Trypsin: Difference between revisions

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Trypsin, chymotrypsin, and elastase are all digestive enzymes that are produced in the pancreas and catalyze the hydrolysis of peptide bonds. Each of these enzymes has different specificities in regards to the side chains next to the peptide bond. Chymotrypsin prefers a large hydrophobic residue, trypsin is specific for a positively charged residue, and elastase prefers a small neutral residue. Chymotrypsin, trypsin and elastase are all proteins that contain a catalytic mechanism and hydrolyze peptides using the serine protease mechanism. Chymotrypsin and elastase are both homologs of Trypsin since they are 40% alike in structure and composition <ref> Pratt, C.W., Voet, D., Voet, J.G. Fundamentals of Biochemistry - Life at the Molecular Level - Third Edition. Voet, Voet and Pratt, 2008. </ref>. In the <scene name='Sandbox_32/Chymotrypsin/2'>Chymotrypsin</scene> structure shown the alpha helices are blue, the beta sheets are green, and the remainder of the protein is red. In the <scene name='Sandbox_32/Elastase/2'>Elastase</scene> structure shown the alpha helices are in red, the beta sheets are yellow, and the remainder of the protein is orange.
Trypsin, chymotrypsin, and elastase are all digestive enzymes that are produced in the pancreas and catalyze the hydrolysis of peptide bonds. Each of these enzymes has different specificities in regards to the side chains next to the peptide bond. Chymotrypsin prefers a large hydrophobic residue, trypsin is specific for a positively charged residue, and elastase prefers a small neutral residue. Chymotrypsin, trypsin and elastase are all proteins that contain a catalytic mechanism and hydrolyze peptides using the serine protease mechanism. Chymotrypsin and elastase are both homologs of Trypsin since they are 40% alike in structure and composition <ref> Pratt, C.W., Voet, D., Voet, J.G. Fundamentals of Biochemistry - Life at the Molecular Level - Third Edition. Voet, Voet and Pratt, 2008. </ref>. In the <scene name='Sandbox_32/Chymotrypsin/2'>Chymotrypsin</scene> structure shown the alpha helices are blue, the beta sheets are green, and the remainder of the protein is red. In the <scene name='Sandbox_32/Elastase/2'>Elastase</scene> structure shown the alpha helices are in red, the beta sheets are yellow, and the remainder of the protein is orange.


===  The remarkable efficiency of a Pin-II proteinase inhibitor sans two conserved disulfide bonds is due to enhanced flexibility and hydrogen-bond density in the reactive loop <ref>doi 10.1080/07391102.2012.745378</ref> ===
Background: Plant proteinase Inhibitors (PIs) are ubiquitous in the plant kingdom and have been extensively studied as plant defense molecules, which inhibit hydrolytic enzymes (''e.g.'' <scene name='Journal:JBSD:39/Cv/12'>trypsin</scene>, <font color='darkmagenta'><b>colored in darkmagenta</b></font>) of the insect gut <ref name="Green">PMID: 17836138</ref>. Among various PI families, Serine PI Pin-II/Pot-II family displays a remarkable structural and functional diversity at the gene and protein level <ref name="Kong">PMID: 18315854</ref>. Wound, herbivory and stress induced up-regulation of these PIs clearly link them to plant defense <ref name="Green">PMID: 17836138</ref>. Previous studies using transgenic systems or in vivo assays have positively correlated the advantage offered by Pin-II PI expression in plants against insect attack <ref name="Johnson">PMID: 2602379</ref> <ref name="Duan">PMID: 9630927</ref>. Precursor proteins of Pin-II PIs consist of 1- to 8- <scene name='Journal:JBSD:39/Cv/4'>inhibitory repeat domains (IRDs)</scene> connected by proteolytic-sensitive linkers, which releases IRD units upon cleavage.  <scene name='Journal:JBSD:39/Cv/5'>Each IRD is a peptide of around 50 aa length</scene> (<span style="color:lime;background-color:black;font-weight:bold;">colored in green</span>) with a molecular mass of ~6 KDa. The aa sequence of IRDs shows variations, at the same time the <scene name='Journal:JBSD:39/Cv/6'>8 cysteine residues that form disulfide bridge are conserved</scene> (<span style="color:yellow;background-color:black;font-weight:bold;">colored in yellow</span>) <ref name="Nielsen">PMID: 7578034</ref> <ref name="Scanlon">PMID: 10425681</ref> <ref name="Lee">PMID: 10360353</ref> <ref name="Schirra">PMID: 11178894</ref>. One structural feature of Pin-II IRD is a disordered loop with triple stranded &#946; sheet scaffold. The disordered solvent exposed reactive loop is anchored by the four conserved disulfide bonds (C4-C41, C7-C25, C8-C37 and C14-C50) <ref name="Schirra1">PMID: 16029154</ref> <ref name="Schirra2">PMID: 18991765</ref>. Among the four disulfide bonds, C8-C37 has been found to be very crucial for maintaining active conformation, whereas C4-C41 has an important role in maintaining the flexibility of the reactive loop <ref name="Schirra3">PMID: 19925809</ref>. Thus, any selective loss of disulfide bond is expected to have evolutionary significance leading to functional differentiation of inhibitors <ref name="Li">PMID: 21494600</ref>.
[A] Functionality: To assess the effect of aa variations on activity and structural stability different biochemical studies and 20 ns MD simulations was performed on IRD structures. Inhibition kinetic studies displayed a sigmoidal pattern with increasing concentrations of the inhibitors suggesting reversible and competitive inhibition with tight binding. IRD-9 turned out to be a stronger inhibitor of bovine trypsin (IC50 ~0.0022 mM) than IRD-7 (IC50 ~0.135 mM) and IRD-12 (IC50 ~0.065 mM).
[B] <scene name='Journal:JBSD:39/Cv/16'>Structural Variability</scene>: In accordance with the structure of a typical IRD belonging to Pin-II PI family, the predicted structures of CanPI also  have  <scene name='Journal:JBSD:39/Cv/7'>three  antiparallel  &#946;  sheets  joined  by  disordered  loops  containing  the reactive site and stabilized by four disulfide bonds</scene>. It was thought that the disulfide bonds act as structural scaffold to hold the reactive site in a relatively rigid conformation and provide thermal and proteolytic stability. A single 3<sub>10</sub>-helix of one turn is also present in the structure, the disordered loop is held by disulfide bond in IRD-7 and -12 whereas by a network of intra molecular hydrogen bonds in IRD-9. <scene name='Journal:JBSD:39/Cv/13'>IRD-7</scene> <span style="color:salmon;background-color:black;font-weight:bold;">(colored in salmon)</span> and <scene name='Journal:JBSD:39/Cv/9'>IRD-12</scene> <span style="color:deeppink;background-color:black;font-weight:bold;">(in deeppink)</span> have 4 disulfide bonds, whereas <scene name='Journal:JBSD:39/Cv/14'>IRD-9</scene> <font color='magenta'><b>(in magenta)</b></font> has only 2 disulfide bonds. Furthermore, post-simulation analysis of the intramolecular hydrogen bonds illustrated that IRD-9 with two disulfide bonds (C7-C25 and C8-C37) less, has a relatively higher density of intra-molecular hydrogen bonds as compared to IRD-7 and -12. These intramolecular hydrogen bonds might be substituting the two lost disulfide bonds of IRD-9 to stabilize the protein structure in the active conformation and might be protecting the molecules from a hydrophobic collapse. The replaced serine residues in the place of two cysteines C7 and C8 in IRD-9 may be contributing to the increased number of hydrogen bonds.
[C] The molecular models of the IRD bound HaTry predicted several atomic interactions with a reactive loop of inhibitors that also explained the contribution of the solvent exposed reactive loop. There are several hydrogen bonds in the <scene name='Journal:JBSD:39/Ird9/3'>IRD-9-HaTry complex</scene>. ARG-39 from <scene name='Journal:JBSD:39/Cv/17'>IRD-12</scene> reactive site formed two hydrogen bonds with the residues of the HaTry active site. In <scene name='Journal:JBSD:39/Ird9/2'>case of IRD-7</scene>, side chain of LYS-39 residue of reactive loop form one hydrogen bond each, with carboxyl oxygen atom of HIS-50. MD simulations provides structural insight into an importance of inter/intra molecular hydrogen bonds and its effect on the interaction between protease and PIs. The results of this analysis were corroborated with previous reports. Post simulation analysis also explained experimentally observed increase in binding affinity, hence activity of IRD-9 towards proteases. See also <ref name="Barrette-Ng">PMID: 12684499</ref> <ref name="Dunse">PMID: 20696921</ref> <ref name="Tamhane">PMID: 19393726</ref> <ref name="Tamhane1">PMID: 15715970</ref>.
</StructureSection>
</StructureSection>
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Revision as of 09:57, 20 November 2013

Bovine cataionic trypsin complex with pyrrolidine deivative, sulfate and Ca+2 ion (PDB code 3ljj)

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3D structures of Trypsin

Updated on 20-November-2013

Cationic trypsin

Serine Proteases, 2ptc, 3mi4, 3mfj, 3iti, 2d8w, 2by5, 2by6, 2by7, 2by8, 2by9, 2bya, 2blv, 2blw, 2a7h, 1s0q, 1uto, 1utp, 1utq, 1utn, 1n6x, 1n6y, 1hj9, 2ptn, 3ptn, 5ptp, 3t25, 3t26, 3t27, 3t28, 3t29, 3unr, 4i8g, 4i8h, 4i8j, 4i8k, 4i8l - bTry1 - bovine
3qk1 – bTry1 (mutant)
1utk, 1utj, 1utl, 1utm, 1hj8 – Try1 – Salmon
1trn – hTry1 – human
3ljj, 3ljo, 3a7t, 3a7v, 3a7w, 3a7x, 3a7y, 3a7z, 3a80, 3a81, 3a82, 3a83, 3a84, 3a85, 3a86, 3a87, 3a88, 3a89, 3a8b, 3a8a, 3a8c, 3a8d, 3m35, 3aas, 3aau, 3aav, 3gy2, 3gy3, 3gy4, 3gy5, 3gy6, 3gy7, 3gy8, 2zq1, 2zq2, 2zhd, 2zfs, 2zft, 2zdk, 2zdl, 2zdm, 2zdn, 2oxs, 2otv, 2g8t, 2g5n, 2g5v, 2ah4, 2fx4, 2fx6, 1yp9, 2ayw, 1y3u, 1y3v, 1y3w, 1y3x, 1y3y, 1tx8, 1tx7, 1s0r, 1rxp, 1o2q, 1o2r, 1o2s, 1o2t, 1o2u, 1o2v, 1o2w, 1o2x, 1o2y, 1o2z, 1o30, 1o31, 1o32, 1o33, 1o34, 1o35, 1o36, 1o37, 1o38, 1o39, 1o3a, 1o3b, 1o3c, 1o3d, 1o3e, 1o3f, 1o3g, 1o3h, 1o3i, 1o3j, 1o3k, 1o3l, 1o3m, 1o3n, 1o3o, 1o3p, 1o2l, 1o2k, 1o2j, 1o2i, 1o2h, 1o2m, 1o2n, 1o2o, 1o2p, 1lqe, 1oyq, 1eb2, 1k1i, 1k1j, 1k1l, 1k1m, 1k1n, 1k1o, 1k1p, 1g36, 1j8a, 1jir, 1g3b, 1g3c, 1g3d, 1g3e, 1g9i, 1f0t, 1f0u, 1c1n, 1c1o, 1c1p, 1c1q, 1c1r, 1c1s, 1c1t, 1c2d, 1c2e, 1c2f, 1c2g, 1c2h, 1c2i, 1c2j, 1c2k, 1c2l, 1c2m, 1qbn, 1qbo, 1qb9, 1qb1, 1qb6, 1qa0, 1qcp, 1ce5, 2bza, 1az8, 1xuf, 1xug, 1bju, 1bjv, 1xuh, 1xui, 1xuj, 1xuk, 1auj, 2tio, 1tio, 1aq7, 3ati, 3atk, 3atl, 3atm, 3rxa, 3rxb, 3rxc, 3rxd, 3rxe, 3rxf, 3rxg, 3rxh, 3rxi, 3rxj, 3rxk, 3rxl, 3rxm, 3rxo, 3rxq, 3rxr, 3rxs, 3rxt, 3rxu, 3rxv - bTry1 + small molecule inhibitor
1v2j, 1v2l, 1v2m, 1v2n, 1v2o, 1v2p, 1v2q, 1v2r, 1v2s, 1v2t, 1v2u, 1v2v, 1v2w, 3plb, 3plk, 3plp, 3pm3, 3pmj, 3pwb, 3pwc, 3pyh, 3q00, 3unq, 3uns, 3uop, 3upe, 3uqo, 3uqv, 3uuz, 3uwi, 3uy9, 3v0x, 3v12, 3v13 - bTry1 (mutant) + small molecule inhibitor
3m7q, 2xtt, 3e8l, 3otj, 3i29, 3d65, 2qyi, 2qn5, 2o9q, 2plx, 2cmy, 2iln, 2uuy, 2j9n, 2g81, 2age, 2agg, 2agi, 2ftl, 2ftm, 2fi3, 2fi4, 2fi5, 1zr0, 1ox1, 1p2i, 1p2j, 1p2k, 1ejm, 1f2s, 3bte, 3btq, 3btd, 3btf, 3btg, 3bth, 3btk, 3btm, 3btt, 3btw, 2btc, 1sbw, 1taw, 1smf, 1ppc, 1ppe, 1pph, 2tld, 1tab, 1tpa, 1c9t, 1ezx, 2f3c, 3rdz – bTry1 + proteinase inhibitor
3ru4 – BTry1 + chymotrypsinogen
4b2b, 4b1t, 4b2a, 4b2c – bTry1 (mutant) + eglin (mutant)
2ra3, 1oph, 3veq - bTry1 (mutant) + proteinase inhibitor
1jrs, 1jrt, 1sfi, 1yyy, 1zzz, 4abi – bTry1 + polypeptide
1c5p, 1c5q, 1c5r, 1c5s, 1c5t, 1c5u, 1c5v, 1ghz, 1gi0, 1gi1, 1gi2, 1gi3, 1gi4, 1gi5, 1gi6, 1gj6, 1mts, 1mtu, 1mtv, 1mtw, 1ql7, 1ql8, 1ql9, 1v2k, 1y59, 1y5a, 1y5b, 1y5u, 3rxp, 4ab8, 4ab9, 4aba, 4abb, 4abd, 4abe, 4abf, 4abg, 4abh, 3vpk – bTry1 + inhibitor
4abj – bTry1 + Try inhibitor 1
4aoq, 4aor - bTry1 + Try inhibitor 3
4j2y - bTry1 + Try inhibitor
2eek – Try1 + inhibitor – Atlantic cod

Cationic trypsinogen

1tgc, 1tgt, 2tga, 2tgt, 1tgb, 1tld, 1tpo - bTryp1
1ntp - β-bTry1 – Neutron diffraction
1d6r, 4tpi, 1tgs, 2tgp, 3tpi, 2tpi, 2ptc - bTryp1 + proteinase inhibitor
1max, 1may, 1btp, 1bty, 1tps, 1tyn, 1tng, 1tnh, 1tni, 1tnj, 1tnk, 1tnl, 1gbt, 1tpp, 3ptb - bTry1 + small molecule inhibitor
1btw, 1btx, 1btz - bTry1 + polypeptide

Anionic trypsin

2zpq, 2zpr, 2zps, 1mbq – Try2 – Chum salmon
1bit, 2tbs - AsTry2 – Atlantic salmon
2sta, 2stb, 1bzx - AsTry2 + proteinase inhibitor
1a0j - AsTry2 + small molecule inhibitor
1ane, 1bra - rTry2]] - rat
1amh, 1dpo, 1anb, 1anc, 1and, 1trm, 2trm - rTry2 (mutant)
3fp6, 3tgi, 1brb, 1brc – rTry2 + proteinase inhibitor
3fp7, 3fp8, 1ykt, 1ylc, 1yld, 1co7, 1k9o, 1slu, 1slv, 1slw, 1slx - rTry2 (mutant) + proteinase inhibitor
1j14, 1j15, 1j16, 1j17 - rTry2 (mutant) + small molecule inhibitor

Anionic trypsinogen

1f5r, 1f7z, 3tgk, 1ezs, 1ezu, 3tgj - rTryp2 (mutant) + proteinase inhibitor
1fy8 - rTryp2 + proteinase inhibitor

Trypsinogen

1tgn – bTryp
2tgd – bTryp + inhibitor

Mesotrypsin

3l33 – hTry3 (mutant) + amyloid β A4
3l3t - hTry3 residues 28-251 (mutant) + amyloid β precursor
2r9p – hTry3 (mutant) + BPTI

Brain trypsin

1h4w – hTry4 + small molecule inhibitor

Neurotrypsin

2k4r, 2k51 – rNTry Kringle domain – NMR

Streptomyces griseus trypsin

3i77, 3i78, 1os8, 1sgt – SGT – Streptomyces griseus
3beu, 2fmj – SGT (mutant)
1oss - SGT (mutant) + small molecule inhibitor


1s81 – pTry – pig
1aks - α-pTry
1ept - ε-pTry
1mct - β-pTry + proteinase inhibitor
3myw, 1yf4, 1z7k, 1tx6, 1v6d, 1uhb, 1h9h, 1h9i, 1eja, 1c9p, 1avw, 1avx, 1ldt, 1tfx, 1an1, 4an7 – pTry + proteinase inhibitor
2a31, 2a32, 1s5s, 1s6f, 1s6h, 1s82, 1s83, 1s84, 1s85, 1fmg, 1fn6, 1fni, 1qqu – pTry + small molecule inhibitor
2vu8 – Try + proteinase inhibitor – mold
2g51, 2g52, 2g55, 1xvo, 1pq5, 1pq7 – FoTry – Fusarium oxysporum
1ppz, 1pqa, 1try - FoTry + small molecule inhibitor
1xvm, 1pq8, 1fn8, 1fy4, 1fy5, 1gdn, 1gdq, 1gdu – FoTry + polypeptide
2f91 – Try-hepatopancreas - Crayfish


References