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Medicinal Plants – Chemical, Biochemical, and Pharmacological Approaches
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References
[1] Bolen S, Feldman L, Vassy J.
Systematic review: Comparative effectiveness and safety of oral medications for type 2 diabetes mellitus. Annals of Internal Medicine. 2007;(6):386-399
[2] Petrovska BB. Historical review of
medicinal plants’ usage. Pharmacognosy Reviews. 2012;(47):80-82
[3] Di Fabio G, Romanucci V,
Zarrelli M, Giordano M, Zarrelli A. C-4 gem-dimethylated oleanes of Gymnema sylvestre and their pharmacological activities. Molecules. 2013;(12): 14892-14919
[4] Ekor M. The growing use of herbal
medicines: Issues relating to adverse reactions and challenges in monitoring safety. Frontiers in Neurology. 2014;:Article No. 177
[5] Origbemisoye WA, Bamidele SO.
Immunomodulatory foods and functional plants for COVID-19 prevention: A review. Asian Journal of Medical Principles and Clinical Practice. 2020;(4):15-26
flowers in southern China. Journal of Pharmacology. 2008;(9):1586-1591
[9] Wojcikowski K, Stevenson L, Leach D,
Wohlmuth H, Gobe G. Antioxidant capacity of 55 medicinal herbs traditionally used to treat the urinary system: A comparison using a sequential three-solvent extraction process. The Journal of Alternative & Complementary Medicine. 2007;(1):103-109
[10] Morton JF. Atlas of medicinal
plants of middle America. In: Library of Congress Cataloging in Publication Data. Bahama to Yucatan. Middle, Collectanea, University of Miami, Coral Gables. Florida, USA: Thomas Books; 1981. p. 1420. Ref.563
[11] Chevallier A. Encyclopedia of Herbal
Medicine: Natural Health. 2nd ed. USA: Dorling Kindersley Book; 2000. p. 336
[12] Sabir SM, Rocha JBT.Waterextractable
phytochemical from Phyllanthus Niruri exhibit distinct in vitro antioxidant and in vivo hepatoprotective activity against paracetamol-induced liver damage in mice. Journal Food Chemistry. 2008;:60
[6] Saxena M, Saxena J, Nema R,
Singh D, Gupta A. Phytochemistry of medicinal plants. Journal Pharmacognotic Phytochemistry. 2013;(6):168-182
[7] Charalampopoulos D, Wang R,
Pandiella SS, Webb C. Application of cereals and cereal components infunctional foods: Are view. International Journal Food Microbiology. 2002;:131-141. DOI:10.1016/S0168
[8] Youwei Z, Junlian Z, Peng Y. A
comparative study on the free radical scavenging activities of some fresh
[13] Row LR, Satyanarayana P, Subba
Rao GSR. Crystalline constituents of Euphorbiaceae—The synthesis and absolute confguration of phyllanthin. Tetrahedron. 1967;:1915
[14] MacRae WD, Towers GHN. Biological
activities of lignans. Phytochemistry. Journal of Biochemistry. 1984;: 1207-1220
[15] Calixto JB, Santos AR, Cechinel
Filho V, Yunes RA. A review of the plants of the Phyllanthus: Their chemistry, pharmacology, and therapeutic potential. MedResRev. 1998;:225-258
Immunomodulatory Plant Based Foods, It’s Chemical, Biochemical and Pharmacological… ITexLi.112406
[16] Ayres DC, Loike JD. Lignans.
212
https://t.me/medicina_free
In: Chemical, biological and clinical properties. Cambridge: Cambridge University Press; 1990
human low density lipoprotein oxidation by flavonoids of Garcinia kola seeds. Pakistan Journal Medicine Science. 2005a;(3):331-339
[17] Negi AS, Kumar JK, LuqmanS,
Shanker K, Gupta MM, Khanuja SP. Recent advances in plant hepatoprotectives: A chemical and biological profle of some important leads. Med Reserve Review. 2008;:746-772
[18] Sharma A, Singh RT, Anand S.
Estimation of phyllanthin and hypophyllanthin by high performance liquid chromatography in Phyllanthus amarus. Photochemical Analysis. 1993;:226-229
[19] Akintonwa A, Essien AR.
Protective effects of Garcinia kola seed extract against paracetamol-induced hepatotoxicityin rats. Journal of Ethnopharmacology. 1990;:207-219
[20] Okunji CO, Ware TA,
Hicks RP, Iwu MM, Skanchy DJ. Capillary electrophoresis determination of biflavanones from Garcinia kola in three traditional African medicinal formulations. Planta Medica. 2002;:440-444
[21] Esimone CO, Adikwu MU,
Nworu CS, Okoye FBC, Odimegwu DC. Adaptogenic potentials of Camellia sinensis leaves, Garcinia kola and Kola nitida seeds. Science Research Essays. 2007;:232-237
[24] Lacmata ST, Kuete V, Dzoyem JP,
Tankeo SB, Teke GN, Kuiate JR, etal. Antibacterial activities of selected cameroonian plants and their synergistic effects with antibiotics against bacteria expressing MDR phenotypes based complementary. Journal of Alternative medicine. 2012;:23-72
[25] Terashima K, Takaya NM.
Powerful antioxidative agents based on garcinoic acid from Garcinia kola. Bioorganic. Medicinal Chemistry. 2002;(5):1619-1625
[26] Narcisi EM, Sacor NE. In vitro
effect of tinidazole and furazolidone on metronidazole resistant trichomonas vaginalis. Antimicrobial Agents and Chemotherapy. 1996;:1121-1126
[27] Odebunmi EO, Oluwanili OO,
Awolola GV, Adediji OD. Proximate and nutritional composition of Kola nut (cola nitida), bitter kola (Garcinia kola), and Alligator pepper (Afromomum melegueta). African Journal of Biotechnology. 2009;(2):308-310
[28] Seanego CT, Ndip RN. Identification
and antibacterial evaluation of bioactive compounds from Garcinia kola (Heckel) seeds. Molecules. 2012;(6):6569-6584
[22] Antia BS, Pansanit A, Ekpa OD,
Ekpe UJ, Mahidol C, Kittakoop P. Alpha-glucosidase inhibitory, aromatase inhibitory and antiplasmodial activities of a biflavonoid GB1 from Garcinia kola stem bark. Planta Medica. 2010;(3):276-277
[23] Adaramoye OA, Farombi EO,
Adeyemi EO, Emerole GO. Inhibition of
[29] Seanego CT, Ndip RN. Identification
and antibacterial evaluation of bioactive compounds from Garcinia kola (Heckel) seeds. Molecules. 2012, 1996;(6):6569-6584
[30] Xu X Y, Li F, Zhang X, Li PC,
Zhang X, Wu ZX. In Vitro Synergistic Antioxidant Activity and Identification of Antioxidant Components from
Medicinal Plants – Chemical, Biochemical, and Pharmacological Approaches
213
https://t.me/medicina_free
Astragalus membranceus and paeonia lectiflora. Plos ONE. 2014;:e96780
[31] Farombi EO, Owoeye O.
Antioxidative and chemopreventive properties of Vernonia amygdalina and Garcinia biflavonoid. International Journal of Environment Research and Public Health. 2011;(6):2533-2555
[32] Iwu MM. Anti-hepatotoxicity of
Garcinia kola seeds. Experimentia. 1985;:679-700
[33] Iwu MM, Igboko OA,
Onwuchekwa U, Okunji CO. Evaluation of the anti-hepatotoxicity of the biflavonoids of Garcinia kola seeds. Journal of Ethnopharmacology. 1987;:127-142
[34] Iwu MM, Igboko OA, Okunji CO,
Tempesta MS. Anti-diabetic and aldose reductase activities of biflavanones of Garcinia Kola. Journal of Pharmacy and Pharmacoogy. 1990;:2903-2922
against poliovirus. Journal of Antiviral Reserve. 2001;(3):169-178
[39] Bhalsinge RR,Rajbhoj SR,
Limaye MV, Vaidya MU, Rane PS, Tilak AV. Anti inflammatory and immunomodulatory activity of ethanol extract of aloe veragel. IJPSR. 2017;(2):832-835
[40] Dhouibi R, Affes H, Ben Salem M,
Hammami S, Sahnoun Z, Zeghal KM, etal. Screening of pharmacological uses of Urtica dioica and others benefits. Progress in Biophysics and MolecularBiology. 2020;:67-77
[41] Vander Meer FJUM,
Haan CAM, Schuurman NMP, Haijema BJ, Verheije MH, Bosch BJ, etal. Thecarbohydrate-binding plant lectins and the nonpeptidic antibiotic pradimicin a target the glycans of the coronavirus envelop eglycoproteins. Journal of Antimicrobial Chemotherapy. 2007;:741-749
[35] Mukherjee PK, Nema NK,
Maity N, Mukherjee K, Harwansh RK. Phytochemical and therapeutic profile of Aloe vera. Journal of Natural Remedies. 2014;(1):1-26
[36] Kahlon JB,Kemp MC,
Carpenter RH, McAnalley BH, McDaniel HR, Shannon WM. Inhibition of AIDS virus replication byacemannan invitro. Molecular Biotherapy. 1991;:127-135
[37] Bernard SG, Hughes BG, Sidwell RW.
Evaluation of the antiviral activity of anthraquinones, anthrones and anthraquinone derivatives against human cytomegalovirus. Antiviral Research. 1992;:2463-2466
[38] Semple SJ, Pyke SM, Reynolds GD,
Flower RL. Invitro antiviral activity of the anthraquin one chrysophanic acid
[42] Katsuki T, Luscombe D.
Torreyanucifera. The IUCN red list of threatened species. IUCN. 2013;:298-7599
[43] Ewing S. The Great Alaska Nature
Factbook: A Guide to the state’s Remarkable Animals, Plants and Natural Alaska, USA. 2nd ed. Vol. 106. Graphic Arts Books; 2012. pp. 142-180
[44] Keivan Z, Moloud AZ, Kohzad S,
Zahra R. Anti viral activity of Aloe vera against herpes simplex virus type 2: An in vitro study. African Journal ofBiotechnology. 2007;(15): 1770-1773
[45] Sosulski FW, Dabrowski KJ.
Composition of free and hydrolysable phenolic acids in flours and hulls of ten legume species. Journal Agric Food Chemistry. 1984;:131-133
Immunomodulatory Plant Based Foods, It’s Chemical, Biochemical and Pharmacological… ITexLi.112406
[46] Madhujith T, Amarowicz R,
214
https://t.me/medicina_free
Shahidi F. Phenolic antioxidants in beans and their effects on inhibition of radical induced DNA damage. Journal of the American Oil Chemists’ Society. 2004;:691-696
[53] Lopez-Amoros ML,
Hernandez T, Estrella I. Effect of germination on legume phenolic compounds and their antioxidant activity. Journal Food Composition Analyses. 2006;:277-283
[47] Madhavi DL, Singhal RS,
Kulkarni PR. Technological aspects of food antioxidants. In: Madhavi DL, Deshpande SS, Salunkhe DK, editors. Food Antioxidants: Technological, Toxicological, and Health Perspectives. New York: Marcel Dekker; 1996. pp. 159-265
[48] Cao G, Sofic E, Prior RL. Antioxidant
capacity of tea and common vegetables. Journal Agric Food Chemistry. 1996;:3426-3431
[49] Duenas M, Estrela I, Hernandez T.
Occurrence of phenolic compounds in the seed coat and the cotyledon of peas (Pisum sativum L.). European Food Reserve Technology. 2004;:116-123
[50] Diaz-Batalla L,Widholm JM,
Fahey GC, Castano Tostado E, Paredes-Lopez O. Chemical components with health implications in wild and cultivated Mexican common bean seeds (Phaseolus vulgaris L.). Journal of Agricultural and Food Chemistry. 2006;:2045-2052
[51] Duenas M,Fernandez D,
Hernandez T, Estrella I, Munoz R. Bioactive phenolic compounds of cowpeas. (Vigna sinensis L.). modifications by fermentation with natural microflora and with lactobacillus plantarum ATCC 14977. Journal Science Food Agriculture. 2005;:297-304
[52] Amarowicz R, Troszynska A.
Antioxidant activity of extract of pea and its fractions of low molecular phenolics and tannins. Poland Journal Food Nutrition Science. 2003;:10-15
[54] Amarowicz R, Estrella I,
Hernandez T, Troszynska A. Antioxidant activity of extract of adzuki bean and its fractions. Journal Food Lipids. 2008;:119-136
[55] Duenas M,Hernandez T,
Estrella I. Assessment of in vitro antioxidant capacity of the seed coat and the cotyledon of legumes in relation to their phenolic contents. Food Chemistry. 2006;:95-103
[56] Clinton SK, Giovannicei EL,
Hurshing SD. WCRF/AICR. Food, Nutrition, Physical Activity, and the Prevention of Cancer impact and future direction. Journal Nutrition. 2020;(4):663-671
[57] Xu B, Chang SKC. Comparative
study on antiproliferation propertiesandcellular antioxidant activities of commonly consumed food legumes against nine human cancer cell lines. Food Chemistry. 2012;:1287-1296
[58] Kim DK, Jeong SC, Gorinstein S,
Chon SU. Total polyphenols, antioxidant and antiproliferative activities of different extracts in mungbean seeds and sprouts. Plant Foods Human Nutrition. 2012;:71-75
[59] Clemente A, Carmen M, Jiménez E,
Carmen AM, Domoney C. The anti­proliferative effect of TI1B, a major Bowman-birk isoinhibitor from pea (Pisum sativum L.), on HT29 colon cancer cells is mediated through protease inhibition. British Journal of Nutrition. 2012;(Suppl. 1):S135-S144
Medicinal Plants – Chemical, Biochemical, and Pharmacological Approaches
215
https://t.me/medicina_free
[60] Campos-Vega R, Oomah BD,
Loarca-Pina G, Vergara-Castaneda HA. Common beans and their non-digestible fraction: cancer inhibitory activity—An overview. Food. 2013, 2013;(3):374-392. DOI:10.3390/foods2030374
[61] Hayde VC, Ramon GG, Lorenzo GO,
Dave OB, Rosalia RC, Paul W, etal.
2012. Non-digestible fraction of beans (Phaseolus vulgaris L.) modulates signalling pathway genes at an early stage of colon cancer in Sprague–Dawley rats. British Journal of Nutrition. 2012;:S145-S154. DOI:10.1017/ S0007114512000785
[62] Eide DJ. The oxidative stress of zinc
deficiency. Metallomics. 2011;(11):1124-
1129. DOI:10.1039/C1MT00064K
[63] Greeder GA, Milner JA. Factors
influencing the inhibitory effect of selenium on mice inoculated with Ehrlich ascites tumor cells. Science. 1980;(4458):825-827. DOI:10.1126/ science.7406957
[64] Dai J, Mumper RJ. Plant phenolics:
Extraction, analysis and their antioxidant and anticancer properties. Molecules. 2010;(10):7313-7352. DOI:10.3390/ molecules15107313
[65] Kerem Z, German-Shashoua H,
Yarden O. Microwave-assisted extraction of bioactive saponins from chickpea (Cicer arietinum L). Journal Science Food Agriculture. 2005;(3):406-412
[66] Fan Y, Guo DY, Song Q , Li T. Effect
of total saponin of aralia taibaiensis on proliferation of leukemia cells. Journal of Chinese Medicinal Materials. 2013;(4):604-607
[67] Shi J, Arunasalam K, Yeung D,
Kakuda Y, Mittal G, Jiang Y. Saponins from edible legumes: Chemistry, processing, and health benefits. Journal
Medicinal Food. 2004;(1):67-78. DOI:10.1089/109662004322984734
[68] Mudryj AN, Yu N, Aukema HM.
Nutritional and health benefits of pulses. Applied Physiology, Nutrition, and Metabolism. 2014;(11):1197-1204
[69] Chan YS, Zhang Y, Sze SCW,
Ng TB. A thermostable trypsin inhibitor with antiproliferative activity from small pinto beans. Journal of Enzyme Inhibition and Medicinal Chemistry. 2013;(4):485-490. DOI:10.3109/14756366.2013.805756
[70] Wang S, Meckling KA, Marcone MF,
Kakuda Y, Tsao R. Can phytochemical antioxidant rich foods act as anti-cancer agents? Food Reserve International. 2011;:2545-2554
[71] Hwang CS, Kwak HS, Lim HJ,
Lee SH, Kang YS, Choe TB. Isoflavone metabolites and there in vitro dual functions: They can act as an estrogenic agonist or antagonist depending on the estrogen concentration. Journal Steroid Biochemistry Molecule Biology. 2006;:246-265
[72] Bazzano LA,He J,Ogden LG,
Loria C, Vupputuri S, Myers L, etal. Legume consumption and risk of coronary heart disease in US men and women: NHANES I epidemiologic follow-up study. Archives of Internal Medicine. 2001;:2573-2578
[73] Messina MJ. Legumes and
soybeans:Overview of their nutritional profiles and health effects. American Journal Clinical Nutrition. 1999;:439S-450S
[74] Winham DM, Hutchins AM. Baked
bean consumption reduces serum cholesterol in hypercholesterolemic adults. Nutritional Reserve. 2007;:380-386
Immunomodulatory Plant Based Foods, It’s Chemical, Biochemical and Pharmacological… ITexLi.112406
[75] Iqbal A, Khalil IA, Ateeq N,
216
https://t.me/medicina_free
Sayyar KM. Nutritional quality of important food legumes. Food Chemistry. 2006;(2):331-335
[76] Lovejoy JC. Fat: The good,
the bad, and the ugly. In: Wilson T, Bray GA, Temple NL, Struble MB, editors. Nutrition Guide for Physicians. New York: Humana Press;
2010. pp. 1-11
[77] Patterson CA, Maskus H,
Dupasquier C. Pulse Crops for Health. Cereals Foods World. Canada: AACC International Inc. 2009;(3):108-112
[78] Jenkins DJ, Kendall CW, Augustin LS,
Mitchell S, Sahye-Pudaruth S, Blanco Mejia S, etal. Effect of legumes as part of a low glycemic index diet on glycemic control and cardiovascular risk factors in type 2 diabetes mellitus: A randomized controlled trial. Archives of Internal Medicine. 2012;:1653-1660
[79] Bazzano LA, Thompson AM,
Tees MT, Nguyen CH, Winham DM. Non-soy legume consumption lowers cholesterol levels: A meta-analysis of randomized controlled trials. Nutrition, Metabolism, and Cardiovascular Diseases: NMCD. 2011;:94-103
[82] Hertog MG, Feskens EJ,
Hollman PC, Katan MB, Kromhout D. Dietary antioxidant flavonoids and risk of coronary heart disease: The Zutphen elderly study. The Lancet. 1993;(8878):1007-1011
[83] Pischon T,Girman CJ,
Hotamisligil GS, Rifai N, Hu FB, Rimm EB. Plasma adiponectin levels and risk of myocardial infarction in men. JAMA. 2004;(14):1730-1737. DOI:10.1001/jama.291.14.1730
[84] Teede HJ, McGrath BP, DeSilva L,
Cehun M, Fassoulakis A, Nestel PJ. Isoflavones reduce arterial stiffness: A placebo-controlled study in men and postmenopausal women. Arteriosclerosis Thrombosis and Vascular Biology. 2003;(6):1066-1071. DOI:10.1161/01. ATV.0000072967.97296.4A
[85] Papanikolaou Y, Fulgoni VL 3rd.
Bean consumption is associated with greater nutrient intake, reduced systolic blood pressure, lower body weight, and a smaller waist circumference in adults: Results from the National Health and nutrition examination survey 1999-
2002. Journal of the American College of Nutrition. 2008;(5):569-576. DOI:10.1080/07315724.2008.10719740
[80] Anderson JW, Major AW. Pulses
and lipaemia, short- and long-term effect: Potential in the prevention of cardiovascular disease. British Journal of Nutrition. 2002;(Suppl.
3):S263-S271
[81] Ha V, Sievenpiper JL, de Souza RJ,
Jayalath VH, Mirrahimi A, Agarwal A, etal. Effect of dietary pulse intake on established therapeutic lipid targets for cardiovascular risk reduction: A systematic review and meta analysis of controlled feeding trials. CMAJ. 13, 2014;(8):52-62. DOI:10.1503/ cmaj.131727
[86] Hermsdorff HH,Zulet MA,
Abete I, Martinez JA. A legume­based hypocaloric diet reduces proinflammatory status and improves metabolic features in overweight/obese subjects. European Journal Nutrition. 2011;:61-69
[87] Jayalath VH, de Souza RJ,
Sievenpiper JL, Ha V, Chiavaroli L, Mirrahimi A, etal. Effect of dietary pulses on blood pressure: A systematic review and meta-analysis of controlled feeding trials. American Journal of Hypertension. 2014;(1):56-64. DOI:10.1093/ajh/hpt155. Epub 2013 Sep 7
Medicinal Plants – Chemical, Biochemical, and Pharmacological Approaches
217
https://t.me/medicina_free
[88] Belski R, Mori TA, Puddey IB,
Sipsas S, Woodman RJ, Ackland TR, etal. Effects of lupin-enriched foods on body composition and cardiovascular disease risk factors: A 12-month randomized controlled weight loss trial. International Journal Obesity. 2011;:810-819
[89] Lee YP, Mori TA, Puddey IB, Sipsas S,
Ackland TR, Beilin LJ, etal. Effects of lupin kernel flour-enriched bread on blood pressure: A controlled intervention study. American Journal of Clinical Nutrition. 2009;:766-772
[90] Jenkins DJ, Wolever TM, Taylor RH,
Barker H, Fielden H, Baldwin JM, etal. Glycemic index of foods: A physiological basis for carbohydrate exchange. American Journal of Clinical Nutrition. 1981;(3):362-366
[91] Rizkalla SW, Bellisle F, Slama G.
Health benefits of low glycaemic index foods, such as pulses, in diabetic patients and healthy individuals. British Journal of Nutrition. 2002;(S3):255-262. DOI:10.1079/BJN2002715
[92] Jenkins DJ, Kendall CW, Augustin LS,
Mitchell S, Sahye-Pudaruth S, Mejia SB, etal. Effect of legumes as part of a low glycemic index diet on glycemic control and cardiovascular risk factors in type 2 diabetes mellitus: A randomized controlled trial effect of legumes on glycemic control. Arch International Medicine. 2012;(21):1653-1660. DOI:10.1001/2013.jamainternmed.70
[93] Jenkins DJ, Wolever TM, Taylor RH,
Barker HM, Fielden H. Exceptionally low blood glucose response to dried beans: Comparison with other carbohydrate foods. Bristish Medicine Journal. 1980;:578-580
[94] Mollard RC, Zykus A, Luhovyy BL,
Nunez MF, Wong CL, Anderson GH. The acute effects of a pulse-containing
meal on glycaemic responses and measuresofsatiety and satiation within and at a later meal. British Journal of Nutrition. 2011;(3):509-517. DOI:10.1017/S0007114511005836 Epub 2011 Nov 7
[95] Nestel P, Cehun M, Chronopoulos A.
Effects of long-term consumption and single meals of chickpeas on plasma glucose, insulin, and triacylglycerol concentrations. Am Journal Clinical Nutrition. 2004;:390-395
[96] Sievenpiper JL, Kendall CW,
Esfahani A, Wong JM, Carleton AJ, Jiang HY, etal. Effect of non-oil-seed pulses on glycaemic control: A systematic review and meta-analysis of randomised controlled experimental trials in people with and without diabetes. Diabetologia. 2009;:1479-1495
[97] Shobana S, Sreerama YN,
Malleshi NG. Composition and enzyme inhibitory properties of finger millet (Eleusine coracana L.) seed coat phenolics: Mode of inhibition of α-glucosidase and pancreatic amylase. Food Chemistry. 2009;:1268-1273
[98] Evelyn M, Mendoza T. Development
of functional foods in the Philippines. Food Science and Technology Research. 2007;(3):179-186
[99] Frassetto LA, Todd KM, Morris RC
Jr, Sebastian A. Worldwide incidence ofhip fracture in elderly women: Relationto consumption of animal and vegetable foods. Journal Gerontol Biology Science Medicine Science. 2000;:M585-M592
[100] Mollard RC, Wong CL,
Luhovyy BL, Anderson GH. First and second meal effects of pulses on blood glucose, appetite, and food intake at a later meal. Applied Physiological Nutrition Metabolic. 2011;:634-642
Immunomodulatory Plant Based Foods, It’s Chemical, Biochemical and Pharmacological… ITexLi.112406
[101] Murty CM, Pittaway JK,
218
https://t.me/medicina_free
Ball MJ. Chickpea supplementation in an Australian diet affects food choice, satiety and bowel health. Appetite. 2010;:282-288
[102] Venn BJ, Perry T, Green TJ,
Skeaff CM, Aitken W, Moore NJ, etal.The effect of increasing consumption of pulses and whole grains in obese people: A randomized controlledtrial. Journal of the AmericanCollege of Nutrition. 2010;:365-372
[103] Björck I, Östman E,Kristensen M,
Mateo Anson N, Price RK, Haenen GRMM, etal. Cereal grains for nutrition and health benefits: Overview of results from in vitro, animal and human studies in the HEALTHGRAIN project. Trends Food Science Technology. 2012;:87-100
[107] Ho HVT, Sievenpiper JL, Zurbau A,
Blanco Mejia S, Jovanovski E, Au-Yeung F, etal. The effect of oat β-glucan on LDL­cholesterol, non-HDL-cholesterol and apoB for CVD risk reduction: A systematic review and meta-analysis of randomised-controlled trials. Britian journal. Nutrition. 2016;:1369-1382
[108] Kim B, Woo S, Kim M-J,
Kwon S-W, Lee J, Sung SH, etal. Identification and quantification of flavonoids in yellow grain mutant of rice (Oryza sativa L.). Food Chemistry. 2018;:154-162
[109] Gong ES, Liu C, Li B, Zhou W,
Chen H, Li T, etal. Phytochemical profiles of rice and their cellular antioxidant activity against ABAP induced oxidative stress in human hepatocellular carcinoma HepG2 cells. Food Chemistry. 2020;:126484
[104] Zamaratskaia G, Mhd Omar NA,
Brunius C, Hallmans G, Johansson J-E, Andersson S-O, etal. Consumption of whole grain/bran rye instead of refined wheat decrease concentrations of TNF-R2, e-selectin, and endostatin in an exploratory study in men with prostate cancer. Clinical Nutrition. 2020;:159-165
[105] Alu’Datt MH,Ereifej K,
Abu-Zaiton A, Alrababah M, Almajwal A, Rababah T, etal. Anti­oxidant, anti-diabetic, and anti­hypertensive effects of extracted phenolics and hydrolyzed peptides from barley protein fractions. International Journal Food Proportion. 2012;:781-795
[106] Gupta R, Meghwal M,
Prabhakar PK. Bioactive compounds of pigmented wheat (Triticum aestivum): Potential benefits in human health. Trends Food Science Technology. 2021;:240-252
[110] Yu X, Chu M, Chu C, Du Y, Shi J,
Liu X, etal. Wild rice (Zizania spp.): A review of its nutritional constituents, phytochemicals, antioxidant activities, and health-promoting effects. Food Chemistry. 2020;:127293
[111] Okarter N, Liu RH. Health benefits
of whole grain phytochemicals. Critical Reverse Food Science Nutrition. 2010;:193-208
[112] Deng Y, Luo Y, Qian B, Liu Z,
Zheng Y, Song X, etal. Antihypertensive effect of few-flower wild rice (Zizania latifolia Turcz.) in spontaneously hypertensive rats. Food science. Biotechnology. 2014;:439-444
[113] Gammoh S, Alu’datt MH,
Alhamad MN, Rababah T, Al-Mahasneh M, Qasaimeh A, etal. The effects of protein-phenolic interactions in wheat protein fractions on allergenicity, antioxidant activity and the inhibitory activity of angiotensin I-converting
Medicinal Plants – Chemical, Biochemical, and Pharmacological Approaches
219
https://t.me/medicina_free
enzyme (ACE). Food Bioscience. 2018; :50-55
[114] Chen J, Duan W, Ren X, Wang C,
Pan Z, Diao X, etal. Effect of foxtail millet protein hydrolysates on lowering blood pressure in spontaneously hypertensive rats. European Journal Nutrition. 2017;:2129-2138
[115] Jan-on G, Sangartit W,
Pakdeechote P, Kukongviriyapan V, Sattayasai J, Senaphan K, etal. Virgin rice bran oil alleviates hypertension through the upregulation of eNOS and reduction of oxidative stress and in flammation in L-NAME À induced hypertensive rats. Nutrition. 2020;:110575
[116] Asoodeh A, Haghighi L,
Chamani J, Ansari-Ogholbeyk MA, Mojallal-Tabatabaei Z, Lagzian M. Potential angiotensin converting enzyme inhibitory peptides from gluten hydrolysate: Biochemical characterization and molecular docking study. Journal Cereal Science. 2014;:92-98
peptides as potential antihypertensive agents. In Marine Medicinal Foods; Kim, S.-K., Ed.; Vol. 65. Cambridge, MA, USA: Academic Press; 2012. pp. 249-260. ISBN 1043-4526
[121] Barbosa JR, de Carvalho
Junior RN. Occurrence and possible roles of polysaccharides in fungi and their influence on the development of new technologies. Carbohydrate Polymerase. 2020; :116613
[122] Deng C, Fu H, Shang J,
Chen J, Xu X. Dectin-1 mediates the immunoenhancement effect of the polysaccharide from Dictyophora indusiata. International Journal Biology. Macromolecules. 2018;:369-374
[123] Shen T, Wang G, You L, Zhang L,
Ren H, Hu W, etal. Polysaccharide from wheat bran induces cytokine expression via the toll-like receptor 4-mediated p38 MAPK signaling pathway and prevents cyclophosphamideinduced immunosuppression in mice. Food Nutrition Reserve. 2017;:1344523
[117] Luthria DL, Lu Y, John KMM.
Bioactive phytochemicals in wheat: Extraction, analysis, processing, and functional properties. Journal Functional Foods. 2015;:910-925
[118] Andersson AAM, Dimberg L,
Åman P, Landberg R. Recent findings on certain bioactive components in whole grain wheat and rye. Journal Cereal Science. 2014;:294-311
[119] Wieser H, Koehler P, Scherf KA.
(eds.) chapter 6—Nutritional value of wheat. In: Wheat—An Exceptional Crop. Sawston, UK: Woodhead Publishing; 2020. pp. 133-148. ISBN 978-0-12-821715-3
[120] Kim SK, Ngo DH, Vo TS. Chapter
16—Marine fish-derived bioactive
[124] Duodu KG, Awika JM. Chapter 8—
Phytochemical-related health-promoting attributes of Sorghum and millets. In Taylor JRN, Duodu KG, editors. Sorghum and Millets. 2nd ed. Washington, DC, USA: AACC International Press; 2019. pp. 225-258. ISBN 978-0-12-811527-5
[125] Choi Y-Y, Osada K, Ito Y,
Nagasawa T, Choi M-R, Nishizawa N. Effects of dietary protein of Korean foxtail millet on plasma adiponectin, HDL-cholesterol, and insulin levels in genetically type 2 diabetic mice. Bioscience Biotechnology Biochemistry. 2005;:31-37
[126] Shan S, Li Z, Newton IP, Zhao C,
Li Z, Guo M. A novel protein extracted from foxtail millet bran displays anti-carcinogenic effects in human
Immunomodulatory Plant Based Foods, It’s Chemical, Biochemical and Pharmacological… ITexLi.112406
colon cancer cells. Toxicology Letters.
220
https://t.me/medicina_free
2014;:129-138
[127] Baksi AJ, Treibel TA, Davies JE,
Hadjiloizou N, Foale RA, Parker KH, etal. A meta-analysis of the mechanism of blood pressure change with aging. Journal of the American College of Cardiology. 2009;:2087-2092
[128] Althwab S, Carr TP, Weller CL,
Dweikat IM, Schlegel V. Advances in grain sorghum and its co-products as a human health promoting dietary system. Food Reserve International. 2015;:349-359
[129] Chiremba C, Taylor JRN,
Rooney LW, Beta T. Phenolic acid content of sorghum and maize cultivars varying in hardness. Food Chemistry. 2012;:81-88
[130] Awika JM, Rooney LW, Waniska RD.
Anthoycanins from black sorghum and their antioxidant properties. Food Chemistry. 2004;:293-301
[131] Bean SR,Wilson JD, Moreau RA,
Galant A, Awika JM, Kaufman RC, etal. Structure and composition of the Sorghum grain. Sorghum. 2019;:173-214
[132] Bhandari S, Lee Y-S. The contents
of phytosterols, squalene, and vitamin E and the composition of fatty acids of Korean landrace Setaria italica and Sorghum bicolar seeds. Korean Journal Plant Resources. 2013;:663-672
[133] Paraiso IL, Revel JS, Stevens JF.
Potential use of polyphenols in the battle against COVID-19. Curriculum Opinion Food Science. 2020;:149-155
[134] Irondi EA,Adegoke BM,
Effion ES, Oyewo SO,Alamu EO, Boligon AA. Enzymes inhibitory property, antioxidant activity and
phenolics profile of raw and roasted red sorghum grains in vitro. Food Science Human. Wellness. 2019;:142-148
[135] Liu Y-W, Shang HF, Wang CK,
Hsu FL, Hou WC. Immunomodulatory activity of dioscorin, the storage protein of yam (Dioscorea alata cv. Tainong No.
1) tuber. Food and Chemical Toxicology. 2007;(11):2312-2318
[136] Iwu MM, Okunji CO,
Ohiaeri ZGO, Akah GOP, Corley D, Tempesta MS. Hypoglycaemic activity of dioscoretinefrom tubers of Dioscorea dumetorum in normal and alloxan diabetic rabbits. Planta Medica. 1990;(3):264-267
[137] Bhandari MR,Kasai T,
Kawabata J. Nutritional evaluation of wild yam (Dioscorea spp.) tubers of Nepal. Food Chemistry. 2003;(4):619-623
[138] Scott GJ. Transforming traditional
food crops: Product development for roots and tubers. Product Development for Root and Tuber Crops. 1992;:3-20
[139] Nassar NMA, Hashimoto DYC,
Fernandes SDC. Wild Manihot species: Botanical aspects, geographic distribution and economic value. Genetics and Molecular Research. 2008;(1):16-28
[140] Chan YC, Hsu CK, Wang MF,
Su TY. A diet containing yam reduces the cognitive deterioration and brain lipid peroxidation in mice with senescence accelerated. International Journal of Food Science and Technology. 2004;(1):99-107
[141] Chen HL, Wang CH, Chang CT,
Wang TC. Effects of Taiwanese yam (Dioscorea japonica Thunb var. pseudojaponica Yamamoto) on upper gut function and lipid