, E-ISSN 1542-0086, Vol. 121, no 3, p. 285A-285AArticle in journal, Meeting abstract (Other academic) Published
Place, publisher, year, edition, pages
CELL PRESS, 2022
National Category
Biochemistry Molecular Biology Pharmacology and Toxicology Cell and Molecular Biology
Identifiers
urn:nbn:se:kth:diva-310526 (URN)10.1016/j.bpj.2021.11.1324 (DOI)000759523001651 ()
Note

QC 20220405

Available from: 2022-04-05 Created: 2022-04-05 Last updated: 2025-02-20Bibliographically approved
Rems, L., Tang, X., Zhao, F., Perez-Conesa, S., Testa, I. & Delemotte, L. (2022). Identification of electroporation sites in the complex lipid organization of the plasma membrane. eLIFE, 11, Article ID e74773.
Open this publication in new window or tab >>Identification of electroporation sites in the complex lipid organization of the plasma membrane
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2022 (English)In: eLIFE, E-ISSN 2050-084X, Vol. 11, article id e74773Article in journal (Refereed) Published
Abstract [en]

The plasma membrane of a biological cell is a complex assembly of lipids and membrane proteins, which tightly regulate transmembrane transport. When a cell is exposed to strong electric field, the membrane integrity becomes transiently disrupted by formation of transmembrane pores. This phenomenon termed electroporation is already utilized in many rapidly developing applications in medicine including gene therapy, cancer treatment, and treatment of cardiac arrhythmias. However, the molecular mechanisms of electroporation are not yet sufficiently well understood; in particular, it is unclear where exactly pores form in the complex organization of the plasma membrane. In this study, we combine coarse-grained molecular dynamics simulations, machine learning methods, and Bayesian survival analysis to identify how formation of pores depends on the local lipid organization. We show that pores do not form homogeneously across the membrane, but colocalize with domains that have specific features, the most important being high density of polyunsaturated lipids. We further show that knowing the lipid organization is sufficient to reliably predict poration sites with machine learning. Additionally, by analysing poration kinetics with Bayesian survival analysis we show that poration does not depend solely on local lipid arrangement, but also on membrane mechanical properties and the polarity of the electric field. Finally, we discuss how the combination of atomistic and coarse-grained molecular dynamics simulations, machine learning methods, and Bayesian survival analysis can guide the design of future experiments and help us to develop an accurate description of plasma membrane electroporation on the whole-cell level. Achieving this will allow us to shift the optimization of electroporation applications from blind trial-and-error approaches to mechanistic-driven design.

Place, publisher, year, edition, pages
eLife Sciences Publications, Ltd, 2022
Keywords
electroporation, molecular dynamics simulations, membrane structure, phospholipids, glycolipids, gangliosides, machine learning, None
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:kth:diva-310784 (URN)10.7554/eLife.74773 (DOI)000770848600001 ()35195069 (PubMedID)2-s2.0-85125587923 (Scopus ID)
Note

QC 20220407

Available from: 2022-04-07 Created: 2022-04-07 Last updated: 2025-02-20Bibliographically approved
Mehregan, A., Perez-Conesa, S., Zhuang, Y., Elbahnsi, A., Pasini, D., Lindahl, E., . . . Delemotte, L. (2022). Probing effects of the SARS-CoV-2 E protein on membrane curvature and intracellular calcium. Biochimica et Biophysica Acta - Biomembranes, 1864(10), Article ID 183994.
Open this publication in new window or tab >>Probing effects of the SARS-CoV-2 E protein on membrane curvature and intracellular calcium
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2022 (English)In: Biochimica et Biophysica Acta - Biomembranes, ISSN 0005-2736, E-ISSN 1879-2642, Vol. 1864, no 10, article id 183994Article in journal (Refereed) Published
Abstract [en]

SARS-CoV-2 contains four structural proteins in its genome. These proteins aid in the assembly and budding of new virions at the ER-Golgi intermediate compartment (ERGIC). Current fundamental research efforts largely focus on one of these proteins - the spike (S) protein. Since successful antiviral therapies are likely to target multiple viral components, there is considerable interest in understanding the biophysical role of its other structural proteins, in particular structural membrane proteins. Here, we have focused our efforts on the characterization of the full-length envelope (E) protein from SARS-CoV-2, combining experimental and computational approaches. Recombinant expression of the full-length E protein from SARS-CoV-2 reveals that this membrane protein is capable of independent multimerization, possibly as a tetrameric or smaller species. Fluorescence microscopy shows that the protein localizes intracellularly, and coarse-grained MD simulations indicate it causes bending of the surrounding lipid bilayer, corroborating a potential role for the E protein in viral budding. Although we did not find robust electrophysiological evidence of ion-channel activity, cells transfected with the E protein exhibited reduced intracellular Ca2+, which may further promote viral replication. However, our atomistic MD simulations revealed that previous NMR structures are relatively unstable, and result in models incapable of ion conduction. Our study highlights the importance of using high-resolution structural data obtained from a full-length protein to gain detailed molecular insights, and eventually permitting virtual drug screening.

Place, publisher, year, edition, pages
ELSEVIER, 2022
Keywords
Sars-Cov-2, Envelope protein, Molecular dynamics simulations, Calcium imaging, Membrane curvature, Intracellular localization
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:kth:diva-315901 (URN)10.1016/j.bbamem.2022.183994 (DOI)000826527800002 ()35724739 (PubMedID)2-s2.0-85132729397 (Scopus ID)
Note

QC 20220728

Available from: 2022-07-28 Created: 2022-07-28 Last updated: 2025-02-20Bibliographically approved
Chen, Y., Fleetwood, O., Perez-Conesa, S. & Delemotte, L. (2021). Allosteric Effect of Nanobody Binding on Ligand-Specific Active States of the beta 2 Adrenergic Receptor. Journal of Chemical Information and Modeling, 61(12), 6024-6037
Open this publication in new window or tab >>Allosteric Effect of Nanobody Binding on Ligand-Specific Active States of the beta 2 Adrenergic Receptor
2021 (English)In: Journal of Chemical Information and Modeling, ISSN 1549-9596, E-ISSN 1549-960X, Vol. 61, no 12, p. 6024-6037Article in journal (Refereed) Published
Abstract [en]

Nanobody binding stabilizes G-protein-coupled receptors (GPCR) in a fully active state and modulates their affinity for bound ligands. However, the atomic-level basis for this allosteric regulation remains elusive. Here, we investigate the conformational changes induced by the binding of a nanobody (Nb80) on the active-like beta 2 adrenergic receptor (beta 2AR) via enhanced sampling molecular dynamics simulations. Dimensionality reduction analysis shows that Nb80 stabilizes structural features of the beta 2AR with an similar to 14 angstrom outward movement of transmembrane helix 6 and a close proximity of transmembrane (TM) helices 5 and 7, and favors the fully active-like conformation of the receptor, independent of ligand binding, in contrast to the conditions under which no intracellular binding partner is bound, in which case the receptor is only stabilized in an intermediateactive state. This activation is supported by the residues located at hotspots located on TMs 5, 6, and 7, as shown by supervised machine learning methods. Besides, ligand-specific subtle differences in the conformations assumed by intracellular loop 2 and extracellular loop 2 are captured from the trajectories of various ligand-bound receptors in the presence of Nb80. Dynamic network analysis further reveals that Nb80 binding triggers tighter and stronger local communication networks between the Nb80 and the ligand-binding sites, primarily involving residues around ICL2 and the intracellular end of TM3, TM5, TM6, as well as ECL2, ECL3, and the extracellular ends of TM6 and TM7. In particular, we identify unique allosteric signal transmission mechanisms between the Nb80-binding site and the extracellular domains in conformations modulated by a full agonist, BI167107, and a G-protein-biased partial agonist, salmeterol, involving mainly TM1 and TM2, and TM5, respectively. Altogether, our results provide insights into the effect of intracellular binding partners on the GPCR activation mechanism, which should be taken into account in structure-based drug discovery.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2021
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:kth:diva-309546 (URN)10.1021/acs.jcim.1c00826 (DOI)000755141900027 ()34780174 (PubMedID)2-s2.0-85119933888 (Scopus ID)
Note

QC 20220314

Available from: 2022-03-14 Created: 2022-03-14 Last updated: 2025-02-20Bibliographically approved
Fleetwood, O., Chen, Y., Perez-Conesa, S. & Delemotte, L. (2021). Elucidation of G-protein-coupled receptor activation via data-driven modeling. European Biophysics Journal, 50(SUPPL 1), 74-74
Open this publication in new window or tab >>Elucidation of G-protein-coupled receptor activation via data-driven modeling
2021 (English)In: European Biophysics Journal, ISSN 0175-7571, E-ISSN 1432-1017, Vol. 50, no SUPPL 1, p. 74-74Article in journal, Meeting abstract (Other academic) Published
Place, publisher, year, edition, pages
Springer, 2021
National Category
Pharmacology and Toxicology
Identifiers
urn:nbn:se:kth:diva-299969 (URN)000671622300110 ()
Note

QC 20210823

Available from: 2021-08-23 Created: 2021-08-23 Last updated: 2022-06-25Bibliographically approved
Perez-Conesa, S., Keeler, E. G., Zhang, D., Delemotte, L. & McDermott, A. E. (2021). Informing NMR experiments with molecular dynamics simulations to characterize the dominant activated state of the KcsA ion channel. Journal of Chemical Physics, 154(16), Article ID 165102.
Open this publication in new window or tab >>Informing NMR experiments with molecular dynamics simulations to characterize the dominant activated state of the KcsA ion channel
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2021 (English)In: Journal of Chemical Physics, ISSN 0021-9606, E-ISSN 1089-7690, Vol. 154, no 16, article id 165102Article in journal (Refereed) Published
Abstract [en]

As the first potassium channel with an x-ray structure determined, and given its homology to eukaryotic channels, the pH-gated prokaryotic channel KcsA has been extensively studied. Nevertheless, questions related, in particular, to the allosteric coupling between its gates remain open. The many currently available x-ray crystallography structures appear to correspond to various stages of activation and inactivation, offering insights into the molecular basis of these mechanisms. Since these studies have required mutations, complexation with antibodies, and substitution of detergents in place of lipids, examining the channel under more native conditions is desirable. Solid-state nuclear magnetic resonance (SSNMR) can be used to study the wild-type protein under activating conditions (low pH), at room temperature, and in bacteriomimetic liposomes. In this work, we sought to structurally assign the activated state present in SSNMR experiments. We used a combination of molecular dynamics (MD) simulations, chemical shift prediction algorithms, and Bayesian inference techniques to determine which of the most plausible x-ray structures resolved to date best represents the activated state captured in SSNMR. We first identified specific nuclei with simulated NMR chemical shifts that differed significantly when comparing partially open vs fully open ensembles from MD simulations. The simulated NMR chemical shifts for those specific nuclei were then compared to experimental ones, revealing that the simulation of the partially open state was in good agreement with the SSNMR data. Nuclei that discriminate effectively between partially and fully open states belong to residues spread over the sequence and provide a molecular level description of the conformational change.

Place, publisher, year, edition, pages
AIP Publishing, 2021
National Category
Physical Chemistry
Identifiers
urn:nbn:se:kth:diva-295358 (URN)10.1063/5.0040649 (DOI)000644254500002 ()33940802 (PubMedID)2-s2.0-85104536325 (Scopus ID)
Note

QC 20210524

Available from: 2021-05-24 Created: 2021-05-24 Last updated: 2022-06-25Bibliographically approved
Perez Conesa, S., Keeler, E. G., McDermott, A. E. & Delemotte, L. (2021). Informing NMR Experiments with Molecular Dynamics Simulations to Characterize the Dominant Open State of KcsA. Biophysical Journal, 120(3), 243A-243A
Open this publication in new window or tab >>Informing NMR Experiments with Molecular Dynamics Simulations to Characterize the Dominant Open State of KcsA
2021 (English)In: Biophysical Journal, ISSN 0006-3495, E-ISSN 1542-0086, Vol. 120, no 3, p. 243A-243AArticle in journal, Meeting abstract (Other academic) Published
Place, publisher, year, edition, pages
Cell Press, 2021
National Category
Physical Chemistry
Identifiers
urn:nbn:se:kth:diva-293461 (URN)000629601401430 ()
Note

QC 20210426

Available from: 2021-04-26 Created: 2021-04-26 Last updated: 2024-03-18Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0003-1951-2543

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