Wheat germ oil enrichment in broiler feed with α-lipoic acid to enhance the antioxidant potential and lipid stability of meat
© Arshad et al.; licensee BioMed Central Ltd. 2013
- Received: 14 May 2013
- Accepted: 15 October 2013
- Published: 4 November 2013
Lipid peroxidation is the cause of declining the meat quality. Natural antioxidants plays a vital role in enhancing the stability and quality of meat. The supplementation of natural antioxidants in feed decreases lipid peroxidation and improves the stability of meat.
The present research was conducted to determine the effect of α-lipoic acid, α-tocopherol and wheat germ oil on the status of antioxidants, quality and lipid stability of broiler meat. One day old male broilers were fed with different feeds containing antioxidants i.e. natural (wheat germ oil) and synthetic α-tocopherol and α-lipoic acid during the two experimental years.
The feed treatments have significant variation on the body weight and feed conversion ratio (FCR) while having no influence on the feed intake. The broilers fed on wheat germ oil (natural α-tocopherol) gained maximum body weight (2451.97 g & 2466.07 g) in the experimental years 2010–11 & 2011–12, respectively. The higher total phenolic contents were found in the broilers fed on wheat germ oil plus α-lipoic acid in breast (162.73±4.8 mg Gallic acid equivalent/100 g & 162.18±4.5 mg Gallic acid equivalent/100 g) and leg (149.67±3.3 mg Gallic acid equivalent/100 g & 146.07±3.2 mg Gallic acid equivalent/100 g) meat during both experimental years. Similar trend was observed for the 2,2-diphenyl-1-picrylhydrazyl (DPPH) and ferric reducing antioxidant power assay (FRAP). The production of malondialdehydes in the breast and leg meat increased with progressive increase in the time period. The deposition of α-tocopherol (AT) and α-lipoic acid (ALA) contents were found to be higher in the broilers fed on wheat germ oil plus α-lipoic acid in breast and leg meat during the both experimental years.
In conclusion, the combination of wheat germ oil and α-lipoic acid has more beneficial for stability and the quality of the broiler meat and more work should be needed in future for the bio-evaluation of this kind of functional meat in humans.
- α-Lipoic acid
- Wheat germ oil
- Total phenolic contents
The lipid oxidation in poultry meat is one of the primary causes for deterioration in muscle quality, apart from microbial spoilage . The use of antioxidants is one the most important ways for lipid oxidation prevention because antioxidants restrict access of oxygen and retards the development of off-flavors and improve oxidative stability of the meat and meat products . The synthetic antioxidants such as butylatedhydroxytoluene (BHT) and butylatedhydroxyanisole (BHA) are being widely used to control lipid peroxidation in meat. But their use is not safe so the use of natural antioxidant in meat products is a promising tool to enhance the shelf life of meat .
The administration of alpha-lipoic acid through feed decreases oxidative stress and other antioxidants restore their reduce levels of in vivo. Due to its biochemical characteristics, α-lipoic acid is considered as a potential source of therapeutic for the redox-unbalanced diseases and the treatment of energy impaired. The α-lipoic acid is found in a widespread variety of foods for plants and animals origin, mainly in kidney, heart and liver meats as well as spinach, broccoli and potatoes . Alpha-lipoic acid can also be synthesized by de novo, so not considered as a vitamin . Alpha-lipoic acid has the ability to directly scavenge reactive oxygen species (ROS) and has potential to regenerate endogenous antioxidants such as vitamin C, glutathione reduced vitamins E and also has metal chelating potential resulting in reduced ROS production . The α-lipoic acid and α-tocopherol enriched broiler meat increases the oxidative stability and antioxidant potential of the broiler meat and also responsible for decreasing the TBARS (Thiobarbituric acid reactive oxygen species) content in broiler meat where (150 mg α-lipoic acid/kg) supplemented feed .
Alpha-tocopherol (Vitamin E) is a suitable supplement and added into animal diets as a highly effective lipid-soluble and chain breaking antioxidants . Unlike other fat-soluble vitamins, α-tocopherol has not been reported to be accumulated to toxic levels. The α-tocopherol accumulation at tissue levels are strongly regulated via increased hepatic metabolism and excretion that could, theoretically, alter environmental toxins, metabolism of drugs, and other nutrients . The feed supplementation with α-tocopherol has shown the most effective means of improving the oxidative stability of meat lipids and inhibiting oxidation of cholesterol and possesses 15 times more powerful antioxidant properties . The accumulation of vitamin E in tissues has been related to dietary supplementation levels during pre-slaughter period in broilers .
The wheat germ oil (WGO) consists of about linoleic acid (18:2 n6) (56%), which is an essential fatty acid . Total unsaturated and polyunsaturated fatty acid (PUFA) contents of WGO are about 81 and 64%, respectively. The wheat germ oil possesses various biological properties as anticancer and antioxidant agents . Wheat germ oil due to high concentration of bioactive compounds has also a number of nutritional and health benefits such as reduction in plasma and liver cholesterol levels, improving physical endurance/fitness, and possibly delaying effects of aging. In Pakistan, cardiovascular complications are consider the major cause to the mortality of people and this disease is enhanced due to high level of cholesterol.
Procurement of raw material
The wheat germ was collected from Sunny Flour Mills, Lahore, Pakistan. Alpha lipoic acid and synthetic alpha-tocopherol were purchased from Shaanxi Sciphar Hi-Tech Industry Co, Ltd China and from Merck (Merck K Ga A, Darmsladt, Germany) respectively. All the reagents and chemicals for this research were purchased from Sigma Aldrich (Germany) and Merck (Germany). One day old male 180 chicks (50±5 g body weight) were purchased from Jadeed Chicks Private Limited, Faisalabad, Pakistan. Fine saw dust (for the bed preparation of the broiler chicks) and Bromo-Sept (for the disinfection of the pens in the student reserved research room) were procured from the local market of Faisalabad, Pakistan.
Extraction of wheat germ oil
The wheat germ oil was extracted through solvent extraction technique by using the facilities available at Pakistan Council of Scientific and Industrial Research (PCSIR) Laboratories Complex, Lahore, Pakistan. The wheat germ was taken in a soxhlet extraction apparatus and extracted with the use of commercial hexane for 10 h. Then, solution was filtered followed by solvent removal in a rotary evaporator under vacuum at 40°C. The yield of the oil was recorded as 12%. The wheat germ oil was kept at 5°C in a refrigerator.
Broiler feed supplementation
Supplementation per kg feed
Wheat germ oil (200 mg natural α-tocopherol)
Synthetic α-tocopherol (200 mg)
α-Lipoic acid (150 mg)
α-Lipoic acid (150 mg) + Wheat germ oil (200 mg natural α-tocopherol)
α-Lipoic acid (150 mg) + Synthetic α-tocopherol (200 mg)
Experimental site management and conditions
The research room and all the pens were thoroughly white washed. Bromo-sept and formalin aqueous solutions with ratio 1:12 was used to disinfect inside and outside the pens prior to initiation of the trial. A 2–3 inch thick layer of saw dust was made in each pen as litter to keep the pen bed dry and soft. All the drinkers and feeders were washed thoroughly with water and disinfected with Bromo-Sept aqueous solution in the ratio of 1:3. All the pens were tagged with their respective treatments and replication numbers. The birds were kept in white washed reserved research room having 20 pens of 12 sq feet capacity each. A layer of saw dust was used as litter in each pen that was stirred regularly during the experiment to keep it in dry condition. The temperature of the experimental room was maintained at 35°C during the first week. The temperature was then lowered by 5°C till it reached to 25°C ±2. Twenty four hour light and proper ventilation were maintained in the experimental room throughout the experimental period. The feed and fresh water was given to experimental bird’s ad-libitum.
A glucose solution (50 grams per 5 Liter) was given to the chicks after 1–2 hours of distribution in pens for the removal of waste from the body of chicks. At the age of 2 days a solution of Cotrim-50 (1 gram per 5 Liters of water) was given to the chicks for prevention from bacterial infections. Chicks were vaccinated with N.D+I.B at the age of 3–4 days for the prevention from New Castle Disease and wild cough. At the age of 10 and 18 days birds were vaccinated with Gamboro vaccine for the prevention of Gamboro disease. At the age of 24 days birds were vaccinated with Lasuta vaccine for the prevention of New Castle Disease.
Slaughtering of the experimental birds
The experiment was conducted for 42 days. After the expiry of experiment, the birds were slaughtered according to the Halal Ethical guidelines. After slaughtering, breast and thigh of broilers were deboned, wrapped with aluminum foil and finally packed in polythene zip lock bags. The samples were stored in the freezer at −18°C for further analysis.
The meat sample (5 g) was taken in 50 ml polypropylene tube having a cap and sample homogenized by using phosphate buffer and glycerol (20%) pH (7.4) by using homogenizer. The tubes were given rest in the ice cold water during homogenization. Filtration process was carried out to remove connective tissues from sample by using muslin cloth.
Antioxidant contents in raw meat
The antioxidant contents in raw leg and breast broiler homogenized meat sample were estimated by the following analytical methods as described below.
Total phenolic contents
The total phenolic contents in leg and breast meat was determined by following the method described by . The homogenized meat sample (100 μL) was mixed with 95% ethanol (500 μL), distilled water (2.5 mL), and 50% Folin-Ciocalteu reagent (250 μL). After 5 min, 5% Na2CO3 (500 μL) was added to the resultant mixture, which was vortexed and placed in the dark room for 1 h. The absorbance of the sample was recorded by running sample through spectrophotometer (CESIL CE7200, England) at wave length 725 nm. Total phenolic contents were measured as Gallic acid equivalent ranges from 0 to 450 μg/mL.
Free radical scavenging activity (DPPH assay)
Ferric reducing antioxidant power (FRAP)
The ferric reducing antioxidant power in the leg and breast broiler homogenized meat samples were estimated by following the method described by . A 200 μL sample was mixed with 500 μL sodium phosphate buffer (0.2 M, pH 6.6) and 500 μL potassium ferri cyanide (1%), and the resultant mixture was incubated at 50°C for 20 min. After addition of 2.5 mL trichloroacetic acid [TCA, (10%)], the mixture was centrifuged at 2200×g for 10 min. The upper layer (500 μL) was mixed with 500 μL distilled water and 100 μL ferricchloride (0.1%), and the absorbance was measured at 700 nm using a spectrophotometer (CESIL CE7200, England).
Oxidative stability test
The sample was prepared according the method described by . The homogenized meat sample (500 μL) was taken, and 1.5 mL of urea (6 M) was added to dissolve the meat tissue. 0.5 mL of ascorbic acid (5%) was added in the reaction mixture for the stability of the meat tissue. Then 1 mL of urea (6 M) was also added. The tube was flushed withN2, the screw caps were tightened, and the mixture was vortexed for 12 min to dissolve the sample. One milliliter of 0.1 M sodium dodecyl sulfate (SDS) solution was added and vortexed for 1 min to disintegrate the meat tissue. For the deproteination and freeing of alpha-tocopherol, 4 mL of ethyl alcohol containing 1% pyrogallol was added in the mixture. There aftert, petroleum ether (10 mL) was added, and centrifuged the mixture at 5000×g for 5 min to facilitate the separation of phases. The solvent layer containing alpha-tocopherol was separated in the vial, and the pooled solvent was evaporated under nitrogen. Alpha-tocopherol contents were dissolved in the mobile phase (100% methanol). The sample was filtered by using an anspec 0.45 μm microfilter, centrifuged at 5000×g for 5 min so as to collect all of the filtrate, and then stored in the dark.
The mobile phase consists of methyl alcohol (HPLC grade); 100% methanol was prepared by filtering it through a typhlon filter assembly and then adjusted to HPLC. The standard of alpha-tocopherol was prepared by using Sigma-Aldrich packed standard 1 mg/mL α-tocopherol as stock solutions from which further dilutions were made in ranges of 10, 20, 50, and 100 μg/mL. Alpha-tocopherol was separated and quantified using HPLC (PerkinElmer, Series 200, USA) chromatographic system with 290 nm wavelength UV–vis detector. The HPLC chromatograms were obtained by using a (C18) column, (250 mm × 4.6 mm, 5.0 μm), System controller SCL-10 A, water pump LC-10 AT, and flow controller valve FCV-10 AL with a mobile phase of 100% methanol at a flow rate of 1 mL/min.
Alpha-lipoic acid contents
The sample was prepared according the method described by  with some modifications. The sample (200 μL) was taken from each treatment in the glass tubes, then homogenized with 2 mL of 20% metaphosphoric acid (w/v) on ice, and extracted with 3 mL of hexane containing 250 μL of isoproponol by vortexing for 30 min. The sample was centrifuged at 1500×g and collected the upper hexane layer in a glass tube. This step was repeated twice and the hexane layer allowed drying with N2. The mobile phase was prepared by using acetonitrile and water (80:20(v/v)). The sample was eluted isocratically at a 1 mL/min flow rate. The standards of alpha-lipoic acid were prepared by dissolving alpha-lipoic acid in n-hexane as a stock solution (25 mg/mL), and further dilutions were made (20, 30, and 40 μg/mL, respectively). The alpha-lipoic acid was separated by injecting 20 μL of sample and quantified by using HPLC (PerkinElmer, Series 200, USA) chromatographic gradient system. The fluorescence detector was operated at excitation and emission wavelengths of 343 and 423 nm, respectively, with a CLC (C18) column(250 mm × 4.6 mm, 5.0 μm), system controller SCL-10A, water pump LC-10 AT, flow controller valve FCV-10AL, acetonitrile/water (80:20 v/v) mobile phase, and 1.0 mL/min flow rate.
The data was statistically analyzed by Completely Randomize Design using three way analysis of variance (ANOVA) for the growth parameters broiler and two way ANOVA was done for the antioxidant parameters by using software (Statistic 8.1). The comparison of means was done by the Duncan Multiple Range test.
Body weight gain
The antioxidant supplementation in feed significantly improved the growth of broilers . The decrease in body weight gain due to intake of α-lipoic acid by the birds is also reported by . The findings of [7, 26, 27] have also indicated that the higher concentration of α-lipoic acid (150 mg) in the feed suppressed the growth performance of broilers. Recently  have also indicated that use of natural antioxidants is an effective way of getting the best result in terms of body weight gain in broiler birds. Shen et al.  reported that 0.5% and 1.0% α-lipoic acid supplementation for 3 weeks resulted in a decrease in final mouse body weight and carcass weights as the levels of dietary α -lipoic acid increased. They concluded that α-lipoic acid supplementation caused the significant decrease in carcass fat, which, in turn, decreased carcass weight. In the present investigation, the natural α-tocopherol yielded more body weight gain as compared to control whereas α-lipoic acid supplemented feed showed declining trend in body weight gain and these results are in consistent with the findings of scientists reported above. The average mortality of the broilers for two years of study was higher (10%) for broilers fed on wheat germ oil plus α-lipoic acid followed by for the broilers fed on wheat germ oil (8.3%), 6.6% for control, 6.6% for the broilers receiving feed with synthetic α-tocopherol, 6.6% for the broilers receiving synthetic α-tocopherl plus α-lipoic acid and 5% for the broilers fed on α-lipoic acid enriched feed.
Feed conversion ratio (FCR)
The FCR of broilers during 1st week ranged from 1.83 to 2.04 and 1.70 to 1.84 during the experimental years 2010–11 and 2011–12, respectively. The FCR of broilers at the termination of the experiment (6th week) ranged between 1.64 to 2.01 and 1.57 to 2.06 during both experimental years i.e. 2010–11 and 2011–12, respectively (Figure 2b). The FCR (1.89) was found significantly higher in T4 (α-lipoic acid) followed by broilers fed on T1 (control) (1.84). The lowest FCR (1.65) was recorded in broilers receiving T2 (natural α-tocopherol) feed during the experimental year 2010–11. The FCR was found higher in broilers fed on T4 (α-lipoic acid) (1.88) followed by T1 (control) (1.85) and T6 (synthetic α-tocopherol and α-lipoic acid) (1.80) during experimental year 2011–12. The lowest FCR (1.66) was found in broilers fed on T2 (natural α-tocopherol). The broilers fed on wheat germ oil (natural α-tocopherol) gained maximum weight in both of the experimental years by consuming the same feed as compared to other treatments. The results of the present study are in consistent with the findings of  who reported that the highest FCR in the group with wheat germ enriched feed in rats. Rezaeipour et al.  found that feed conversion ratio improved linearly with increase of α-tocopherol in the feed of broilers. The results of the present are further supported by the findings of  who described that feed efficiency increased statistically with α-tocopherol supplementation. It is obvious from the results that feed containing α-lipoic acid supplementation alone yielded higher FCR because it gained less weight which is also confirmed by the findings of . The present exploration indicated regarding FCR, the natural α-tocopherol showed better FCR as compared to control; conclusively α-lipoic acid supplemented feed exhibited an increasing trend in FCR.
Antioxidant potential of broiler meat
Total phenolic contents in breast and leg meat
Total phenolic contents (mg GAE/100 g meat) in the breast and leg broiler meat
T 1 (control)
T 2 (NAT)
T 3 (SAT)
T 4 (ALA)
T 5 (ALA+NAT)
T 6 (ALA+SAT)
The total phenolic contents of broiler leg meat fed on different feed treatments ranged from 107.77±2.1 to 149.67±3.3 mg GAE/100 g meat and 104.57±1.9 to 146.07±3.2 mg GAE/100 g meat during the experimental years 2010–11 and 2011–12, respectively. The highest total phenolic contents (149.67±3.3 mg GAE/100 g meat) was found in broiler leg meat receiving T5 (natural α-tocopherol and α-lipoic acid) followed by T6 (synthetic α-tocopherol and α-lipoic acid) (136.54±3.5 mg GAE/100 g meat) during the experimental year 2010–11. In the same experimental year the lowest total phenolic contents (107.77±2.1 mg GAE/100 g meat) were found in T1 (control). The trend of the total phenolic contents were found identical during the second experimental year.
In the present study the breast meat contained higher total phenolic contents than that of the leg meat. This finding is in consistent with the results of  who reported that the treated-meat containing groups fed on α-lipoic acid and α-tocopherol supplemented feed yielded more phenolic content than those from the control group. The treated breast meat from the group fed 150 mg/g α-lipoic acid supplemented feed contained the highest level of total phenolics. The total phenolic content of treated breast meat higher than that of treated leg meat, suggesting that breast meat contains more antioxidants than leg meat. The phenolic antioxidants present in the broiler meat may be consumed to prevent oxidative damage, such as oxidative stress, occurring in the control. The antioxidant activity of α-lipoic acid is well known . Therefore, α-lipoic acid may also be consumed to prevent this oxidative damage and, subsequently, to increase the amount of total phenolics in the treated meat compared with the control. The results of the present study are also consistent with the findings of [35, 36] who found α-tocopherol possesses high antiradical power showed that total phenolic contents were higher in the antioxidants enriched treatments as compared to control.
The phenolic contents reflect the antioxidant activity of the meat tissue. Higher the total phenolic contents higher will be the free radical scavenging activity. The results of the present study are line with the findings of  who reported that the group fed on combination of α-lipoic acid and α-tocopherol supplemented feed exhibited more total phenolics than that broiler fed on control. The highest total phenolic compounds have been found in the broilers leg meat fed on T5 (combination of α-lipoic acid and natural α-tocopherol), which may be due to the fact that the phenolic compounds present in the wheat germ oil exerted antioxidant effect [37, 38]. Some other scientists have also demonstrated the free radicals scavenging activity and strong antioxidant effect of phenolic compounds present in the wheat germ oil [39, 40] which confirms the findings of the present study.
Free radical scavenging activity (DPPH) of breast and leg meat
Free radical scavenging activity (DPPH) (%) in broiler breast and leg meat
T 1 (control)
T 2 (NAT)
T 3 (SAT)
T 4 (ALA)
T 5 (ALA+NAT)
T 6 (ALA+SAT)
In the present study the breast meat possesses slightly more antioxidant activity than that of the leg meat which is in consistent with the findings of  who reported that breast meat showed stronger effects than those from leg meat that correlate to the total phenolic contents. These results were also consistent with reports of . The present results are concurred with the  who reported α-tocopherol have high antiradical power. The results of the present study are inconsistent with the findings of  reported that the diet having group with combination of α-lipoic acid and α-tocopherol supplemented in the diet of broiler exhibited more antioxidant activity than the control. In the present results the highest antioxidant activity was found in the treatment combination of natural α-tocopherol and α-lipoic acid which is in agreement with the findings of Traber, (1999) whose results showed that natural α-tocopherol revealed 1.7-4 times the free radical scavenging strength than that of synthetic tocopherol. The meat from poultry fed with vitamin E supplemented feed has also exhibited a higher antioxidant activity than poultry fed normal feed . α-Lipoic acid and α-tocopherol synergistically quench reactive oxygen species and subsequently inhibit the oxidative damage in biological systems . It is obvious from the present results that the treatment with the combination of α-lipoic acid and wheat germ oil possess the highest antioxidant activity which is in line with the study of other scientists. The phenolic compounds found in wheat germ oil also have free radicals scavenging activity [37, 38]. Some other scientists have also demonstrated the free radicals scavenging activity and strong antioxidant effect of phenolic compounds present in the wheat germ oil [39, 40] which is confirmed in the present study.
Ferric reducing antioxidant power in breast and leg meat
Ferric reducing antioxidant power (FRAP) of broiler breast and leg meat
T 1 (control)
T 2 (NAT)
T 3 (SAT)
T 4 (ALA)
T 5 (ALA+NAT)
T 6 (ALA+SAT)
Jung et al.  found that the reducing power of the broiler breast meat fed on 0.5 and 1.0% mixture of gallic acid and linoleic acid was significantly greater than that of control. These results also suggest that breast meat samples from the broilers fed mixture of Gallic acid and linoleic acid were capable electron donors for neutralizing free radicals. The increase in ferric reducing antioxidant power due to feeding of α-tocopherol and α-lipoic acid may be attributed to their higher antioxidant potential as mixture of Gallic acid and linoleic acid exerted greater values of this parameter than the control.
According to  the antioxidative action of reductones is based on the breaking of free radical chains by the donation of hydrogen atom. Banerjee et al.  have reported that higher reducing power was observed in the natural antioxidants enriched meat as compared to synthetic antioxidant enriched meat. In this assay, the reductants present in the antioxidants enriched meat cause reduction of Fe3+ to the Fe2+ form. The reducing power of a compound is related to its electron-transfer ability; therefore, the reducing capacity of a compound may serve as a significant indicator of its potential antioxidant activity. Amarowicz et al.  observed a direct correlation between antioxidant activities and reducing power which have been shown to exert antioxidant action by breaking the free radical chain through donation of hydrogen atom. The birds fed on T5 (natural α-tocopherol and α-lipoic acid) might be due to the high antioxidative activity of the ingredients used in feed. This results in higher total phenolic contents, DPPH and Frap which is also supported by the findings of different scientists described in the proceeding section.
Thiobarbituric acid reactive substance assay (TBARS)
The lipid peroxidation is one of the major mechanisms of quality deterioration in foods. It occurs when hydroxyl radicals attack fatty acid side chains of membrane phospholipids. Malondialdehyde (MDA) is a product of lipid peroxidation and TBARS, as indicated by the MDA concentration, serves as an oxidative damage index. The changes in quality attribute results deterioration in flavor, color, texture, and nutritive value of the food due to the production of toxic compounds .
Thiobarbituric acid reactive substances (TBARS) in breast meat
It is also evident that the production of MDA in the breast meat increased significantly with increase in the time period. The results also showed that the breast meat of broilers enriched with the combination of natural α-tocopherol and α-lipoic acid (T5) feed. The lowest MDA concentration while the highest MDA concentration in the breast meat was found in the broilers fed on control (T1) in both of the experimental years. The trend is best explained by the polynomial curve. The results of the present study are in consistent with the previous studies of different scientist [10, 24, 48–50]. They all reported that the antioxidants supplemented in the feed of broilers increased the stability and decrease the MDA concentration in the broilers meat. Some other scientists found that α-lipoic acid supplemented in the feed of rats prevents the lipid peroxidation . Similar results have been also found in the studies of . Zulkhairi et al.  reported that TBARS levels were significantly lower in an α-lipoic acid treated group as compared to those in an untreated group, which confirms the results in the present study. In the present exploration, the TBARS value was lower in the broilers fed on antioxidants enriched treatments as compared to fed on control in both the experimental years this also will support by the many scientists and researchers as represented above.
Savitha et al.  reported that the supplementation of α-lipoic acid with other antioxidants decreased the levels of thiobarbituric acid reactive substances and improved the antioxidant status in skeletal muscles. The results of the present study showed that the MDA values were higher in the leg meat as compared to the breast meat which is supported by the findings of [7, 26, 55]. They reported that the MDA values found in leg meat were greater than those in breast meat, probably because of the greater fat content of the leg compared to the breast. The leg meat possesses a greater accumulation of poly unsaturated fatty acids as compared to breast meat. Same pattern has also been found in the findings of . A possible reason may also be attributed that the leg muscle mainly comprised of slow twitch fibers has an increased oxygen consumption rate and higher level of ROS generation in comparison with the breast muscle mainly comprised of fast twitch fibers. In the present investigation, the TBARS value was lower in the antioxidants in meat raised through feeding antioxidants enriched treatments as compared to the control in both of the experimental years. The TBARS value was higher in the leg meat as compared to the control which is supported by many workers as explained above.
The α-tocopherol is one of the major lipid soluble antioxidants belonging to tocopherol family which cannot be synthesized by the animal cells . Alpha-tocopherol protects the membrane from oxidation. The supplementation of alpha-tocopherol in animals feed increases the deposition of lipoic acid as its concentration increases . The level of vitamin E in the muscle depends on its dietary level, the duration of the supplementing period, the fiber type distribution and on metabolic characteristic. The absorption of vitamin E in broilers is variable with an average of 42% .
Alpha-tocopherol content in the breast and leg of broiler meat
Alpha-tocopherol content (mg/g) in the broiler breast and leg meat
T 1 (control)
T 2 (NAT)
T 3 (SAT)
T 4 (ALA)
T 5 (ALA+NAT)
T 6 (ALA+SAT)
It is evident from the results of the present study that α-lipoic acid in meat increased as α-tocopherol increased in feed and is agreement with [60, 61] who reported that α-lipoic acid and α-tocopherol has synergistic effect with each other. The α-Lipoic acid requires at least 2 metabolic intermediate steps (via ubiquinol and ascorbate) to regenerate α-tocopherol. There is growing evidence that α-lipoic acid may act indirectly to maintain cellular antioxidant status by enhancing the synthesis of non-enzymatic antioxidants such as reduced glutathione, vitamin C and α-tocopherol (vitamin E) . These studies showed that α-lipoic acid increases as α-tocopherol level increases in the feed. Some recent research on the supplementation of α-lipoic acid and α-tocopherol in the feed of broilers indicated that the deposition of α-tocopherol in meat increased with the presence of α-lipoic acid in the feed treatment which showed that there is a synergistic effect between the α-lipoic acid and α-tocopherol [7, 26]. The results in the present study also showed that the deposition of the antioxidants was higher in the broiler fed on the combination of the antioxidants supplemented feed which is well supported by the scientists as discussed above.
The inclusion of α-lipoic acid into the diet caused a significant dose-dependent response in terms of leg muscle α-tocopherol level which may be due to the suppression of α-tocopherol consumption probably through the enhanced ROS scavenging by α-lipoic acid as well as due to recycling α-tocopherol by regenerating ubiquinol, vitamin C, and GSH during the redox cycles of α-lipoic acid and dihydrolipoic acid . The present investigation showed that quantification of antioxidants was higher in the treatment where the combination of natural α-tocopherol and α-lipoic acid supplemented in the feed of broilers as compared to other treatments.
Alpha-lipoic acid content
The alpha-lipoic acid is a novel antioxidant which has lipid lowering effect and protects the membranes of the meat tissue. The administration of alpha-lipoic acid through feed decreases oxidative stress and restore reduce levels of other antioxidants in vivo.
Alpha-lipoic acid content in the breast and leg of broiler meat
Alpha-lipoic acid contents (mg/g) in the broiler breast and leg meat
T 1 (control)
T 2 (NAT)
T 3 (SAT)
T 4 (ALA)
T 5 (ALA+NAT)
T 6 (ALA+SAT)
Some recent work on the supplementation of α-lipoic acid and α-tocopherol in the feed of broilers indicated that the deposition of α- lipoic acid increased with the presence of α-tocopherol in the feed treatment which showed that there is a synergistic effect between the α-lipoic acid and α-tocopherol [7, 26]. The results in the present study also showed that the deposition of antioxidants was higher in the broiler meat give feed supplemented with combination of the antioxidants which is well supported by the scientists. Sohaib et al.  reported that maximum deposition of α-lipoic acid was found in the treatment with 150 mg/kg of feed than the other treatments which is in line with the findings of the present study.
α-Lipoic acid and α-tocopherol and wheat germ oil significantly influenced the antioxidant status of the broiler meat. Wheat germ oil which was used as a source of natural α-tocopherol showed excellent results for the growth parameters as well as the antioxidant parameters of the broiler meat. Wheat germ oil was first time studied in the feed of broilers and showed excellent results. In the nutshell the combination of natural and synthetic antioxidants were more helpful in increasing the stability as well as quality of the broiler meat which has beneficial consequences for the human diet because poultry meat are widely consumed.
The authors are very grateful for the support from the National Institute of Food Science and Technology by the Higher Education Commission, Government of Pakistan.
- Buckley D, Morrissey P, Gray J: Influence of dietary vitamin E on the oxidative stability and quality of pig meat. J Anim Sci. 1995, 73 (10): 3122-3130.PubMedGoogle Scholar
- Nam K, Ahn D: Use of antioxidants to reduce lipid oxidation and off-odor volatiles of irradiated pork homogenates and patties. Meat Sci. 2003, 63 (1): 1-8. 10.1016/S0309-1740(02)00043-8PubMedView ArticleGoogle Scholar
- Djenane D, Martínez L, Sánchez-Escalante A, Beltrán JA, Roncalés P: Antioxidant effect of carnosine and carnitine in fresh beef steaks stored under modified atmosphere. Food Chem. 2004, 85 (3): 453-459. 10.1016/j.foodchem.2003.08.007.View ArticleGoogle Scholar
- Dong-Yun S, Yu-Ru D, Shan-Lin L, Ya-Dong Z, Lian W: Redox stress regulates cell proliferation and apoptosis of human hepatoma through Akt protein phosphorylation. FEBS Lett. 2003, 542 (1): 60-64.PubMedView ArticleGoogle Scholar
- Bast A, Haenen GRMM: Lipoic acid: a multifunctional antioxidant. Biofactors. 2003, 17 (1–4): 207-213.PubMedView ArticleGoogle Scholar
- Freitas R: The evaluation of effects of lipoic acid on the lipid peroxidation, nitrite formation and antioxidant enzymes in the hippocampus of rats after pilocarpine-induced seizures. Neurosci Lett. 2009, 455 (2): 140- 10.1016/j.neulet.2009.03.065PubMedView ArticleGoogle Scholar
- Arshad MS, Anjum FM, Asghar A, Khan MI, Yasin M, Shahid M, El-Ghorab AH: Lipid stability and antioxidant profile of microsomal fraction of broiler meat enriched with α-lipoic acid and α-tocopherol acetate. J Agric Food Chem. 2011, 59 (13): 7346-7352. 10.1021/jf2002393PubMedView ArticleGoogle Scholar
- Miller E, Pastor-Barriuso R, Dalal D, Riemersma RA, Appel LJ, Guallar E: Meta-analysis: high-dosage vitamin E supplementation may increase all-cause mortality. Ann Intern Med. 2005, 142 (1): 37- 10.7326/0003-4819-142-1-200501040-00110PubMedView ArticleGoogle Scholar
- Mustacich DJ, Leonard SW, Patel NK, Traber MG: α-tocopherol β-oxidation localized to rat liver mitochondria. Free Radical Biol Med. 2010, 48 (1): 73-81. 10.1016/j.freeradbiomed.2009.10.024.View ArticleGoogle Scholar
- Morrissey P, Sheehy P, Galvin K, Kerry J, Buckley D: Lipid stability in meat and meat products. Meat Sci. 1998, 49: S73-S86.View ArticleGoogle Scholar
- Lauridsen C, Buckley D, Morrissey P: Influence of dietary fat and vitamin E supplementation on α-tocopherol levels and fatty acid profiles in chicken muscle membranal fractions and on susceptibility to lipid peroxidation. Meat Sci. 1997, 46 (1): 9-22. 10.1016/S0309-1740(97)00010-7PubMedView ArticleGoogle Scholar
- Dunford NT, Zhang M: Pressurized solvent extraction of wheat germ oil. Food Res Int. 2003, 36 (9): 905-909.View ArticleGoogle Scholar
- Barakat IAH, Abbas OA, Ayad S, Hassan M: Evaluation of radio protective effects of wheat germ oil in male rats. J Am Sci. 2011, 7 (2): 664-673.Google Scholar
- Senevirathne M, Kim SH, Siriwardhana N, Ha JH, Lee KW, Jeon YJ: Antioxidant potential of ecklonia cavaon reactive oxygen species scavenging, metal chelating, reducing power and lipid peroxidation inhibition. Food Sci Technol Int. 2006, 12 (1): 27-38. 10.1177/1082013206062422.View ArticleGoogle Scholar
- Brand-Williams W, Cuvelier M, Berset C: Use of a free radical method to evaluate antioxidant activity. LWT-Food Sci Technol. 1995, 28 (1): 25-30. 10.1016/S0023-6438(95)80008-5.View ArticleGoogle Scholar
- Oyaizu M: Studies on products of the browning reaction. Antioxidative activities of browning reaction products prepared from glucosamine. Jap J Nutr [Eiyogaku Zasshi]. 1986, 44 (6): 307-315. 10.5264/eiyogakuzashi.44.307View ArticleGoogle Scholar
- Asghar A, Lin C, Gray J, Buckley D, Booren A, Crackel R, Flegal C: Influence of oxidised dietary oil and antioxidant supplementation on membrane‒bound lipid stability in broiler meat. Br Poult Sci. 1989, 30 (4): 815-823. 10.1080/00071668908417207PubMedView ArticleGoogle Scholar
- Asghar A, Lin C, Gray J, Buckley D, Booren A, Flegal C: Effects of dietary oils and α‒tocopherol supplementation on membranal lipid oxidation in broiler meat. J Food Sci. 1990, 55 (1): 46-50. 10.1111/j.1365-2621.1990.tb06013.x.View ArticleGoogle Scholar
- Satoh S, Toyo’oka T, Fukushima T, Inagaki S: Simultaneous determination of α-lipoic acid and its reduced form by high-performance liquid chromatography with fluorescence detection. J Chrom B. 2007, 854 (1): 109-115.View ArticleGoogle Scholar
- Field R, Verghese M, Walker L, Panala V, Shackelford L, Boateng J: Feeding wheat germ meal and wheat germ oil reduced azoxymethane-induced aberrant crypt foci in fisher 344 male rats. Int J Cancer Res. 2008, 4 (4): 127-136. 10.3923/ijcr.2008.127.136View ArticleGoogle Scholar
- Chae B, Lohakare J, Choi J: Effects of incremental levels of alpha-tocopherol acetate on performance, nutrient digestibility and meat quality of commercial broilers. Asian Aus J Ani Sci. 2006, 19 (2): 203-View ArticleGoogle Scholar
- Rebolé A, Rodríguez M, Ortiz L, Alzueta C, Centeno C, Viveros A, Brenes A, Arija I: Effect of dietary high-oleic acid sunflower seed, palm oil and vitamin E supplementation on broiler performance, fatty acid composition and oxidation susceptibility of meat. Br Poult Sci. 2006, 47 (5): 581-591. 10.1080/00071660600939727PubMedView ArticleGoogle Scholar
- Basmacıoğlu Malayoğlu H, Özkan S, Koçtürk S, Oktay G, Ergül M: Dietary vitamin E (α-tocopheryl acetate) and organic selenium supplementation: performance and antioxidant status of broilers fed n-3 PUFA-enriched feeds. S Afr J Anim Sci. 2010, 39 (4): 274-285.Google Scholar
- Lin C, Asghar A, Gray J, Buckley D, Booren A, Crackel R, Flegal C: Effects of oxidised dietary oil and antioxidant supplementation on broiler growth and meat stability. Br Poult Sci. 1989, 30 (4): 855-864. 10.1080/00071668908417212PubMedView ArticleGoogle Scholar
- Hamano Y, Sugawara S, Kamota Y, Nagai E: Involvement of lipoic acid in plasma metabolites, hepatic oxygen consumption, and metabolic response to a β-agonist in broiler chickens. Br J Nutr. 1999, 82 (06): 497-503.PubMedGoogle Scholar
- Yasin M, Asghar A, Anjum F, Butt M, Khan M, Arshad M, El-Ghorab A, Shibamoto T: Oxidative stability enhancement of broiler bird meats with α-lipoic acid and α-tocopherol acetate supplemented feed. Food Chem. 2012, 131: 768-773. 10.1016/j.foodchem.2011.09.031.View ArticleGoogle Scholar
- Sohaib M, Anjum FM, Khan MI, Arshad MS, Shahid M: Enhancement of lipid stability of broiler breast meat and meat products fed on alpha lipoic acid and alpha tocopherol acetate supplemented feed. Lipids Health Dis. 2012, 11 (1): 57- 10.1186/1476-511X-11-57PubMed CentralPubMedView ArticleGoogle Scholar
- Biswas A, Ahmed M, Bharti V, Singh S: Effect of antioxidants on physio-biochemical and hematological parameters in broiler chicken at high altitude. Asian-Aust J Anim Sci. 2011, 24: 246-249. 10.5713/ajas.2011.10060View ArticleGoogle Scholar
- Shen Q, Jones C, Kalchayanand N, Zhu M, Du M: Effect of dietary α-lipoic acid on growth, body composition, muscle pH, and AMP-activated protein kinase phosphorylation in mice. J Anim Sci. 2005, 83 (11): 2611-2617.PubMedGoogle Scholar
- Guo Y, Tang Q, Yuan J, Jiang Z: Effects of supplementation with vitamin E on the performance and the tissue peroxidation of broiler chicks and the stability of thigh meat against oxidative deterioration. Anim Feed Sci Technol. 2001, 89 (3): 165-173.View ArticleGoogle Scholar
- Rymer C, Hartnell G, Givens D: The effect of feeding modified soyabean oil enriched with C18: 4n-3 to broilers on the deposition of n-3 fatty acids in chicken meat. Br J Nutr. 2011, 105 (6): 866- 10.1017/S0007114510004502PubMedView ArticleGoogle Scholar
- Rezaeipour V, Mosaei M, Irani M: Effects of dietary alpha tocopherol acetate and soybean oil on growth performance and meat oxidative stability of broiler chicks. J Cell Anim Biol. 2011, 5 (12): 271-274.Google Scholar
- Villar-Patiño G, Díaz-Cruz A, Ávila-González E, Guinzberg R, Pablos JL, Piña E: Effects of dietary supplementation with vitamin C or vitamin E on cardiac lipid peroxidation and growth performance in broilers at risk of developing ascites syndrome. Am J Vet Res. 2002, 63 (5): 673-676. 10.2460/ajvr.2002.63.673PubMedView ArticleGoogle Scholar
- De Araújo DP, Lobato RDFG, Cavalcanti JRLDP, Sampaio LRL, Araújo PVP, Silva MCC, Neves KRT, Fonteles MMDF, Sousa FCFD, Vasconcelos SMM: The contributions of antioxidant activity of lipoic acid in reducing neurogenerative progression of Parkinson's disease: a review. Int J Neurosci. 2011, 121 (2): 51-57. 10.3109/00207454.2010.535934PubMedView ArticleGoogle Scholar
- Mielnik MB, Aaby K, Skrede G: Commercial antioxidants control lipid oxidation in mechanically deboned turkey meat. Meat Sci. 2003, 65 (3): 1147-1155. 10.1016/S0309-1740(02)00345-5PubMedView ArticleGoogle Scholar
- Sacchetti G, Di Mattia C, Pittia P, Martino G: Application of a radical scavenging activity test to measure the total antioxidant activity of poultry meat. Meat Sci. 2008, 80 (4). 10.1-1085. 10.1016/j.meatsci.2008.04.030PubMedView ArticleGoogle Scholar
- Niu LY, Jiang ST, Pan LJ: Preparation and evaluation of antioxidant activities of peptides obtained from defatted wheat germ by fermentation. J Food Sci Technol. 2013, 50 (1): 53-61. 10.1007/s13197-011-0318-z.PubMed CentralPubMedView ArticleGoogle Scholar
- Zhu KX, Lian CX, Guo XN, Peng W, Zhou HM: Antioxidant activities and total phenolic contents of various extracts from defatted wheat germ. Food Chem. 2011, 126 (3): 1122-1126. 10.1016/j.foodchem.2010.11.144.View ArticleGoogle Scholar
- Pietta PG: Flavonoids as antioxidants. J Nat Prod. 2000, 63 (7): 1035-1042. 10.1021/np9904509PubMedView ArticleGoogle Scholar
- Crozier A, Jaganath IB, Clifford MN: Dietary phenolics: chemistry, bioavailability and effects on health. Nat Prod Rep. 2009, 26 (8). 10.1-1043. 10.1039/b802662aPubMedView ArticleGoogle Scholar
- Fasseas M, Mountzouris K, Tarantilis P, Polissiou M, Zervas G: Antioxidant activity in meat treated with oregano and sage essential oils. Food Chem. 2008, 106 (3): 1188-1194. 10.1016/j.foodchem.2007.07.060.View ArticleGoogle Scholar
- Makeeva A, Popova T, Matasova L, Yama I: Effects of lipoic acid on citrate content, aconitate hydratase activity, and oxidative status during myocardial ischemia in rats. Biochem Mosc. 2008, 73 (1): 76-79. 10.1134/S0006297908010112.View ArticleGoogle Scholar
- Jung S, Choe JH, Kim B, Yun H, Kruk ZA, Jo C: Effect of dietary mixture of gallic acid and linoleic acid on antioxidative potential and quality of breast meat from broilers. Meat Sci. 2010, 86 (2): 520-526. 10.1016/j.meatsci.2010.06.007PubMedView ArticleGoogle Scholar
- Gordon M: The mechanism of antioxidant action in vitro. Food antioxidants. 1990, 1: 1-18.View ArticleGoogle Scholar
- Banerjee R, Verma AK, Das AK, Rajkumar V, Shewalkar A, Narkhede H: Antioxidant effects of broccoli powder extract in goat meat nuggets. Meat Sci. 2012, 91 (2): 179-184. 10.1016/j.meatsci.2012.01.016PubMedView ArticleGoogle Scholar
- Amarowicz R, Pegg R, Rahimi-Moghaddam P, Barl B, Weil J: Free-radical scavenging capacity and antioxidant activity of selected plant species from the Canadian prairies. Food Chem. 2004, 84 (4): 551-562. 10.1016/S0308-8146(03)00278-4.View ArticleGoogle Scholar
- Mohamed A, Jamilah B, Abbas K, Rahman RA: A review on lipid oxidation of meat in active and modified atmosphere packaging and usage of some stabilizers. J Food Agric Environ. 2008, 6 (3&4): 76-81.Google Scholar
- Asghar A, Gray JI, Miller ER, Ku PK, Booren AM, Buckley DJ: Influence of supranutritional vitamin-E supplementation in the feed on swine growth-performance and deposition in different tissues. J Sci Food Agric. 1991, 57 (1): 19-29. 10.1002/jsfa.2740570103.View ArticleGoogle Scholar
- Paniangvait P, King A, Jones A, German B: Cholesterol oxides in foods of animal origin. J Food Sci. 1995, 60 (6): 1159-1174. 10.1111/j.1365-2621.1995.tb04548.x.View ArticleGoogle Scholar
- Nickander KK, Mcphee BR, Low PA, Tritschler H: Alpha-lipoic acid: antioxidant potency against lipid peroxidation of neural tissues in vitro and implications for diabetic neuropathy. Free Rad Biol Med. 1996, 21 (5): 631-639. 10.1016/0891-5849(96)00172-4PubMedView ArticleGoogle Scholar
- Parazo MPM, Lall SP, Castell JD, Ackman RG: Distribution of α- and γ-tocopherols in Atlantic salmon (salmo salar) tissues. Lipids. 1998, 33 (7): 697-704. 10.1007/s11745-998-0259-xPubMedView ArticleGoogle Scholar
- Gavazza MB, Catalá A: The effect of α-tocopherol on lipid peroxidation of microsomes and mitochondria from rat testis. Prostag Leukotr Ess. 2006, 74 (4): 247-254. 10.1016/j.plefa.2006.01.007.View ArticleGoogle Scholar
- Zulkhairi A, Zaiton Z, Jamaluddin M, Sharida F, Mohd T, Hasnah B, Nazmi H, Khairul O, Zanariyah A: Alpha lipoic acid posses dual antioxidant and lipid lowering properties in atherosclerotic-induced New Zealand White rabbit. Biomed Pharm. 2008, 62 (10): 716-722. 10.1016/j.biopha.2006.12.003.View ArticleGoogle Scholar
- Savitha S, Sivarajan K, Haripriya D, Kokilavani V, Panneerselvam C: Efficacy of levo carnitine and alpha lipoic acid in ameliorating the decline in mitochondrial enzymes during aging. Clin Nutr. 2005, 24 (5): 794-800. 10.1016/j.clnu.2005.04.005PubMedView ArticleGoogle Scholar
- Betti M, Schneider B, Wismer W, Carney V, Zuidhof M, Renema R: Omega-3-enriched broiler meat: 2. Functional properties, oxidative stability, and consumer acceptance. Poult Sci. 2009, 88 (5): 1085-1095. 10.3382/ps.2008-00158PubMedView ArticleGoogle Scholar
- Chen P, Ma QG, Ji C, Zhang JY, Zhao LH, Zhang Y, Jie YZ: Dietary lipoic acid influences antioxidant capability and oxidative status of broilers. Int J Mol Sci. 2011, 12 (12): 8476-8488. 10.3390/ijms12128476PubMed CentralPubMedView ArticleGoogle Scholar
- Saladino R, Neri V, Crestini C, Costanzo G, Graciotti M, Di Mauro E: Synthesis and degradation of nucleic acid components by formamide and iron sulfur minerals. J Am Chem Soc. 2008, 130 (46): 15512-15518. 10.1021/ja804782ePubMedView ArticleGoogle Scholar
- D'Arrigo M, Hoz L, Lopez-Bote CJ, Cambero I, Pin C, Rey AI, Ordóñez JA: Effect of dietary linseed oil and α-tocopherol on selected properties of pig fat. Can J Anim Sci. 2002, 82 (3): 339-346. 10.4141/A01-095View ArticleGoogle Scholar
- Barroeta A: Nutritive value of poultry meat: relationship between vitamin E and PUFA. Worlds Poult Sci J. 2007, 63 (02): 277-284. 10.1017/S0043933907001468.View ArticleGoogle Scholar
- Packer L, Witt EH, Tritschler HJ: Alpha-lipoic acid as a biological antioxidant. Free Rad Biol Med. 1995, 19 (2): 227-250. 10.1016/0891-5849(95)00017-RPubMedView ArticleGoogle Scholar
- Wen J, McCarthy S, Higgins F, Morrissey P, Buckley D, Sheehy P: Effect of dietary α-tocopheryl acetate on the uptake and distribution of α-tocopherol in turkey tissues and lipid stability. I J Agric Food Res. 1997, 36: 65-74.Google Scholar
- Shay KP, Moreau RF, Smith EJ, Smith AR, Hagen TM: Alpha-lipoic acid as a dietary supplement: molecular mechanisms and therapeutic potential. BBA-Gen Subjects. 2009, 1790 (10): 1149-1160. 10.1016/j.bbagen.2009.07.026.View ArticleGoogle Scholar
- Çakatay U: Pro-oxidant actions of α-lipoic acid and dihydrolipoic acid. Med Hypotheses. 2006, 66 (1): 110-117. 10.1016/j.mehy.2005.07.020PubMedView ArticleGoogle Scholar
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