Amylase: Difference between revisions

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<StructureSection load='' size='350' side='right' scene='Sandbox_182/Alpha-amylase/1' caption='Amylase complex with Ca+2 (green) and Na+ (purple) ions (PDB code [[1hvx]])'>
<StructureSection load='' size='350' side='right' scene='Sandbox_182/Alpha-amylase/1' caption='Amylase complex with Ca+2 (green) and Na+ (purple) ions (PDB code [[1hvx]])'>
=Introduction=
=Introduction=
Discovered and isolated by [http://en.wikipedia.org/wiki/Anselme_Payen Anselme Payen] in 1833, amylase was the first enzyme to be discovered<ref name="book">Yamamoto T.1988. Handbook of Amylases and Related Enzymes: Their Sources, Isolation Methods, Properties and Applications. Osaka Japan: Pergamon Press</ref>. Amylases are hydrolases, acting on α-1,4-glycosidic bonds<ref name="Path">PMID:9541387</ref>. They can be further subdivided into α,β and γ amylases<ref name="book"/>.'''α-Amylase''' (AAM) is an enzyme that acts as a catalyst for the hydrolysis of α-linked polysaccharides into α-anomeric products<ref name="Main">PMID:11226887</ref>. The enzyme can be derived from a variety of sources, each with different characteristics. α-Amylase found within the human body serves as the enzyme active in pancreatic juice and saliva<ref name="Path"/>. α-Amylase is not only essential in human physiology but has a number of important biotechnological functions in various processing industries.  '''β/α amylase''' (BAAM) is a precursor protein which is cleaved to form the β-amylase and α-amylase after secretion.  '''β amylase''' (BAM) acts at the non-reducing chain ends and liberate only β-maltose<ref>PMID:6168260</ref>.  '''γ amylase''' (GAM) acts at the non-reducing chain ends of amylose and amylopectin and liberates glucose.  '''Pullulanase''' hydrolyses the α-1,6 glucoside linkage in starch, amylopectin, pullulan and related oligosaccharides<ref>PMID:22991654</ref>.<br />
Discovered and isolated by [http://en.wikipedia.org/wiki/Anselme_Payen Anselme Payen] in 1833, '''amylase''' was the first enzyme to be discovered<ref name="book">Yamamoto T.1988. Handbook of Amylases and Related Enzymes: Their Sources, Isolation Methods, Properties and Applications. Osaka Japan: Pergamon Press</ref>. Amylases are hydrolases, acting on α-1,4-glycosidic bonds<ref name="Path">PMID:9541387</ref>. They can be further subdivided into α,β and γ amylases<ref name="book"/>.'''α-Amylase''' (AAM) is an enzyme that acts as a catalyst for the hydrolysis of α-linked polysaccharides into α-anomeric products<ref name="Main">PMID:11226887</ref>. The enzyme can be derived from a variety of sources, each with different characteristics. α-Amylase found within the human body serves as the enzyme active in pancreatic juice and saliva<ref name="Path"/>. α-Amylase is not only essential in human physiology but has a number of important biotechnological functions in various processing industries.  '''β/α amylase''' (BAAM) is a precursor protein which is cleaved to form the β-amylase and α-amylase after secretion.  '''β amylase''' (BAM) acts at the non-reducing chain ends and liberate only β-maltose<ref>PMID:6168260</ref>.  '''γ amylase''' (GAM) acts at the non-reducing chain ends of amylose and amylopectin and liberates glucose.  '''Pullulanase''' hydrolyses the α-1,6 glucoside linkage in starch, amylopectin, pullulan and related oligosaccharides<ref>PMID:22991654</ref>.<br />
*'''Neopullulanase''' is involved in starch degrading<ref>PMID:8955399</ref>.<br />
For α-amylase see [[Raghad zoubi]]<br />
For α-amylase see [[Raghad zoubi]]<br />
See also [[Amylase (Hebrew)]].
See also [[Amylase (Hebrew)]].
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β/α amylase (BAAM) is a precursor protein which is cleaved to form the β-amylase and α-amylase after secretion.
β/α amylase (BAAM) is a precursor protein which is cleaved to form the β-amylase and α-amylase after secretion.


=  Structure of the AmyC GH13 alpha-amylase from Alicyclobacillus sp, reveals accommodation of starch branching points in the alpha-amylase family =
=  Structure of the AmyC GH13 alpha-amylase from Alicyclobacillus sp, reveals accommodation of starch branching points in the alpha-amylase family<ref>doi 10.1107/S2059798318014900</ref> =
<big>Jon Agirre, Olga Moroz, Sebastian Meier, Jesper Brask, Astrid Munch, Tine Hoff, Carsten Andersen, Keith S. Wilsona and Gideon J. Davies</big> <ref>doi 10.1107/S2059798318014900</ref>
 
<hr/>
<b>Molecular Tour</b><br>
The enzymatic degradation of starch has a myriad industrial applications. However, the branched nature of the polysaccharides that compose it poses problems, as branches have to be accommodated within an active centre best suited to linear polysaccharides. Alpha-amylases are glycoside hydrolases that break the α-1,4 bonds in starch and related glycans. The present work provides a rare insight into branch-point acceptance in these industrial catalysts.
The enzymatic degradation of starch has a myriad industrial applications. However, the branched nature of the polysaccharides that compose it poses problems, as branches have to be accommodated within an active centre best suited to linear polysaccharides. Alpha-amylases are glycoside hydrolases that break the α-1,4 bonds in starch and related glycans. The present work provides a rare insight into branch-point acceptance in these industrial catalysts.



Latest revision as of 09:19, 26 May 2024

Amylase complex with Ca+2 (green) and Na+ (purple) ions (PDB code 1hvx)

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References