Effect of Brazil Nuts on Selenium Status, Blood Lipids, and Biomarkers of Oxidative Stress and Inflammation: A Systematic Review and Meta-Analysis of Randomized Clinical Trials
Abstract
:1. Introduction
2. Materials and Methods
2.1. Systematic Search and Study Selection
2.2. Data Extraction
2.3. Risk of Bias Assessment
2.4. Data Synthesis and Statistical Analysis
3. Results
3.1. Effect of Brazil Nut Consumption on Selenium Serum/Plasma Levels
3.2. Effect of Brazil Nut Consumption on Glutathione Peroxidase Activity
3.3. Effect of Brazil Nut Consumption on Serum Lipids Profile
3.4. Effect of Brazil Nut Consumption on Other Markers of Oxidative Stress and Plasma Antioxidant Activity
3.5. Effect of Brazil Nut Consumption on Markers of Inflammation
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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PICOS | Description |
---|---|
P (Population) | Men and/or women, adolescents and adults. |
I (Intervention) | Brazil nut supplementation (including derivatives, characterized by a similar nutrient profile). |
C (Comparison) | Brazil nut supplementation group (alone or combined with other intervention) versus placebo/control group. |
O (Outcomes) | Changes in selenium blood levels, oxidative stress and inflammatory markers, and in blood lipid profile. |
S (Study design) | Systematic review with meta-analysis. |
Author, Year | Country | Type and Duration of Intervention, No. of Individuals in Intervention/Control Group | Population | Sex; Mean Age * of Individuals | Measured Outcomes of Interest |
---|---|---|---|---|---|
Parallel Design | |||||
Thomson, 2008 [20] | New Zealand | Brazil nuts (n = 20) vs. placebo (n = 20); 2 nuts/d for 3 months | Healthy volunteers | 30M, 29F; 18–60 y | Selenium status, GPx activity |
Maranhao, 2011 [17] | Brazil | Brazil nuts (n = 8) vs. lactose (n = 9); 3–5 nuts/d for 4 months | Obese female adolescents | 17F; 15.4 ± 2.0 y | Selenium status, GPx activity, cholesterol, HDL-c, LDL-c |
Carvalho, 2015 [18] | Brazil | Brazil nut flour (n = 35) vs. placebo flour (n = 42); 13 g/d of nut flour for 3 months | Hypertensive and dyslipidaemic individuals | 43M, 34F; 40–80 y | Selenium status, cholesterol, HDL-c, LDL-c |
Cardoso, 2016 [19] | Brazil | Brazil nuts (n = 11) vs. normal diet (n = 9); 1 nut/d for 6 months | Older adults with mild cognitive impairment | 6M, 14F; 77.7 ± 5.3 y | Selenium status, GPx activity |
Hu, 2016 [21] | Australia | Brazil nuts (n = 9) vs. GTE (n=10); 6 nuts/d for 1.5 month | Individuals considered at risk of colorectal cancer | 15M, 15F; 52–75 y | Selenium status |
Duarte, 2019 [22] | Brazil | Brazil nuts (n = 29) vs. no supplementation (n = 26); 1 nut/d for 2 months | Obese female adults | 0M, 55F; 18–55 y | Selenium status, GPx activity |
Crossover Design | |||||
Huguenin, Oliveira 2015 [23] | Brazil | Diet and placebo (n = 91) vs. diet and GBN (n = 91); 13 g/d GBN for 3 months | Hypertensive and dyslipidaemic individuals | 47M, 44F; 62.1 ± 9.3 y | Selenium status, GPx activity |
Huguenin, Moreira 2015 [24] | Brazil | Diet and placebo (n = 91) vs. diet and GBN (n = 91); 13 g/d GBN for 3 months | Hypertensive and dyslipidaemic individuals | 47M, 44F; 62.1 ± 9.3 y | Cholesterol, HDL-c, LDL-c |
Outcome | Number of Studies | SMD (95% CI) | I2 (%) | pheterogeneity | τ2 |
---|---|---|---|---|---|
Parallel and crossover design | |||||
Selenium status | 7 | 6.93 (3.99; 9.87) | 96.1 | <0.001 | 11.27 |
GPx activity | 5 | 0.53 (0.07; 0.99) | 62.1 | 0.032 | 0.19 |
Parallel design | |||||
Selenium status | 6 | 7.33 (3.64; 11.01) | 95.9 | <0.001 | 19.06 |
GPx activity | 4 | 0.70 (0.19; 1.22) | 44.2 | 0.146 | 0.12 |
Selenium Status | GPx Activity | |||
---|---|---|---|---|
Author, Year | SMD (95% CI) | I2 (%) | SMD (95% CI) | I2 (%) |
Duarte, 2019 | 5.88 (2.96; 8.8) | 96.0 | 0.62 (−0.03; 1.26) | 71.6 |
Hu, 2016 | 8.01 (4.44; 11.59) | 96.4 | - | - |
Cardoso, 2016 | 6.29 (3.25; 9.34) | 96.5 | 0.42 (−0.04; 0.87) | 59.6 |
Huguenin, Oliveira 2015 | 7.33 (3.64; 11.01) | 95.9 | 0.70 (0.19; 1.22) | 44.2 |
Carvalho, 2015 | 5.54 (2.77; 8.3) | 95.5 | - | - |
Maranhao, 2011 | 8.14 (5; 11.28) | 94.8 | 0.60 (0.06; 1.15) | 71.3 |
Thomson, 2008 | 7.53 (4.03; 11.03) | 96.7 | 0.31 (−0.05; 0.68) | 32.9 |
Outcome | Number of Studies | SMD (95% CI) | I2 (%) | pheterogeneity | τ2 |
---|---|---|---|---|---|
Parallel and Crossover Design | |||||
Cholesterol | 3 | −0.22 (−0.57; 0.14) | 38.6 | 0.196 | 0.04 |
HDL-c | 3 | −0.04 (−0.28; 0.19) | 00.0 | 0.872 | 0.00 |
LDL-c | 3 | −0.15 (−0.43; 0.13) | 16.2 | 0.303 | 0.01 |
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Godos, J.; Giampieri, F.; Micek, A.; Battino, M.; Forbes-Hernández, T.Y.; Quiles, J.L.; Paladino, N.; Falzone, L.; Grosso, G. Effect of Brazil Nuts on Selenium Status, Blood Lipids, and Biomarkers of Oxidative Stress and Inflammation: A Systematic Review and Meta-Analysis of Randomized Clinical Trials. Antioxidants 2022, 11, 403. https://doi.org/10.3390/antiox11020403
Godos J, Giampieri F, Micek A, Battino M, Forbes-Hernández TY, Quiles JL, Paladino N, Falzone L, Grosso G. Effect of Brazil Nuts on Selenium Status, Blood Lipids, and Biomarkers of Oxidative Stress and Inflammation: A Systematic Review and Meta-Analysis of Randomized Clinical Trials. Antioxidants. 2022; 11(2):403. https://doi.org/10.3390/antiox11020403
Chicago/Turabian StyleGodos, Justyna, Francesca Giampieri, Agnieszka Micek, Maurizio Battino, Tamara Y. Forbes-Hernández, José L. Quiles, Nadia Paladino, Luca Falzone, and Giuseppe Grosso. 2022. "Effect of Brazil Nuts on Selenium Status, Blood Lipids, and Biomarkers of Oxidative Stress and Inflammation: A Systematic Review and Meta-Analysis of Randomized Clinical Trials" Antioxidants 11, no. 2: 403. https://doi.org/10.3390/antiox11020403
APA StyleGodos, J., Giampieri, F., Micek, A., Battino, M., Forbes-Hernández, T. Y., Quiles, J. L., Paladino, N., Falzone, L., & Grosso, G. (2022). Effect of Brazil Nuts on Selenium Status, Blood Lipids, and Biomarkers of Oxidative Stress and Inflammation: A Systematic Review and Meta-Analysis of Randomized Clinical Trials. Antioxidants, 11(2), 403. https://doi.org/10.3390/antiox11020403