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Characterization of the degree of food processing in the European Prospective Investigation into Cancer and Nutrition: Application of the Nova classification and validation using selected biomarkers of food processing

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dc.contributor.author Huybrechts, Inge
dc.contributor.author Rauber, Fernanda
dc.contributor.author Nicolás, Genevieve
dc.contributor.author Casagrande, Corinne
dc.contributor.author Kliemann, Nathalie
dc.contributor.author Wedekind, Roland
dc.contributor.author Biessy, Carine
dc.contributor.author Scalbert, Augustin
dc.contributor.author Touvier, Mathilde
dc.contributor.author Aleksandrova, Krasimira
dc.contributor.author Jakszyn, Paula
dc.contributor.author Skeie, Guri
dc.contributor.author Bajracharya, Rashmita
dc.contributor.author Boer, Jolanda-MA
dc.contributor.author Borne, Yan
dc.contributor.author Chajes, Veronique
dc.contributor.author Dahm, Christina-C
dc.contributor.author Dansero, Lucía
dc.contributor.author Guevara, Marcela
dc.contributor.author Heath, Alicia-K
dc.contributor.author Ibsen, Daniel-B
dc.contributor.author Papier, Keren
dc.contributor.author Katzke, Verena-A
dc.contributor.author Kyro, Cecilie
dc.contributor.author Masala, Giovanna
dc.contributor.author Molina-Montes, Esther
dc.contributor.author Robinson, Oliver-JK
dc.contributor.author Santiuste-de-Pablos, Carmen
dc.contributor.author Schulze, Matthias-B
dc.contributor.author Simeon, Vittorio
dc.contributor.author Sonestedt, Emily
dc.contributor.author Tjonneland, Anne
dc.contributor.author Tumino, Rosario
dc.contributor.author van-der-Schouw, Yvonne-T
dc.contributor.author Verschuren, WMMonique
dc.contributor.author Vozar, Beatrice
dc.contributor.author Winkvist, Anna
dc.contributor.author Gunter, Marc-J
dc.contributor.author Monteiro, Carlos-A
dc.contributor.author Millett, Christopher
dc.contributor.author Levy, Renata-Bertazzi
dc.date.accessioned 2025-11-21T08:44:22Z
dc.date.available 2025-11-21T08:44:22Z
dc.date.issued 2022-12-16
dc.identifier.citation Huybrechts I, Rauber F, Nicolas G, Casagrande C, Kliemann N, Wedekind R, et al. Characterization of the degree of food processing in the European Prospective Investigation into Cancer and Nutrition: application of the Nova classification and validation using selected biomarkers of food processing. Front Nutr. 16 de diciembre de 2022;9:1035580.
dc.identifier.issn 2296-861X
dc.identifier.uri https://sms.carm.es/ricsmur/handle/123456789/21951
dc.description.abstract BACKGROUND: Epidemiological studies have demonstrated an association between the degree of food processing in our diet and the risk of various chronic diseases. Much of this evidence is based on the international Nova classification system, which classifies food into four groups based on the type of processing: (1) Unprocessed and minimally processed foods, (2) Processed culinary ingredients, (3) Processed foods, and (4) "Ultra-processed" foods (UPF). The ability of the Nova classification to accurately characterise the degree of food processing across consumption patterns in various European populations has not been investigated so far. Therefore, we applied the Nova coding to data from the European Prospective Investigation into Cancer and Nutrition (EPIC) in order to characterize the degree of food processing in our diet across European populations with diverse cultural and socio-economic backgrounds and to validate this Nova classification through comparison with objective biomarker measurements. METHODS: After grouping foods in the EPIC dataset according to the Nova classification, a total of 476,768 participants in the EPIC cohort (71.5% women; mean age 51 [standard deviation (SD) 9.93]; median age 52 [percentile (p)25-p75: 58-66] years) were included in the cross-sectional analysis that characterised consumption patterns based on the Nova classification. The consumption of food products classified as different Nova categories were compared to relevant circulating biomarkers denoting food processing, measured in various subsamples (N between 417 and 9,460) within the EPIC cohort via (partial) correlation analyses (unadjusted and adjusted by sex, age, BMI and country). These biomarkers included an industrial transfatty acid (ITFA) isomer (elaidic acid; exogenous fatty acid generated during oil hydrogenation and heating) and urinary 4-methyl syringol sulfate (an indicator for the consumption of smoked food and a component of liquid smoke used in UPF). RESULTS: Contributions of UPF intake to the overall diet in % grams/day varied across countries from 7% (France) to 23% (Norway) and their contributions to overall % energy intake from 16% (Spain and Italy) to >45% (in the UK and Norway). Differences were also found between sociodemographic groups; participants in the highest fourth of UPF consumption tended to be younger, taller, less educated, current smokers, more physically active, have a higher reported intake of energy and lower reported intake of alcohol. The UPF pattern as defined based on the Nova classification (group 4;% kcal/day) was positively associated with blood levels of industrial elaidic acid (r = 0.54) and 4-methyl syringol sulfate (r = 0.43). Associations for the other 3 Nova groups with these food processing biomarkers were either inverse or non-significant (e.g., for unprocessed and minimally processed foods these correlations were -0.07 and -0.37 for elaidic acid and 4-methyl syringol sulfate, respectively). CONCLUSION: These results, based on a large pan-European cohort, demonstrate sociodemographic and geographical differences in the consumption of UPF. Furthermore, these results suggest that the Nova classification can accurately capture consumption of UPF, reflected by stronger correlations with circulating levels of industrial elaidic acid and a syringol metabolite compared to diets high in minimally processed foods.
dc.language.iso eng
dc.publisher FRONTIERS MEDIA SA
dc.rights Atribución/Reconocimiento-NoComercial-SinDerivados 4.0 Internacional
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0/es/  *
dc.title Characterization of the degree of food processing in the European Prospective Investigation into Cancer and Nutrition: Application of the Nova classification and validation using selected biomarkers of food processing
dc.type info:eu-repo/semantics/article
dc.identifier.pmid 36590209
dc.relation.publisherversion https://www.frontiersin.org/articles/10.3389/fnut.2022.1035580/full
dc.identifier.doi 10.3389/fnut.2022.1035580
dc.journal.title Frontiers in Nutrition


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