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      Nanosecond pulsed electric signals can affect electrostatic environment of proteins below the threshold of conformational effects: The case study of SOD1 with a molecular simulation study

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          Abstract

          Electric fields can be a powerful tool to interact with enzymes or proteins, with an intriguing perspective to allow protein manipulation. Recently, researchers have focused the interest on intracellular enzyme modifications triggered by the application of nanosecond pulsed electric fields. These findings were also supported by theoretical predictions from molecular dynamics simulations focussing on significant variations in protein secondary structures. In this work, a theoretical study utilizing molecular dynamics simulations is proposed to explore effects of electric fields of high intensity and very short nanosecond duration applied to the superoxide dismutase (Cu/Zn-SOD or SOD-1), an important enzyme involved in the cellular antioxidant defence mechanism. The effects of 100-nanosecond pulsed electric fields, with intensities ranging from 10 8 to 7x10 8 V/m, on a single SOD1 enzyme are presented. We demonstrated that the lowest intensity of 10 8 V/m, although not inducing structural changes, can produce electrostatic modifications on the reaction centre of the enzyme, as apparent from the dipolar response and the electric field distribution of the protein active site. Electric pulses above 5x10 8 V/m produced a fast transition between the folded and a partially denatured state, as inferred by the secondary structures analysis. Finally, for the highest field intensity used (7x10 8 V/m), a not reversible transition toward an unfolded state was observed.

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            Toxic DNA damage by hydrogen peroxide through the Fenton reaction in vivo and in vitro

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              The structural biochemistry of the superoxide dismutases.

              The discovery of superoxide dismutases (SODs), which convert superoxide radicals to molecular oxygen and hydrogen peroxide, has been termed the most important discovery of modern biology never to win a Nobel Prize. Here, we review the reasons this discovery has been underappreciated, as well as discuss the robust results supporting its premier biological importance and utility for current research. We highlight our understanding of SOD function gained through structural biology analyses, which reveal important hydrogen-bonding schemes and metal-binding motifs. These structural features create remarkable enzymes that promote catalysis at faster than diffusion-limited rates by using electrostatic guidance. These architectures additionally alter the redox potential of the active site metal center to a range suitable for the superoxide disproportionation reaction and protect against inhibition of catalysis by molecules such as phosphate. SOD structures may also control their enzymatic activity through product inhibition; manipulation of these product inhibition levels has the potential to generate therapeutic forms of SOD. Markedly, structural destabilization of the SOD architecture can lead to disease, as mutations in Cu,ZnSOD may result in familial amyotrophic lateral sclerosis, a relatively common, rapidly progressing and fatal neurodegenerative disorder. We describe our current understanding of how these Cu,ZnSOD mutations may lead to aggregation/fibril formation, as a detailed understanding of these mechanisms provides new avenues for the development of therapeutics against this so far untreatable neurodegenerative pathology. Copyright 2009 Elsevier B.V. All rights reserved.
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                Author and article information

                Contributors
                Role: Data curationRole: Formal analysisRole: ValidationRole: Writing – original draft
                Role: ConceptualizationRole: Formal analysisRole: MethodologyRole: Writing – review & editing
                Role: ValidationRole: Writing – review & editing
                Role: ConceptualizationRole: SupervisionRole: Writing – review & editing
                Role: ConceptualizationRole: Project administrationRole: SupervisionRole: Writing – review & editing
                Role: Editor
                Journal
                PLoS One
                PLoS ONE
                plos
                plosone
                PLoS ONE
                Public Library of Science (San Francisco, CA USA )
                1932-6203
                27 August 2019
                2019
                : 14
                : 8
                : e0221685
                Affiliations
                [1 ] BioElectronic Vision Lab, University of Michigan, Ann Arbor, Michigan, United States of America
                [2 ] Rise Technology S.r.l., Rome, Italy
                [3 ] Frank Reidy Research Center for Bioelectrics, Old Dominion University, Norfolk, Virginia, United States of America
                [4 ] Department of Information Engineering, Electronics and Telecommunications, Sapienza University of Rome, Rome, Italy
                Russian Academy of Medical Sciences, RUSSIAN FEDERATION
                Author notes

                Competing Interests: Rise Technology srl affiliation does not alter our adherence to all PLOS ONE policies on sharing data and materials.

                Author information
                http://orcid.org/0000-0001-6937-9731
                Article
                PONE-D-19-16769
                10.1371/journal.pone.0221685
                6711501
                31454403
                c4d72c25-b98f-4639-a62f-86375e82deb1
                © 2019 della Valle et al

                This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

                History
                : 14 June 2019
                : 13 August 2019
                Page count
                Figures: 8, Tables: 0, Pages: 19
                Funding
                Rise Technology srl provided support in the form of salaries for the author [P. Marracino], but did not have any additional role in the study design, data collection and analysis, decision to publish, or preparation of the manuscript. The specific roles of this author are articulated in the ‘author contributions’ section.
                Categories
                Research Article
                Physical Sciences
                Physics
                Electricity
                Electric Field
                Physical Sciences
                Physics
                Electricity
                Electrostatics
                Biology and Life Sciences
                Molecular Biology
                Macromolecular Structure Analysis
                Protein Structure
                Biology and Life Sciences
                Biochemistry
                Proteins
                Protein Structure
                Biology and Life Sciences
                Biochemistry
                Enzymology
                Enzymes
                Dismutases
                Superoxide Dismutase
                Biology and Life Sciences
                Biochemistry
                Proteins
                Enzymes
                Dismutases
                Superoxide Dismutase
                Biology and Life Sciences
                Biochemistry
                Biochemical Simulations
                Biology and Life Sciences
                Computational Biology
                Biochemical Simulations
                Biology and Life Sciences
                Biochemistry
                Enzymology
                Enzymes
                Biology and Life Sciences
                Biochemistry
                Proteins
                Enzymes
                Physical Sciences
                Physics
                Electromagnetism
                Dipole Moments
                Biology and Life Sciences
                Biochemistry
                Enzymology
                Enzyme Structure
                Custom metadata
                All necessary files needed to produce MD trajectories and perform post-elaborations are available through figshare with the following DOI: ( https://doi.org/10.6084/m9.figshare.9642638.v1). Also the modified versions of sim_util.c (for both the MP and BP signals) library have been included. It is necessary to recompile the gromacs package once the original simu_util.c file is overwritten with the ones provided.

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                Uncategorized

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