An Overview on Nutritional Aspects of Plant-Based Beverages Used as Substitutes for Cow’s Milk
Abstract
:1. Introduction
2. Materials and Methods
2.1. Data Collection
2.1.1. Inclusion and Exclusion Criteria
2.1.2. Collected Information
2.2. Data Processing
3. Results
4. Discussion
4.1. Nutritional Content Variations
4.1.1. Processing Performed
4.1.2. Added Ingredients
4.2. Comparison of Nutritional Composition: Plant-Based Beverages and Cow’s Milk
4.2.1. Energy
4.2.2. Carbohydrate
4.2.3. Protein
4.2.4. Lipid
4.2.5. Dietary Fiber
4.2.6. Micronutrients
4.3. Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A. Search Terms Used to Perform the Literature Search
English | Milk alternative; Milk substitute; Plant-based milk; Plant-based beverage; Plant-based drink; Plant-based alternative; Milk analog; Non-dairy milk; Non-dairy beverages; Non-dairy alternative; Nondairy beverage; Plant milk; Vegan milk; Vegetable milk; Plant-based dairy |
Portuguese | Extrato vegetal; Extrato hidrossolúvel; Bebida à base de |
Appendix B. Table of Authors, Year of Publication and Country of Origin of the Selected Studies According to the Inclusion and Exclusion Criteria
Authors | Year of Publication | Country of Origin |
Abrão [30] | 2019 | Brazil |
Alozie; Udofia [58] | 2015 | Nigeria |
Andrade [31] | 2018 | Brazil |
Araújo [41] | 2015 | Brazil |
Barros [43] | 2012 | Brazil |
Barros [42] | 2016 | Brazil |
Barros; Venturini Filho [44] | 2016 | Brazil |
Blum et al. [45] | 2016 | Brazil |
Carvalho et al. [46] | 2011 | Brazil |
Chalupa-Krebzdak et al. [23] | 2018 | Canada |
Decloedt et al. [52] | 2018 | Belgium |
Demoliner [47] | 2019 | Brazil |
Ferreira [48] | 2011 | Brazil |
Hajirostamloo [56] | 2009 | Iran |
Holanda [32] | 2017 | Brazil |
Jeske [57] | 2018 | Ireland |
Karimidastjerd; Kilic-Akyilmaz [60] | 2021 | Turkey |
Lima et al. [33] | 2020 | Brazil |
Manassero et al. [51] | 2020 | Argentina |
Manzoor et al. [59] | 2017 | Pakistan |
Martínez-Padilla et al. [53] | 2020 | Denmark |
Meeshi et al. [49] | 2014 | India |
Nti et al. [55] | 2016 | Ghana |
Ravindran; RadhaiSri [50] | 2020 | India |
Reis [34] | 2019 | Brazil |
Scholz-Ahrens et al. [54] | 2020 | Germany |
Silva et al. [35] | 2015 | Brazil |
Silva [36] | 2018 | Brazil |
Storck; Montagner [37] | 2020 | Brazil |
Uliana; Venturini Filho [38] | 2010 | Brazil |
Vieira [39] | 2013 | Brazil |
Vieira [40] | 2017 | Brazil |
References
- FDA. CFR—Code of Federal Regulations Title 21; FDA: Silver Spring, MD, USA, 2018.
- FAO. Milk and Milk Products; FAO: Rome, Italy, 2011. [Google Scholar]
- Siqueira, K.B. O Mercado Consumidor de Leite e Derivados; Embrapa Gado de Leite: Juiz de Fora, Brazil, 2019. [Google Scholar]
- Araújo, W.; Montebello, N.; Botelho, R.; Borgo, L. Alquimia dos Alimentos, 3rd ed.; Senac-DF: Brasília, Brazil, 2014. [Google Scholar]
- Silva, A.R.A.; Silva, M.M.N.; Ribeiro, B.D. Health Issues and Technological Aspects of Plant-based Alternative Milk. Food Res. Int. 2019, 131, 108972. [Google Scholar] [CrossRef]
- Vanga, S.K.; Raghavan, V. How well do plant based alternatives fare nutritionally compared to cow’s milk? J. Food Sci. Technol. 2018, 55, 10–20. [Google Scholar] [CrossRef]
- Flom, J.D.; Sicherer, S.H. Epidemiology of cow’s milk allergy. Nutrients 2019, 11, 1051. [Google Scholar] [CrossRef] [Green Version]
- Solé, D.; Silva, L.R.; Cocco, R.R.; Ferreira, C.T.; Sarni, R.O.; Oliveira, L.C.; Pastorino, A.C.; Weffort, V.; Morais, M.B.; Barreto, B.P.; et al. Consenso Brasileiro sobre Alergia Alimentar: 2018—Parte 1—Etiopatogenia, clínica e diagnóstico. Arq. Asma Alerg. Imunol. 2018, 2, 7–38. [Google Scholar]
- Friedrich, D.C. A Diversidade do Gene LCT e a Persistência da Lactase na População Brasileira. Ph.D. Thesis, Universidade Federal do Rio Grande do Sul, Porto Alegre, Brazil, 2013. [Google Scholar]
- Munekata, P.E.S.; Domínguez, R.; Budaraju, S.; Roselló-Soto, E.; Barba, F.J.; Mallikarjunan, K.; Roohinejad, S.; Lorenzo, J.M. Effect of innovative food processing technologies on the physicochemical and nutritional properties and quality of non-dairy plant-based beverages. Foods 2020, 9, 288. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mäkinen, O.E.; Wanhalinna, V.; Zannini, E.; Arendt, E.K. Foods for Special Dietary Needs: Non-dairy Plant-based Milk Substitutes and Fermented Dairy-type Products. Crit. Rev. Food Sci. Nutr. 2016, 56, 339–349. [Google Scholar] [CrossRef] [PubMed]
- National Institute of Health Lactose intolerance: Genetics Home Reference. Available online: https://ghr.nlm.nih.gov/condition/lactose-intolerance (accessed on 20 August 2020).
- Slywitch, E. Guia alimentar de Dietas Vegetarianas; Departamento de Medicina e Nutrição—Sociedade Vegetariana Brasileira, Ed.; Sociedade Brasileira Vegetariana: São Paulo, Brazil, 2012. [Google Scholar]
- Paul, A.A.; Kumar, S.; Kumar, V.; Sharma, R. Milk Analog: Plant based alternatives to conventional milk, production, potential and health concerns. Crit. Rev. Food Sci. Nutr. 2019, 60, 3005–3023. [Google Scholar] [CrossRef]
- Haenlein, G.F.W. Goat Milk in Human Nutrition. Small Rumin. Res. 2004, 51, 155–163. [Google Scholar] [CrossRef]
- Sarti, L.; Martini, M.; Brajon, G.; Barni, S.; Salari, F.; Altomonte, I.; Ragona, G.; Mori, F.; Pucci, N.; Muscas, G.; et al. Donkey’s Milk in the Management of Children with Cow’s Milk protein allergy: Nutritional and hygienic aspects. Ital. J. Pediatr. 2019, 45, 102. [Google Scholar] [CrossRef]
- Li, Y.; Fan, Y.; Shaikh, A.S.; Wang, Z.; Wang, D.; Tan, H. Dezhou Donkey (Equus asinus) Milk a Potential Treatment Strategy for Type 2 Diabetes. J. Ethnopharmacol. 2020, 246, 112221. [Google Scholar] [CrossRef]
- He, M.; Sun, J.; Jiang, Z.Q.; Yang, Y.X. Effects of Cow’s Milk Beta-Casein Variants on Symptoms of Milk Intolerance in Chinese Adults: A Multicentre, Randomised Controlled Study. Nutr. J. 2017, 16, 72. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Sethi, S.; Tyagi, S.K.; Anurag, R.K. Plant-based milk alternatives an emerging segment of functional beverages: A review. J. Food Sci. Technol. 2016, 53, 3408–3423. [Google Scholar] [CrossRef]
- Craig, W.J.; Fresán, U. International analysis of the nutritional content and a review of health benefits of non-dairy plant-based beverages. Nutrients 2021, 13, 842. [Google Scholar] [CrossRef] [PubMed]
- Damasceno, L.R.A.D.; Botelho, R.B.A.; de Alencar, E.R. Development of novel plant-based milk based on chickpea and coconut. LWT 2020, 128, 109479. [Google Scholar] [CrossRef]
- McClements, D.J. Development of Next-Generation Nutritionally Fortified Plant-Based Milk Substitutes: Structural Design Principles. Foods 2020, 9, 421. [Google Scholar] [CrossRef] [Green Version]
- Chalupa-krebzdak, S.; Long, C.J.; Bohrer, B.M. Nutrient density and nutritional value of milk and plant-based milk alternatives. Int. Dairy J. 2018, 87, 84–92. [Google Scholar] [CrossRef]
- Cordova, A.G. Consumo de Bebidas Vegetais no Brasil: Análise da Percepção do Consumidor, Pelo Uso de Word Association. Bachelor’s Thesis, Universidade Federal de Santa Catarina, Florianópolis, Brazil, 2019. [Google Scholar]
- Révillion, J.P.; Kapp, C.; Badejo, M.S.; da Veiga Dias, V. O mercado de alimentos vegetarianos e veganos: Características e perspectivas. Cad. Ciênc. Tecnol. 2020, 37, 26603. [Google Scholar] [CrossRef]
- Research and Markets. Global Plant Based Milk Market (Soy Milk, Almond Milk and Rice Milk): Insights, Trends and Forecast (2020–2024); Research and Markets: Dublin, Ireland, 2020. [Google Scholar]
- Aqua-Calc Online Food Calculator. Food Volume to Weight Conversions—Soymilk. Available online: https://www.aqua-calc.com/ (accessed on 4 March 2021).
- WHO. Guideline: Sodium Intake for Adults and Children; WHO: Geneva, Switzerland, 2012; pp. 1–56. [Google Scholar]
- Zygomatic Wordclouds. Wordclouds Home Page. Available online: https://www.wordclouds.com/ (accessed on 20 April 2021).
- Abrão, Y.B. Avaliação Físico-Química de Extratos de Arroz Polido, Parboilizado, Integral e Vermelho; Instituto Federal Goiano—Campus Morrinhos: Morrinhos, Brazil, 2019. [Google Scholar]
- Andrade, E.D.d.O. Extrato de Aveia (Avena sativa L.): Obtenção, Determinação da Composição Centesimal e Avaliação Sensorial. Undergraduate Thesis, Federal University of Rio Grande do Norte, Natal, Brazil, 2018. [Google Scholar]
- Holanda, S.A.d.M. Desenvolvimento e Caracterização de Bebida Vegetal à Base de Amêndoa de Castanha de Caju, Adicionada de Achocolatado, Leite de Coco ou Banana. Master’s Thesis, Universidade Federal do Ceará, Fortaleza, Brazil, 2017. [Google Scholar]
- Lima, J.R.; Bruno, L.M.; Wurlitzer, N.J.; de Sousa, P.H.M.; Samara Alves de Mesquita, H. Cashew nut-based beverage: Development, characteristics and stability during refrigerated storage. Food Sci. Technol. 2020, 41, 60–64. [Google Scholar] [CrossRef]
- Reis, C.S. dos Estudo do Processamento e Caracterização Físico-Química da Bebida de Gergelim. Undergraduate Thesis, Federal University of Maranhão, São Luís, Brazil, 2019. [Google Scholar]
- Silva, L.H.M.; Rodrigues, A.M.C.; Amante, E.R.; Pinheiro, R.C. Caracterização química da amêndoa de frutos amazônicos e seu aproveitamento na elaboração de extratos. In Anais do XX Congresso Brasileiro de Engenharia Química—COBEQ 2014; Blucher: São Paulo, Brazil, 2015; Volume 1, pp. 1–8. [Google Scholar]
- Silva, N.L.d.N. Obtenção e composição centesimal de extrato vegetal de amêndoas como alternativa de uso em preparações para indivíduos com intolerância à lactose. Undergraduate Thesis, Federal University of Rio Grande do Norte, Natal, Brazil, 2018. [Google Scholar]
- Storck, C.R.; Montagner, G.E. Sorvete com extrato hidrossolúvel de arroz: Análise físico-química e sensorial. DEMETRA Aliment. Nutr. Saúde 2020, 15, e45766. [Google Scholar] [CrossRef]
- Uliana, M.R.; Venturini Filho, W.G. Análise Energética De Bebida Mista De Extrato Hidrossolúvel De Soja E Suco De Amora. Energy Agric. 2010, 25, 94–103. [Google Scholar] [CrossRef] [Green Version]
- Vieira, A.R. Efeito da Força Iônica na Composição da Bebida à Base de Quinoa Real. Bachelor’s Thesis, Universidade de Brasília, Brasília, Brazil, 2013. [Google Scholar]
- Vieira, C.F.d.S. Elaboração e Caracterização de Iogurte de Extrato Hidrossolúvel da Amêndoa de Baru (Dipterix Alata vog.). Master’s Thesis, Federal University of Tocantins, Palmas, Brazil, 2017. [Google Scholar]
- Araújo, A.R. Pastel Sem Glúten e Sem Leite: Uma Alternativa às Restrições Alimentares. Bachelor’s Thesis, Universidade de Brasília, Brasília, Brazil, 2015. [Google Scholar]
- Barros, É.A. Produção de Bebida Mista de Extrato Hidrossolúvel de Soja e Suco de Uva Submetida a Diferentes Doses de Radiação Gama. Ph.D. Thesis, Universidade Estadual Paulista Júlio de Mesquita Filho, São Paulo, Brazil, 2016. [Google Scholar]
- Barros, É.A. Estudo de Lipoxigenases em Extrato Hidrossolúvel de Soja (Glycine max (L.) Merr.) Submetido a Diferentes Tratamentos. Master’s Thesis, Universidade Estadual Paulista Júlio de Mesquita Filho, São Paulo, Brazil, 2012. [Google Scholar]
- Barros, É.A.; Venturini Filho, W.G. Caracterização físico-química e sensorial de extrato hidrossolúvel de soja obtido por diferentes métodos de processamento. Rev. Bras. Tecnol. Agroind. 2016, 10, 2038–2051. [Google Scholar] [CrossRef] [Green Version]
- Blum, J.E.S.; Ramoni, E.O.; Balbi, M.E. Elaboração de extrato hidrossolúvel (leite) a partir de semente de girassol germinada (Helianthus annus L., Asteraceae) e avaliação de sua composição nutricional. Visão Acad. 2016, 17, 81–95. [Google Scholar]
- De Carvalho, W.T.; dos Reis, R.C.; Velasco, P.; Soares Júnior, M.S.; Bassinello, P.Z.; Caliari, M. Características Físico-Químicas De Extratos De Arroz Integral, Quirera De Arroz E Soja. Pesqui. Agropecu. Trop. 2011, 41, 422–429. [Google Scholar] [CrossRef]
- Demoliner, F. Perfil Químico da Castanha de Sapucaia (Lecythis Pisonis Cambess) e Obtenção de Extrato Hidrossolúvel Vegetal Por Crioconcentração. Master’s Thesis, Universidade Federal de Santa Catarina, Florianópolis, Brazil, 2019. [Google Scholar]
- Ferreira, J.C. Processos para o Desenvolvimento da Umbuzada em Pó Liofilizada, Composta de Polpa de Umbu, Extrato de Soja e Rapadura. Ph.D. Thesis, Federal University of Campina Grande, Campina Grande, Brazil, 2011. [Google Scholar]
- Meeshi, A.; Hiremath, U.; Kundgol, N.G. Nutritive value of safflower and groundnut milk and their products. Int. J. Farm Sci. 2014, 4, 172–176. [Google Scholar]
- Ravindran, S.; RadhaiSri, S. Probiotic oats milk drink with microencapsulated Lactobacillus plantarum—An alternative to dairy products. Nutr. Food Sci. 2020, 51, 471–482. [Google Scholar] [CrossRef]
- Manassero, C.A.; Añón, M.C.; Speroni, F. Development of a High Protein Beverage Based on Amaranth. Plant Foods Hum. Nutr. 2020, 75, 599–607. [Google Scholar] [CrossRef]
- Decloedt, A.I.; Van Landschoot, A.; Watson, H.; Vanderputten, D.; Vanhaecke, L. Plant-based beverages as good sources of free and glycosidic plant sterols. Nutrients 2018, 10, 21. [Google Scholar] [CrossRef] [Green Version]
- Martínez-Padilla, E.; Li, K.; Blok Frandsen, H.; Skejovic Joehnke, M.; Vargas-Bello-Pérez, E.; Lykke Petersen, I. In Vitro Protein Digestibility and Fatty Acid Profile of Commercial Plant-Based Milk Alternatives. Foods 2020, 9, 1784. [Google Scholar] [CrossRef]
- Scholz-Ahrens, K.E.; Ahrens, F.; Barth, C.A. Nutritional and health attributes of milk and milk imitations. Eur. J. Nutr. 2020, 59, 19–34. [Google Scholar] [CrossRef]
- Nti, C.A.; Plahar, W.A.; Annan, N.T. Development and quality characteristics of shelf-stable soy-agushie: A residual by-product of soymilk production. Food Sci. Nutr. 2016, 4, 315–321. [Google Scholar] [CrossRef] [PubMed]
- Hajirostamloo, B. Comparison of Nutritional and Chemical Parameters of Soymilk and Cow milk. World Acad. Sci. Eng. Technol. 2009, 57, 436–438. [Google Scholar]
- Jeske, S. Evaluation and Improvement of Technological and Nutritional Properties of Plant-Based Milk Substitutes. Ph.D. Thesis, University College Cork, Cork, Ireland, 2018. [Google Scholar]
- Alozie, Y.E.; Udofia, U.S. Nutritional and Sensory Properties of Almond (Prunus amygdalu Var. Dulcis) Seed Milk. World J. Dairy Food Sci. 2015, 10, 117–121. [Google Scholar] [CrossRef]
- Manzoor, M.F.; Manzoor, A.; Siddique, R.; Ahmad, N. Nutritional and Sensory Properties of Cashew Seed (Anacardium occidentale) Milk. Mod. Concepts Dev. Agron. 2017, 1, 1–4. [Google Scholar] [CrossRef]
- Karimidastjerd, A.; Kilic-Akyilmaz, M. Formulation of a low-protein rice drink fortified with caseinomacropeptide concentrate. Food Bioprod. Process. 2021, 125, 161–169. [Google Scholar] [CrossRef]
- IBGE. Pesquisa de Orçamentos Familiares 2008–2009: Tabela de Composição Nutricional dos Alimentos Consumidos no Brasil; IBGE: Rio De Janeiro, Brazil, 2011; pp. 1–351.
- Núcleo de Estudos e Pesquisas em Alimentação (NEPA); Universidade Estadual de Campinas (UNICAMP). Tabela Brasileira de Composição de Alimentos. Available online: https://www.cfn.org.br/wp-content/uploads/2017/03/taco_4_edicao_ampliada_e_revisada.pdf (accessed on 15 May 2020).
- Munu, N.; Kigozi, J.; Zziwa, A.; Kambugu, R.; Wasswa, J.; Tumutegyereize, P. Effect of Ambient-Soaking Time on Soybean Characteristics for Traditional Soymilk Extraction. J. Adv. Food Sci. Technol. 2016, 3, 119–128. [Google Scholar]
- Aydar, E.F.; Tutuncu, S.; Ozcelik, B. Plant-based milk substitutes: Bioactive compounds, conventional and novel processes, bioavailability studies, and health effects. J. Funct. Foods 2020, 70, 103975. [Google Scholar] [CrossRef]
- Sousa, A.; Kopf-Bolanz, K.A. Nutritional Implications of an Increasing Consumption of Non-Dairy Plant-Based Beverages Instead of Cow’s Milk in Switzerland. Adv. Dairy Res. 2017, 5, 1–7. [Google Scholar] [CrossRef]
- Jeske, S.; Zannini, E.; Arendt, E.K. Evaluation of Physicochemical and Glycaemic Properties of Commercial Plant-Based Milk Substitutes. Plant Foods Hum. Nutr. 2017, 72, 26–33. [Google Scholar] [CrossRef] [Green Version]
- Saeed, M.; Yasmin, I.; Pasha, I.; Randhawa, M.A.; Khan, M.; Shabbir, M.A.; Khan, W.A. Potential application of inulin in food industry; a review. Pak. J. Food Sci. 2015, 25, 110–116. [Google Scholar]
- The Cornucopia Institute. “Pouring” Over Plant-Based Beverages. A Consumer’s Guide to Identifying the Best Non-Milk Alternatives. Available online: https://www.cornucopia.org/wp-content/uploads/2019/06/PlantBasedBeverageReport.pdf (accessed on 1 April 2021).
- FAO; WHO. Guidelines on Food Fortification with Micronutrients; WHO: Geneva, Switzerland, 2006; pp. 1–343. [Google Scholar]
- Food and Agriculture Organization of the United Nations (FAO); World Health Organization (WHO). Class Names and The International Numbering System for Food Additives. Available online: http://www.fao.org/fao-who-codexalimentarius/sh-proxy/en/?lnk=1&url=https%253A%252F%252Fworkspace.fao.org%252Fsites%252Fcodex%252FStandards%252FCXG%2B36-1989%252FCXG_036e.pdf (accessed on 21 April 2021).
- FAO. Milk and Dairy Products in Human Nutrition; FAO: Rome, Italy, 2013; pp. 1–377. [Google Scholar]
- U.S. Department of Agriculture (USDA). FoodData Central. Available online: https://fdc.nal.usda.gov/ (accessed on 23 March 2021).
- FAO. Dietary Protein Quality Evaluation in Human Nutrition: Report of an FAO Expert Consultation; FAO: Rome, Italy, 2013; Volume 92. [Google Scholar]
- Tirapegui, J. Nutrição, Fundamentos e Aspectos Atuais, 3rd ed.; Atheneu: São Paulo, Brazil, 2013. [Google Scholar]
- Lordan, R.; Tsoupras, A.; Mitra, B.; Zabetakis, I. Dairy fats and cardiovascular disease: Do we really need to be concerned? Foods 2018, 7, 29. [Google Scholar] [CrossRef] [Green Version]
- American Association of Cereal Chemists (AACC). The Definition of Dietary Fiber; AACC: St. Paul, MN, USA, 2001; Volume 46. [Google Scholar]
- Institute of Medicine (US) Standing Committee on the Scientific Evaluation of Dietary Reference Intakes. Dietary Reference Intakes for Calcium, Phosphorus, Magnesium, Vitamin D, and Fluoride; Institute of Medicine (US) Standing Committee on the Scientific Evaluation of Dietary Reference Intakes: Washington, DC, USA, 1997. [Google Scholar]
- Haider, L.M.; Schwingshackl, L.; Hoffmann, G.; Ekmekcioglu, C. The effect of vegetarian diets on iron status in adults: A systematic review and meta-analysis. Crit. Rev. Food Sci. Nutr. 2016, 58, 1359–1374. [Google Scholar] [CrossRef] [PubMed]
- Pineli, L.L.O.; Botelho, R.B.A.; Zandonadi, R.P.; Solorzano, J.L.; de Oliveira, G.T.; Reis, C.E.G.; Teixeira, D.D.S. Low glycemic index and increased protein content in a novel quinoa milk. LWT Food Sci. Technol. 2015, 63, 1261–1267. [Google Scholar] [CrossRef]
Authors and Year | Ingredients | Energy (Kcal) | CHO (g) | Protein (g) | Lipid (g) | Dietary Fiber (g) | Ca (mg) | Fe (mg) | Mg (mg) | Na (mg) | Specifications on the Origin of the Beverage/Where the Nutritional Data Were Obtained |
---|---|---|---|---|---|---|---|---|---|---|---|
Almond-based beverage | |||||||||||
Alozie and Udofia, 2015 | Water, almond (dehulled), sugar syrup (granulated sugar + water), vanilla essence. | 55 | 4.50 | 1.70 | 3.40 | 1.25 | 13.10 | 1.40 | 42.05 | 6.38 | Beverage prepared and analyzed for the study. |
Chalupa-Krebzdak et al., 2018 | Almond milk (filtered water, almonds), evaporated cane juice syrup, calcium carbonate, sea salt, potassium citrate, carrageenan, sunflower lecithin, vitamin A palmitate, vitamin D2, D-alpha tocopherol (natural vitamin E). | 25 | 3.33 | 0.42 | 1.04 | _ | 188.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Almond milk (filtered water, almonds), calcium carbonate, tapioca starch, sea salt, potassium citrate, carrageenan, sunflower lecithin, natural flavour, vitamin A palmitate, vitamin D2 and D-alpha tocopherol (natural vitamin E). | 12 | 0.62 | 0.31 | 1.08 | _ | 185.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Almond milk (filtered water, almonds), honey, cane sugar, calcium carbonate, sea salt, potassium citrate, carrageenan, sunflower lecithin, guar gum, natural flavor, vitamin A palmitate, vitamin D2, D-alpha tocopherol (natural vitamin E). | 21 | 3.33 | 0.42 | 1.04 | _ | 188.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Almond milk (water, almonds), pea protein, rice protein, calcium phosphate, magnesium phosphate, carrageenan, natural flavor, locust bean gum, kosher sea salt, vitamin A palmitate, vitamin D2 L-selenomethionine (selenium), zinc oxide, folic acid, vitamin b-12. | 17 | 0.42 | 2.08 | 0.83 | _ | 42.00 | _ | _ | _ | USDA Food Composition Database. |
Decloedt et al., 2018 | Water, almond (2.10%), tricalcium phosphate, salt, sunflower lecithine (emulsifier), sugar, locust bean gum, gellan gum. | 24 | 3.00 | 0.50 | 1.10 | 0.20 | 120.00 | _ | _ | 56.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Decloedt et al., 2018 | Water, almond (2.10%), tricalcium phosphate, salt, sunflower lecithine (emulsifier), aromas, locust bean gum, gellan gum. | 13 | 0.10 | 0.50 | 1.30 | 0.20 | 120.00 | _ | _ | 56.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Jeske, 2018 | Water, sugar, almond (2.00%), tri-calcium phosphate, sea salt, stabilizers (locust bean gum, gellan gum), emulsifier (sunflower lecithin), vitamins B2, B12, E, D2). | 25 b | 3.08 b | 0.51 b | 1.13 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Jeske, 2018 | Water, almond (7.00%), sea salt. | 34 b | 0.21 b | 0.92 b | 3.08 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Martínez-Padilla et al., 2020 | Water, almond (7.00%), tapioca starch, natural almond flavoring. | 32 | 3.30 | 1.00 | 2.10 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Ecomil. |
Scholz-Ahrens et al., 2020 | Water, almonds (6.50%) sea salt. | 32 b | 0.21 b | 0.82 b | 2.98 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Silva, 2018 | Water, almonds. | 68 b | 0.67 b | 4.36 b | 5.51 b | 2.16 b | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Amaranth-based beverage | |||||||||||
Manassero et al., 2020 | Water, amaranth seeds, xanthan gum, gellan gum. | 32 b | 3.15 b | 3.51 b | 0.62 b | 1.95 b | 14.87 b | 0.76 b | _ | _ | Beverage prepared and analyzed for the study. |
Baru almond-based beverage | |||||||||||
Vieira, 2017 | Water, baru almond. | 71 b | 1.94 b | 3.15 b | 5.66 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Cashew nut-based beverage | |||||||||||
Chalupa-Krebzdak et al., 2018 | Cashew milk (filtered water, cashews), cane sugar, tricalcium phosphate, sea salt, almond butter, locust bean gum, sunflower lecithin, gellan gum, vitamin E acetate, zinc gluconate, vitamin A palmitate, riboflavin (B2) vitamin B12, vitamin D2. | 25 | 3.75 | 0.42 | 1.04 | _ | 188.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Cashew milk (filtered water, cashews), cane sugar, tricalcium phosphate, sea salt, almond butter, locus bean gum, sunflower lecithin, gellan gum, vitamin E acetate, zinc gluconate, vitamin A palmitate, riboflavin (B2) vitamin B12, vitamin D2. | 79 | 5.73 | 2.20 | 5.29 | _ | 9.00 | _ | _ | _ | USDA Food Composition Database. |
Decloedt et al., 2018 | Water, cashew nuts (3.10%), tricalcium phosphate, salt, sunflower lecithine (emulsifier), sugar, locust bean gum, gellan gum. | 23 | 2.60 | 0.50 | 1.10 | 0.20 | 120.00 | _ | _ | 52.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Holanda, 2017 | Water, cashew nut, sugar, tricalcium calcium phosphate. | 58 b | 4.92 b | 2.13 b | 3.29 b | _ | 108.76 b | _ | _ | _ | Beverage prepared and analyzed for the study. |
Jeske, 2018 | Water, roasted cashew (6.00%), agave syrup (3.50%), sea salt. | 48 b | 4.52 b | 0.92 b | 2.88 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Lima et al., 2020 | Water, broken cashew nut kernels, sugar. | 66 b | 5.58 b | 1.88 b | 4.08 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Manzoor et al., 2017 | Water, cashew nuts, sugar syrup, vanilla flavor. | 57 b | 4.50 b | 2.11 b | 3.39 b | 1.18 b | 21.90 | 0.80 | 38.20 | 22.80 | Beverage prepared and analyzed for the study. |
Scholz-Ahrens et al., 2020 | Water, cashew nuts (3.10%), sugar, calcium (tri-calcium phosphate), sea salt, stabilizers (locust bean gum, gellan gum), emulsifier (sunflower lecithin), vitamins (riboflavin (B2), B12, E, D2). | 24 b | 2.67 b | 0.51 b | 1.13 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Coconut-based beverage | |||||||||||
Chalupa-Krebzdak et al., 2018 | Organic coconut milk (or water, organic coconut cream), organic dried cane syrup, chicory root extract (inulin), tapioca dextrose, pectin, algin (kelp extract), magnesium phosphate, tricalcium phosphate, rice starch, natural flavours, locust bean gum, live cultures, carrageenan, guar gum, dipotassium phosphate, vitamin B12. | 76 | 9.41 | 0.59 | 4.12 | _ | 176.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Coconut extract (25.00%), water, carboxymethyl cellulose (E466, guar gum. | 92 | 7.00 | 2.00 | 6.00 | _ | 0.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Coconut milk, water, stabilizer, sodium metabisulphite. | 50 | 3.75 | 1.25 | 5.00 | _ | 0.00 | _ | _ | _ | USDA Food Composition Database. |
Decloedt et al., 2018 | Water, coconut milk (coconut cream and water) (5.30%), rice (3.30%), tricalcium phosphate, salt (sea), aromas, carrageenan, guar gum, xanthan gum. | 20 | 2.70 | 0.10 | 0.90 | 0.00 | 120.00 | _ | _ | 52.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Jeske, 2018 | Water, coconut milk (5.30%) (coconut cream, water), rice (3.30%), tri-calcium phosphate, stabilizers (carrageenan, guar gum, Xanthan gum), sea salt, vitamins (B12, D2), flavorings. | 21 b | 2.77 b | 0.10 b | 0.92 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Martínez-Padilla et al., 2020 | Water, coconut milk (5.30%), raw cane sugar, maltodextrin, algae Lithothamnium calcareum. | 26 | 4.10 | 0.10 | 0.90 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Naturli. |
Scholz-Ahrens et al., 2020 | Coconut extract 85.00%, water. | 183 b | 2.05 b | 1.64 b | 19.00 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Real Thai. |
Scholz-Ahrens et al., 2020 | Coconut milk (30.00%), water, corn starch. | 46 b | 0.51 b | 0.51 b | 4.62 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Renuka. |
Cupuaçu almond-based beverage | |||||||||||
Silva et al., 2015 | Water, cupuaçu almond flour. | 7 b | 0.26 b | 0.10 b | 0.63 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 55 °C) and analyzed for the study. |
Silva et al., 2015 | Water, cupuaçu almond flour. | 9 b | 0.46 b | 0.07 b | 0.81 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 75 °C) and analyzed for the study. |
Silva et al., 2015 | Water, cupuaçu almond flour. | 10 b | 0.77 b | 0.13 b | 0.75 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 100 °C) and analyzed for the study. |
Groundnut-based beverage | |||||||||||
Meeshi et al., 2014 | Water, groundnut, sodium bicarbonate (1.00% solution). | 72 | 4.13 | 3.10 | 4.80 | _ | 33.47 | _ | _ | _ | Beverage prepared and analyzed for the study. |
Hazelnut-based beverage | |||||||||||
Jeske, 2018 | Water, sugar, hazelnuts (2.50%), tri-calcium phosphate, sea salt, stabilizers (locust bean gum, gellan gum), emulsifier (sunflower lecithin), vitamins B2, B12, E, D2). | 30 b | 3.18 b | 0.41 b | 1.64 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Martínez-Padilla et al., 2020 | Water, sugar, hazelnuts (2.50%), calcium (tri-calcium phosphate), sea salt, stabilizers (locust bean gum, gellan gum), emulsifier (sunflower lecithin), vitamins (riboflavin B2, B12, E, D2). | 29 | 3.10 | 0.40 | 1.60 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Scholz-Ahrens et al., 2020 | Water, sugar, hazelnuts (2.50%), calcium (tri-calcium phosphate), sea salt, stabilizers (locust bean gum, gellan gum), emulsifier (sunflower lecithin), vitamins (riboflavin (B2), B12, E, D2). | 30 b | 3.18 b | 0.41 b | 1.64 b | _ | 123.24 b | _ | _ | _ | Nutritional values obtained from the label. Brand name: Alpro. |
Scholz-Ahrens et al., 2020 | Water, European hazelnuts (4.00%), agave syrup (3.50%), sea salt. | 37 b | 2.67 b | 0.62 b | 2.67 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Hemp-based beverage | |||||||||||
Chalupa-Krebzdak et al., 2018 | Organic flax/hemp cream (filtered water, organic flax oil, organic hemp oil), organic brown rice solids, organic brown rice syrup, organic tapioca, non-GMO sunflower lecithin, Himalayan salt, organic guar gum, xanthan gum. | 19 | 2.50 | 0.83 | 1.25 | _ | 12.00 | _ | _ | _ | USDA Food Composition Database. |
Jeske, 2018 | Water, hemp cream (3.00%), tri-calcium phosphate, emulsifier (sucrose ester), natural flavoring, stabilizer (xanthan gum), sea salt, stabilizer (gellan gum), vitamin D2. | 24 b | 0.10 b | 0.10 b | 2.77 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Braham and Murray. |
Martínez-Padilla et al., 2020 | Water, hemp seeds (3.00%), hemp oil (1.30%), tapioca starch, emulsifier: sunflower lecithin. | 40 | 2.20 | 1.00 | 2.90 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Ecomil. |
Macadamia nut-based beverage | |||||||||||
Jeske, 2018 | Water, macadamia nuts (4.00%), agave syrup (3.50%), sea salt. | 35 b | 2.46 b | 0.51 b | 2.46 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Scholz-Ahrens et al., 2020 | Water, macadamia nuts (4.00%), agave syrup (3.50%), sea salt. | 38 b | 2.77 b | 0.31 b | 2.67 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Millet-based beverage | |||||||||||
Scholz-Ahrens et al., 2020 | Water, millet (12.00%), high-oleic sunflower oil, sea salt. | 51 b | 9.24 b | 0.51 b | 1.54 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Swiss cereal drink. |
Oat-based beverage | |||||||||||
Andrade, 2018 | Water, oats. | 35 b | 1.00 b | 1.86 b | 2.69 b | 3.21 b | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Decloedt et al., 2018 | Water, oats (16.00%), sunflower oil, tricalcium phosphate, salt (sea), acacia gum (gum arabic). | 52 | 8.90 | 0.40 | 1.40 | 1.00 | 120.00 | _ | _ | 48.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Decloedt et al., 2018 | Water, oats (10.00%), canola oil, calcium carbonate, tricalcium phosphate (and other), salt. | 45 | 6.50 | 1.00 | 1.50 | 0.80 | 120.00 | _ | _ | 40.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Jeske, 2018 | Oat base (water, oats 10.00%), sea salt. | 36 b | 6.68 b | 1.03 b | 0.51 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Oatly. |
Martínez-Padilla et al., 2020 | Water, oats (10.00%), sea salt. | 36 | 6.50 | 1.00 | 0.50 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Oatly organic. |
Ravindran and RadhaiSri, 2020 | Water, oats. | 33 | 7.30 | 0.89 | 0.37 | 4.40 | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Scholz-Ahrens et al., 2020 | Water, oat (10.00%), rapeseed oil, algae (Lithothamnium calcareum), sea salt, citric acid. | 46 b | 6.68 b | 1.03 b | 1.54 b | _ | 123.24 b | _ | _ | _ | Nutritional values obtained from the label. Brand name: Oatly. |
Quinoa-based beverage | |||||||||||
Jeske, 2018 | Water, quinoa (7.00%), agave syrup, corn maltodextrin, almond oil. | 47 b | 3.80 b | 1.54 b | 2.88 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: EcoMil. |
Martínez-Padilla et al., 2020 | Water, quinoa (4.00%), inulin (agave fiber), sunflower oil, emulsifier: sunflower lecithin. | 29 | 3.50 | 0.50 | 1.20 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Ecomil. |
Vieira, 2013 | Water (distilled), quinoa, saline solution 0.03 M (sodium chloride + distilled water), Termamyl enzyme, amyloglucosidase enzyme, sunflower oil (1.00%). | 35 | 5.47 | 1.02 | 1.04 | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Rice-based beverage | |||||||||||
Abrão, 2019 | Water, brown rice. | 20 b | 4.20 b | 0.40 b | 0.00 b | 0.35 b | 0.00 b | _ | _ | 0.00 b | Beverage prepared for the study. Nutritional values based on the label of the product of origin. |
Abrão, 2019 | Water, parboiled rice. | 21 b | 4.60 b | 0.40 b | 0.00 b | 0.00 b | 0.00 b | _ | _ | 0.65 b | Beverage prepared for the study. Nutritional values based on the label of the product of origin. |
Abrão, 2019 | Water, polished rice. | 21 b | 5.00 b | 0.35 b | 0.00 b | 0.00 b | 2.50 b | _ | _ | 0.00 b | Beverage prepared for the study. Nutritional values based on the label of the product of origin. |
Abrão, 2019 | Water, red rice. | 21 b | 4.20 b | 0.35 b | 0.00 b | 0.00 b | 0.00 b | _ | _ | 0.00 b | Beverage prepared for the study. Nutritional values based on the label of the product of origin. |
Carvalho et al., 2011 | Water, broken polished rice of the EPAGRI 109 variety. | 18 b | 3.25 b | 0.75 b | 0.42 b | _ | 0.90 b | 0.04 b | 0.84 b | _ | Beverage prepared and analyzed for the study. |
Carvalho et al., 2011 | Water, brown rice. | 21 b | 3.13 b | 0.86 b | 0.61 b | _ | 1.24 b | 0.08 b | 1.73 b | _ | Beverage prepared and analyzed for the study. |
Decloedt et al., 2018 | Water, rice (13.40%), sunflower oil, calcium carbonate, salt, gellan gum. | 58 | 12.00 | 0.20 | 1.00 | 0.30 | 120.00 | _ | _ | 40.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Jeske, 2018 | Organic rice, water, organic sunflower oil, sea salt. | 66 b | 10.78 b | 0.72 b | 1.95 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Vitariz. |
Jeske, 2018 | Water, organic brown rice (14.00%), sunflower oil, sea salt. | 61 b | 11.30 b | 0.31 b | 1.34 b | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Rude Health. |
Karimidastjerd and Kilic-Akyilmaz, 2021 | Water (distilled), white rice flour (3.00–8.00%, w/w), xanthan gum (0.01–0.05%, w/w), sunflower oil (1.00%, w/w), sea salt (0.10%, w/w). | 25 b | 2.57 b | 0.21 b | 1.54 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Karimidastjerd and Kilic-Akyilmaz, 2021 | Water (distilled), white rice flour (3.00–8.00%, w/w), xanthan gum (0.01–0.05%, w/w), sunflower oil (1.00%, w/w), sea salt (0.10%, w/w), sugar (2.50%, w/v). | 35 b | 5.14 b | 0.21 b | 1.54 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Martínez-Padilla et al., 2020 | Water, rice (11.00%), sunflower oil, sea salt. | 54 | 11.00 | 0.10 | 1.10 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Naturli. |
Scholz-Ahrens et al., 2020 | Water, European rice (17.00%), coconut milk (4.00%), sea salt. | 62 b | 12.84 b | 0.31 b | 0.92 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Storck and Montagner, 2020 | Water, broken polished rice, vanilla essence, salt. | 40 b | 9.01 b | 0.97 b | 0.04 b | 1.09 b | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Safflower-based beverage | |||||||||||
Meeshi et al., 2014 | Water, safflower seed, sodium hexameta phosphate (0.20%), salt. | 70 | 2.62 | 2.40 | 5.62 | _ | 55.30 | _ | _ | _ | Beverage prepared and analyzed for the study. |
Sapucaia nut-based beverage | |||||||||||
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 54 b | 1.34 b | 1.94 b | 4.51 b | _ | 636.74 b | _ | 2916.68 b | 315.80 b | Beverage prepared (submitted to the crioconcentration method—initial volume) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 40 b | 2.10 b | 2.36 b | 2.42 b | _ | 709.66 b | _ | 3183.70 b | 318.78 b | Beverage prepared (submitted to the crioconcentration method—concentrated fluid 1) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 60 b | 1.03 b | 2.19 b | 5.26 b | _ | 523.77 b | _ | 1008.51 b | 120.06 b | Beverage prepared (submitted to the crioconcentration method—ice 1) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 50 b | 3.97 b | 2.67 b | 2.55 b | _ | 738.41 b | _ | 3382.94 b | 325.66 b | Beverage prepared (submitted to the crioconcentration method—concentrated fluid 2) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 45 b | 2.67 b | 0.91 b | 3.43 b | _ | 517.61 b | _ | 1283.75 b | 192.25 b | Beverage prepared (submitted to the crioconcentration method—ice 2) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 56 b | 4.29 b | 4.40 b | 2.32 b | _ | 862.99 b | _ | 4467.45 b | 323.71 b | Beverage prepared (submitted to the crioconcentration method—concentrated fluid 3) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 21 b | 2.75 b | 0.84 b | 0.69 b | _ | 515.55 b | _ | 1345.37 b | 262.09 b | Beverage prepared (submitted to the crioconcentration method—ice 3) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 76 b | 3.19 b | 7.57 b | 3.65 b | _ | 952.23 b | _ | 6264.70 b | 331.82 b | Beverage prepared (submitted to the crioconcentration method—concentrated fluid 4) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 11 b | 1.01 b | 0.77 b | 0.46 b | _ | 313.24 b | _ | 945.87 b | 163.50 b | Beverage prepared (submitted to the crioconcentration method—ice 4) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 119 b | 7.98 b | 12.43 b | 4.12 b | _ | 1252.94 b | _ | 10,178.60 b | 343.43 b | Beverage prepared (submitted to the crioconcentration method—concentrated fluid 5) and analyzed for the study. |
Demoliner, 2019 | Water (distilled), sapucaia nut pie. | 22 b | 1.83 b | 2.00 b | 0.77 b | _ | 752.79 b | _ | 1663.74 b | 292.90 b | Beverage prepared (submitted to the crioconcentration method—ice 5) and analyzed for the study. |
Sesame seed-based beverage | |||||||||||
Reis, 2019 | Water (distilled), sesame seeds. | 139 b | 12.77 b | 5.55 b | 7.26 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Reis, 2019 | Water (distilled), sesame seeds, maltodextrin (10.00%). | 170 b | 22.29 b | 5.23 b | 6.69 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Soy-based beverage | |||||||||||
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-213). | 44 b | 1.44 b | 4.50 b | 2.31 b | _ | _ | _ | _ | _ | Beverage prepared (control) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-213), tocopherol. | 51 b | 1.53 b | 4.83 b | 2.83 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 5.00 kGy of irradiation with tocopherol supplementation) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-213), tocopherol. | 54 b | 1.70 b | 4.99 b | 2.99 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to a temperature of 80 °C with tocopherol supplementation) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-258). | 50 b | 1.77 b | 4.49 b | 2.82 b | _ | _ | _ | _ | _ | Beverage prepared (control) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-258), tocopherol. | 51 b | 1.69 b | 4.74 b | 2.79 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 5.00 kGy of irradiation with tocopherol supplementation) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa BRS-258), tocopherol. | 51 b | 1.67 b | 4.57 b | 2.94 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to a temperature of 80 °C with tocopherol supplementation) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa Emb-48). | 50 b | 1.87 b | 4.28 b | 2.88 b | _ | _ | _ | _ | _ | Beverage prepared (control) and analyzed for the study |
Barros, 2012 | Water, soybean (cultivar Embrapa Emb-48), tocopherol. | 50 b | 1.80 b | 4.25 b | 2.82 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 5.00 kGy of irradiation with tocopherol supplementation) and analyzed for the study. |
Barros, 2012 | Water, soybean (cultivar Embrapa Emb-48), tocopherol. | 54 b | 1.91 b | 4.54 b | 3.17 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to a temperature of 80 °C with tocopherol supplementation) and analyzed for the study. |
Barros, 2016 | Water, soybean (cultivar Embrapa BRS-213), acacia/arabic gum (3.00%), neutral alloy (guar and carboxymethylcellulose) (1.00%), vanilla essence (0.20%), tocopherol, ascorbic acid, concentrated apple juice. | 61 b | 12.38 b | 1.32 b | 0.65 b | _ | _ | _ | _ | _ | Beverage prepared (control) and analyzed for the study. |
Barros, 2016 | Water, soybean (cultivar Embrapa BRS-213), acacia/arabic gum (3.00%), neutral alloy (guar and carboxymethylcellulose) (1.00%), vanilla essence (0.20%), tocopherol, ascorbic acid, concentrated apple juice. | 60 b | 12.20 b | 1.20 b | 0.75 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 2.00 kGy of gamma radiation) and analyzed for the study. |
Barros, 2016 | Water, soybean (cultivar Embrapa BRS-213), acacia/arabic gum (3.00%), neutral alloy (guar and carboxymethylcellulose) (1.00%), vanilla essence (0.20%), tocopherol, ascorbic acid, concentrated apple juice. | 61 b | 12.18 b | 1.12 b | 0.82 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 4.00 kGy of gamma radiation) and analyzed for the study. |
Barros, 2016 | Water, soybean (cultivar Embrapa BRS-213), acacia/arabic gum (3.00%), neutral alloy (guar and carboxymethylcellulose) (1.00%), vanilla essence (0.20%), tocopherol, ascorbic acid, concentrated apple juice. | 60 b | 12.41 b | 0.99 b | 0.70 b | _ | _ | _ | _ | _ | Beverage prepared (subjected to 8.00 kGy of gamma radiation) and analyzed for the study. |
Barros and Venturini Filho, 2016 | Water, soybean. | 26 b | 0.41 b | 2.77 b | 1.44 b | _ | _ | _ | _ | _ | Beverage prepared (cold grinding method—aluminum cauldron) and analyzed for the study. |
Barros and Venturini Filho, 2016 | Water, soybean. | 31 b | 1.54 b | 3.18 b | 1.44 b | _ | _ | _ | _ | _ | Beverage prepared (hot grinding method—mechanical cow) and analyzed for the study. |
Barros and Venturini Filho, 2016 | Water, soybean, sugar. | 62 b | 10.27 b | 2.57 b | 1.23 b | _ | _ | _ | _ | _ | Beverage prepared (cold grinding method—aluminum cauldron) and analyzed for the study. |
Barros and Venturini Filho, 2016 | Water, soybean, sugar. | 67 b | 10.37 b | 3.08 b | 1.34 b | _ | _ | _ | _ | _ | Beverage prepared (hot grinding method—mechanical cow) and analyzed for the study. |
Chalupa-Krebzdak et al., 2018 | Soymilk 97.20% (purified water, soy beans), coconut oil, sugar, water, salt, glycerin mono fatty acid ester, sodium bicarbonate. | 58 | 2.63 | 3.16 | 3.68 | _ | 0.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Organic soymilk (filtered water, whole organic soy beans), calcium carbonate, organic locust bean gum, sea salt, natural flavours, gellan gum, vitamin A palmitate, ergocalciferol (vitamin D2), riboflavin (vitamin B2), cyanoconalamin (vitamin B12). | 33 | 1.67 | 2.92 | 1.67 | _ | 125.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Soy milk (filtered water, soy beans), cane sugar, contains 2.00% or less of: vitamin and mineral blend (calcium carbonate, vitamin A palmitate, vitamin D2, riboflavin B2, vitamin B12), sea salt, natural flavor, gellan gum. | 42 | 5.00 | 2.50 | 1.46 | _ | 188.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Filtered water, organic whole soybeans, organic fair trade unrefined cane sugar, calcium carbonate, salt, organic fair trade vanilla flavor, vitamin A palmitate, gellan gum, riboflavin (vitamin B2), vitamin B12. | 46 | 4.58 | 2.92 | 1.67 | _ | 125.00 | _ | _ | _ | USDA Food Composition Database. |
Chalupa-Krebzdak et al., 2018 | Filtered water, whole organic soybeans, evaporated organic cane juice, calcium carbonate, organic natural flavours, sea salt, xanthan gum, carrageenan, vitamin A palmitate, riboflavin (B2), vitamin D2, vitamin B12. | 42 | 3.75 | 2.92 | 1.67 | _ | 125.00 | _ | _ | _ | USDA Food Composition Database. |
Decloedt et al., 2018 | Water, soybeans (pealed), tricalcium phosphate (5.90%), monopotassium phosphate (acid regulator), salt, aromas, sugar, gellan gum. | 39 | 2.50 | 3.00 | 1.80 | 0.50 | 120.00 | _ | _ | 44.00 a | Nutritional values obtained from the label of the drinks that were purchased. |
Ferreira, 2011 | Water, soybeans (1:8 soy:water ratio). | 29 b | 3.21 b | 3.39 b | 1.13 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Ferreira, 2011 | Water, soybeans (1:10 soy: water ratio). | 28 b | 1.41 b | 1.62 b | 0.98 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Ferreira, 2011 | Water, soybeans (1:12 soy: water ratio). | 16 b | 1.18 b | 1.55 b | 0.51 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Hajirostamloo, 2009 | Water, soybean. | 33 b | 1.86 b | 2.82 b | 1.96 b | 1.33 b | 4.11 b | 0.59 b | _ | _ | Beverage prepared and analyzed for the stud.y |
Martínez-Padilla et al., 2020 | Water, shelled soybean (7.20%). | 35 | 0.10 | 3.70 | 2.10 | _ | _ | _ | _ | _ | Nutritional values obtained from the label. Brand name: Naturli. |
Nti et al., 2016 | Water, soybeans, salt (0.20%). | 50 b | 6.85 b | 2.60 b | 1.62 b | _ | 19.00 b | 0.51 b | 22.59 b | 2.57 b | Beverage prepared and analyzed for the study. |
Scholz-Ahrens et al., 2020 | Water, dehulled soyabeans (7.20%), apple concentrate (3.30%), algae Lithothamnium calcareum (0.40%), sea salt. | 46 b | 2.46 b | 3.80 b | 2.16 b | _ | 123.24 b | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Scholz-Ahrens et al., 2020 | Water, raw cane sugar, dehulled soyabeans (5.80%), fat reduced cocoa (1.30%), chocolate (1.10%), sea salt. | 69 b | 8.32 b | 3.49 b | 2.26 b | _ | ND | _ | _ | _ | Nutritional values obtained from the label. Brand name: Provamel. |
Uliana and Venturini Filho, 2010 | Water, soybean. | 33 b | 2.11 b | 2.82 b | 1.43 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Uliana and Venturini Filho, 2010 | Water, soybean. | 31 b | 1.80 b | 2.88 b | 1.39 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Uliana and Venturini Filho, 2010 | Water, soybean. | 31 b | 1.85 b | 2.82 b | 1.34 b | _ | _ | _ | _ | _ | Beverage prepared and analyzed for the study. |
Spelt-based beverage | |||||||||||
Scholz-Ahrens et al., 2020 | Water, spelt (7.00%), oat (6.00%), maltodextrin, barley malt (4.00%), high-oleic sunflower oil, cocoa (1.00%), algae Lithothamnion maerl (0.50%), sea salt, locust bean gum powder. | 83 b | 15.41 b | 1.13 b | 1.85 b | _ | 123.24 b | _ | _ | _ | Nutritional values obtained from the label. Brand name: Swiss cereal drink. |
Sunflower seed-based beverage | |||||||||||
Blum et al., 2016 | Water (distilled), germinated sunflower seeds. | 21 b | 0.00 b | 0.77 b | 2.00 b | 1.20 b | 0.16 b | _ | _ | 1.88 b | Beverage prepared and analyzed for the study. |
Tucumã almond-based beverage | |||||||||||
Silva et al., 2015 | Water, tucumã almond flour. | 6 b | 0.44 b | 0.06 b | 0.45 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 55 °C) and analyzed for the study. |
Silva et al., 2015 | Water, tucumã almond flour. | 7 b | 0.47 b | 0.07 b | 0.51 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 75 °C) and analyzed for the study. |
Silva et al., 2015 | Water, tucumã almond flour. | 10 b | 0.38 b | 0.07 b | 0.92 b | _ | _ | _ | _ | _ | Beverage prepared (extraction temperature of 100 °C) and analyzed for the study. |
Yam-based beverage | |||||||||||
Araújo, 2015 | Water, yam. | 10 b | 2.40 b | 0.17 b | 0.01 b | 0.18 b | 3.59 b | 0.06 b | _ | 0.82 b | Beverage prepared for the study. Nutritional values taken from the TACO and the IBGE food composition table. |
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Fructuoso, I.; Romão, B.; Han, H.; Raposo, A.; Ariza-Montes, A.; Araya-Castillo, L.; Zandonadi, R.P. An Overview on Nutritional Aspects of Plant-Based Beverages Used as Substitutes for Cow’s Milk. Nutrients 2021, 13, 2650. https://doi.org/10.3390/nu13082650
Fructuoso I, Romão B, Han H, Raposo A, Ariza-Montes A, Araya-Castillo L, Zandonadi RP. An Overview on Nutritional Aspects of Plant-Based Beverages Used as Substitutes for Cow’s Milk. Nutrients. 2021; 13(8):2650. https://doi.org/10.3390/nu13082650
Chicago/Turabian StyleFructuoso, Isabel, Bernardo Romão, Heesup Han, António Raposo, Antonio Ariza-Montes, Luis Araya-Castillo, and Renata Puppin Zandonadi. 2021. "An Overview on Nutritional Aspects of Plant-Based Beverages Used as Substitutes for Cow’s Milk" Nutrients 13, no. 8: 2650. https://doi.org/10.3390/nu13082650
APA StyleFructuoso, I., Romão, B., Han, H., Raposo, A., Ariza-Montes, A., Araya-Castillo, L., & Zandonadi, R. P. (2021). An Overview on Nutritional Aspects of Plant-Based Beverages Used as Substitutes for Cow’s Milk. Nutrients, 13(8), 2650. https://doi.org/10.3390/nu13082650