| Literature DB >> 34917106 |
Deepak Kasote1, Rhowell N Tiozon2,3, Kristel June D Sartagoda2, Hameeda Itagi1, Priyabrata Roy1, Ajay Kohli2, Ahmed Regina1, Nese Sreenivasulu1,2.
Abstract
Cereal grains and products provide calories globally. The health benefits of cereals attributed to their diverse phenolic constituents have not been systematically explored. Post-harvest processing, such as drying, storing, and milling cereals, can alter the phenolic concentration and influence the antioxidant activity. Furthermore, cooking has been shown to degrade thermo-labile compounds. This review covers several methods for retaining and enhancing the phenolic content of cereals to develop functional foods. These include using bioprocesses such as germination, enzymatic, and fermentation treatments designed to enhance the phenolics in cereals. In addition, physical processes like extrusion, nixtamalization, and parboiling are discussed to improve the bioavailability of phenolics. Recent technologies utilizing ultrasound, micro- or nano-capsule polymers, and infrared utilizing processes are also evaluated for their effectiveness in improving the phenolics content and bio-accessibility. We also present contemporary products made from pigmented cereals that contain phenolics.Entities:
Keywords: anthocyanin; cereals; flavonoid; phenolics; pigmented cereals; post-harvest process
Year: 2021 PMID: 34917106 PMCID: PMC8670417 DOI: 10.3389/fpls.2021.771276
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Individual phenolic compounds as affected by various pre-treatment methods.
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| Rice | Extrusion | ↑F↑B↑T | ↑F↑B↑T | ↑F↑B↑T | ↑F↑T | ↑F↑B↑T | ↑F↑B↑T | ↑F↑B↑T | ||||
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| Rice | ↑F↓B | ↑F↓B | ↓F↑B | ↓F↑B | ↓F↑ B | ↓F↑B | ↓F↓B | ↑F ↑B | ||||
| Wheat | ↑F↑B | ↑F↑B | ↓F↓B | ↓F↑B | ↓F↑B | ↓F↑B | ↑F↓B | ↑F↑B | |||||
| Oat | ↑F↑B | ↑F↑B | ↓F↑B | ↓F↑B | ↓F↑B | ↑F↓B | NCF↓B | ↑F↑B | |||||
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| Rice | Germination | ↑T | ↑T | ↑T | ↑T | ↓T | ||||||
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| Wheat | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||||||
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| Corn | ↑F↑B↑T | ↑F↑B↑T | ↑T ↑F ND-B | |||||||||
| ↑F↑B↑T | ↑F↑B↑T | ↑T ↑F ND-B | |||||||||||
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| Barley | Germination | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||||
| Infrared drying | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||||||
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| Rice | Enzymatic treatment | ↑T↑F↑SC | ↓T↑F↓SC | ↑T↑F↑SC | ↑T↑F ↑SC | ↑T↑SC ↑ND-F | ↑T↑F↑SC | ↑T↑F↑SC | ↑T↑F ↑SC | |||
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| Corn | Enzymatic treatment | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||||
| Enzymatic treatment | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↓T | ||||||
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| Oat | Fermentation | ↑F↑B | ↓F↑B | ↑F↑B | ↓F↑B B | ↑F ND-B | ↑B ND-F | ND-F ND-B | ↓F↑B | ND-F ↓B | ||
| Fermentation followed by enzymatic treatment | ↑F↑B | ↑F↑B | ↑F↑B | ↑F↑B | ↑F ND-B | ND-F ↑B | ND-F ND-B | ↑F↑B | ND-F ↑B | ||||
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| Wheat | Fermentation and enzymatic treatment | ↓T↑F↓B | ||||||||||
| Fermentation and enzymatic treatment followed by baking | ↓T↑F↓B | ||||||||||||
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| Wheat | Fermentation | ↑F | ↑F | ↑F | ↑F | ↑F | ↑F | |||||
| Rye | ↑F | ND-F | ↑F | ↑F | ↑F | ↑F | |||||||
| Spelt | ↑F | ↓F | ↑F | ↑F | ↑F | ↑F | |||||||
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| Rice | Fermentation | ↑F↑B↑T | ↑F↑B↑T | ↑F↑B↑T | ↑F↑T ND-B | ↑F↑B↑T | ↑F↑B↑T | ↑F↑B↑T | ||||
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| Wheat | Fermentation followed by ultrasound | ↑T | ↑T | ↑T | ↑T | |||||||
| Oat | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||||||
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| Millet | Fermentation | ↑F↓B | ND-F ↓B | ↑F↓B | ↑F↓B | ↑F↑B | ||||||
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| Sorghum | Hydrothermal treatment | ↑F↓B | ND-F ↑B | ↑F↓B | ↑F↓B | ↑F↓B | ↑F↑B | ↑F↑B | ND-F ↑B | |||
| Fonio | ↓F↑B | ND-F ↑B | ↓F↑B | ↓F↑B | ↓F↑B | ↓F↑B | ↓F↑B | ↓F↑B | |||||
| Millet | ↑F↑B | ND-F ↑B | ↑F↓B | ↓F↓B | ↑F↓B | ↓F↑B | ↑F↑B | ND-F ↓B | |||||
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| Rice | Microwave | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | ||
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| Rice | Infrared | ↑T | ↑T | ↑T | ↑T | ↑T | ND-T | ↑T | ↑T | ND-T | ↑T | ND-T |
| Enzymatic treatments | ↓T | ↑T | ↑T | ↑T | ↑T | ND-T | ↑T | ↑T | ND-T | ↑T | ND-T | ||
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| Rice | Extrusion | ↓T↓F↓B | ↓T↓F↓B | ↓T↓F↓B | ↓T↓F ND-B | ↓T↓F↓B | ↓T↓F↓B | ↓T↓F↓B | ↓T↓F ND-B | |||
| Enzymatic treatment | ↓T↑F↓B | ↓T↓F↑B | ↑T↓F↓B | ↓T↓F ND-B | ↑T↑F↓B | ↓T↓F↓B | ↑T↑F↑B | ↓T↓F ND-B | |||||
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| Wheat | Thermal processing followed by ultrasound | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | |||||
| Oat | ↑T | ↑T | ↑T | ↑T | ↑T | ↑T | |||||||
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| Oat | Ultrasound | ↑F↑ SC↓B | ↓F↑SC↓B | ↑F↑SC | ↑F | ↓F | ↑F↓B | |||||
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| Red Rice | Ultrasound | ↓T | ↑T | NC-T | ↑T | ↑T | ↑T | ↑T | NC-T | |||
| Black Rice | ↓T | ↓T | ND-T | ↑T | ND-T | ↑T | ↓T | ↑T | |||||
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| Sorghum | Ultrasound | ↑T(T1), (T2) ↓T(T3), (T4) | ↑T(T1),(T2) ↓T(T3),(T4) | |||||||||
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| Sorghum | PEF | ↑T | ↑T | ↑T | ↑T | ↑T | ||||||
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| Wheat | Microencapsulation | ↑F | ||||||||||
| ↑F | |||||||||||||
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| Wheat | Micronization | ↑T | ↑T | ↑T | ↑T | ↑T | ||||||
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| Corn | Microfluidization | ↑T | ↑T | |||||||||
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| Red Sorghum | Nixtamalization | ↓T | ↓T | |||||||||
| White sorghum | ND-T | ↓T | |||||||||||
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| Corn sorghum | Nixtamalization and extrusion | ↓B (ENCF) ↓B (Tortillas ENCF) ↑B (ENCF with sorghum added after extrusion) ↓B (Tortillas ENCF with sorghum added after extrusion) | ↓B (ENCF) ↓B (Tortillas ENCF) ↑B (ENCF with sorghum added after extrusion) ↑B (Tortillas ENCF with sorghum added after extrusion) |
ABTS, 2,2′-azino-bis (3-ethylbenzothiazoline-6-sulfonic acid); B, Bound; BCR, Black Colored Rice; DPPH, 2,2-diphenyl-1-picryl-hydrazyl-hydrate; ENCF, Extruded Nixtamalized Corn Flour; F, Free; FRAP, Ferric reducing antioxidant power; ND, Not Detected; PEF, Pulsed electric Field; RCR, Red Colored Rice; SC, Soluble Conjugate; T, Total; TAC, Total Anthocyanin Content; TFC, Total Flavonoid Content; TPC, Total Phenolic Content.
FIGURE 1Influence of bioprocesses, mechanical processes, and cooking methods on the concentration and bioavailability of phenolic compounds.
FIGURE 2Pigmented cereal-based products.
Potential applications of food products as functional foods and nutraceuticals.
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| Bread made from Rice berry rice (Purple rice) | Anthocyanin | Improved postprandial plasma glucose and significantly increased FRAP level in healthy subjects |
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| Bread supplemented with black rice | Anthocyanin | Purple rice bread demonstrated lower starch hydrolysis and predicted glycemic index than Homali white rice flour bread |
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| Wheat chiffon cake supplemented with black rice | TPC and DPPH | nd |
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| Black rice extract supplemented pasta | Anthocyanin, DPPH, FRAP | nd |
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| Black rice crispy rice bar | Anthocyanin | nd |
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| Wheat bread supplemented with stabilized rice bran | TPC, DPPH, and FRAP | nd |
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| Wheat Bread supplemented with whole grain rye flour | TPC | nd |
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| Wheat cookies supplemented with whole barley flour | Total phenolic content, MCA, DPPH, and reducing power | nd |
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| Yogurt supplemented with black rice extract | TPC, C3G, P3G, DPPH, and FRAP | Purple rice extract supplemented yogurt improved plasma antioxidant capacity in healthy volunteers |
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| Roasted barley tea | High antioxidant activity, MCA, DPPH | Elevated lipid peroxidation inhibition in liver homogenate Increased the activity of antioxidant enzymes SOD and GSH-Px and decreased the levels of MDA and MAO in both mice liver and brain, compared to untreated mice |
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DPPH, 2,2-Diphenyl-1-Picryl-Hydrazyl-Hydrate; C3G, Cyanidin-3-Glucoside; FRAP, Ferric Reducing Antioxidant Power; GSH-Px, Glutathione Peroxidase; MDA, Malondialdehyde; MAO, Manoamine Oxidase; MCA, Metal Chelating Activity; nd, Not Determined; P3G, Peonidin-3; Glucoside; SOD, Superoxide Dismutase; TPC, Total Phenolic Content.
Cereal products that retain a higher amount of polyphenolic compounds.
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| Cereal bran enriched ready to eat breakfast cereal porridge | TPC | Rice bran enriched porridge recorded the highest total phenolic content (0.97 mg GAE/g) followed by wheat and oat bran enriched product. As the bran supplementation increased from 5 to 15%, the total phenolic content increased from 0.65 to 1.02 mg GAE/g. |
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| Multi-whole grain mix for drink and porridge | TPC, TAA | The 100 g of the mix had nutraceuticals like carotenoids (290 μg), gamma-tocopherol (4.6 mg), alpha-tocopherol (1.5 mg), and polyphenols-soluble, bound and total (94, 132, and 226 mg GAE). Bioactive properties like vitamin E, free radical scavenging, and total antioxidant activity were 2.6 IU, 153 mg CAE/100 g, and 17 mg tocopherol equivalent, respectively. |
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| Ready-to-eat flakes from cereals like maize grits, pearled barley, hulled oats, wheat, pearl millet, and sorghum | TPC, DPPH activity | Blistered cereal flakes are excellent ready-to-eat snacks, as they are rich in total polyphenols (16-58 mg GAE/100 g) and exhibit high antioxidant activity | |
| Tortillas from whole pigmented extruded Mexican maize flours | TPC, TAC, and total hydrophilic antioxidant content | Tortillas elaborated from extruded pigmented Mexican maize flour retained 76.4–87.5%, 27.1–65.4%, and 87.2–90.7%, respectively, of the total phenolics, anthocyanins, and total hydrophilic antioxidant content present in raw grains. The blue maize extruded products were the best in overall polyphenolic and antioxidant content, followed by red, white, and yellow maize |
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| Pigmented corn tortilla and tortilla chip | Free and soluble conjugated ferulic acid | Lime-cooking, tortilla baking, and tortilla chip frying increased the amount of free and soluble conjugated ferulic acid |
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| Gluten-free maize noodles | TPC | Flint maize noodles retained 50 and 66% phenolics by traditional and ecological nixtamalization process |
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| Wheat-purple rice biscuits | TPC, TFC, Anthocyanin, DPPH, ABTS activity | Increasing the purple rice resulted in higher antioxidant properties compared to the wheat flour biscuits |
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| Black rice chiffon cake | TPC, TAC, and DPPH activity | Total phenols, anthocyanins, and scavenging ability of baked cake extracts increased with increased black rice powder levels from 10 to 100% |
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| Popped black rice and beaten black rice | TAC and DPPH activity | Popped black rice and beaten black rice showed higher anthocyanin compared to white rice. Popped and boiled rice of Mamihunger, black rice displayed higher DPPH-antioxidant activity (88.74 and 84.74%, respectively) compared to puffed and Beaten rice products of other rice varieties. |
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ABTS, 2,2′-azino-bis (3-ethylbenzothiazoline-6-sulfonic acid); DPPH, 2,2-diphenyl-1-picryl-hydrazyl-hydrate; APF, All-purpose flour; CAE, Catechin Equivalent; GAE, Gallic Acid Equivalent; TAC, Total Anthocyanin Content; TAA, Total Antioxidant Assay; TFC, Total Flavonoid Content; TPC, Total Phenolic Content.