User:Davi de Souza/Sandbox 1

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Images generated in the pymol app and edited by paint 3D
Images generated in the pymol app and edited by paint 3D
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The oligomerization of aerolysin, resulting from the circular association of the beta barrels from the seven monomers, forms a <scene name='97/973994/Oligomer_sanduich_beta/1'>hollow cylindrical structure</scene> (in the image, each color represents the domain 4 of a monomer, forming a tube). It is interesting to note that the beta sheets present in the cylinder are anti-parallel.
The oligomerization of aerolysin, resulting from the circular association of the beta barrels from the seven monomers, forms a <scene name='97/973994/Oligomer_sanduich_beta/1'>hollow cylindrical structure</scene> (in the image, each color represents the domain 4 of a monomer, forming a tube). It is interesting to note that the beta sheets present in the cylinder are anti-parallel.
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Image generated in the pymol app and edited by paint 3D
Image generated in the pymol app and edited by paint 3D
 +
Subsequently, domains 3 and 4 twist slightly relative to domains 1 and 2, allowing for the elongation of the inner beta barrel through the addition of amino acids. In the 3D representation of the box next to it, we can observe the phenomenon described above: First showing the <scene name='97/973994/Beta_sheets_prepore/2'>beta sheets</scene> that form the cylindrical tube of the barrel and then the <scene name='97/973994/Domains_prepore/2'>post-pre-pore structure</scene>, with the domains of a monomer.
Subsequently, domains 3 and 4 twist slightly relative to domains 1 and 2, allowing for the elongation of the inner beta barrel through the addition of amino acids. In the 3D representation of the box next to it, we can observe the phenomenon described above: First showing the <scene name='97/973994/Beta_sheets_prepore/2'>beta sheets</scene> that form the cylindrical tube of the barrel and then the <scene name='97/973994/Domains_prepore/2'>post-pre-pore structure</scene>, with the domains of a monomer.

Revision as of 17:08, 6 July 2023

Aerolysin

General Aspects and function

Aerolysin is a toxin synthesized by some species of bacteria belonging to the genus Aeromonas, such as Aeromonas hydrophila. The exact function of Aerolysin may vary among different species and strains of Aeromonas. However, it is evident that it is the main macromolecule responsible for the pathogenicity of Aeromonas hydrophila, being associated with diarrheal diseases and deep wound infections [1]. About the structure of the protein, it is known that the toxin is setted up in an oligomeric structure with the activated forms of the monomers called proaerolysin.

Aerolysin plays several roles in the pathogenicity of Aeromonas sp. One of its main functions is its ability to promote lysis (rupture) of host cells, such as epithelial cells and immune cells. Aerolysin exhibits cytotoxic activity, causing damage to the cell membranes of host cells, which can lead to cell death and contribute to the bacterium's pathogenicity. Furthermore, aerolysin may be involved in the invasion and dissemination of the bacterium within the host. It can assist in tissue degradation, facilitating the bacterium's invasion into different organs and tissues of the host. Additionally, there are other proteins and virulence factors produced by Aeromonas spp. that also play important roles in the pathogenicity of these bacteria.


Oligomer structure of Aerolysin

Drag the structure with the mouse to rotate

Biotechnological applications of aerolysin

In addition to its biological importance, aerolysin has also sparked interest in the field of nanotechnology due to its potential as a sensor in nanopore sequencing. In this technique, a nucleic acid molecule is passed through a nanopore, and individual nucleotide bases are detected and identified through characteristic changes in the electrical or ionic signal generated during the translocation. By observing the nature of aerolysin pores, some scientists have begun to explore the use of aerolysin pores in sequencing. Several aerolysin mutants used in nanopore sequencing have shown promising results, demonstrating excellent sensitivity, selectivity, and stability. [4]

References

  1. Altwegg M, Geiss HK. Aeromonas as a human pathogen. Crit Rev Microbiol. 1989;16(4):253-86. PMID:2649316 doi:10.3109/10408418909105478
  2. Parker MW, Buckley JT, Postma JP, Tucker AD, Leonard K, Pattus F, Tsernoglou D. Structure of the Aeromonas toxin proaerolysin in its water-soluble and membrane-channel states. Nature. 1994 Jan 20;367(6460):292-5. PMID:7510043 doi:http://dx.doi.org/10.1038/367292a0
  3. Iacovache I, De Carlo S, Cirauqui N, Dal Peraro M, van der Goot FG, Zuber B. Cryo-EM structure of aerolysin variants reveals a novel protein fold and the pore-formation process. Nat Commun. 2016 Jul 13;7:12062. doi: 10.1038/ncomms12062. PMID:27405240 doi:http://dx.doi.org/10.1038/ncomms12062
  4. Wang Y, Gu LQ, Tian K. The aerolysin nanopore: from peptidomic to genomic applications. Nanoscale. 2018 Aug 7;10(29):13857-13866. PMID:29998253 doi:10.1039/c8nr04255a

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