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The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action

Mitochondrial dysfunction underlies many heritable diseases, acquired pathologies, and aging-related declines in health. Szeto–Schiller (SS) peptides comprise a class of amphipathic tetrapeptides that are efficacious toward a wide array of mitochondrial disorders and are believed to target mitochond...

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Autores principales: Mitchell, Wayne, Ng, Emily A., Tamucci, Jeffrey D., Boyd, Kevin J., Sathappa, Murugappan, Coscia, Adrian, Pan, Meixia, Han, Xianlin, Eddy, Nicholas A., May, Eric R., Szeto, Hazel H., Alder, Nathan N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7247319/
https://www.ncbi.nlm.nih.gov/pubmed/32273339
http://dx.doi.org/10.1074/jbc.RA119.012094
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author Mitchell, Wayne
Ng, Emily A.
Tamucci, Jeffrey D.
Boyd, Kevin J.
Sathappa, Murugappan
Coscia, Adrian
Pan, Meixia
Han, Xianlin
Eddy, Nicholas A.
May, Eric R.
Szeto, Hazel H.
Alder, Nathan N.
author_facet Mitchell, Wayne
Ng, Emily A.
Tamucci, Jeffrey D.
Boyd, Kevin J.
Sathappa, Murugappan
Coscia, Adrian
Pan, Meixia
Han, Xianlin
Eddy, Nicholas A.
May, Eric R.
Szeto, Hazel H.
Alder, Nathan N.
author_sort Mitchell, Wayne
collection PubMed
description Mitochondrial dysfunction underlies many heritable diseases, acquired pathologies, and aging-related declines in health. Szeto–Schiller (SS) peptides comprise a class of amphipathic tetrapeptides that are efficacious toward a wide array of mitochondrial disorders and are believed to target mitochondrial membranes because they are enriched in the anionic phospholipid cardiolipin (CL). However, little is known regarding how SS peptides interact with or alter the physical properties of lipid bilayers. In this study, using biophysical and computational approaches, we have analyzed the interactions of the lead compound SS-31 (elamipretide) with model and mitochondrial membranes. Our results show that this polybasic peptide partitions into the membrane interfacial region with an affinity and a lipid binding density that are directly related to surface charge. We found that SS-31 binding does not destabilize lamellar bilayers even at the highest binding concentrations; however, it did cause saturable alterations in lipid packing. Most notably, SS-31 modulated the surface electrostatics of both model and mitochondrial membranes. We propose nonexclusive mechanisms by which the tuning of surface charge could underpin the mitoprotective properties of SS-31, including alteration of the distribution of ions and basic proteins at the interface, and/or modulation of bilayer physical properties. As a proof of concept, we show that SS-31 alters divalent cation (calcium) distribution within the interfacial region and reduces the energetic burden of calcium stress in mitochondria. The mechanistic details of SS-31 revealed in this study will help inform the development of future compound variants with enhanced efficacy and bioavailability.
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spelling pubmed-72473192020-06-05 The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action Mitchell, Wayne Ng, Emily A. Tamucci, Jeffrey D. Boyd, Kevin J. Sathappa, Murugappan Coscia, Adrian Pan, Meixia Han, Xianlin Eddy, Nicholas A. May, Eric R. Szeto, Hazel H. Alder, Nathan N. J Biol Chem Molecular Biophysics Mitochondrial dysfunction underlies many heritable diseases, acquired pathologies, and aging-related declines in health. Szeto–Schiller (SS) peptides comprise a class of amphipathic tetrapeptides that are efficacious toward a wide array of mitochondrial disorders and are believed to target mitochondrial membranes because they are enriched in the anionic phospholipid cardiolipin (CL). However, little is known regarding how SS peptides interact with or alter the physical properties of lipid bilayers. In this study, using biophysical and computational approaches, we have analyzed the interactions of the lead compound SS-31 (elamipretide) with model and mitochondrial membranes. Our results show that this polybasic peptide partitions into the membrane interfacial region with an affinity and a lipid binding density that are directly related to surface charge. We found that SS-31 binding does not destabilize lamellar bilayers even at the highest binding concentrations; however, it did cause saturable alterations in lipid packing. Most notably, SS-31 modulated the surface electrostatics of both model and mitochondrial membranes. We propose nonexclusive mechanisms by which the tuning of surface charge could underpin the mitoprotective properties of SS-31, including alteration of the distribution of ions and basic proteins at the interface, and/or modulation of bilayer physical properties. As a proof of concept, we show that SS-31 alters divalent cation (calcium) distribution within the interfacial region and reduces the energetic burden of calcium stress in mitochondria. The mechanistic details of SS-31 revealed in this study will help inform the development of future compound variants with enhanced efficacy and bioavailability. American Society for Biochemistry and Molecular Biology 2020-05-22 2020-04-09 /pmc/articles/PMC7247319/ /pubmed/32273339 http://dx.doi.org/10.1074/jbc.RA119.012094 Text en © 2020 Mitchell et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Molecular Biophysics
Mitchell, Wayne
Ng, Emily A.
Tamucci, Jeffrey D.
Boyd, Kevin J.
Sathappa, Murugappan
Coscia, Adrian
Pan, Meixia
Han, Xianlin
Eddy, Nicholas A.
May, Eric R.
Szeto, Hazel H.
Alder, Nathan N.
The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title_full The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title_fullStr The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title_full_unstemmed The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title_short The mitochondria-targeted peptide SS-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
title_sort mitochondria-targeted peptide ss-31 binds lipid bilayers and modulates surface electrostatics as a key component of its mechanism of action
topic Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7247319/
https://www.ncbi.nlm.nih.gov/pubmed/32273339
http://dx.doi.org/10.1074/jbc.RA119.012094
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