Trypsin: Difference between revisions
Michal Harel (talk | contribs) No edit summary |
Michal Harel (talk | contribs) No edit summary |
||
| Line 2: | Line 2: | ||
'''Trypsin''' is a medium size globular protein that functions as a pancreatic serine protease. This enzyme hydrolyzes bonds by cleaving peptides on the C-terminal side of the amino acid residues lysine and arginine. It has also been shown that cleavage will not occur if there is a proline residue on the carboxyl side of the cleavage site. Trypsin was first discovered in 1876 by Kuhne, who investigated the proteolytic activity of the enzyme. In 1931 the enzyme was purified by crystallization by Norothrop and Kunitz and later in 1974 the three dimensional structure of trypsin was determined. Throughout the 1990's the role of trypsin in hereditary pancreatitis and the mutation that causes it was discovered. Today trypsin is used in the development of cell and tissue protocols, as well as in the medical field to determine the role of trypsin in pancreatic diseases<ref>Trypsin. 2010. 30 October 2010 <http://www.worthington-biochem.com/tyr/default.html></ref>. | '''Trypsin''' is a medium size globular protein that functions as a pancreatic serine protease. This enzyme hydrolyzes bonds by cleaving peptides on the C-terminal side of the amino acid residues lysine and arginine. It has also been shown that cleavage will not occur if there is a proline residue on the carboxyl side of the cleavage site. Trypsin was first discovered in 1876 by Kuhne, who investigated the proteolytic activity of the enzyme. In 1931 the enzyme was purified by crystallization by Norothrop and Kunitz and later in 1974 the three dimensional structure of trypsin was determined. Throughout the 1990's the role of trypsin in hereditary pancreatitis and the mutation that causes it was discovered. Today trypsin is used in the development of cell and tissue protocols, as well as in the medical field to determine the role of trypsin in pancreatic diseases<ref>Trypsin. 2010. 30 October 2010 <http://www.worthington-biochem.com/tyr/default.html></ref>. | ||
[[Image:Tryogen.gif |thumb|left|Trypsinogen]] | [[Image:Tryogen.gif |thumb|left|Trypsinogen]] | ||
{{Clear}} | {{Clear}} | ||
| Line 17: | Line 16: | ||
{{Clear}} | {{Clear}} | ||
The <scene name='Sandbox_45/Ctriadd102h57s195/4'>catalytic triad</scene>; Asp 102, His 57, and Ser 195, shown here in yellow, is positioned near the substrate. The catalytically active histidine and serine side chains are even near an amide bond in UB-THR 10, just like the amide bond broken in peptide hydrolysis. According to FirstGlance in Jmol, there is no bonding of these groups with the ligand, apart from minor van der Waal's interactions with Hist 57. If Ligand UB-Thr 10 were a transition state analog, some covalent connection would exist in addition to hydrogen bonds. UB-THR 10 simulates the substrate, but does not hydrolyze at either of its two amide bonds, likely due to the local cyclic groups atypical of peptide backbones. | The <scene name='Sandbox_45/Ctriadd102h57s195/4'>catalytic triad</scene>; Asp 102, His 57, and Ser 195, shown here in yellow, is positioned near the substrate. The catalytically active histidine and serine side chains are even near an amide bond in UB-THR 10, just like the amide bond broken in peptide hydrolysis. According to FirstGlance in Jmol, there is no bonding of these groups with the ligand, apart from minor van der Waal's interactions with Hist 57. If Ligand UB-Thr 10 were a transition state analog, some covalent connection would exist in addition to hydrogen bonds. UB-THR 10 simulates the substrate, but does not hydrolyze at either of its two amide bonds, likely due to the local cyclic groups atypical of peptide backbones. | ||
==Regulation== | ==Regulation== | ||
| Line 51: | Line 49: | ||
[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>. | [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> | ||
==3D structures of Trypsin== | ==3D structures of Trypsin== | ||
Revision as of 08:24, 21 August 2014
| ||||||||||||
3D structures of Trypsin
Updated on 21-August-2014
Cationic trypsin
Serine Proteases, 2ptc, Ann Taylor 115, 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, 4niv, 4niw, 4nix – 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
4ncy - bTry1 + imidazole
4abj, 4hgc – bTry1 + Try inhibitor 1
4gux - bTry1 + Try inhibitor 2
4aoq, 4aor - bTry1 + Try inhibitor 3
4j2y - bTry1 + Try inhibitor
4kts, 4ktu - bTry1 + microviridin
4niy - bTry1 (mutant) + ecotin
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, 1nc6 – 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
4doq – pTry C terminal + antileukoproteinase
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
Proteopedia Page Contributors and Editors (what is this?)
Alexander Berchansky, Leah Bowlin, Glenn Jones, Michal Harel, Eran Hodis, Jaime Prilusky, Karl Oberholser, Ben Hallowell, David Canner, Karsten Theis



