Journal:MicroPubl Biol:000868

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<b>Molecular Tour</b><br>
<b>Molecular Tour</b><br>
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There are many genes of unknown function in the genomes of all organisms. By studying the predicted structure of the encoded proteins, we can better understand each protein's role and importance for life. A protein of unknown function in a number of important agricultural crops including upland cotton, referred to here as GhGH5BG-A0A1U8NW40 (Gossypium hirsutum Glycosyl Hydrolase 5 β-Glucosidase, UniProt A0A1U8NW40), has a highly confident predicted AlphaFold structure with two distinct folded groups or domains.
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There are many genes of unknown function in the genomes of all organisms. By studying the predicted structure of the encoded proteins, we can better understand each protein's role and importance for life. A protein of unknown function in a number of important agricultural crops including upland cotton, referred to here as GhGH5BG-A0A1U8NW40 (Gossypium hirsutum Glycosyl Hydrolase 5 β-Glucosidase, UniProt A0A1U8NW40), has a <scene name='10/1028493/Structure_from_alphafold/1'>highly confident predicted AlphaFold structure</scene> with two distinct folded groups or domains.
One domain in GhGH5BG-A0A1U8NW40 is recognized by InterPro as a ‘glycoside hydrolase (Cellulase A) family 5’ domain (IPR001547). Proteins with a GH5 domain have a structure with an alpha-beta (β/α)8 or TIM (triose-phosphate isomerase) barrel, which is a structure of eight alpha helices and eight parallel beta strands commonly found in enzymes, protein catalysts (Silverman et al. 2001). The GH5 family contains enzymes with several known activities that hydrolyze or cut carbohydrate (glucan) sugar chains in different ways. In plants, many of these types of enzymes are involved in remodeling the plant cell wall as plants grow and develop as well as respond to stresses. One major difference between enzymes in the GH5 family is whether they cut sugars from the end of the chain (exo activity) or somewhere within the chain (endo activity). The GH5 family contains both exo and endo glucosidases but the structure of the active site can help indicate which category GhGH5BG-A0A1U8NW40 belongs to. Because endo enzymes cut in the middle of the carbohydrate chain, their active sites are shaped like an open groove or cleft to allow it to fit around the chain (such as in this cellulase enzyme, PDB 1CEN​). However, exo enzymes cut sugars off the end of the carbohydrate chain so their active sites are shaped more like a deep pocket (such as this exo-beta-1,3-glucanase, PDB 3N9K). The proposed function of GhGH5BG-A0A1U8NW40 as an exo (1,3-β-glucosidase) is supported by the structure model containing an active site with a deep pocket rather than a groove.
One domain in GhGH5BG-A0A1U8NW40 is recognized by InterPro as a ‘glycoside hydrolase (Cellulase A) family 5’ domain (IPR001547). Proteins with a GH5 domain have a structure with an alpha-beta (β/α)8 or TIM (triose-phosphate isomerase) barrel, which is a structure of eight alpha helices and eight parallel beta strands commonly found in enzymes, protein catalysts (Silverman et al. 2001). The GH5 family contains enzymes with several known activities that hydrolyze or cut carbohydrate (glucan) sugar chains in different ways. In plants, many of these types of enzymes are involved in remodeling the plant cell wall as plants grow and develop as well as respond to stresses. One major difference between enzymes in the GH5 family is whether they cut sugars from the end of the chain (exo activity) or somewhere within the chain (endo activity). The GH5 family contains both exo and endo glucosidases but the structure of the active site can help indicate which category GhGH5BG-A0A1U8NW40 belongs to. Because endo enzymes cut in the middle of the carbohydrate chain, their active sites are shaped like an open groove or cleft to allow it to fit around the chain (such as in this cellulase enzyme, PDB 1CEN​). However, exo enzymes cut sugars off the end of the carbohydrate chain so their active sites are shaped more like a deep pocket (such as this exo-beta-1,3-glucanase, PDB 3N9K). The proposed function of GhGH5BG-A0A1U8NW40 as an exo (1,3-β-glucosidase) is supported by the structure model containing an active site with a deep pocket rather than a groove.

Revision as of 15:32, 8 February 2024

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