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1.
Int J Mol Sci ; 23(17)2022 Aug 30.
Article in English | MEDLINE | ID: covidwho-2006046

ABSTRACT

Sialic acids and heparan sulfates make up the outermost part of the cell membrane and the extracellular matrix. Both structures are characterized by being negatively charged, serving as receptors for various pathogens, and are highly expressed in the respiratory and digestive tracts. Numerous viruses use heparan sulfates as receptors to infect cells; in this group are HSV, HPV, and SARS-CoV-2. Other viruses require the cell to express sialic acids, as is the case in influenza A viruses and adenoviruses. This review aims to present, in a general way, the participation of glycoconjugates in viral entry, and therapeutic strategies focused on inhibiting the interaction between the virus and the glycoconjugates. Interestingly, there are few studies that suggest the participation of both glycoconjugates in the viruses addressed here. Considering the biological redundancy that exists between heparan sulfates and sialic acids, we propose that it is important to jointly evaluate and design strategies that contemplate inhibiting the interactions of both glycoconjugates. This approach will allow identifying new receptors and lead to a deeper understanding of interspecies transmission.


Subject(s)
COVID-19 , Viruses , Glycoconjugates/metabolism , Heparitin Sulfate/metabolism , Humans , N-Acetylneuraminic Acid/metabolism , Receptors, Virus/metabolism , SARS-CoV-2 , Sialic Acids/metabolism , Sulfates , Virus Attachment , Viruses/metabolism
2.
Viral Immunol ; 34(3): 165-173, 2021 04.
Article in English | MEDLINE | ID: covidwho-1569564

ABSTRACT

The current pandemic is caused by the coronavirus disease 2019 (COVID-19), which is, in turn, induced by a novel coronavirus (SARS-CoV-2) that triggers an acute respiratory disease. In recent years, the emergence of SARS-CoV-2 is the third highly pathogenic event and large-scale epidemic affecting the human population. It follows the severe acute respiratory syndrome coronavirus (SARS-CoV) in 2003 and the Middle East respiratory syndrome coronavirus (MERS-CoV) in 2012. This novel SARS-CoV-2 employs the angiotensin-converting enzyme 2 (ACE2) receptor, like SARS-CoV, and spreads principally in the respiratory tract. The viral spike (S) protein of coronaviruses facilities the attachment to the cellular receptor, entrance, and membrane fusion. The S protein is a glycoprotein and is critical to elicit an immune response. Glycosylation is a biologically significant post-translational modification in virus surface proteins. These glycans play important roles in the viral life cycle, structure, immune evasion, and cell infection. However, it is necessary to search for new information about viral behavior and immunological host's response after SARS-CoV-2 infection. The present review discusses the implications of the CoV-2 S protein glycosylation in the SARS-CoV-2/ACE2 interaction and the immunological response. Elucidation of the glycan repertoire on the spike protein can propel research for the development of an appropriate vaccine.


Subject(s)
Angiotensin-Converting Enzyme 2/physiology , COVID-19/immunology , SARS-CoV-2/physiology , Spike Glycoprotein, Coronavirus/physiology , Glycosylation , Humans , SARS-CoV-2/chemistry , SARS-CoV-2/genetics
3.
Sci Rep ; 11(1): 22288, 2021 11 15.
Article in English | MEDLINE | ID: covidwho-1517638

ABSTRACT

Numerous repositioned drugs have been sought to decrease the severity of SARS-CoV-2 infection. It is known that among its physicochemical properties, Ursodeoxycholic Acid (UDCA) has a reduction in surface tension and cholesterol solubilization, it has also been used to treat cholesterol gallstones and viral hepatitis. In this study, molecular docking was performed with the SARS-CoV-2 Spike protein and UDCA. In order to confirm this interaction, we used Molecular Dynamics (MD) in "SARS-CoV-2 Spike protein-UDCA". Using another system, we also simulated MD with six UDCA residues around the Spike protein at random, naming this "SARS-CoV-2 Spike protein-6UDCA". Finally, we evaluated the possible interaction between UDCA and different types of membranes, considering the possible membrane conformation of SARS-CoV-2, this was named "SARS-CoV-2 membrane-UDCA". In the "SARS-CoV-2 Spike protein-UDCA", we found that UDCA exhibits affinity towards the central region of the Spike protein structure of - 386.35 kcal/mol, in a region with 3 alpha helices, which comprises residues from K986 to C1032 of each monomer. MD confirmed that UDCA remains attached and occasionally forms hydrogen bonds with residues R995 and T998. In the presence of UDCA, we observed that the distances between residues atoms OG1 and CG2 of T998 in the monomers A, B, and C in the prefusion state do not change and remain at 5.93 ± 0.62 and 7.78 ± 0.51 Å, respectively, compared to the post-fusion state. Next, in "SARS-CoV-2 Spike protein-6UDCA", the three UDCA showed affinity towards different regions of the Spike protein, but only one of them remained bound to the region between the region's heptad repeat 1 and heptad repeat 2 (HR1 and HR2) for 375 ps of the trajectory. The RMSD of monomer C was the smallest of the three monomers with a value of 2.89 ± 0.32, likewise, the smallest RMSF was also of the monomer C (2.25 ± 056). In addition, in the simulation of "SARS-CoV-2 membrane-UDCA", UDCA had a higher affinity toward the virion-like membrane; where three of the four residues remained attached once they were close (5 Å, to the centre of mass) to the membrane by 30 ns. However, only one of them remained attached to the plasma-like membrane and this was in a cluster of cholesterol molecules. We have shown that UDCA interacts in two distinct regions of Spike protein sequences. In addition, UDCA tends to stay bound to the membrane, which could potentially reduce the internalization of SARS-CoV-2 in the host cell.


Subject(s)
Antiviral Agents/metabolism , Drug Repositioning/methods , Lipid Bilayers/metabolism , Molecular Docking Simulation/methods , Phospholipids/metabolism , Spike Glycoprotein, Coronavirus/metabolism , Ursodeoxycholic Acid/metabolism , Antiviral Agents/chemistry , COVID-19/metabolism , COVID-19/virology , Humans , Hydrogen Bonding , Membrane Fusion , Molecular Dynamics Simulation , Protein Binding , Protein Conformation, alpha-Helical , SARS-CoV-2/metabolism , Spike Glycoprotein, Coronavirus/chemistry , Ursodeoxycholic Acid/chemistry , Virion/metabolism
4.
Mol Cell Biochem ; 476(10): 3815-3825, 2021 Oct.
Article in English | MEDLINE | ID: covidwho-1263168

ABSTRACT

Chagas and COVID-19 are diseases caused by Trypanosoma cruzi and SARS-CoV-2, respectively. These diseases present very different etiological agents despite showing similarities such as susceptibility/risk factors, pathogen-associated molecular patterns (PAMPs), recognition of glycosaminoglycans, inflammation, vascular leakage hypercoagulability, microthrombosis, and endotheliopathy; all of which suggest, in part, treatments with similar principles. Here, both diseases are compared, focusing mainly on the characteristics related to dysregulated immunothrombosis. Given the in-depth investigation of molecules and mechanisms related to microthrombosis in COVID-19, it is necessary to reconsider a prompt treatment of Chagas disease with oral anticoagulants.


Subject(s)
Anticoagulants/therapeutic use , COVID-19/pathology , Chagas Disease/pathology , Heparitin Sulfate/therapeutic use , Thrombosis/drug therapy , Thrombosis/pathology , Blood Platelets/immunology , COVID-19/immunology , Chagas Disease/immunology , Complement Activation/immunology , Endothelium/pathology , Humans , Pathogen-Associated Molecular Pattern Molecules/immunology , Platelet Activation/immunology , SARS-CoV-2/immunology , Trypanosoma cruzi/immunology
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