SUKENÍK, Lukáš, Rahul DEB a Robert VÁCHA. HOW LARGE MOLECULES CAN ENTER CELL. In Czech Chemical Society Symposium Series - Annual meeting of the National Institute of Virology and Bacteriology (NIVB). 2022. ISSN 2336-7202.
Další formáty:   BibTeX LaTeX RIS
Základní údaje
Originální název HOW LARGE MOLECULES CAN ENTER CELL
Autoři SUKENÍK, Lukáš, Rahul DEB a Robert VÁCHA.
Vydání Czech Chemical Society Symposium Series - Annual meeting of the National Institute of Virology and Bacteriology (NIVB), 2022.
Další údaje
Originální jazyk angličtina
Typ výsledku Konferenční abstrakta
Stát vydavatele Česká republika
Utajení není předmětem státního či obchodního tajemství
WWW URL
Organizace Středoevropský technologický institut – Masarykova univerzita – Repozitář
ISSN 2336-7202
Klíčová slova anglicky LARGE MOLECULES; CELL
Návaznosti LM2015085, projekt VaV. LX22NPO5103, projekt VaV. 101001470, interní kód Repo. CESNET II, velká výzkumná infrastruktura. IT4Innovations, velká výzkumná infrastruktura.
Změnil Změnil: RNDr. Daniel Jakubík, učo 139797. Změněno: 7. 2. 2023 04:35.
Anotace
Various endocytic pathways have evolved to tightly regulate the vital internalization of large molecules into cells. However, viruses can hijack these processes to enter their hosts. After the interaction between the virus and membrane receptors, the plasma membrane is bent and wrapped around the virus. Once the wrapping is completed, the virus is internalized in the endosome. We have shown that such wrapping could be a spontaneous process, i.e., not requiring ATP, and its efficacy depends on the virus size, shape, and coverage of binding sites1,2. This pathway is not limited to viruses and could be utilized by nanoparticles and other drug carriers. Later in the cell, viruses need to release their content into the cell. This release was previously assumed to occur via tiny pores/openings observed in non-enveloped RNA virus structures. However, such a release would be slow, requiring the unwinding of putative double-stranded segments and enabling genome degradation. We have recently combined cryo-electron microscopy and computer simulations to demonstrate an alternative release mechanism in which the capsid cracks open, and the genome rapidly releases via a large opening3,4. This release was triggered by decreased pH in vitro, and self-reassembled capsids were found to occasionally miss one or few capsid-protein pentamers after the release. The shape and extent of the opening were determined to depend primarily on the interaction range between the pentamers5. These findings uncover molecular details of virus entry and genome release that could be utilized in the development of antiviral drugs or nanoparticles for drug delivery.
Typ Název Vložil/a Vloženo Práva
37-68-PB-pages-24.pdf Licence Creative Commons  Verze souboru 7. 2. 2023

Vlastnosti

Název
37-68-PB-pages-24.pdf
Adresa v ISu
https://repozitar.cz/auth/repo/54130/1451177/
Adresa ze světa
https://repozitar.cz/repo/54130/1451177/
Adresa do Správce
https://repozitar.cz/auth/repo/54130/1451177/?info
Ze světa do Správce
https://repozitar.cz/repo/54130/1451177/?info
Vloženo
Út 7. 2. 2023 04:35

Práva

Právo číst
  • kdokoliv v Internetu
Právo vkládat
 
Právo spravovat
  • osoba Mgr. Lucie Vařechová, uco 106253
  • osoba RNDr. Daniel Jakubík, uco 139797
  • osoba Mgr. Jolana Surýnková, uco 220973
  • osoba Mgr. Michal Maňas, uco 2481
Atributy
 
Vytisknout
Přidat do schránky Zobrazeno: 17. 5. 2024 14:17