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== Function(s) and Biological Relevance ==
== Function(s) and Biological Relevance ==
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Bap1, which is a protein found in bacterial biofilms in ''Vibrio Cholerae'', plays a significant role in the medical world. It is involved in the disease progression of Cholera. Bap1 is composed of two main structural units which include the beta prism domain and the beta propeller domain. It's main role is to bind citrate and carbohydrates, which occurs in the binding pocket of the beta prism domain. The article analyzed takes a further look into the structural function of the protein and its significance to overall biofilm adhesion.
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Bap1, which is a protein found in bacterial biofilms in ''Vibrio Cholerae'', plays a significant role in the medical world. It is involved in the disease progression of Cholera. Bap1 is lectin composed of two main structural units which include the beta prism domain and the beta propeller domain. It's main role is to bind citrate and carbohydrates, which occurs in the binding pocket of the beta prism domain. The article analyzed takes a further look into the structural function of the protein and its significance to overall biofilm adhesion.
== Broader Implications ==
== Broader Implications ==
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== Structural highlights and structure-function relationships ==
== Structural highlights and structure-function relationships ==
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<scene name='82/823090/Secondary_structure/18'>β-prism and β-propeller Domains Highlight Key Secondary Structures in 6MLT</scene>
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<scene name='82/823090/Secondary_structure/18'>Secondary Structure in Bap1 Important for Function of Tertiary Protein Structure</scene>
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Secondary structure is important in Bap1. 6MLT is composed of two major domains, the β-prism domain and the 8-bladed β-propeller domain. The two domains are connected via two strands in between the five and six blade, allowing for a great amount of flexibility between the two domains.The β-prism contains a specific structural fold in the Bap1 protein consisting of three β-sheets, each with four strands. The β-prism plays a key role in binding negatively charged citrate and sugar molecules. The β-propeller is composed of calcium/sodium binding motifs, which are significant in binding calcium and sodium ions. The Yellow in the model represents the beta-helix, with pink showing the alpha-helix, white showing coils and loops, and turns in blue.
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Secondary structure is important in Bap1. 6MLT is composed of two major tertiary structures, the β-prism domain and the 8-bladed β-propeller domain. The β-prism domain is composed of twelve β-strands arranged into three antiparallel β-sheets with greek key folds.<ref>PMID:31439670</ref> A greek key fold motif is a specific structural fold in a protein consisting of four adjacent antiparallel strands and their three linking loops.<ref>https://www.slideshare.net/RajeshG5/bt631-6-structuralmotifs</ref>. The Yellow in the model represents the beta-helix, with pink showing the alpha-helix, white showing coils and loops, and turns in blue.
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<scene name='82/823090/Tertiary_structure/1'>β-prism and β-propeller Domains Highlight Key Tertiary Structures in 6MLT</scene>
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Bap1 is composed of a β-propeller which gets interrupted by a β-prism. The two domains are connected via two strands in between the five and six blade, allowing for a great amount of flexibility between the two domains. The β-prism plays a key role in biofilm adehsion. binding negatively charged citrate and sugar molecules. The β-prism contains a specific structural fold in the Bap1 protein consisting of three β-sheets, each with four strands. The β-propeller is composed of calcium/sodium binding motifs, which are significant in binding calcium and sodium ions.
<scene name='82/823090/Binding_site_on_bprism/13'>Pocket on β-prism Functional for Binding Citrate and Carbohydrates</scene>
<scene name='82/823090/Binding_site_on_bprism/13'>Pocket on β-prism Functional for Binding Citrate and Carbohydrates</scene>

Revision as of 21:43, 7 December 2019

This Sandbox is Reserved from Aug 26 through Dec 12, 2019 for use in the course CHEM 351 Biochemistry taught by Bonnie_Hall at the Grand View University, Des Moines, USA. This reservation includes Sandbox Reserved 1556 through Sandbox Reserved 1575.
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6MLT Protein Bap1

Caption for this structure

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References

  1. https://www.who.int/news-room/fact-sheets/detail/cholera
  2. Kaus K, Biester A, Chupp E, Lu J, Visudharomn C, Olson R. The 1.9 A crystal structure of the extracellular matrix protein Bap1 from Vibrio cholerae provides insights into bacterial biofilm adhesion. J Biol Chem. 2019 Oct 4;294(40):14499-14511. doi: 10.1074/jbc.RA119.008335. Epub , 2019 Aug 22. PMID:31439670 doi:http://dx.doi.org/10.1074/jbc.RA119.008335
  3. https://www.slideshare.net/RajeshG5/bt631-6-structuralmotifs
  4. Kaus K, Biester A, Chupp E, Lu J, Visudharomn C, Olson R. The 1.9 A crystal structure of the extracellular matrix protein Bap1 from Vibrio cholerae provides insights into bacterial biofilm adhesion. J Biol Chem. 2019 Oct 4;294(40):14499-14511. doi: 10.1074/jbc.RA119.008335. Epub , 2019 Aug 22. PMID:31439670 doi:http://dx.doi.org/10.1074/jbc.RA119.008335
  5. Kaus K, Biester A, Chupp E, Lu J, Visudharomn C, Olson R. The 1.9 A crystal structure of the extracellular matrix protein Bap1 from Vibrio cholerae provides insights into bacterial biofilm adhesion. J Biol Chem. 2019 Oct 4;294(40):14499-14511. doi: 10.1074/jbc.RA119.008335. Epub , 2019 Aug 22. PMID:31439670 doi:http://dx.doi.org/10.1074/jbc.RA119.008335
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