Sandbox Reserved 191: Difference between revisions

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===Mutations leading to Infantile Neuronal Ceroid Lipofuscinosis===
===Mutations leading to Infantile Neuronal Ceroid Lipofuscinosis===


Various mutations have been found in INCL patients<ref name="Ryan-1">PMID:10191107</ref>. Most of these mutations are caused by nonsense or missense mutations within close proximity to the catalytic <scene name='43/436866/Triad_w_zoom_no_backbones/1'>triad</scene>. These mutations lead to an inactive PPT-1 enzyme as they are predicted to create unfavorable steric, polar, and electrostatic interactions that could disturb the nucleophilic elbow <ref name="mutations" />. The nucleophilic elbow is responsible for proper location and orientation of the Ser-115. The catalytic activity of PPT-1 is greatly reduced if the positioning of Ser-115 is altered, as Ser-115 must be properly orientated to be activated by His-289 to be positioned to attack the substrate. An example of a INCL mutation such as <scene name='58/580837/Methionine/9'>Val181Met</scene> and <scene name='58/580837/Lysine_mutation/3'>Glu184Lys</scene> gives a good depiction of how the increase in size in the mutated amino acids and positive charge on the inserted lysine residue would create steric and polar clashes with the adjacent helices of the binding pocket compared to the <scene name='58/580837/Val181glu184/2'>Normal Val-181 & Glu-184</scene>  <scene name='58/580837/Arginine_fine/4'>Normal Arg-122</scene> which is below <ref name="Ryan-1">PMID:10191107</ref>.  
Various mutations have been found in INCL patients<ref name="Ryan-1">PMID:10191107</ref>. Most of these mutations are caused by nonsense or missense mutations within close proximity to the catalytic <scene name='43/436866/Triad_w_zoom_no_backbones/1'>triad</scene>. These mutations lead to an inactive PPT-1 enzyme as they are predicted to create unfavorable steric, polar, and electrostatic interactions that could disturb the nucleophilic elbow <ref name="mutations" />. The nucleophilic elbow is responsible for proper location and orientation of the Ser-115. The catalytic activity of PPT-1 is greatly reduced if the positioning of Ser-115 is altered, as Ser-115 must be properly orientated to be activated by His-289 to be positioned to attack the substrate. An example of a INCL mutation such as <scene name='58/580837/Methionine/9'>Val181Met</scene> and <scene name='58/580837/Lysine_mutation/4'>Glu184Lys</scene> gives a good depiction of how the increase in size in the mutated amino acids and positive charge on the inserted lysine residue would create steric and polar clashes with the adjacent helices of the binding pocket compared to the <scene name='58/580837/Val181glu184/3'>Normal Val-181 & Glu-184</scene>  <scene name='58/580837/Arginine_fine/5'>Normal Arg-122</scene> which is below <ref name="Ryan-1">PMID:10191107</ref>.  


(*All mutation scenes are the proposed best rotamers of the mutation. These mutations were created through the use of the mutagenesis wizard in the Pymol program)  
(*All mutation scenes are the proposed best rotamers of the mutation. These mutations were created through the use of the mutagenesis wizard in the Pymol program)  
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====Arg122Trp====
====Arg122Trp====


The most common mutation in INCL that occurs in PPT-1 is a single missense mutation of  Arg122Trp. <scene name='58/580837/Arginine_fine/2'>Arg-122</scene> is located immediately after the nucleophilic elbow of PPT-1.  The sidechain of Arg-122 has a main function to control the spacing between the αC and  α6 helices in this region. This is done by Arg-122 having <scene name='58/580837/Arginine_fine/3'>three hydrogen bonds</scene> with three adjacent amino acids:  Ile-205, Asn-206, and Gln-205. <scene name='58/580837/Trp122_mutation/22'>Mutation of Arg-122 to Trp</scene>  means not only a loss of those three hydrogen bonds but also a steric and polarity mismatch with the surrounding residues <ref name="mutations" />. These <scene name='58/580837/Trp122_mutation/23'>Steric Clashes</scene> will cause a misfolding of the enzyme’s core and cause it to be trapped in the endoplasmic reticulum, which results in no detectable PPT-1 activity.  
The most common mutation in INCL that occurs in PPT-1 is a single missense mutation of  Arg122Trp. <scene name='58/580837/Arginine_fine/7'>Arg-122</scene> is located immediately after the nucleophilic elbow of PPT-1.  The sidechain of Arg-122 has a main function to control the spacing between the αC and  α6 helices in this region. This is done by Arg-122 having <scene name='58/580837/Arginine_fine/3'>three hydrogen bonds</scene> with three adjacent amino acids:  Ile-205, Asn-206, and Gln-205. <scene name='58/580837/Trp122_mutation/24'>Mutation of Arg-122 to Trp</scene>  means not only a loss of those three hydrogen bonds but also a steric and polarity mismatch with the surrounding residues <ref name="mutations" />. These <scene name='58/580837/Trp122_mutation/25'>Steric Clashes</scene> will cause a misfolding of the enzyme’s core and cause it to be trapped in the endoplasmic reticulum, which results in no detectable PPT-1 activity.  


==Late-Infantile and Juvenile Neuronal Ceroid Lipofuscinosis==
==Late-Infantile and Juvenile Neuronal Ceroid Lipofuscinosis==
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===Mutations leading to Late-Infantile Neuronal Ceroid Lipofuscinosis===
===Mutations leading to Late-Infantile Neuronal Ceroid Lipofuscinosis===


LINCl is caused by a mutation in the CLN2 gene which “codes for a lysosomal pepstatin-insensitive acid protease that is deficient in LINCL patients”<ref name="Ryan-2">PMID:9989590</ref>.  Mutations that tend to lead to LINCL still disrupt the active site and binding pocket geometry, but not to the degree that is seen in INCL. One LINCL mutation is <scene name='58/580837/Multiple_mutations_mutating/4'>Gln177Glu</scene>.  <scene name='58/580837/Multiple_mutations/4'>Gln-177</scene> acts as a hydrogen bond donor to Ala-171 and Ala-183 and as a hydrogen bond acceptor from Ile-200. The mutation of Gln-177 likely causes a conformation change of the helices in the area. Ala-171 and Ala-183 make hydrophobic contact with the palmitate, and so the altered conformation associated with those two amino acids would decrease binding affinity of the palmitate, decreasing, but not killing the catalytic activity of PPT-1.  
LINCl is caused by a mutation in the CLN2 gene which “codes for a lysosomal pepstatin-insensitive acid protease that is deficient in LINCL patients”<ref name="Ryan-2">PMID:9989590</ref>.  Mutations that tend to lead to LINCL still disrupt the active site and binding pocket geometry, but not to the degree that is seen in INCL. One LINCL mutation is <scene name='58/580837/Multiple_mutations_mutating/5'>Gln177Glu</scene>.  <scene name='58/580837/Multiple_mutations/5'>Gln-177</scene> acts as a hydrogen bond donor to Ala-171 and Ala-183 and as a hydrogen bond acceptor from Ile-200. The mutation of Gln-177 likely causes a conformation change of the helices in the area. Ala-171 and Ala-183 make hydrophobic contact with the palmitate, and so the altered conformation associated with those two amino acids would decrease binding affinity of the palmitate, decreasing, but not killing the catalytic activity of PPT-1.  


===Mutations leading to Juvenile Neuronal Ceroid Lipofuscinosis===
===Mutations leading to Juvenile Neuronal Ceroid Lipofuscinosis===


JNCL is caused by a mutation in the CLN3 gene which codes for a lysosomal membrane protein of unknown function <ref name="Ryan-3">PMID:9151311</ref>. Unlike the mutations that cause INCL and LINCL, mutations that lead to JNCL are located away from the active site and are seen to cause less damage to the overall structure of PPT-1. Some of the mutations in JNCL have been noted as retaining a low level of PPT-1 activity as the catalytic site is left fairly unperturbed. Mutations associated with JNCl are found in two locations, Thr75Pro with Asp79Gly and <scene name='58/580837/Juvenile_mutation/3'>Tyr247His with Gly250Val</scene>. These mutations occur in conjugate with its other pair  and are predicted to disturb the geometry of helix α1, increasing the flexibility of the region, and alter the antiparallel βsheet motif in sheets βa and βb compared to the <scene name='58/580837/Tyrosine_normal/1'>Normal Tyr-247 & Gly-250</scene>.
JNCL is caused by a mutation in the CLN3 gene which codes for a lysosomal membrane protein of unknown function <ref name="Ryan-3">PMID:9151311</ref>. Unlike the mutations that cause INCL and LINCL, mutations that lead to JNCL are located away from the active site and are seen to cause less damage to the overall structure of PPT-1. Some of the mutations in JNCL have been noted as retaining a low level of PPT-1 activity as the catalytic site is left fairly unperturbed. Mutations associated with JNCl are found in two locations, Thr75Pro with Asp79Gly and <scene name='58/580837/Juvenile_mutation/4'>Tyr247His with Gly250Val</scene>. These mutations occur in conjugate with its other pair  and are predicted to disturb the geometry of helix α1, increasing the flexibility of the region, and alter the antiparallel βsheet motif in sheets βa and βb compared to the <scene name='58/580837/Tyrosine_normal/2'>Normal Tyr-247 & Gly-250</scene>.





Revision as of 02:38, 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