Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.

The main purpose of this report is to investigate the structural property and new potential function of PPTI (Pseudocerastes Persicus Trypsin Inhibitor), a kunitz-type protein with inhibitory effect against trypsin proteolytic activity. Besides kunitz-type serine protease inhibitors, PPTI shows clea...

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Main Authors: Seyede Elnaz Banijamali, Mehriar Amininasab, Davood Zaeifi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0214657
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spelling doaj-321cdd78675c40559964f690ee92a2ea2021-03-03T20:44:58ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01144e021465710.1371/journal.pone.0214657Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.Seyede Elnaz BanijamaliMehriar AmininasabDavood ZaeifiThe main purpose of this report is to investigate the structural property and new potential function of PPTI (Pseudocerastes Persicus Trypsin Inhibitor), a kunitz-type protein with inhibitory effect against trypsin proteolytic activity. Besides kunitz-type serine protease inhibitors, PPTI shows clear-cut similarities with dendrotoxins (DTXs), the other kunitz-type protein subfamily. The most important reason is the presence of functionally important residues of DTXs at correspondingly the same positions in PPTI. As such, we proposed the new ability of PPTI for inhibiting voltage-gated potassium channels and consequently its dual functionality. At first, we determined the solution structure of PPTI via Nuclear Magnetic Resonance (NMR) spectroscopy. Then by homology modeling, we constructed the model structure of trypsin-PPTI complex to confirm the same interaction pattern as trypsin-BPTI at complex interface. Finally, by Brownian dynamics (BD) simulations of PPTI NMR derived ensemble structure as ligand against homology model of human Kv1.1 potassium channel as receptor, we evaluated the potential DTX-like activity of PPTI. The results of our study support the proposed dual functionality of PPTI.https://doi.org/10.1371/journal.pone.0214657
collection DOAJ
language English
format Article
sources DOAJ
author Seyede Elnaz Banijamali
Mehriar Amininasab
Davood Zaeifi
spellingShingle Seyede Elnaz Banijamali
Mehriar Amininasab
Davood Zaeifi
Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
PLoS ONE
author_facet Seyede Elnaz Banijamali
Mehriar Amininasab
Davood Zaeifi
author_sort Seyede Elnaz Banijamali
title Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
title_short Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
title_full Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
title_fullStr Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
title_full_unstemmed Structural characterization of PPTI, a kunitz-type protein from the venom of Pseudocerastes persicus.
title_sort structural characterization of ppti, a kunitz-type protein from the venom of pseudocerastes persicus.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description The main purpose of this report is to investigate the structural property and new potential function of PPTI (Pseudocerastes Persicus Trypsin Inhibitor), a kunitz-type protein with inhibitory effect against trypsin proteolytic activity. Besides kunitz-type serine protease inhibitors, PPTI shows clear-cut similarities with dendrotoxins (DTXs), the other kunitz-type protein subfamily. The most important reason is the presence of functionally important residues of DTXs at correspondingly the same positions in PPTI. As such, we proposed the new ability of PPTI for inhibiting voltage-gated potassium channels and consequently its dual functionality. At first, we determined the solution structure of PPTI via Nuclear Magnetic Resonance (NMR) spectroscopy. Then by homology modeling, we constructed the model structure of trypsin-PPTI complex to confirm the same interaction pattern as trypsin-BPTI at complex interface. Finally, by Brownian dynamics (BD) simulations of PPTI NMR derived ensemble structure as ligand against homology model of human Kv1.1 potassium channel as receptor, we evaluated the potential DTX-like activity of PPTI. The results of our study support the proposed dual functionality of PPTI.
url https://doi.org/10.1371/journal.pone.0214657
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