Study2011

Absorption and metabolism of olive oil secoiridoids in the small intestine

Pinto J, Paiva-Martins F, Corona G, Debnam ES, Jose Oruna-Concha M, Vauzour D, Gordon MH, Spencer JP

The British journal of nutrition · 74 citations

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Mechanisms only

Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.

How it was studied

Design
In vitro/mechanistic study (classified by our AI screen)
Studied in
Cells or lab samples
Main outcome
Mechanisms only

Who paid for it

Funding
Independent funding
Government
Fundação para a Ciência e a Tecnologia

Based on 1 listed funder(s).

Publication

Published
2011-03-17 · Br J Nutr · vol. 105 · issue 11 · pp. 1607–1618
Publisher
Cambridge University Press
Cited
93 citations · more than 92% of similar papers · 3.3× the field average
Impact
Top 10% most cited in its field
References
47 works
Access
Free to read
Research areas
Edible Oils Quality and Analysis · Cholesterol and Lipid Metabolism · Phytochemicals and Antioxidant Activities
Keywords
Ileum, Chemistry, Jejunum, Homovanillic acid, Glucuronidation, Hydroxytyrosol, Biochemistry, Metabolism, Small intestine, Enzyme
MeSH
intestine, small, caco-2 cells, animals, humans, rats, phenols, pyrans, plant oils, molecular structure, biological transport, intestinal absorption, hydrogen-ion concentration, models, biological, olive oil

8 authors

From PT, GB

  • Joana PintoUniversidade do Porto; University of Reading
  • Fátima Paiva‐MartinsUniversidade do Porto
  • Giulia CoronaUniversity of Reading
  • Edward S. DebnamThe Royal Free Hospital; University College London
  • Marı́a José Oruña-ConchaUniversity of Reading
  • David VauzourUniversity of Reading

Abstract

The secoiridoids 3,4-dihydroxyphenylethanol-elenolic acid (3,4-DHPEA-EA) and 3,4-dihydroxyphenylethanol-elenolic acid dialdehyde (3,4-DHPEA-EDA) account for approximately 55 % of the phenolic content of olive oil and may be partly responsible for its reported human health benefits. We have investigated the absorption and metabolism of these secoiridoids in the upper gastrointestinal tract. Both 3,4-DHPEA-EDA and 3,4-DHPEA-EA were relatively stable under gastric conditions, only undergoing limited hydrolysis. Both secoiridoids were transferred across a human cellular model of the small intestine (Caco-2 cells). However, no glucuronide conjugation was observed for either secoiridoid during transfer, although some hydroxytyrosol and homovanillic alcohol were formed. As Caco-2 cells are known to express only limited metabolic activity, we also investigated the absorption and metabolism of secoiridoids in isolated, perfused segments of the jejunum and ileum. Here, both secoiridoids underwent extensive metabolism, most notably a two-electron reduction and glucuronidation during the transfer across both the ileum and jejunum. Unlike Caco-2 cells, the intact small-intestinal segments contain NADPH-dependent aldo-keto reductases, which reduce the aldehyde carbonyl group of 3,4-DHPEA-EA and one of the two aldeydic carbonyl groups present on 3,4-DHPEA-EDA. These reduced forms are then glucuronidated and represent the major in vivo small-intestinal metabolites of the secoiridoids. In agreement with the cell studies, perfusion of the jejunum and ileum also yielded hydroxytyrosol and homovanillic alcohol and their respective glucuronides. We suggest that the reduced and glucuronidated forms represent novel physiological metabolites of the secoiridoids that should be pursued in vivo and investigated for their biological activity.

Abstract via Europe PMC. Copyright remains with the authors or publisher.

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