Sandbox 40
Please do NOT make changes to this Sandbox. Sandboxes 30-60 are reserved for use by Biochemistry 410 & 412 at Messiah College taught by Dr. Hannah Tims during Fall 2012 and Spring 2013.
Horse Pancreatic Lipase<StructureSection load='1hpl' size='500' side='right' caption='Structure of Horse Pancreatic Lipase (PDB entry 1hpl)' scene=>Lipase, as its name suggests, is an enzyme responsible for the cleavage of types of lipid molecules. There are different types of lipases, many of which work in similar ways. For instance, Human Pancreatic Lipase, or HPL, splits triglycerides, the main lipids in the human diet, into glycerol and three fatty acids. The structure shown at right is that of Horse Pancreatic Lipase. It consists of two identical subunits, totaling 449 amino acids each, and totals 50 kDA. To better visualize the directionality of the subunits with respect to each other we can use a N to C rainbow diagram. This diagram shows the N-terminus of each subunit in blue, the follows the spectrum through green, yellow, orange, and finally the C-terminus is shown in red. Basic StructureThe secondary structures of lipase (just one subunit) include 102 residues which create 13 alpha helices, shown in red, and 139 residues involved in beta sheets totaling 28 strands, shown in gold. Lipase of course consists of both polar and nonpolar residues. The polar residues in this scene are shown in a light blue shade, and the nonpolar are in a dark red. From this representation, it can be assumed that there is a similar quantity of polar residues as there are nonopolar. The tertiary stucture of the molecule is stabilized by 6 disulfide bonds and ionic interactions with a calcium ligand within each subunit. Finally, the quaternary structure is completed by the adjoining of the two identical subunits.The interactions between the two subunits include hydrogen bonds, hydrophobic interactions, salt bridges, and other interactions. The Calcium LigandThe ligands of lipase are two calcium ions, one buried within each subunit. This scene shows the interactions between the calcium ion (shown in green) in subunit A and the following residues from subunit A: GLU187, ARG190, ASP192, and ASP195. In addition to interactions with these molecules, the calcium ion is also stabilized by the oxygens from two water molecules shown in pink. These interactions between the amino acid residues and the ligand are crucial for proper protein folding, and subsequently protein function. The MechanismEvolutionary Conservation |