Blueberry in the improvement of metabolic syndrome: A literature review

Autores

DOI:

https://doi.org/10.5327/fst.562

Palavras-chave:

metabolic syndrome, blueberry, Vaccinium

Resumo

Metabolic syndrome represents a growing public health challenge, associated with factors such as obesity, insulin resistance, hypertension, dyslipidemias, and low-grade chronic inflammation. This condition substantially increases the risk of cardiovascular diseases, type 2 diabetes, and stroke. In this scenario, dietary strategies based on foods with functional properties, such as those rich in bioactive compounds, have shown promise as preventive and complementary measures. Among these foods, blueberries (Vaccinium spp.) stand out for their unique nutritional profile, characterized by a high concentration of polyphenols, particularly anthocyanins, as well as vitamins, fiber, and minerals. Consistent clinical evidence indicates that their consumption is associated with improvements in cardiometabolic markers, including endothelial function, insulin sensitivity, lipid profile, and oxidative stress parameters, as well as with cognitive and psychophysiological benefits. These effects are primarily attributed to the antioxidant and anti-inflammatory properties of blueberries’ bioactive compounds, which act synergistically to prevent and manage metabolic syndrome. This review compiles and discusses the most recent evidence regarding the chemical composition and biological effects of blueberries in mitigating metabolic syndrome and its associated risk factors.

 

 

Downloads

Não há dados estatísticos.

Referências

Aballay, L. R., Eynard, A. R., Díaz, M. P., Navarro, A., & Muñoz, S. E. (2013). Overweight and obesity: a review of their relationship to metabolic syndrome, cardiovascular disease, and cancer in South America. Nutrition Reviews, 71(3), 168–179. https://doi.org/10.1111/j.1753-4887.2012.00533.x

Antal, T. (2024). The effect of refrigeration and room temperature storage conditions on the physico-chemical characteristics of hybrid and freeze-dried blueberries. Journal of Agriculture and Food Research, 16, Article 101083. https://doi.org/10.1016/j.jafr.2024.101083

Antunes, L. E. C., & Baccan, R. (2023). Cultivares de mirtilos para produção em vasos (Circular Técnica, 236). Embrapa. https://www.embrapa.br/busca-de-publicacoes/-/publicacao/1152387/cultivares-de-mirtilos-para-producao-em-vasos

Arevström, L., Bergh, C., Landberg, R., Wu, H., Rodriguez-Mateos, A., Waldenborg, M., Magnuson, A., Blanc, S., & Fröbert, O. (2019). Freeze-dried bilberry (Vaccinium myrtillus) dietary supplement improves walking distance and lipids after myocardial infarction: an open-label randomized clinical trial. Nutrition research, 62, 13–22. https://doi.org/10.1016/j.nutres.2018.11.008

Ashique, S., Mukherjee, T., Mohanty, S., Garg, A., Mishra, N., Kaushik, M., Bhowmick, M., Chattaraj, B., Mohanto, S., Srivastava, S., & Taghizadeh-Hesary, F. (2024). Blueberries in focus: Exploring the phytochemical potentials and therapeutic applications. Journal of Agriculture and Food Research, 18, Article 101300. https://doi.org/10.1016/j.jafr.2024.101300

Bambace, M. F., Alvarez, M. V., & Moreira, M. R. (2021). Ready-to-eat blueberries as fruit-based alternative to deliver probiotic microorganisms and prebiotic compounds. LWT, 142, Article 111009. https://doi.org/10.1016/j.lwt.2021.111009

Benson, S., Labrenz, F., Kotulla, S., Brotte, L., Rödder, P., Tebbe, B., Theysohn, N., Engler, H., & Elsenbruch, S. (2023). Amplified gut feelings under inflammation and depressed mood: a randomized fMRI trial on interoceptive pain in healthy volunteers. Brain, Behavior, and Immunity, 112, 132–137. https://doi.org/10.1016/j.bbi.2023.06.005

Burton-Freeman, B., Brzeziński, M., Park, E., Sandhu, A., Xiao, D., & Edirisinghe, I. (2019). A selective role of dietary anthocyanins and flavan-3-ols in reducing the risk of type 2 diabetes mellitus: a review of recent evidence. Nutrients, 11(4), Article 841. https://doi.org/10.3390/nu11040841

Cheng, Y., Wu, T., Chu, X., Tang, S., Cao, W., Liang, F., Fang, Y., Pan, S., & Xu, X. (2020). Fermented blueberry pomace with antioxidant properties improves fecal microbiota community structure and short chain fatty acids production in an in vitro mode. LWT, 125, Article 109260. https://doi.org/10.1016/j.lwt.2020.109260

Curtis, P. J., Berends, L., Van der Velpen, V., Jennings, A., Haag, L., Chandra, P., Kay, C. D., Rimm, E. B., & Cassidy, A. (2022). Blueberry anthocyanin intake attenuates the postprandial cardiometabolic effect of an energy-dense food challenge: Results from a double blind, randomized controlled trial in metabolic syndrome participants. Clinical Nutrition, 41(1), 165–176. https://doi.org/10.1016/j.clnu.2021.11.030

Curtis, P. J., Van der Velpen, V., Berends, L., Jennings, A., Feelisch, M., Umpleby, A. M., Evans, M., Fernandez, B. O., Meiss, M. S., Minnion, M., Potter, J., Minihane, A.-M., Kay, C. D., Rimm, E. B., & Cassidy, A. (2019). Blueberries improve biomarkers of cardiometabolic function in participants with metabolic syndrome—results from a 6-month, double-blind, randomized controlled trial. The American Journal of Clinical Nutrition, 109(6), 1535–1545. https://doi.org/10.1093/ajcn/nqy380

Díaz-Álvarez, R., Carpentieri, S., Ferrari, G., Pataro, G., & Segura-Ponce, L. (2024). Effect of high-voltage electrical discharge (HVED) at high frequency on vacuum freeze-drying time and physicochemical properties of blueberries. Journal of Food Engineering, 365, Article 111815. https://doi.org/10.1016/j.jfoodeng.2023.111815

Duan, Y., Tarafdar, A., Chaurasia, D., Singh, A., Bhargava, P. C., Yang, J., Li, Z., Ni, X., Tian, Y., Li, H., & Awasthi, M. K. (2022). Blueberry fruit valorization and valuable constituents: A review. International Journal of Food Microbiology, 381, Article 109890. https://doi.org/10.1016/j.ijfoodmicro.2022.109890

Feng, L., Zhou, Y., Ashaolu, T. J., Ye, F., & Zhao, G. (2019). Physicochemical and rheological characterization of pectin-rich fraction from blueberry (Vaccinium ashei) wine pomace. International Journal of Biological Macromolecules, 128, 629–637. https://doi.org/10.1016/j.ijbiomac.2019.01.166

Fu, X., Wang, D., Belwal, T., Xie, J., Xu, Y., Li, L., Zou, L., Zhang, L., & Luo, Z. (2021). Natural deep eutectic solvent enhanced pulse-ultrasonication assisted extraction as a multi-stability protective and efficient green strategy to extract anthocyanin from blueberry pomace. LWT, 144, Article 111220. https://doi.org/10.1016/j.lwt.2021.111220

Hellström, J., Karhu, S., Karhu, J., Järvenpää, E., & Välimaa, A.-L. (2024). Phenolic profiles differentiate wild bilberry and cultivated blueberry fruit. LWT, 199, Article 116080. https://doi.org/10.1016/j.lwt.2024.116080

Hui, X., Wu, G., Han, D., Gong, X., Stipkovits, L., Wu, X., Tang, S., Brennan, M. A., & Brennan, C. S. (2021). Bioactive compounds from blueberry and blackcurrant powder alter the physicochemical and hypoglycaemic properties of oat bran paste. LWT, 143, Article 111167. https://doi.org/10.1016/j.lwt.2021.111167

Johnson, S. A., Feresin, R. G., Navaei, N., Figueroa, A., Elam, M. L., Akhavan, N. S., Hooshmand, S., Pourafshar, S., Payton, M. E., & Arjmandi, B. H. (2017). Effects of daily blueberry consumption on circulating biomarkers of oxidative stress, inflammation, and antioxidant defense in postmenopausal women with pre- and stage 1-hypertension: a randomized controlled trial. Food & Function, 8(1), 372–380. https://doi.org/10.1039/C6FO01216G

Kalt, W., Cassidy, A., Howard, L. R., Krikorian, R., Stull, A. J., Tremblay, F., & Zamora-Ros, R. (2020). Recent research on the health benefits of blueberries and their anthocyanins. Advances in Nutrition, 11(2), 224–236. https://doi.org/10.1093/advances/nmz065

Kim, A.-N., Lee, K.-Y., Kim, B. G., Cha, S. W., Jeong, E. J., Kerr, W. L., & Choi, S.-G. (2021). Thermal processing under oxygen–free condition of blueberry puree: Effect on anthocyanin, ascorbic acid, antioxidant activity, and enzyme activities. Food Chemistry, 342, Article 128345. https://doi.org/10.1016/j.foodchem.2020.128345

Krikorian, R., Skelton, M. R., Summer, S. S., Shidler, M. D., & Sullivan, P. G. (2022). Blueberry supplementation in midlife for dementia risk reduction. Nutrients, 14(8), Article 1619. https://doi.org/10.3390/nu14081619

Kuntz, S., Kunz, C., Herrmann, J., Borsch, C. H., Abel, G., Fröhling, B., Dietrich, H., & Rudloff, S. (2014). Anthocyanins from fruit juices improve the antioxidant status of healthy young female volunteers without affecting anti-inflammatory parameters: results from the randomised, double-blind, placebo-controlled, cross-over ANTHONIA (ANTHOcyanins in Nutrition Investigation Alliance) study. British Journal of Nutrition, 112(6), 925–936. https://doi.org/10.1017/s0007114514001482

Lima, F. N. (2021). Cultivo do mirtileiro'Biloxi'em função de fertirrigação nitrogenada e substratos [Doctoral thesis, Universidade de Brasília]. Repositório UNB. http://repositorio.unb.br/handle/10482/42076

Lin, Y.-H., Chang, H.-T., Tseng, Y.-H., Chen, H.-S., Chiang, S.-C., Chen, T.-J., & Hwang, S.-J. (2021). Changes in metabolic syndrome affect the health-related quality of life of community-dwelling adults. Scientific Reports, 11(1), Article 20267. https://doi.org/10.1038/s41598-021-99767-y

Liović, N., Bratanić, A., Zorić, Z., Pedisić, S., Jambrak, A. R., Krešić, G., & Bilušić, T. (2021). The effect of freeze-drying, pasteurisation and high-intensity ultrasound on gastrointestinal stability and antioxidant activity of blueberry phenolics. International Journal of Food Science and Technology, 56(4), 1996–2008. https://doi.org/10.1111/ijfs.14831

Liu, K., & Chen, B. (2025). Blueberry Bioactives in Metabolic Syndrome. Journal of Nutrition, 155(9), 2779–2798. https://doi.org/10.1016/j.tjnut.2025.07.014

Lobos, G. A., & Hancock, J. F. (2015). Breeding blueberries for a changing global environment: a review. Frontiers in Plant Science, 6, Article 782. https://doi.org/10.3389/fpls.2015.00782

Ma, X., Liu, Y., Ding, B., Liu, Y., Zhang, Y., Wang, Y., Yang, L., Yang, Y., & Liu, X. (2025). Blueberry anthocyanins ameliorate arsenic-induced cognitive impairment in rats: Mitigating mitochondrial damage and dysregulation. Phytomedicine, 145, Article 157062. https://doi.org/10.1016/j.phymed.2025.157062

Manoharan, M. P., Raja, R., Jamil, A., Csendes, D., Gutlapalli, S. D., Prakash, K., Swarnakari, K. M., Bai, M., Desai, D. M., Desai, A., & Penumetcha, S. S. (2022). Obesity and coronary artery disease: an updated systematic review 2022. Cureus, 14(9), Article e29480. https://doi.org/10.7759/cureus.29480

Meng, X., Zhang, M., & Adhikari, B. (2012). Extending shelf-life of fresh-cut green peppers using pressurized argon treatment. Postharvest Biology and Technology, 71, 13–20. https://doi.org/10.1016/j.postharvbio.2012.04.006

Mondal, S., Soumya, N. P. P., Mini, S., & Sivan, S. K. (2021). Bioactive compounds in functional food and their role as therapeutics. Bioactive Compounds in Health and Disease-Online, 4(3), 24–39. https://doi.org/10.31989/bchd.v4i3.786

Mustafa, A. M., Angeloni, S., Abouelenein, D., Acquaticci, L., Xiao, J., Sagratini, G., Maggi, F., Vittori, S., & Caprioli, G. (2022). A new HPLC-MS/MS method for the simultaneous determination of 36 polyphenols in blueberry, strawberry and their commercial products and determination of antioxidant activity. Food Chemistry, 367, Article 130743. https://doi.org/10.1016/j.foodchem.2021.130743

Onuh, J. O., Dawkins, N. L., & Aluko, R. E. (2023). Cardiovascular disease protective properties of blueberry polyphenols (Vaccinium corymbosum): A concise review. Food Production, Processing and Nutrition, 5(1), Article 27. https://doi.org/10.1186/s43014-023-00139-y

Parra-Gómez, L. A., Puerta Rojas, J. P., Vásquez Cadena, A. J., Escalante Remolina, M. A., Lora Mantilla, Á. J., Villabona Flórez, S. J., & Camacho López, P. A. (2025). Prevalence of Metabolic Syndrome in Latin America: A Systematic Review and Meta-Analysis of Observational Studies. Diabetes and Metabolic Syndrome, 19(7), Article 103282. https://doi.org/10.1016/j.dsx.2025.103282

Rousseau, M., Horne, J., Guénard, F., Toro-Martín, J., Garneau, V., Guay, V., Kearney, M., Pilon, G., Roy, D., Couture, P., Couillard, C., Marette, A., & Vohl, M.-C. (2021). An 8-week freeze-dried blueberry supplement impacts immune-related pathways: a randomized, double-blind placebo-controlled trial. Genes & Nutrition, 16(1), Article 7. https://doi.org/10.1186/s12263-021-00688-2

Sagbasan, B. H., Williams, C. M., Bell, L., Barfoot, K. L., Poveda, C., & Walton, G. E. (2024). Inulin and freeze-dried blueberry intervention lead to changes in the microbiota and metabolites within in vitro studies and in cognitive function within a small pilot trial on healthy children. Microorganisms, 12(7), Article 1501. https://doi.org/10.3390/microorganisms12071501

Sater, H., Ferrão, L. F. V., Olmstead, J., Munoz, P. R., Bai, J., Hopf, A., & Plotto, A. (2021). Exploring environmental and storage factors affecting sensory, physical and chemical attributes of six southern highbush blueberry cultivars. Scientia Horticulturae, 289, Article 110468. https://doi.org/10.1016/j.scienta.2021.110468

Schuch, M. W., & Tomaz, Z. F. P. (2019). Advances in the spread of vegetative blueberry. Revista Brasileira de Fruticultura, 41(1), Article e-041. https://doi.org/10.1590/0100-29452019041

Shao, X., Zhao, B., Wang, B., Zhao, B., Zhu, Y., Yuan, Z., & Zhang, J. (2019). Neuroprotective effects of blueberry anthocyanins against perfluorooctanoic sulfonate on planarian Dugesia japonica. Ecotoxicology and Environmental Safety, 175, 39–47. https://doi.org/10.1016/j.ecoenv.2019.03.023

Silva, C. V. F., Silva, C. J. F., Sade, Y. B., Scapin, S. M. N., Thompson, F. L., Thompson, C., Silva‐Boghossian, C. M., & Santos, E. O. (2024). Prospecting Specific Protein Patterns for High Body Mass Index (BMI), Metabolic Syndrome and Type 2 Diabetes in Saliva and Blood Plasma From a Brazilian Population. PROTEOMICS–Clinical Applications, 18(6), Article e202300238. https://doi.org/10.1002/prca.202300238

Silva, S. H. G., Berardo, M. C., Rosado, L. R., Andrade, R., Teixeira, A. F. S., Duarte, M. H., Bócoli, F. A., Carneiro, M. A. C., & Curi, N. (2024). Advancing Leaf Nutritional Characterization of Blueberry Varieties Adapted to Warm Climates Enhanced by Proximal Sensing. AgriEngineering, 6(3), 3187–3202. https://doi.org/10.3390/agriengineering6030182

Souza, E. L., Albuquerque, T. M. R., Santos, A. S., Massa, N. M. L., & Alves, J. L. B. (2019). Potential interactions among phenolic compounds and probiotics for mutual boosting of their health-promoting properties and food functionalities - A review. Critical Reviews in Food Science and Nutrition, 59(10), 1645–1659. https://doi.org/10.1080/10408398.2018.1425285

Starr, K. N. P., Miller, M. G., Wallis, J. T., Zhang, Q., Song, K., González-Delgado, J. M., Brochu, H., Icenhour, C. R., Iyer, L. K., Connelly, M. A., Huffman, K. M., Kraus, W. E., & Bales, C. W. (2024). Effects of Blueberry Consumption and Exercise on Gut Microbiome Composition in a Randomized Controlled Trial of Sedentary Older Adults With Overweight or Obesity. Current Developments in Nutrition, 8(2), Article 102652. https://doi.org/10.1016/j.cdnut.2024.102653

Stote, K., Sweeney, M., Kean, T., Baer, D., Novotny, J., Shakerley, N., Chandrasekaran, A., Carrico, P., Melendez, J., & Gottschall-Pass, K. (2017). The effects of 100% wild blueberry (Vaccinium angustifolium) juice consumption on cardiometablic biomarkers: A randomized, placebo-controlled, crossover trial in adults with increased risk for type 2 diabetes. BMC Nutrition, 3(1), Article 45. https://doi.org/10.1186/s40795-017-0164-0

Stote, K., Wilson, M., Thomas, K., Rourke, J., & Gosmanov, A. R. (2021). Effect of Blueberry Consumption on Mood States in Men With Type 2 Diabetes. Current Developments in Nutrition, 5(Suppl. 2), Article 371. https://doi.org/10.1093/cdn/nzab037_081

Sun, Y., Zhang, M., & Mujumdar, A. (2019). Berry drying: Mechanism, pretreatment, drying technology, nutrient preservation, and mathematical models. Food Engineering Reviews, 11, 61–77. https://doi.org/10.1007/s12393-019-9188-3

Waghmare, R., Kumar, M., Yadav, R., Mhatre, P., Sonawane, S., Sharma, S., Gat, Y., Chandran, D., Hasan, M., Dey, A., Sarkar, T., Banwo, K., Alao, M., Balakrishnan, J., Suryawanshi, D., & Lorenzo, J. M. (2023). Application of ultrasonication as pre-treatment for freeze drying: An innovative approach for the retention of nutraceutical quality in foods. Food Chemistry, 404(Part B), Article 134571. https://doi.org/10.1016/j.foodchem.2022.134571

Wang, H. H., Lee, D. K., Liu, M., Portincasa, P., & Wang, D. Q. (2020). Novel insights into the pathogenesis and management of the metabolic syndrome. Pediatric gastroenterology, Hepatology & Nutrition, 23(3), 189–230. https://doi.org/10.5223/pghn.2020.23.3.189

Wang, Y., Gallegos, J. L., Haskell-Ramsay, C., & Lodge, J. K. (2022). Effects of blueberry consumption on cardiovascular health in healthy adults: A cross-over randomised controlled trial. Nutrients, 14(13), Article 2562. https://doi.org/10.3390/nu14132562

Wilder-Smith, C. H., Materna, A., & Olesen, S. S. (2023). Blueberries improve abdominal symptoms, well-being and functioning in patients with functional gastrointestinal disorders. Nutrients, 15(10), Article 2396. https://doi.org/10.3390/nu15102396

Wood, E., Hein, S., Mesnage, R., Fernandes, F., Abhayaratne, N., Xu, Y., Zhang, Z., Bell, L., Williams, C., & Rodriguez-Mateos, A. (2023). Wild blueberry (poly)phenols can improve vascular function and cognitive performance in healthy older individuals: a double-blind randomized controlled trial. The American Journal of Clinical Nutrition, 117(6), 1306–1319. https://doi.org/10.1016/j.ajcnut.2023.03.017

Woolf, E. K., Terwoord, J. D., Litwin, N. S., Vazquez, A. R., Lee, S. Y., Ghanem, N., Michell, K. A., Smith, B. T., Grabos, L. E., Ketelhut, N. B., Bachman, N. P., Smith, M. E., Le Sayec, M., Rao, S., Gentile, C. L., Weir, T. L., Rodriguez-Mateos, A., Seals, D. R., Dinenno, F. A., & Johnson, S. A. (2023). Daily blueberry consumption for 12 weeks improves endothelial function in postmenopausal women with above-normal blood pressure through reductions in oxidative stress: a randomized controlled trial. Food & Function, 14(6), 2621–2641. https://doi.org/10.1039/d3fo00157a

Wu, Y., Han, T., Yang, H., Lyu, L., Li, W., & Wu, W. (2023). Known and potential health benefits and mechanisms of blueberry anthocyanins: A review. Food Bioscience, 55, Article 103050. https://doi.org/10.1016/j.fbio.2023.103050

Zhang, D., Liang, P., Yin, J., Li, L., Wang, Y., Feng, R., & Zheng, Y. (2025). The impact of glucose and lipid metabolic parameters in patients with metabolic syndrome on the treatment response of glioblastoma: A retrospective case-control study. Journal of Radiation Research and Applied Sciences, 18(3), Article 101589. https://doi.org/10.1016/j.jrras.2025.101589

Zhang, H., Wang, Z.-Y., Yang, X., Zhao, H.-T., Zhang, Y.-C., Dong, A.-J., Jing, J., & Wang, J. (2014). Determination of free amino acids and 18 elements in freeze-dried strawberry and blueberry fruit using an Amino Acid Analyzer and ICP-MS with micro-wave digestion. Food Chemistry, 147, 189–194. https://doi.org/10.1016/j.foodchem.2013.09.118

Zia, M. P., & Alibas, I. (2021). Influence of the drying methods on color, vitamin C, anthocyanin, phenolic compounds, antioxidant activity, and in vitro bioaccessibility of blueberry fruits. Food Bioscience, 42, Article 101179. https://doi.org/10.1016/j.fbio.2021.101179

Downloads

Publicado

2026-01-26

Como Citar

Sousa , B. N. N. de, Oliveira Filho , J. G. de, & Egea, M. B. (2026). Blueberry in the improvement of metabolic syndrome: A literature review. Food Science and Technology, 46. https://doi.org/10.5327/fst.562

Edição

Seção

Artigos de Revisão