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Pulse and legume consumption is associated with a more optimal nutrient intake and a higher EAT-Lancet index in a representative UK population


Author(s) : Yankho Kaimila, Oyinkansola A. Olotu, Miriam E. Clegg, Kim G. Jackson, Julie A. Lovegrove
Eur J Nutr

Abstract


Abstract Purpose Diets high in pulses and legumes have been associated with improved cardiovascular disease (CVD) risk markers but the relationship is less well studied in UK populations. To address this, associations between consumption of pulses (dried beans, peas and lentils) and legumes (pulses, fresh peas and green beans) with nutrient intake and status, a sustainable diet quality score (EAT-Lancet index), CVD risk markers and food expenditure was assessed in representative UK populations. Methods A secondary analysis of data from the UK National Diet and Nutrition Survey (2008–2019) and the Living Costs and Food Survey (2001–2022) was conducted. To assess the relationships, regression models controlling for covariates were used. Results Children and adults consumed mean ± SD 10.6 ± 27.0 g/day and 15.0 ± 21.0 g/day of pulses, and 16.7 ± 32.5 g/day and 27.3 ± 26.0 g/day of legumes, respectively. Diets rich in pulses and legumes were associated with higher intakes of energy, fibre, vitamin E, thiamine, folate, biotin, sodium, potassium, phosphorus, magnesium, iron, zinc, and manganese; lower intakes of saturated fats, total and free sugars and higher plasma selenium and total carotenoid concentrations (all P < 0.05). Consumption of a portion (80 g) of pulses and legumes was associated with a 3.7 point increase in EAT-Lancet index (P < 0.001). Average expenditure on pulses and legumes/person/week in 2022 was £1.68 and £2.90, equivalent to 0.33% and 0.56% of weekly income respectively. Conclusions Pulse and legume-rich diets are broadly associated with a more optimum nutrient intake, higher micronutrient status and a more sustainable diet. Strategies are needed to increase pulse and legume consumption in UK populations.


Original language en
Volume 64
Issue number 3
Publication status Published - 2025

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This research output contributes to the following United Nations (UN) Sustainable Development Goals (SDGs)

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10.1007/s00394-025-03611-2

UN SDGs

This research output contributes to the following United Nations (UN) Sustainable Development Goals (SDGs)

sdg sdg sdg

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10.1007/s00394-025-03611-2
    1. A Satija (2018). Trends Cardiovasc Med, Vol. 28, pp. 437.
      https://doi.org/10.1016/j.tcm.2018.02.004
    2. . .
      World Health Organisation Increasing fruit and vegetable consumption to reduce the risk of noncommunicable diseases. https://www.who.int/tools/elena/interventions/fruit-vegetables-ncds. Accessed 31 Oct 2023
    3. K Lock (2005). Bull World Health Organ, Vol. 83, pp. 100.
      Lock K, Pomerleau J, Causer L et al (2005) The global burden of disease attributable to low consumption of fruit and vegetables: implications for the global strategy on diet. Bull World Health Organ 83:100–108
    4. . .
      United Kingdom Government Healthy eating: applying All Our Health. In: GOV.UK. https://www.gov.uk/government/publications/healthy-eating-applying-all-our-health/healthy-eating-applying-all-our-health. Accessed 10 Aug 2023
    5. . .
      Health Survey for England Fruit & vegetables. In: Health Survey for England. http://healthsurvey.hscic.gov.uk/data-visualisation/data-visualisation/explore-the-trends/fruit-vegetables.aspx. Accessed 20 May 2024
    6. N Singh (2017). J Food Sci Technol, Vol. 54, pp. 853.
      https://doi.org/10.1007/s13197-017-2537-4
    7. EMT Padhi (2017). J Funct Foods, Vol. 38, pp. 635.
      https://doi.org/10.1016/j.jff.2017.03.043
    8. M Hartley (2022). Nutrients, Vol. 14, pp. 3363.
      https://doi.org/10.3390/nu14163363
    9. N Veronese (2018). Am J Clin Nutr, Vol. 107, pp. 436.
      https://doi.org/10.1093/ajcn/nqx082
    10. FA Fabricius (2021). Eur J Nutr, Vol. 60, pp. 3107.
      https://doi.org/10.1007/s00394-021-02495-2
    11. . .
      Dimbleby H (2022) The National Food Strategy - The Plan. In: National Food Strategy. https://assets.publishing.service.gov.uk/media/61684fe3e90e071979dfec4a/national-food-strategy-the-plan.pdf. Accessed 2 Jun 2024
    12. W Willett (2019). Lancet, Vol. 393, pp. 447.
      https://doi.org/10.1016/S0140-6736(18)31788-4
    13. A Knuppel (2019). The Lancet, Vol. 394, pp. 213.
      https://doi.org/10.1016/S0140-6736(19)31236-X
    14. LT Cacau (2023). Eur J Nutr, Vol. 62, pp. 807.
      https://doi.org/10.1007/s00394-022-03032-5
    15. GT Hanley-Cook (2021). BJN, Vol. 126, (1), pp. 92.
      https://doi.org/10.1017/S0007114520003864
    16. . .
      Nicholson W, Jones K (2023) Putting Beans on the plate: Analysis of UK demand and supply of beans and plant based proteins
    17. MC Venables (2022). Int J Epidemiol, Vol. 51, pp. e143.
      https://doi.org/10.1093/ije/dyac106
    18. . .
      Public Health England (2021) Appendix A Dietary data collection and editing for Year 10 and 11 of the NDNS RP. In: UK Data Archive Study. https://api.repository.cam.ac.uk/server/api/core/bitstreams/b555ca0e-9c14-4571-b68c-9d7084209895/content. Accessed 24 Jul 2023
    19. A Stubbendorff (2022). Am J Clin Nutr, Vol. 115, pp. 705.
      https://doi.org/10.1093/ajcn/nqab369
    20. RA McCance (2014). .
      McCance RA, Widdowson EM (2014) McCance and Widdowson’s The Composition of Foods. Royal Society of Chemistry
    21. . .
      Office of National Statistics (2023) Living Costs and Food Survey QMI - Office for National Statistics. https://www.ons.gov.uk/peoplepopulationandcommunity/personalandhouseholdfinances/incomeandwealth/methodologies/livingcostsandfoodsurveyqmi#methods-used-to-produce-the-living-costs-and-food-survey-lcf-data. Accessed 1 Nov 2023
    22. . .
      Defra statistics (2023) Family Food 2020/21. In: GOV.UK. https://www.gov.uk/government/statistics/family-food-202021/family-food-202021. Accessed 1 Nov 2023
    23. . .
      Public Health England (2021) National Diet and Nutrition Survey Years 9–11 (2016/17–2018/19) User Guide. In: UK Data Archive. https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/943114/NDNS_UK_Y9-11_report.pdf. Accessed 24 Jul 2023
    24. . .
      Public Health England (2021) National Diet and Nutrition Survey Rolling programme Years 9 to 11 (2016/2017 to 2018/2019). 29
    25. RF Pollock (2017). ClinicoEconom Outcomes Res, Vol. 9, pp. 475.
      https://doi.org/10.2147/CEOR.S139525
    26. CW Thane (2004). Eur J Clin Nutr, Vol. 58, pp. 363.
      https://doi.org/10.1038/sj.ejcn.1601792
    27. E Derbyshire (2018). Front Nutr, Vol. 5, pp. 55.
      https://doi.org/10.3389/fnut.2018.00055
    28. AN Mudryj (2012). Br J Nutr, Vol. 108, pp. S27.
      https://doi.org/10.1017/S0007114512000724
    29. . .
      Grains & Legumes Nutrition Council (2011) Legumes and Nutrition. In: Grains & Legumes Nutrition Council. https://www.glnc.org.au/resource/legumes-nutrition/. Accessed 31 Jul 2023
    30. DC Mitchell (2009). J Am Diet Assoc, Vol. 109, pp. 909.
      https://doi.org/10.1016/j.jada.2009.02.029
    31. DR Campbell (1994). Cancer Epidemiol Biomark Prev, Vol. 3, pp. 493.
      Campbell DR, Gross MD, Martini MC et al (1994) Plasma carotenoids as biomarkers of vegetable and fruit intake. Cancer Epidemiol Biomark Prev 3:493–500
    32. . .
      Lane L, Reynolds C, Wells R (2023) Beans, Peas and Pulses: UK consumption patterns and the impact of recipes
    33. A Grillo (2019). Nutrients, Vol. 11, pp. 1970.
      https://doi.org/10.3390/nu11091970
    34. L Hooper (2020). Cochrane Database Syst Rev.
      https://doi.org/10.1002/14651858.CD011737.pub3
    35. JW Anderson (2002). Br J Nutr, Vol. 88, pp. 263.
      https://doi.org/10.1079/BJN2002716
    36. D Ramdath (2016). Can J Diabetes, Vol. 40, pp. 355.
      https://doi.org/10.1016/j.jcjd.2016.05.015
    37. T Calles (2019). Environ Earth Sci, Vol. 78, pp. 1.
      https://doi.org/10.1007/s12665-019-8106-6
    38. A Johnstone (2023). Obesity (Silver Spring), Vol. 31, pp. 1461.
      https://doi.org/10.1002/oby.23740
    39. JA Lovegrove (2023). Nutr Bull, Vol. 48, pp. 134.
      https://doi.org/10.1111/nbu.12601
    40. BH Bajka (2023). Am J Clin Nutr, Vol. 117, pp. 477.
      https://doi.org/10.1016/j.ajcnut.2022.12.008
    41. I Goñi (2003). Food Chem, Vol. 81, pp. 511.
      https://doi.org/10.1016/S0308-8146(02)00480-6

UN SDGs

This research output contributes to the following United Nations (UN) Sustainable Development Goals (SDGs)

sdg sdg sdg

Access document

10.1007/s00394-025-03611-2