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Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †

The global outbreak of SARS-CoV-2/COVID-19 provided the stage to accumulate an enormous biomedical data set and an opportunity as well as a challenge to test new concepts and strategies to combat the pandemic. New research and molecular medical protocols may be deployed in different scientific field...

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Autores principales: Siebert, Hans-Christian, Eckert, Thomas, Bhunia, Anirban, Klatte, Nele, Mohri, Marzieh, Siebert, Simone, Kozarova, Anna, Hudson, John W., Zhang, Ruiyan, Zhang, Ning, Li, Lan, Gousias, Konstantinos, Kanakis, Dimitrios, Yan, Mingdi, Jiménez-Barbero, Jesús, Kožár, Tibor, Nifantiev, Nikolay E., Vollmer, Christian, Brandenburger, Timo, Kindgen-Milles, Detlef, Haak, Thomas, Petridis, Athanasios K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216059/
https://www.ncbi.nlm.nih.gov/pubmed/37239092
http://dx.doi.org/10.3390/biomedicines11051421
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author Siebert, Hans-Christian
Eckert, Thomas
Bhunia, Anirban
Klatte, Nele
Mohri, Marzieh
Siebert, Simone
Kozarova, Anna
Hudson, John W.
Zhang, Ruiyan
Zhang, Ning
Li, Lan
Gousias, Konstantinos
Kanakis, Dimitrios
Yan, Mingdi
Jiménez-Barbero, Jesús
Kožár, Tibor
Nifantiev, Nikolay E.
Vollmer, Christian
Brandenburger, Timo
Kindgen-Milles, Detlef
Haak, Thomas
Petridis, Athanasios K.
author_facet Siebert, Hans-Christian
Eckert, Thomas
Bhunia, Anirban
Klatte, Nele
Mohri, Marzieh
Siebert, Simone
Kozarova, Anna
Hudson, John W.
Zhang, Ruiyan
Zhang, Ning
Li, Lan
Gousias, Konstantinos
Kanakis, Dimitrios
Yan, Mingdi
Jiménez-Barbero, Jesús
Kožár, Tibor
Nifantiev, Nikolay E.
Vollmer, Christian
Brandenburger, Timo
Kindgen-Milles, Detlef
Haak, Thomas
Petridis, Athanasios K.
author_sort Siebert, Hans-Christian
collection PubMed
description The global outbreak of SARS-CoV-2/COVID-19 provided the stage to accumulate an enormous biomedical data set and an opportunity as well as a challenge to test new concepts and strategies to combat the pandemic. New research and molecular medical protocols may be deployed in different scientific fields, e.g., glycobiology, nanopharmacology, or nanomedicine. We correlated clinical biomedical data derived from patients in intensive care units with structural biology and biophysical data from NMR and/or CAMM (computer-aided molecular modeling). Consequently, new diagnostic and therapeutic approaches against SARS-CoV-2 were evaluated. Specifically, we tested the suitability of incretin mimetics with one or two pH-sensitive amino acid residues as potential drugs to prevent or cure long-COVID symptoms. Blood pH values in correlation with temperature alterations in patient bodies were of clinical importance. The effects of biophysical parameters such as temperature and pH value variation in relation to physical-chemical membrane properties (e.g., glycosylation state, affinity of certain amino acid sequences to sialic acids as well as other carbohydrate residues and lipid structures) provided helpful hints in identifying a potential Achilles heel against long COVID. In silico CAMM methods and in vitro NMR experiments (including (31)P NMR measurements) were applied to analyze the structural behavior of incretin mimetics and SARS-CoV fusion peptides interacting with dodecylphosphocholine (DPC) micelles. These supramolecular complexes were analyzed under physiological conditions by (1)H and (31)P NMR techniques. We were able to observe characteristic interaction states of incretin mimetics, SARS-CoV fusion peptides and DPC membranes. Novel interaction profiles (indicated, e.g., by (31)P NMR signal splitting) were detected. Furthermore, we evaluated GM1 gangliosides and sialic acid-coated silica nanoparticles in complex with DPC micelles in order to create a simple virus host cell membrane model. This is a first step in exploring the structure–function relationship between the SARS-CoV-2 spike protein and incretin mimetics with conserved pH-sensitive histidine residues in their carbohydrate recognition domains as found in galectins. The applied methods were effective in identifying peptide sequences as well as certain carbohydrate moieties with the potential to protect the blood–brain barrier (BBB). These clinically relevant observations on low blood pH values in fatal COVID-19 cases open routes for new therapeutic approaches, especially against long-COVID symptoms.
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spelling pubmed-102160592023-05-27 Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms † Siebert, Hans-Christian Eckert, Thomas Bhunia, Anirban Klatte, Nele Mohri, Marzieh Siebert, Simone Kozarova, Anna Hudson, John W. Zhang, Ruiyan Zhang, Ning Li, Lan Gousias, Konstantinos Kanakis, Dimitrios Yan, Mingdi Jiménez-Barbero, Jesús Kožár, Tibor Nifantiev, Nikolay E. Vollmer, Christian Brandenburger, Timo Kindgen-Milles, Detlef Haak, Thomas Petridis, Athanasios K. Biomedicines Article The global outbreak of SARS-CoV-2/COVID-19 provided the stage to accumulate an enormous biomedical data set and an opportunity as well as a challenge to test new concepts and strategies to combat the pandemic. New research and molecular medical protocols may be deployed in different scientific fields, e.g., glycobiology, nanopharmacology, or nanomedicine. We correlated clinical biomedical data derived from patients in intensive care units with structural biology and biophysical data from NMR and/or CAMM (computer-aided molecular modeling). Consequently, new diagnostic and therapeutic approaches against SARS-CoV-2 were evaluated. Specifically, we tested the suitability of incretin mimetics with one or two pH-sensitive amino acid residues as potential drugs to prevent or cure long-COVID symptoms. Blood pH values in correlation with temperature alterations in patient bodies were of clinical importance. The effects of biophysical parameters such as temperature and pH value variation in relation to physical-chemical membrane properties (e.g., glycosylation state, affinity of certain amino acid sequences to sialic acids as well as other carbohydrate residues and lipid structures) provided helpful hints in identifying a potential Achilles heel against long COVID. In silico CAMM methods and in vitro NMR experiments (including (31)P NMR measurements) were applied to analyze the structural behavior of incretin mimetics and SARS-CoV fusion peptides interacting with dodecylphosphocholine (DPC) micelles. These supramolecular complexes were analyzed under physiological conditions by (1)H and (31)P NMR techniques. We were able to observe characteristic interaction states of incretin mimetics, SARS-CoV fusion peptides and DPC membranes. Novel interaction profiles (indicated, e.g., by (31)P NMR signal splitting) were detected. Furthermore, we evaluated GM1 gangliosides and sialic acid-coated silica nanoparticles in complex with DPC micelles in order to create a simple virus host cell membrane model. This is a first step in exploring the structure–function relationship between the SARS-CoV-2 spike protein and incretin mimetics with conserved pH-sensitive histidine residues in their carbohydrate recognition domains as found in galectins. The applied methods were effective in identifying peptide sequences as well as certain carbohydrate moieties with the potential to protect the blood–brain barrier (BBB). These clinically relevant observations on low blood pH values in fatal COVID-19 cases open routes for new therapeutic approaches, especially against long-COVID symptoms. MDPI 2023-05-11 /pmc/articles/PMC10216059/ /pubmed/37239092 http://dx.doi.org/10.3390/biomedicines11051421 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Siebert, Hans-Christian
Eckert, Thomas
Bhunia, Anirban
Klatte, Nele
Mohri, Marzieh
Siebert, Simone
Kozarova, Anna
Hudson, John W.
Zhang, Ruiyan
Zhang, Ning
Li, Lan
Gousias, Konstantinos
Kanakis, Dimitrios
Yan, Mingdi
Jiménez-Barbero, Jesús
Kožár, Tibor
Nifantiev, Nikolay E.
Vollmer, Christian
Brandenburger, Timo
Kindgen-Milles, Detlef
Haak, Thomas
Petridis, Athanasios K.
Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title_full Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title_fullStr Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title_full_unstemmed Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title_short Blood pH Analysis in Combination with Molecular Medical Tools in Relation to COVID-19 Symptoms †
title_sort blood ph analysis in combination with molecular medical tools in relation to covid-19 symptoms †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216059/
https://www.ncbi.nlm.nih.gov/pubmed/37239092
http://dx.doi.org/10.3390/biomedicines11051421
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