Sandbox Reserved 191: Difference between revisions

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The binding surface of PPT-1 creates an external hydrophobic groove that binds the palmitate acid in-between carbon 4 and 5 (Figure 1).  The acid binds in a [https://en.wikipedia.org/wiki/Gauche_effect gauche conformation] creating a <scene name='58/580839/Kink_in_acid/1'>kink </scene>
The binding surface of PPT-1 creates an external hydrophobic groove that binds the palmitate acid in-between carbon 4 and 5 (Figure 1).  The acid binds in a [https://en.wikipedia.org/wiki/Gauche_effect gauche conformation] creating a <scene name='58/580839/Kink_in_acid/1'>kink </scene>
in the acid chain.  This bending suggests that PPT-1 was originally designed to react with an unsaturated fatty acid with cis-double bonds.  The catalytic <scene name='43/436866/Triad_w_zoom_no_backbones/1'>triad</scene> is composed of Serine-115, Aspartate-233, and Histidine-289 <ref name="mutations" />. Ser-115 is deprotonated by His-289 and attacks the carbonyl carbon of the thioester bond connecting palmitic acid to the protein substrate.  The negative charge is pushed onto the oxygen and is stabilized by in an oxyanion hole a water molecule.  The tetrahedral intermediate collapses and kicks the palmatic acid off of the cysteine residue<ref name="mutations" />.
in the acid chain.  This bending suggests that PPT-1 was originally designed to react with an unsaturated fatty acid with cis-double bonds.  The catalytic <scene name='43/436866/Triad_w_zoom_no_backbones/1'>triad</scene> is composed of Serine-115, Aspartate-233, and Histidine-289 <ref name="mutations" />. Ser-115 is deprotonated by His-289 and attacks the carbonyl carbon of the thioester bond connecting palmitic acid to the protein substrate.  The negative charge is pushed onto the oxygen and is stabilized in an oxyanion hole by a water molecule.  The tetrahedral intermediate collapses and kicks the palmatic acid off of the cysteine residue<ref name="mutations" />.
[[Image:Rxn ppt1.jpg|400px|right|thumb|Figure 2: The basic enzymatic reaction catalyzed by PPT-1.  Ser-115, depronated by His-289, attacks the carbonyl carbon of the thioester bond ]]     
[[Image:Rxn ppt1.jpg|400px|right|thumb|Figure 2: The basic enzymatic reaction catalyzed by PPT-1.  Ser-115, depronated by His-289, attacks the carbonyl carbon of the thioester bond ]]     




=Inhibitors of PPT-1=
=Inhibitors of PPT-1=
'''<scene name='43/436866/Overall-3-rainbow/1'>PPT-1</scene>''' is a lysosomal enzyme, which has a serine [[lipase]] consensus sequence; a key characteristic of lysosomal enzymes. Despite having a serine lipase consensus sequence, PPT-1, is not deactivated by phenylmethylsulfonyl fluoride [https://en.wikipedia.org/wiki/PMSF (PMSF)], a common serine-modifying reagent. <scene name='58/580839/Hdsf_by_itself/1'>Hexadecylsulfonylfluoride</scene>  (HDSF) is a serine-modifying reagent that is able to <scene name='58/580839/Basic-hdsf-nosurface/4'> bind and inhibit PPT-1</scene>. Unlike other inhibitors, <scene name='58/580839/Basic-hdsf-surfacelook/2'>HDSF is able to fit in the narrow, hydrophobic groove of PPT-1</scene> leading away from the active site of PPT-1. PMSF is unable to fit into this small narrow groove due to steric constraints that relate to the unique structure of the substrate-binding site of PPT-1.  The sulphur of HDSF will <scene name='58/580839/Hdsf_bound_to_ser-115-best/1'>bind to SER-115 in the active site of PPT-1</scene> via a sulponylation reaction and thus will inhibit the actions of PPT-1<ref name="INCL">PMID:10801859</ref>.
'''<scene name='43/436866/Overall-3-rainbow/1'>PPT-1</scene>''' is a lysosomal enzyme, which has a serine [[lipase]] consensus sequence; a key characteristic of lysosomal enzymes. Despite having a serine lipase consensus sequence, PPT-1, is not deactivated by phenylmethylsulfonyl fluoride [https://en.wikipedia.org/wiki/PMSF (PMSF)], a common serine-modifying reagent. <scene name='58/580839/Hdsf_by_itself/1'>Hexadecylsulfonylfluoride</scene>  (HDSF) is a serine-modifying reagent that is able to <scene name='58/580839/Basic-hdsf-nosurface/4'> bind and inhibit PPT-1</scene>. Unlike other inhibitors, <scene name='58/580839/Basic-hdsf-surfacelook/2'>HDSF is able to fit in the narrow, hydrophobic groove of PPT-1</scene> leading away from the active site of PPT-1. PMSF is unable to fit into this small narrow groove due to steric constraints that relate to the unique structure of the substrate-binding site of PPT-1.  The sulphur of HDSF will <scene name='58/580839/Hdsf_bound_to_ser-115-best/1'>bind to SER-115 in the active site of PPT-1</scene> via a sulphonylation reaction and thus will inhibit the actions of PPT-1<ref name="INCL">PMID:10801859</ref>.





Latest revision as of 18:09, 25 April 2014

This Sandbox is Reserved from Feb 02, 2011, through Jul 31, 2011 for use by the Biochemistry II class at the Butler University at Indianapolis, IN USA taught by R. Jeremy Johnson. This reservation includes Sandbox Reserved 191 through Sandbox Reserved 200.
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Human Palmitoyl-protein thioesterase 1 (PPT-1) homodimer (PDB: 3gro)

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References


External Resources

Gauche Effect Wikipedia page

Palmitic acid Wikipedia page

Infantile Neuronal Ceroid Lipofuscinosis Wikipedia page

PMSF Wikipedia page

Protein Chaperones Wikipedia page

Endoplasmic reticulum Wikipedia page

Palmitoylation Wikipedia page

Page on Late Infantile neuronal Ceroid Lipofuscinosis

Page on Juvenile neuronal Ceroid Lipofuscinosis