Effect of Lactic Fermentation and Cooking on Nutrient and Mineral Digestibility of Peas
Status PubMed-not-MEDLINE Language English Country Switzerland Media electronic-ecollection
Document type Journal Article
PubMed
35284457
PubMed Central
PMC8908447
DOI
10.3389/fnut.2022.838963
Knihovny.cz E-resources
- Keywords
- amino acids, biotechnology, iron, phytic acid, polyphenol compounds, proteins, raffinose, starch,
- Publication type
- Journal Article MeSH
Peas are prospectively beneficial legumes in the human diet, and especially in a vegan and vegetarian diet, due to their high content of proteins and starch. Their frequent lack of appeal in human nutrition can be caused by their bloating effect and the content of some antinutritional compounds inhibiting the absorption of important nutrients. This study brings a comprehensive comparison of the nutrient content of pea flour after cooking and lactic fermentation before and after digestion in vitro. As a control sample, raw pea flour was used (sample 1). Raw pea flour was cooked for 10 min (sample 2) and 120 min (sample 3) at 100°C or it was fermented by Lactobacillus plantarum (sample 4) and cooked for 10 min at 100°C (sample 5). The samples were analyzed for protein and amino acids content, maltose, glucose, raffinose, total polyphenols, phytic acid, phytase, and mineral composition (P, Mg, Mn, Fe, Cu, Zn) before and after in vitro digestion. The results showed a significant (p < 0.05) increase in the protein digestibility of samples 3, 4 and 5. In the fermented samples were observed a higher concentration of Cys, Met, and Gln when compared to non-fermented samples. The fermentation of pea flour resulted in a significant (p < 0.05) decrease in glucose, maltose, and raffinose content. Cooking of pea flour for 10 and 120 min, but not fermenting, significantly (p < 0.05) decreased the polyphenols content. Cooking and fermentation together did not affect phytic acid concentration and phytase activity. Mg, Mn, Fe, Cu and, Zn concentration in pea flour was significantly (p < 0.05) decreased by cooking. On the other hand, fermentation significantly (p<0.05) improved the bioaccessibility of Mn and Fe. These findings suggest that lactic fermentation of pea flour is a promising culinary preparation that can improve the digestibility of peas.
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Boukid F, Rosell CM, Rosene S, Bover-Cid S, Castellari M. Non-animal proteins as cutting-edge ingredients to reformulate animal-free foodstuffs: Present status and future perspectives. Crit Rev Food Sci Nutr. (2021) 1–31. 10.1080/10408398.2021.1901649 PubMed DOI
Sa AGA, Moreno YMF, Carciofi BAM. Plant proteins as high-quality nutritional source for human diet. Trends Food Sci Technol. (2020) 97:170–84. 10.1016/j.tifs.2020.01.011 DOI
Schweiggert-Weisz U, Eisner P, Bader-Mittermaier S, Osen R. Food proteins from plants and fungi. Curr Opin Food Sci. (2020) 32:156–62. 10.1016/j.cofs.2020.08.003 DOI
van Vliet S, Kronberg SL, Provenza FD. Plant-based meats, human health, and climate change. Front Sustainable Food Syst. (2020) 4:128. 10.3389/fsufs.2020.00128 DOI
Cusworth G, Garnett T, Lorimer J. Legume dreams: the contested futures of sustainable plant-based food systems in Europe. Glob Environ Change. (2021) 69:102321. 10.1016/j.gloenvcha.2021.102321 PubMed DOI PMC
Horky P. Effect of protein concentrate supplement on the qualitative and quantitative parameters of milk from dairy cows in organic farming. Ann Anim Sci. (2014) 14:341–52. 10.2478/aoas-2014-0008 DOI
Dahl WJ, Foster LM. Tyler RT. Review of the health benefits of peas (Pisum sativum L). Br J Nutr. (2012) 108:S3–10. 10.1017/S0007114512000852 PubMed DOI
Daba SD, Morris CF. Pea proteins: Variation, composition, genetics, and functional properties. Cereal Chemistry. (2022) 99: 8–20. 10.1002/cche.10439 DOI
Hertzler SR, Lieblein-Boff JC, Weiler M, Allgeier C. Plant proteins: assessing their nutritional quality and effects on health and physical function. Nutrients. (2020) 12:3704. 10.3390/nu12123704 PubMed DOI PMC
Pluskota WE, Szablinska J, Obendorf RL, Gorecki RJ, Lahuta LB. Osmotic stress induces genes, enzymes and accumulation of galactinol, raffinose and stachyose in seedlings of pea (Pisum sativum L.). Acta Physiologiae Plantarum. (2015) 37:156. 10.1007/s11738-015-1905-9 DOI
Vidal-Valverde C, Frias J, Hernandez A, Martin-Alvarez PJ, Sierra I, Rodriguez C, et al. . Assessment of nutritional compounds and antinutritional factors in pea (Pisum sativum) seeds. J Sci Food Agric. (2003) 83:298–306. 10.1002/jsfa.1309 DOI
Rousseau S, Kyomugasho C, Celus M, Hendrickx MEG, Grauwet T. Barriers impairing mineral bioaccessibility and bioavailability in plant-based foods and the perspectives for food processing. Crit Rev Food Sci Nutr. (2020) 60:826–43. 10.1080/10408398.2018.1552243 PubMed DOI
Sakandar HA, Chen YF, Peng CT, Chen X, Imran M, Zhang HP. Impact of fermentation on antinutritional factors and protein degradation of legume seeds: a review. Food Rev Int. (2021). 10.1080/87559129.2021.1931300 [Epub ahead of print]. DOI
Turpin W, Weiman M, Guyot JP, Lajus A, Cruveiller S, Humblot C. The genomic and transcriptomic basis of the potential of Lactobacillus plantarum A6 to improve the nutritional quality of a cereal based fermented food. Int J Food Microbiol. (2018) 266:346–54. 10.1016/j.ijfoodmicro.2017.10.011 PubMed DOI
Algboory HL, Muhialdin BJ. Novel peptides contribute to the antimicrobial activity of camel milk fermented with Lactobacillus plantarum IS10. Food Control. (2021) 126:108057. 10.1016/j.foodcont.2021.108057 DOI
Woo SH, Shin YJ, Jeong HM, Kim JS, Ko DS, Hong JS, et al. . Effects of maltogenic amylase from Lactobacillus plantarum on retrogradation of bread. J Cereal Sci. (2020) 93:102976. 10.1016/j.jcs.2020.102976 DOI
Kyereh E, Sathivel S. Viability of Lactobacillus plantarum NCIMB 8826 immobilized in a cereal-legume complementary food “weanimix” with simulated gastrointestinal conditions. Food Biosci. (2021) 40:100848. 10.1016/j.fbio.2020.100848 DOI
Shi Y, Singh A, Kitts DD, Pratap-Singh A. Lactic acid fermentation: a novel approach to eliminate unpleasant aroma in pea protein isolates. Lwt-Food Sci Technol. (2021) 150:111927. 10.1016/j.lwt.2021.111927 DOI
Brodkorb A, Egger L, Alminger M, Alvito P, Assuncao R, Ballance S, et al. . INFOGEST static in vitro simulation of gastrointestinal food digestion. Nat Protoc. (2019) 14:991–1014. 10.1038/s41596-018-0119-1 PubMed DOI
Husek P, Sweeley CC. Gas-chromatographic separation of protein amino-acids in. 4 minutes. HRC CC J High Resolut Chromatogr. (1991) 14:751–3. 10.1002/jhrc.1240141110 DOI
Drulyte D, Orlien V. The effect of processing on digestion of legume proteins. Foods. (2019) 8:224. 10.3390/foods8060224 PubMed DOI PMC
Araujo AH, Cardoso PCB, Pereira RA, Lima LM, Oliveira AS, Miranda MRA, et al. . In vitro digestibility of globulins from cowpea (Vigna unguiculata) and xerophitic algaroba (Prosopis juliflora) seeds by mammalian digestive proteinases: a comparative study. Food Chem. (2002) 78:143–7. 10.1016/S0308-8146(01)00391-0 DOI
Joye I. Protein digestibility of cereal products. Foods. (2019) 8:199. 10.3390/foods8060199 PubMed DOI PMC
Sousa R, Portmann R, Dubois S, Recio I, Egger L. Protein digestion of different protein sources using the INFOGEST static digestion model. Food Res Int. (2020) 130:108996. 10.1016/j.foodres.2020.108996 PubMed DOI
Kaur M, Sandhu KS. Singh N. Comparative study of the functional, thermal and pasting properties of flours from different field pea (Pisum sativum L) and pigeon pea (Cajanus cajan L) cultivars. Food Chem. (2007) 104:259–67. 10.1016/j.foodchem.2006.11.037 DOI
Byanju B, Hojilla-Evangelista MP, Lamsal BP. Fermentation performance and nutritional assessment of physically processed lentil and green pea flour. J Sci Food Agric. (2021) 101:5792–806. 10.1002/jsfa.11229 PubMed DOI
Gilani GS, Cockell KA, Sepehr E. Effects of antinutritional factors on protein digestibility and amino acid availability in foods. J AOAC Int. (2005) 88:967–87. 10.1093/jaoac/88.3.967 PubMed DOI
Coghetto CC, Vasconcelos CB, Brinques GB, Ayub MAZ. Lactobacillus plantarum BL011 cultivation in industrial isolated soybean protein acid residue. Braz J Microbiol. (2016) 47:941–8. 10.1016/j.bjm.2016.06.003 PubMed DOI PMC
Sillman J, Nygren L, Kahiluoto H, Ruuskanen V, Tamminen A, Bajamundi C, et al. . Bacterial protein for food and feed generated via renewable energy and direct air capture of CO2: Can it reduce land and water use? Glob Food Sec Agric Policy Econ Environ. (2019) 22:25–32. 10.1016/j.gfs.2019.09.007 DOI
Thompson HO, Onning G, Holmgren K, Strandler S, Hultberg M. Fermentation of cauliflower and white beans with lactobacillus plantarum - impact on levels of riboflavin, folate, vitamin B-12, and amino acid composition. Plant Foods Hum Nutr. (2020) 75:236–42. 10.1007/s11130-020-00806-2 PubMed DOI PMC
Ketnawa S, Ogawa Y. In vitro protein digestibility and biochemical characteristics of soaked, boiled and fermented soybeans. Sci Rep. (2021) 11:14257. 10.1038/s41598-021-93451-x PubMed DOI PMC
Swiss, Bioinformatics Resource Portal . Swiss Institue of Bioinformatis. Available online at: https://www.expasy.org (accessed December 11, 2021).
Ratnayake WS, Hoover R, Warkentin T. Pea starch: composition, structure and properties - a review. Starch-Starke. (2002) 54:217–34. 10.1002/1521-379X(200206)54:6<217::AID-STAR217>3.0.CO;2-R DOI
Magallanes-Cruz PA, Flores-Silva PC, Bello-Perez LA. Starch structure influences its digestibility: a review. J Food Sci. (2017) 82:2016–23. 10.1111/1750-3841.13809 PubMed DOI
Blazek J, Copeland L. Amylolysis of wheat starches. II degradation patterns of native starch granules with varying functional properties. J Cereal Sci. (2010) 52:295–302. 10.1016/j.jcs.2010.06.011 DOI
Parada J, Aguilera JM. Review: starch matrices and the glycemic response. Food Sci Technol Int. (2011) 17:187–204. 10.1177/1082013210387712 PubMed DOI
Florencio JA, Eiras-Stofella DR, Soccol CR, Raimbault M, Guyot JP, Fontana JD. Lactobacillus plantarum amylase acting on crude starch granules - native isoforms and activity changes after limited proteolysis. Appl Biochem Biotechnol. (2000) 84-6:721–30. 10.1385/ABAB:84-86:1-9:721 PubMed DOI
Xu YH, Ding JY, Gong SX, Li M, Yang TK, Zhang JH. Physicochemical properties of potato starch fermented by amylolytic Lactobacillus plantarum. Int J Biol Macromol. (2020) 158:656–61. 10.1016/j.ijbiomac.2020.04.245 PubMed DOI
Lafond M, Tauzin AS, Bruel L, Laville E, Lombard V, Esque J, et al. . Alpha-galactosidase and sucrose-kinase relationships in a bi-functional agask enzyme produced by the human gut symbiont ruminococcus gnavus E1. Front Microbiol. (2020) 11:579521. 10.3389/fmicb.2020.579521 PubMed DOI PMC
Czarnecka M, Czarnecki Z, Nowak J, Roszyk H. Effect of lactic fermentation and extrusion of bean and pea seeds on nutritional and functional properties. Nahrung Food. (1998) 42:7–11.
Jayus J, Setiawan D., Giyarto C. Influence of lactobacillus plantarum fermentation on functional properties of flour from jackfruit (Artocarpus heterophyllus Lamk) seeds pertanika. J Trop Agric Sci. (2018) 41:1401–11.
Adewumi GA, Odunfa SA. Effect of controlled fermentation on the oligosaccharides content of two common Nigerian Vigna unguiculata beans (drum and oloyin). Afr J Biotechnology. (2009) 8:2626–30.
Guo FH, Xiong H, Wang XY, Jiang L, Yu NX, Hu ZY. et al. Phenolics of green pea (Pisum sativum L) hulls, their plasma and urinary metabolites, bioavailability, and in vivo antioxidant activities in a rat model. J Agric Food Chem. (2019) 67:11955–68. 10.1021/acs.jafc.9b04501 PubMed DOI
Pastuszewska B, Vitjazkova M, Swiech E, Taciak M. Composition and in vitro digestibility of raw versus cooked white- and colour-flowered peas. Nahrung Food. (2004) 48:221–5. 10.1002/food.200300417 PubMed DOI
Basa ELU, Julendra H, Abinawanto A, Sofyan A, Sophian A. editors. Analysis of Organic Acids from Lactobacillus plantarum with Gas Chromatography-Mass Spectrometry (GC-MS). 4th International Symposium on Current Progress in Mathematics and Sciences (ISCPMS) Univ Indonesia, Fac Math & Nat Sci, Depok, INDONESIA: (2019).
Aguilar-Zarate P, Cruz MA, Montanez J, Rodriguez-Herrera R, Wong-Paz JE, Belmares RE, et al. . Gallic acid production under anaerobic submerged fermentation by two bacilli strains. Microbial Cell Factories. (2015) 14:209. 10.1186/s12934-015-0386-2 PubMed DOI PMC
Fredrikson M, Alminger ML, Carlsson NG, Sandberg AS. Phytate content and phytate degradation by endogenous phytase in pea (Pisum sativum). J Sci Food Agric. (2001) 81:1139–44. 10.1002/jsfa.918 PubMed DOI
Gupta RK, Gangoliya SS, Singh NK. Reduction of phytic acid and enhancement of bioavailable micronutrients in food grains. J Food Sci Technol Mysore. (2015) 52:676–84. 10.1007/s13197-013-0978-y PubMed DOI PMC
Li RY, Dai TT, Tan YB, Fu GM, Wan Y, Liu CM, et al. . Fabrication of pea protein-tannic acid complexes: Impact on formation, stability, and digestion of flaxseed oil emulsions. Food Chem. (2020) 310:125828. 10.1016/j.foodchem.2019.125828 PubMed DOI
Rani B, Khetarpaul N. Probiotic fermentation of indigenously developed RSMT mixture: Effect on antinutrients and digestibility of starch and proteins. J Food Sci Technol Mysore. (1999) 36:71–3.
Zamudio M, Gonzalez A, Medina JA. Lactobacillus plantarum phytase activity is due to non-specific acid phosphatase. Lett Appl Microbiol. (2001) 32:181–4. 10.1046/j.1472-765x.2001.00890.x PubMed DOI
Balwani I, Chakravarty K, Gaur S. Role of phytase producing microorganisms towards agricultural sustainability. Biocatal Agric Biotechnol. (2017) 12:23–9. 10.1016/j.bcab.2017.08.010 DOI
Erba D, Angelino D, Marti A, Manini F, Faoro F, Morreale F, et al. . Effect of sprouting on nutritional quality of pulses. Int J Food Sci Nutr. (2019) 70:30–40. 10.1080/09637486.2018.1478393 PubMed DOI
Sindhu SC, Khetarpaul N, Sindhu A. Effect of probiotic fermentation on carbohydrate and mineral profile of an indigenously developed food blend. Acta Alimentaria. (2005) 34:41–7. 10.1556/AAlim.34.2005.1.7 DOI
Bering S, Suchdev S, Sjoltov L, Berggren A, Tetens I, Bukhave K, et al. . lactic acid-fermented oat gruel increases non-haem iron absorption from a phytate-rich meal in healthy women of childbearing age. Br J Nutr. (2006) 96:80–5. 10.1079/BJN20061683 PubMed DOI
Hoppe M, Onning G, Hulthen L. Freeze-dried Lactobacillus plantarum 299v increases iron absorption in young females-double isotope sequential single-blind studies in menstruating women. PLoS ONE. (2017) 12:e0189141. 10.1371/journal.pone.0189141 PubMed DOI PMC
Hoppe M, Onning G, Berggren A, Hulthen L. Probiotic strain Lactobacillus plantarum 299v increases iron absorption from an iron-supplemented fruit drink: a double-isotope cross-over single-blind study in women of reproductive age. Br J Nutr. (2015) 114:1195–202. 10.1017/S000711451500241X PubMed DOI PMC
Axling U, Onning G, Combs MA, Bogale A, Hogstrom M, Svensson M. The effect oflactobacillus plantarum299v on iron status and physical performance in female iron-deficient athletes: a randomized controlled trial. Nutrients. (2020) 12:1279. 10.3390/nu12051279 PubMed DOI PMC
Vonderheid SC, Tussing-Humphreys L, Park C, Pauls H, Hemphill NO, LaBomascus B, et al. . A systematic review and meta-analysis on the effects of probiotic species on iron absorption and iron status. Nutrients. (2019) 11:2938. 10.3390/nu11122938 PubMed DOI PMC