Sandbox Reserved 1621: Difference between revisions
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===Lid Complex=== | ===Lid Complex=== | ||
The <scene name='83/832945/Global_lid2/ | The <scene name='83/832945/Global_lid2/3'>lid complex</scene> is the first point of entry and recognition for the substrate. The lid is located within the NCT subunit between Asn55 and Asn435. This lobe of NCT is divided into two separate subunits; the large and small lobes with Phe287 from the large lobe acting as a pivot between them. Phe287 is surrounded by <scene name='83/832945/Pivot3/1'>Phe103, Leu171, Phe176, and Ile180</scene> of the small subunit. The <scene name='83/832945/Lidremake2/2'>congregation of hydrophobic residues</scene> in the small subunit composes a greasy pocket which provides an environment for easy structural movement. The lid consists of 5 aromatic residues, which are highly involved with stabilizing the closed conformation. This conformation is stabilized by <scene name='83/832945/Trp164scene/2'>Trp164</scene>, which interacts with Pro424, Phe448, and the aliphatic side chain of Gln420. Once the substrate binds and the lid is opened, a charged, hydrophilic binding pocket is revealed. The pocket contains <scene name='83/832945/Gluandtyr_remake2/1'>Glu333 and Tyr337 surrounded by several charged residues</scene>. The pocket is further involved with substrate binding and recognition once the lid is removed. The lid complex is relatively far away from the catalytic site of the enzyme in PS1 when inactive. Once a substrate binds, the enzyme undergoes a conformational change in which the rotation of the large lobe in relation to the small lobe reorients the substrate for cleavage, by aligning the pocket in NCT to the active site in PS1.<ref name="Bai">PMID:26280335</ref> | ||
===Active Site=== | ===Active Site=== | ||
The <scene name='83/832945/Asp_257_and_asp_385/14'>active site</scene> is located between TM6 and TM7 of the PS1 subunit, which is mainly hydrophilic and disordered. Both TM6 and TM7 contribute an aspartate residue to the active site. These two aspartates, Asp257 and Asp385 are located approximately 10.6 A˚ apart when the enzyme is in the inactive state.<ref name="Bai">PMID:26280335</ref> Substrate recognition is controlled by the closely spaced PAL sequence of <scene name='83/832945/Asp_257_and_asp_385/11'>Pro433, Ala434, and Leu435</scene>. GS becomes active upon substrate binding, when TM2 and TM6 each rotate about 15 degrees to more closely associate. Two β-strands are induced in PS1, creating an <scene name='83/832945/Beta_sheet_complex/1'>antiparallel β-sheet</scene> with the β-strand of the substrate.<ref name="Zhou" /> The β-strand of the substrate interacts via main chain H-bonds <scene name='83/832945/Pal_and_app/1'>with the PAL sequence</scene>, stabilizing the active site. <scene name='83/832945/Asp_257_and_asp_385/10'>Asp257 and Asp385</scene> hydrogen bond to each other and are located 6–7 Å away from the scissile peptide bond of the substrate, allowing catalysis to occur.<ref name="Yang" /> GS cleaves in 3 residue segments which is driven by the presence of three amino acid binding pockets in the active site.<ref name="Bolduc" /> | The <scene name='83/832945/Asp_257_and_asp_385/14'>active site</scene> is located between TM6 and TM7 of the PS1 subunit, which is mainly hydrophilic and disordered. Both TM6 and TM7 contribute an aspartate residue to the active site. These two aspartates, Asp257 and Asp385 are located approximately 10.6 A˚ apart when the enzyme is in the inactive state.<ref name="Bai">PMID:26280335</ref> Substrate recognition is controlled by the closely spaced PAL sequence of <scene name='83/832945/Asp_257_and_asp_385/11'>Pro433, Ala434, and Leu435</scene>. GS becomes active upon substrate binding, when TM2 and TM6 each rotate about 15 degrees to more closely associate. Two β-strands are induced in PS1, creating an <scene name='83/832945/Beta_sheet_complex/1'>antiparallel β-sheet</scene> with the β-strand of the substrate.<ref name="Zhou" /> The β-strand of the substrate interacts via main chain H-bonds <scene name='83/832945/Pal_and_app/1'>with the PAL sequence</scene>, stabilizing the active site. <scene name='83/832945/Asp_257_and_asp_385/10'>Asp257 and Asp385</scene> hydrogen bond to each other and are located 6–7 Å away from the scissile peptide bond of the substrate, allowing catalysis to occur.<ref name="Yang" /> GS cleaves in 3 residue segments which is driven by the presence of three amino acid binding pockets in the active site.<ref name="Bolduc" /> | ||
In APP, the cleavage site is between the helix and the C-terminal β-strand.<ref name="Zhou" /> GS can cleave via different pathways, depending on its starting point, but the 2 most commonly used pathways produce Aβ48 and Aβ49.<ref name="Bolduc">PMID:27580372</ref>. | In APP, the cleavage site is between the helix and the C-terminal β-strand.<ref name="Zhou" /> GS can cleave via different pathways, depending on its starting point, but the 2 most commonly used pathways produce Aβ48 and Aβ49.<ref name="Bolduc">PMID:27580372</ref>. Cleavage between <scene name='83/832945/3_residues_for_cleavage/3'>Leu720 and Val721</scene> yields Aβ49. Tripeptide substrate cleavage starting between <scene name='83/832945/3_residues_for_cleavage/2'>Thr719 and Leu720</scene> results in Aβ48. The accumulation of these Aβ peptides has strong implications in Alzheimer's disease.<ref name="Zhou">PMID:30630874</ref> | ||
==Relevance== | ==Relevance== | ||
Latest revision as of 23:59, 14 May 2020
Gamma Secretase
References
Student Contributors
Daniel Mulawa
Layla Wisser
