Effect of Trichoderma reesei Degraded Date Pits on Antioxidant Enzyme Activities and Biochemical Responses of Broiler Chickens

The long-term use of antimicrobials as growth promoters in poultry feed leads to antimicrobial resistance in pathogens. Thus, alternatives to antibiotics are essential for reasons associated with both safety and cost-effectiveness. Underutilized plant sources need to be developed to replace antibiotics in broiler feed. Several feed resources have been introduced so far, but they have yet to be applied widely. Date pits are a major by-product of the date industry (6–8%) and have the potential antioxidant to replace antibiotics. In this study, fresh date pits were degraded using the mold Trichoderma reesei under solid-state degradation (SSD), resulting in degraded date pits (DDP). A total of 180 Brazilian “Cobb 500” broiler chicks were divided into six feed treatments in triplicate groups. The treatments were corn-soy basal diet (positive control; C+), corn-soy + 20% oxytetracycline at 0.05% (negative control; C–), corn-soy + 10% DDP, corn-soy + 0.2% mannan-oligosaccharides (MOS), corn-soy + 0.1% mannose, and corn-soy + 0.2% mannose. The antioxidant and biochemical effects of DDP, MOS, and mannose were determined in the blood serum, liver, and intestine of broilers at age 21 and 42 days. The results indicated that the contents of antioxidants such as flavonoids and phenolics, as well as the MOS content in DDP, were increased by the degradation process. Additionally, mannose, glucose, arabinose, rhamnose, and glucuronic acid were significantly increased in DDP after degradation. The activity of antioxidant enzymes (GPx—glutathione peroxidase, catalase, and SOD—superoxide dismutase) in the serum, liver, and intestine of broilers fed with diets containing 10% DDP and 0.2% MOS was increased significantly compared to the control group. Malondialdehyde activity was decreased, whereas the mean corpuscular hemoglobin level and the iron content were significantly upregulated in the broilers fed with 10% DDP, 0.1% mannose, and 0.2% MOS diets compared with the control. Thus, DDP can be used to improve the antioxidant status and has a prebiotic-like effect in broiler chicken performance.

[1]  K. El-Tarabily,et al.  Phytochemical Composition and Antioxidant Activity of Trichoderma reesei Degraded Date (Phoenix dactylifera L.) Pits , 2020, Current Bioactive Compounds.

[2]  Mohammed Jard Kadhim,et al.  Effect of addition date molasses or/and ascorbic acid with/without feeding method in some productive performance of broiler chickens Ross 308 , 2019, Journal of Physics: Conference Series.

[3]  M. Azizi,et al.  Practical applications of agricultural wastes in poultry feeding in Mediterranean and Middle East regions. Part 1: citrus, grape, pomegranate and apple wastes , 2018, World's Poultry Science Journal.

[4]  M. Azizi,et al.  Practical applications of agricultural wastes in poultry feeding in Mediterranean and Middle East regions. Part 2: tomato, olive, date, sunflower wastes , 2018, World's Poultry Science Journal.

[5]  U. Mahmoud,et al.  Effects of Mannan-oligosaccharide and β-Glucan Prebiotic on the Brain Oxidant/Antioxidant Balance in Broilers under Natural Egyptian Summer Conditions , 2018, Egyptian Academic Journal of Biological Sciences, B. Zoology.

[6]  N. Diwan,et al.  The Biochemical Effects of Beauveria bassiana and Metarhizium anisopliae on 3rd instar larvae of Culex pipiens L. (Diptera: Culicidae). , 2017 .

[7]  M. El-Sanhoury,et al.  Effect of Peppermint Extracts Inclusion in Broiler Chick Diet on Chick Performance, Plasma Constituents, Carcass Traits and Some Microbial Populations, Enzymatic Activity and Histological Aspects of Small Intestine , 2016 .

[8]  A. Kumar,et al.  Effect of dietary supplementation of prebiotic, probiotic, and synbiotic on growth performance and carcass characteristics of broiler chickens , 2016, Veterinary world.

[9]  M. F. Jahromi,et al.  Extraction and characterization of oligosaccharides from palm kernel cake as prebiotic , 2015 .

[10]  Fereidoon Shahidi,et al.  Phenolics and polyphenolics in foods, beverages and spices: Antioxidant activity and health effects – A review , 2015 .

[11]  Y. Goh,et al.  Palm kernel cake extract exerts hepatoprotective activity in heat-induced oxidative stress in chicken hepatocytes , 2014, BMC Complementary and Alternative Medicine.

[12]  I. B. Hashim,et al.  Quality of breast and thigh meats when broilers are fed rations containing graded levels of sugar syrup. , 2013, Poultry science.

[13]  E. Shalaby,et al.  Antioxidant compounds, assays of determination and mode of action , 2013 .

[14]  M. Hume,et al.  Effect of supplementation of prebiotic mannan-oligosaccharides and probiotic mixture on growth performance of broilers subjected to chronic heat stress. , 2012, Poultry science.

[15]  M. Bozkurt,et al.  Performance, egg quality, and immune response of laying hens fed diets supplemented with mannan-oligosaccharide or an essential oil mixture under moderate and hot environmental conditions. , 2012, Poultry science.

[16]  A. O. Ademiluyi,et al.  Effect of combination on the antioxidant and inhibitory properties of tropical pepper varieties against α-amylase and α-glucosidase activities in vitro. , 2011, Journal of medicinal food.

[17]  M. Chaji,et al.  Effects of different levels of date pits on performance, carcass characteristics and blood parameters of broiler chickens , 2011 .

[18]  É. Hideg,et al.  The food additives inulin and stevioside counteract oxidative stress , 2011, International journal of food sciences and nutrition.

[19]  A. Hadjiakhoondi,et al.  Comparison of Antioxidant Activity and Total Phenol Contents of some Date Seed Varieties from Iran , 2010, Iranian journal of pharmaceutical research : IJPR.

[20]  S. Yalçın,et al.  Effects of dietary yeast autolysate (Saccharomyces cerevisiae) on performance, egg traits, egg cholesterol content, egg yolk fatty acid composition and humoral immune response of laying hens. , 2010, Journal of the science of food and agriculture.

[21]  Gangliang Huang,et al.  Extraction and Deproteinization of Mannan Oligosaccharides , 2010, Zeitschrift fur Naturforschung. C, Journal of biosciences.

[22]  G. Ghalamkari,et al.  Growth performance, serum biochemistry and blood hematology of broiler chicks fed different levels of black seed (Nigella sativa) and peppermint (Mentha piperita). , 2010 .

[23]  B. Halliwell Establishing the significance and optimal intake of dietary antioxidants: the biomarker concept. , 2009, Nutrition reviews.

[24]  J. Buyse,et al.  Acclimation to heat during incubation: 3. Body weight, cloacal temperatures, and blood acid-base balance in broilers exposed to daily high temperatures. , 2008, Poultry science.

[25]  D. A. Uygun,et al.  Antioxidant activity and proline content of leaf extracts from Dorystoechas hastata. , 2008, Food chemistry.

[26]  P. Sarkar,et al.  Antioxidant activities of soybean as affected by Bacillus-fermentation to kinema , 2008 .

[27]  Z. Pampori,et al.  Haematology, Serum Chemistry and Electrocardiographic Evaluation in Native Chicken of Kashmir , 2007 .

[28]  B. Chance,et al.  The assay of catalases and peroxidases. , 2006, Methods of biochemical analysis.

[29]  Barry Halliwell,et al.  Oxidative stress and neurodegeneration: where are we now? , 2006, Journal of neurochemistry.

[30]  .. S.I.Al-Sultan,et al.  Aspects of the Serum Biochemistry, Carcass Quality and Organoleptic Characteristics of Broilers Fed Alkali-Treated Date Pits , 2006 .

[31]  E. Çetin,et al.  The effects of probiotic and mannanoligosaccharide on some haematological and immunological parameters in turkeys. , 2005, Journal of veterinary medicine. A, Physiology, pathology, clinical medicine.

[32]  U. Ruegg,et al.  Role of superoxide as a signaling molecule. , 2004, News in physiological sciences : an international journal of physiology produced jointly by the International Union of Physiological Sciences and the American Physiological Society.

[33]  T. Houfek,et al.  Transcriptional Regulation of Biomass-degrading Enzymes in the Filamentous Fungus Trichoderma reesei* , 2003, Journal of Biological Chemistry.

[34]  Peter F Surai,et al.  Effects of T-2 Toxin, Zeolite and Mycosorb on Antioxidant Systems of Growing Quail , 2001 .

[35]  V. Sasinková,et al.  Antioxidative and antimutagenic activity of yeast cell wall mannans in vitro. , 2001, Mutation research.

[36]  Peter F Surai,et al.  Carotenoids in Avian Nutrition and Embryonic Development. 2. Antioxidant Properties and Discrimination in Embryonic Tissues , 2001 .

[37]  Peter F Surai,et al.  Carotenoids in Avian Nutrition and Embryonic Development. 1. Absorption, Availability and Levels in Plasma and Egg Yolk , 2001 .

[38]  G. Bolwell,et al.  Phenols in the plant and in man. The potential for possible nutritional enhancement of the diet by modifying the phenols content or profile , 2000 .

[39]  D. S. St. Clair,et al.  Antioxidant and oxidative status in tissues of manganese superoxide dismutase transgenic mice. , 2000, Free radical biology & medicine.

[40]  C. Rice-Evans,et al.  Antioxidant activity applying an improved ABTS radical cation decolorization assay. , 1999, Free radical biology & medicine.

[41]  H. Oguz,et al.  Effects of polyvinylpolypyrrolidone, synthetic zeolite and bentonite on serum biochemical and haematological characters of broiler chickens during aflatoxicosis. , 1998, British poultry science.

[42]  J. Nicolas,et al.  Detoxication of rapeseed meal by Rhizopus Oligosporus sp‐T3: A first step towards rapeseed protein concentrate , 1996 .

[43]  H. Sies Role of reactive oxygen species in biological processes , 1991, Klinische Wochenschrift.

[44]  C. Vandecasteele,et al.  Determination of iron, cobalt, copper, zinc, rubidium, molybdenum, and cesium in human serum by inductively coupled plasma mass spectrometry. , 1989, Analytical chemistry.

[45]  G. Samson,et al.  COPPER QUENCHING OF THE VARIABLE FLUORESCENCE IN Dunaliella tertiolecta. NEW EVIDENCE FOR A COPPER INHIBITION EFFECT ON PSII PHOTOCHEMISTRY , 1988 .

[46]  C. B. Cowey The role of nutritional factors in the prevention of peroxidative damage to tissues , 1986, Fish Physiology and Biochemistry.

[47]  P. Viswanathan,et al.  A modified spectrophotometric assay of superoxide dismutase. , 1984, Indian journal of biochemistry & biophysics.

[48]  N. Agergaard,et al.  Procedure for Blood Glutathione Peroxidase Determination in Cattle and Swine , 1982, Acta Veterinaria Scandinavica.

[49]  K. Yagi,et al.  Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. , 1979, Analytical biochemistry.

[50]  R. Burk,et al.  Glutathione peroxidase activity in selenium-deficient rat liver. , 1976, Biochemical and biophysical research communications.

[51]  S REITMAN,et al.  A colorimetric method for the determination of serum glutamic oxalacetic and glutamic pyruvic transaminases. , 1957, American journal of clinical pathology.

[52]  H. Friedman Modification of Determination of Urea by Diacetyl Monoxime Method , 1953 .

[53]  H. Shaheen,et al.  Date Palm (Phoenix dactylifera): Protection and Remedy Food , 2016 .

[54]  H. Mirhosseini,et al.  COMPARATIVE INVESTIGATION OF COLD PRESSED ESSENTIAL OILS FROM PEEL OF DIFFERENT MANDARIN VARIETIES , 2012 .

[55]  A. Piotrowska,et al.  Changes in blood chemistry in broiler chickens during the fattening period. , 2011, Folia biologica.

[56]  M. Babincová,et al.  Yeast cell wall polysaccharides as antioxidants and antimutagens: can they fight cancer? , 2008, Neoplasma.

[57]  P. Kraljević,et al.  Aminotransferase activity in chicken blood plasma after application of a lethal activity of 32P , 2008 .

[58]  G. Oboh,et al.  Hot pepper (Capsicum annuum, Tepin and Capsicum chinese, Habanero) prevents Fe2+-induced lipid peroxidation in brain – in vitro , 2007 .

[59]  J. Grimes,et al.  BENEFITS OF DIETARY ANTIBIOTIC AND MANNANOLIGOSACCHARIDE SUPPLEMENTATION FOR POULTRY , 2002 .

[60]  J. Strain,et al.  Ferric reducing/antioxidant power assay: direct measure of total antioxidant activity of biological fluids and modified version for simultaneous measurement of total antioxidant power and ascorbic acid concentration. , 1999, Methods in enzymology.

[61]  S. Orrenius,et al.  Host biochemical defense mechanisms against prooxidants. , 1988, Annual review of pharmacology and toxicology.

[62]  B. S. Rose,et al.  SERUM URIC ACID ESTIMATION CHEMICAL AND ENZYMATIC METHODS COMPARED , 2022 .