Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms

© 2020 The Royal Society of Chemistry. Angiotensin converting enzyme (ACE) inhibition offers a useful means of managing hypertension, because ACE inhibitors (ACEIs) are known to serve as agents with antihypertensive properties in addition to generating positive metabolic and cardioprotective outcome...

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Main Authors: Atthasith Nuchprapha, Supawee Paisansak, Papassara Sangtanoo, Piroonporn Srimongkol, Tanatorn Saisavoey, Onrapak Reamtong, Kiattawee Choowongkomon, Aphichart Karnchanatat
Other Authors: Chulalongkorn University
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Published: 2020
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/54509
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spelling th-mahidol.545092020-05-05T12:13:32Z Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms Atthasith Nuchprapha Supawee Paisansak Papassara Sangtanoo Piroonporn Srimongkol Tanatorn Saisavoey Onrapak Reamtong Kiattawee Choowongkomon Aphichart Karnchanatat Chulalongkorn University Kasetsart University Mahidol University Chemical Engineering Chemistry © 2020 The Royal Society of Chemistry. Angiotensin converting enzyme (ACE) inhibition offers a useful means of managing hypertension, because ACE inhibitors (ACEIs) are known to serve as agents with antihypertensive properties in addition to generating positive metabolic and cardioprotective outcomes. However, current ACEIs are linked to adverse consequences, and so there is a requirement for effective but safer compounds, which might be achieved through chemical synthesis or the isolation of naturally obtained bioactive molecules. Protein hydrolysates with ACEI activity can be produced by the combined pepsin and pancreatin proteolysis (to mimic gastrointestinal digestion) of longan seed protein. This study examined longan seed protein hydrolysates, obtained from a sequential 3 h digestion with pepsin and then pancreatin. The resulting hydrolysate underwent sequential ultrafiltration membrane fractionation with a 10, 5, and 3 kDa molecular weight cut-off (MWCO). The permeate derived from the <3 kDa MWCO demonstrated the highest ACEI activity. This permeate subsequently underwent separation by reverse-phase high performance liquid chromatography to give the main fractions on the basis of differing elution times. The ACEI IC50 values for these fractions were then identified. Quadrupole time-of-flight tandem mass spectrometry was employed to determine the peptide mass for the major peak (F5), which was shown to be Glu-Thr-Ser-Gly-Met-Lys-Pro-Thr-Glu-Leu (ETSGMKPTEL) and Ile-Ser-Ser-Met-Gly-Ile-Leu-Val-Cys-Leu (ISSMGILVCL). These two peptides were stable over a temperature and pH range of -20 to 90 °C and 2-12, respectively, for 60 min. From the Lineweaver-Burk plot, both peptides inhibited ACE non-competitively. Molecular docking simulation of the peptides with ACE supported the formation of hydrogen bonds by the peptides with the ACE active pockets. This research indicates that it may be possible to use both of these peptides or longan seed protein hydrolysates in order to create ingredients for functional foods, or to produce pharmaceutical products, capable of lowering hypertension. 2020-05-05T05:11:16Z 2020-05-05T05:11:16Z 2020-03-30 Article RSC Advances. Vol.10, No.22 (2020), 12711-12720 10.1039/d0ra00093k 20462069 2-s2.0-85083369964 https://repository.li.mahidol.ac.th/handle/123456789/54509 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85083369964&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Chemical Engineering
Chemistry
spellingShingle Chemical Engineering
Chemistry
Atthasith Nuchprapha
Supawee Paisansak
Papassara Sangtanoo
Piroonporn Srimongkol
Tanatorn Saisavoey
Onrapak Reamtong
Kiattawee Choowongkomon
Aphichart Karnchanatat
Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
description © 2020 The Royal Society of Chemistry. Angiotensin converting enzyme (ACE) inhibition offers a useful means of managing hypertension, because ACE inhibitors (ACEIs) are known to serve as agents with antihypertensive properties in addition to generating positive metabolic and cardioprotective outcomes. However, current ACEIs are linked to adverse consequences, and so there is a requirement for effective but safer compounds, which might be achieved through chemical synthesis or the isolation of naturally obtained bioactive molecules. Protein hydrolysates with ACEI activity can be produced by the combined pepsin and pancreatin proteolysis (to mimic gastrointestinal digestion) of longan seed protein. This study examined longan seed protein hydrolysates, obtained from a sequential 3 h digestion with pepsin and then pancreatin. The resulting hydrolysate underwent sequential ultrafiltration membrane fractionation with a 10, 5, and 3 kDa molecular weight cut-off (MWCO). The permeate derived from the <3 kDa MWCO demonstrated the highest ACEI activity. This permeate subsequently underwent separation by reverse-phase high performance liquid chromatography to give the main fractions on the basis of differing elution times. The ACEI IC50 values for these fractions were then identified. Quadrupole time-of-flight tandem mass spectrometry was employed to determine the peptide mass for the major peak (F5), which was shown to be Glu-Thr-Ser-Gly-Met-Lys-Pro-Thr-Glu-Leu (ETSGMKPTEL) and Ile-Ser-Ser-Met-Gly-Ile-Leu-Val-Cys-Leu (ISSMGILVCL). These two peptides were stable over a temperature and pH range of -20 to 90 °C and 2-12, respectively, for 60 min. From the Lineweaver-Burk plot, both peptides inhibited ACE non-competitively. Molecular docking simulation of the peptides with ACE supported the formation of hydrogen bonds by the peptides with the ACE active pockets. This research indicates that it may be possible to use both of these peptides or longan seed protein hydrolysates in order to create ingredients for functional foods, or to produce pharmaceutical products, capable of lowering hypertension.
author2 Chulalongkorn University
author_facet Chulalongkorn University
Atthasith Nuchprapha
Supawee Paisansak
Papassara Sangtanoo
Piroonporn Srimongkol
Tanatorn Saisavoey
Onrapak Reamtong
Kiattawee Choowongkomon
Aphichart Karnchanatat
format Article
author Atthasith Nuchprapha
Supawee Paisansak
Papassara Sangtanoo
Piroonporn Srimongkol
Tanatorn Saisavoey
Onrapak Reamtong
Kiattawee Choowongkomon
Aphichart Karnchanatat
author_sort Atthasith Nuchprapha
title Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
title_short Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
title_full Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
title_fullStr Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
title_full_unstemmed Two novel ACE inhibitory peptides isolated from longan seeds: Purification, inhibitory kinetics and mechanisms
title_sort two novel ace inhibitory peptides isolated from longan seeds: purification, inhibitory kinetics and mechanisms
publishDate 2020
url https://repository.li.mahidol.ac.th/handle/123456789/54509
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