E-ISSN 2218-6050 | ISSN 2226-4485
 

Research Article


Open Veterinary Journal, (2023), Vol. 13(11): 1425–1435

Original Research

10.5455/OVJ.2023.v13.i11.5

Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined

Khadija S. Radhi1, Muhammad Arif2, Abd ur Rehman2, Muhammad Faizan2, Najlaa H. Almohmadi3, Islam M. Youssef4, Ayman A. Swelum5, Gamaleldin M. Suliman5, Mohamed Tharwat6, Alia Ebrahim7, Mohamed E. Abd El-Hack8* and Khalid M. Mahrose9

1Department of Food Science and Nutrition, College of Science, Taif University, Taif, Saudi Arabia

2Department of Animal Sciences, College of Agriculture, University of Sargodha, Sargodha, Pakistan

3Clinical Nutrition Department, College of Applied Medical Sciences, Umm Al-Qura University, Makkah, Saudi Arabia

4Animal Production Research Institute, Agriculture Research Center, Giza, Egypt

5Department of Animal Production, College of Food and Agriculture Sciences, King Saud University, Riyadh, Saudi Arabia

6Department of Veterinary Medicine, College of Agriculture and Veterinary Medicine, Qassim University, Buraidah, Saudi Arabia

7Jiangsu Key Laboratory for Microbes and Genomics, School of Life Sciences, Nanjing Normal University, Nanjing, China

8Poultry Department, Faculty of Agriculture, Zagazig University, Zagazig, Egypt

9Poultry Production Department, Faculty of Technology and Development, Zagazig University, Zagazig, Egypt

*Corresponding Author: Mohamed E. Abd El-Hack. Poultry Department, Faculty of Agriculture, Zagazig University, Zagazig, Egypt. Email: dr.mohamed.e.abdalhaq [at] gmail.com

Submitted: 20/08/2023 Accepted: 25/10/2023 Published: 30/11/2023


Abstract

Background: Feed additives that increase nutrient availability in feeds have gained a lot of interest.

Aim: An experiment was conducted to determine whether amylase, protease, and their combined supplementation affected broiler performance.

Methods: Two hundred eighty broiler chicks were selected and distributed randomly into 28 replicate pens with four treatment groups and seven replicates under a completely randomized design. A total of four diets were developed, having 0, 100, 100, and 100 + 100 g of control (AP0), amylase (A1), protease (P1), and amylase + protease (AP1)/ton of feed, respectively. Four replicates of each treatment were fed each diet. Each diet was randomly allotted to each group. Ad-libitum feeding was provided to the birds. The feeding program had starter and finisher diets. Upon completion of the experiment, three birds from each pen were slaughtered to analyze the carcass characteristics and organ weight.

Results: Differences were insignificant between 100 g/ton of amylase supplementation and FI, body weight gain (BWG), or feed conversion ratio (FCR) (p > 0.05). Supplementation with 10 0g/ton of protease did not significantly affect FI, BWG, and FCR (p > 0.05). Similarly, 100 + 100 g/ton of amylase + protease addition had no significant effect on FI, BWG, and FCR (p > 0.05). None of the treatments significantly affected carcass weight, abdominal fat percentage, dressing percentage, drumstick, wings, breast, and thigh weights (p > 0.05). In addition, there were no significant effects (p > 0.05) on the weight of the heart, liver, gizzard, and spleen.

Conclusion: In conclusion, amylase, protease, and their combined supplementation at a rate of 100 g/ton of feed did not influence BWG, FI, FCR, carcass characteristics, or organ weight.

Keywords: Animals, Amylase, Protease, Broiler, Growth performance.


Introduction

One method of increasing nutrient availability is to add supplemental enzymes to the feed. The feed enzyme industry currently generates over $1 billion in annual revenue, with phytases, proteases, and carbohydrases accounting for most of this (Barletta, 2010; Hashim et al., 2023). The pH of the proventriculus is acidic, 2.5–3, where protein digestion occurs. They improve the energy value of feedstuff, improve the digestion, assimilation, and usage of carbohydrate, protein, fat, and phosphorus from undigested crop residues, and reduce the excretion level of P & N in nondigestible nutrients in the surrounding, resulting in decreased environmental degradation (Dosković et al., 2013; Dersjant-Li et al., 2021).

Enzymes are substances or biological catalysts that accelerate biochemical reactions without being consumed. Most enzymes are protein, and as such, they exhibit protein features. Exogenous enzymes are those supplied to an animal’s diet to generate the desired result (Alabi et al., 2019). Different enzymes are widely used for the betterment of the poultry industry. Although the usefulness of carbohydrases (amylase, xylanase, amylase, beta-glucans, and so on), proteases (bromelain, ficin, papain, and so on), and phytases (allzyme, Natuphose, Ronozyme, and so on) in poultry nutrition was very well-validated, still there is a lot of complexity at how exogenic enzymes function.

The broiler will not even be able to utilize high-fiber diets since they are challenging to digest fully. A rich fiber diet has an anti-nutritional effect, as seen through wet excrement and inadequate feed efficiency. As a result, including enzymes as a supplement in diet will improve their productivity while lowering feces volume and wet dropping. In addition, enhanced nitrogen and starch digestion and protein, carbohydrate, and fat absorption (Kiarie et al., 2014). Phytase, protease, and other enzyme combinations are used to enhance nutrient maintenance and use in growing chickens. There is not much information about employing one enzyme alone or in combination with another to increase birds’ productivity (Bedford, 2000). However, the efficacy of enzyme addition can be affected by various variables, including feed composition, avian age, environmental conditions, enzyme type and dosage, and interactions with other feed additives.

It has been discovered that the incorporation of amylase into poultry diets improves the utilization of dietary carbohydrates, resulting in enhanced growth performance, feed efficiency, and body weight gain (BWG) (Ibrahim et al., 2023). Yuan et al. (2018) reported amylase supplementation in combination with protease, or glucoamylase improves the digestibility of starch and the biodiversity of the intestinal microbes and increases the growth rate of broilers. Furthermore, it has been demonstrated that incorporating protease into poultry diets improves the utilization of dietary protein, thereby increasing the avian’s access to amino acids. According to Mahmood et al. (2017), the supplementation of protease to the starter and finisher poultry diet increased BWG and feed conversion ratio (FCR) during the starter period of growth. Cowieson et al. (2017) found that the supplementation of protease to soybean meal had significant effects on the performance of broiler poultry, such as an increase in nitrogen digestion in a main protein-based ration and an increase in jejunal villus height.

According to Anwar et al. (2023), the combination of amylase, protease, and xylanase enhances the feed intake (FI), and BWG and improves the FCR in the overall phase. In addition, supplementation of exogenous xylanase and phytase alone or in combination enhances the nutrient digestibility and reduces the digesta viscosity. Amylase and protease can work better together than they do separately in broiler diets. Improved protein and carbohydrate digestion and absorption leads to better nutrient use, which generally enhances broiler growth performance. The main objective of this study is to observe the broiler’s productive performance by adding amylase, protease, or a combination of these enzymes to their diets, in order to improve its production perfprmance.


Materials and Methods

Experimental station

The research was conducted at Sind Feed and Allied Products R&D broiler farm, Karachi, Pakistan.

Experimental birds

Two hundred and eighty birds were purchased from the market and all chicks were inspected for abnormalities. Birds were distributed into four treatments, AP0, A1, P1, and AP1, under Completely Randomize Design. Each treatment was divided into seven replicates and each replicate had ten birds.

The housing of birds and management

The poultry shed was washed, cleaned, and then disinfected. After the cleaning process fumigation was done by using potassium permanganate and formalin. After placing litter material and utensils, the replicates were distributed in the brooding pan. A total of 280-day-old broiler chicks were purchased from the market and raised at the broiler R&D farm Sindh Feeds (Karachi). The shed’s temperature in the first week is 35℃ and decreases by 2℃ weekly. Biosecurity was maintained throughout the experimental time. Potassium permanganate was kept at the entrance of the shed. The drinkers and feeders were cleaned daily with potassium permanganate.

Vaccination schedule

Chicks were vaccinated against New Castle disease (ND), infectious bronchitis (IB), and infectious bursal disease (IBD) in this experimental trial according to the schedule given in Table 1.

Table 1. Vaccination schedule.

Experimental diet and feeding

Four experimental diets were formulated (Tables 2 and 3), i.e., controlled, 100 g per ton of amylase, 100 g per ton of protease, and 100 g amylase + 100 g protease per ton of feed. A weighing of the birds was performed at the beginning and the end of the experimental period. FI, BWG, and FCR were also recorded weakly.

Data collection

Body weight

An electrical weighing balance was used to determine the initial weight of the chicks when they arrived. Chicks were weighed weekly in each replicate after that.

Table 2. Composition of experimental diets.

Table 3. Nutrient composition of diets.

Feed intake (FI)

Total FI was measured per replicate weekly. The feed offered was subtracted from the amount refused to calculate the amount of FI. The FI per bird per day was calculated using the information obtained.

FI (gram/bird)=feed offered (g) − refused feed (g)

Feed conversion ratio

FCR was calculated from FI during the week and BWG per replicate weekly by using a formula:

Carcass measurement

Upon completion of the fifth week, three birds were randomly selected from each treatment and individually weighed. After slaughtering carcass birds had bled out sufficiently, the weight was taken before the feathers and skin were plucked. The birds were eviscerated after de-feathering. The abdominal fat and liver were taken and weighed during evisceration. The carcass was split into sections (breast, thigh, liver, gizzard, and heart) to measure each item individually.

Statistical analysis

The experiment was a completely randomized design. All the experimental data were subjected to the analysis of variance using SPSS (SPSS, 2019). Where statistical significance was observed, the mean values were separated using Duncan’s multiple-range test (Duncan, 1955).

Ethical approval

The research was conducted at Sind Feed and Allied Products R&D broiler farm, Karachi, Pakistan, following the Animal Care Ethics.


Results

FI, BWG, and FCR as affected by dietary amylase, protease, or their combined supplementation are presented in Table 4. Amylase, protease, and their combination did not significantly affect the birds’ FI, BWG, and FCR in the overall period (p > 0.05).

In the same context, the effects of dietary amylase, protease, or their combined supplementation on carcass characteristics and organ weight in broilers are presented in Table 5. The analysis of variance showed supplementation of amylase, protease, and their combination have no significant impact on live weight, carcass weight, dressing percentage, thigh weight, drumstick, abdominal fat%, breast weight, and wings weight (p > 0.05). In addition, amylase, protease, and their combined administration into broiler feed have no significant effect on the organ weight of the birds (p > 0.05).

Table 4. Effect of dietary addition of amylase, protease, and their combination on growth performance during experimental periods.

Table 5. Effect of dietary addition of amylase, protease, and their combination on carcass characteristics and organ weight of broiler.


Discussion

Results of the present study confirmed that using amylase, protease, or they are combined at different periods did not show any effect on FI, BWG, and FCR. The results of FI in the present study were in line with Liu et al. (2020), who described no significant effect of amylase addition in the broiler diet on FI. In contrast, Lin et al. (2019) observed no significant effect in FI with protease supplementation in a broiler diet.

Shapiro and Nir (1995) noted no effect of combined supplementation of amylase and protease on FI. Supplementing poultry feeding soybean-meal diet with protease in the feed had no significant influence on FI (Rehman et al., 2017; Law et al., 2018). Cowieson et al. (2016) mention no beneficial impact of protease on FI in the broiler diet. Similarly, Angel et al. (2011) reported no significant improvement in FI. Furthermore, irrespective of whether the diet had low amounts of metabolizable energy, Cardoso et al., 2011 found no positive effect on feed consumption of the birds provided diets with the administration of enzymes. No significant impact on FI was seen in broiler-fed diets based on corn with reduced salt-soluble protein, which also points to physiological symptoms because amylase administration was shown to suppress pancreatic amylase releases (Gehring et al., 2012). Lourenco et al. (2020) observed no significant impact on FI by supplementing protease into decreasing crude protein (CP) levels in a broiler diet; therefore, protease supplementation has no beneficial impacts in a low CP diet.

In contrast to these findings, Oko et al. (2018) noted increased FI by supplementing amylase and protease. Jiang et al. (2008) supplemented amylase into a broiler diet, which improved FI. Yu and Chung (2004), Castro et al. (2019), and Perz et al. (2023) reported increased FI with amylase supplementation. Including protease in the soybean meal-based diet has enhanced feed consumption, leading to a significant diet-protease interaction (Cowieson et al., 2016). Huang (2014) supplemented amylase into a broiler diet, which resulted in decreased FI, while Costa et al. (2006) reported decreased FI by supplementing the higher level of amylase. When an enzymatic complex, including the enzyme amylase, was used, it was shown that chicks that included enzymes had decreased diet consumption (Sorbara et al., 2009). Castro et al. (2019) concluded that a higher level of amylase (250, 500, 750, and 1,000 g/ton) may lead to decreased FI. Iji et al. (2003) reported an increase in FI when maize with high moisture content was used in poultry feed with oven drying at 95℃, reducing the amylose concentration and leading to improved grain quality. Dietary protein and amino acid concentration, grain size, and dietary energy concentrations could all influence consumption. Birds fulfill their energy requirement by reducing feed consumption when their energy levels rise (Oko et al., 2018).

Like the present study, Wang et al. (2020) supplemented amylase in a broiler diet which showed no significant improvement in production performance and BWG. Using varying levels of supplemental amylase, Gracia et al., 2003 observed no clear improvement in growth performance. Kaczmarek et al. (2014) and Ghazi et al. (2002) found no difference in growth and yield in broiler chicks administered protease-supplemented feed, which may result from the higher rate of starch digestion in the upper gastrointestinal tract. Maize has been discovered to contain protease and some other inhibitors (Sharma et al., 2022). The poly functional Hageman factor inhibitor derived from maize inhibited endogenous protease and amylase activity, which resulted in poor growth performance (Choct et al., 2006). Amerah et al. (2017) discovered that amylase supplementation in broiler feed had no significant impact on production performance. Stefanello et al. (2017) also found that amylase did not affect BWG from 1 to 40 days. The growth performance of the chicks offered a soybean meal-based diet was unaffected by supplementary protease in the feed because total tract digestibility was decreased. Similarly, Cowieson et al. (2016) found no influence of protease on chick BWG. According to Svihus (2014), differences in the outcome of supplementing chicken diets with amylase could be due to the diet qualities, grain source, inclusion level, and birds-related variables.

In contrast to these findings, protease supplementation in a broiler diet improved BWG, FI, and FCR according to some other investigations (Angel et al., 2011; Freitas et al., 2011; Cowieson et al., 2016; Mahmood et al., 2017). Chimote et al. (2009) noted improvement in BWG because amylase and protease supplementation increase the rate of digestion of nutrients. According to Jiang et al. (2008), supplementing amylase in broiler diets resulted in a considerable increase in production performance. According to several other types of research, supplementing the broiler diet with amylase or enzyme combination, including protease, resulted in higher growth performance (Gracia et al., 2003; Iji et al., 2003; Hashim et al., 2023). Adding amylase improved BWG in broiler birds that provided low-energy feeds, mainly when 1,000 g tons of amylase was included. This increased BWG relative to broiler-provided diets with varied enzyme inclusion levels (Iji et al., 2003). According to Yin et al. (2018), amylase administration enhanced the size of villi and height-to-crypt ratios inside the duodenum of the birds administered corn-soybean meal diet, which could improve the absorption of nutrients and energy digestibility.

Comparable to the present study, Lin et al. (2019) noted no significant impact on FCR by adding protease into the broiler diet. Jiang et al. (2008) observed no positive effect on FCR by administration of amylase into a broiler diet. The FCR was not affected by adding a combination of amylase and protease (Slominski et al., 2006). Yuan et al. (2015) demonstrated that using protease at any level in a broiler diet did not affect feed efficiency. Likewise, Cowieson et al. (2016) showed a reduced FCR using amylase in the broiler diet. According to Ghazi et al. (2003), the FCR was either negatively or not impacted depending on the protease dose applied. Results of the overall FCR were in line with Stefanello et al. (2017), who observed a reduction in FCR from 1 to 40 days by amylase supplementation in a broiler diet. The FCR was approximately 4.8 percent lower in broilers fed the amylase-enriched feed than any of those fed the negative control diet, and those findings correspond with Sorbara and Pamer (2019), who reported that the FCR was approximately 3.5 lower in the amylase-administered diet than in the control group. Lourenco et al. (2020) detect no changes in FCR with the addition of protease in the feed.

Pancreatic enzyme activity did not show a significant difference after oral digestive enzyme administration, according to Ritz et al. (1995a, 1995b) and Ezati et al. (2023), who speculated that distinctions in the physical structure of intrinsic animal enzymes versus those of bacterial or plant sources could prevent inhibitory effects of pancreatic enzymatic activity. However, when chicks were fed a diet supplemented with exogenous amylase and protease, Mahagna et al. (1995) discovered reduced intestinal protease activity. Jiang et al. (2008) found that as exogenous amylase levels increased, pancreatic amylase production dropped by 9%–33%, indicating a detrimental pancreatic enzyme production response that resulted in no significant impact on FI by enzyme supplementation.

Contrary to these results, Liu et al. (2020) observed a reduction in FCR from 1 to 4th weeks of age with amylase supplementation in feed. While Aksaka and Bilal (2002) and Lan et al. (2002), broiler chicks fed an enzyme-supplemented diet exhibited an enhanced FCR due to their enhanced feed consumption. Mehmood et al. (2017) also explained that adding protease in broiler feed improved FCR. During the starter period, protease administration improved feed conversion (Odetallah et al., 2005). Furthermore, these findings corroborated with Bozkurt et al. (2006), who found that broiler-administered enzyme growth rate and FCR were equivalent to or better than those of broiler-fed conventional feed. A similar conclusion was reached by Kaczmerek et al. (2014), who found that adding amylase to chicken-fed finely ground maize improved FCR significantly, probably due to the increased digestion of starch in the upper gut. Amylase addition in the poultry diet boosted pancreatic amylase functions (Gracia et al., 2003).

There was a significant relationship between cereal verification and enzyme addition in FCR, with the enzyme mixture improving FCR by 4% in maize-based diets but not in wheat-based or sorghum diets (Liu et al., 2014). Weurding et al. (2003) found substantial changes in feed conversion in broiler birds fed either fast or slowly digested starch with enzyme addition, concluding that slowly digestible starch with enzyme improved FCR. Gracia et al. (2003) and Jiang et al. (2008) discovered that added amylase improved growth performance. Furthermore, when contrasted to 1,500 U/g α-amylase, 3,000 U/g α-amylase increased the FCR. Similarly, α-amylase from Bacillus subtilis did not affect performance, but α-1, 6-isoamylase from Bacillus appeared to raise the FCR of birds. Therefore, it is concluded that the result may vary with the source and type of the enzyme supplemented on the FCR.

Results indicated no statistically significant differences among treatments in carcass characteristics and organ weight of broiler. Results of live, carcass, thigh, organ, and abdominal fat%, breast weight, and wings weight were in line with other researchers who reported no significant effect of protease supplementation in broiler diet on the carcass, abdominal fat, and thigh, breast weight, and wing weight (Kamran et al., 2008; Rada et al., 2014). Similarly, Freitas et al. (2011) and Mehmood et al. (2017) reported no beneficial impact of protease addition in broiler diet on carcass yield, abdominal fat, and thigh, breast, and wing weight. Castro et al. (2019) detect no influence of amylase supplementation on carcass characteristics. Torres et al. (2003) and Bedford and Cowieson et al. (2012) found no variation in carcass characteristics when utilizing feed, including amylase. The findings of this study also correlate with those of Cardoso et al. (2011) and Fortes et al. (2012), who found no significant difference in carcass yield and broiler cuts at the end of the trial. According to Kermani et al. (2017), gelatin substitution of soybean meal protein in the diet by up to 22% did not influence carcass and breast meat yield as long as dietary amino acid balance was maintained in terms of protease effects. Amino acid availability is widely regarded as the primary determinant of carcass output.

In contrast with other findings, Rada et al. (2014) and Olfati et al. (2020) noted a significant impact of protease addition on carcass characteristics. Café et al. (2002) declared an increase in abdominal fat by supplementing amylase and protease into the diet. Govil et al. (2017) supplemented amylase into low-energy feed and noted a significant effect on overall carcass characteristics. Lower breast weight was observed when Lin et al. (2019) supplemented protease into the diet (Tougan et al., 2013). The dressing % of the broiler-fed diet with 0.1% Avizyme was much greater. Avizyme-supplemented diets resulted in a significantly increased abdominal fat percentage in the chicks. This finding shows that the azymes-supplemented diets provided the birds with additional energy. Increased calorie-protein or calorie-amino acid ratio typically increases carcass or abdominal fat (Café et al., 2002).

Correspondingly to the present study, Nastain et al. (2021) reported no significant effect of protease addition in the broiler on organ weight. Mehmood et al. (2017) also found no significant liver and heart weight improvement. Correspondingly, Rehman et al. (2017) reported that all organs, such as the heart, gizzard, liver, giblets, and spleen, were unaffected by the supplementation of distinct sources of protease. Onderci et al. (2006) reported that amylase addition in a broiler diet did not significantly affect liver weight. Gracia et al. (2003) also observed no significant improvement in all organ weight with amylase supplementation except pancreas weight. Córdova et al. (2020) supplemented amylase into a coarse corn-based diet, significantly improving liver weight. The supplementation of protease had no noticeable impact on the organ weight weights of the chicken (Ajayi et al., 2015).

Unlike other findings, Yuan et al. (2017) reported significant improvement in liver weight with amylase provision into the diet. Wheat-based feed resulted in the smallest gizzard size, likely due to the soft grain texture and insoluble fiber. The particle diameter scale (Symes, 1965) of the 3 grains was 6 in corn, 9 in millet, and 12 in wheat, with the most minor score in maize indicating the hardest texture and the highest value in the wheat indicating the softest texture.


Conclusion

This experiment was conducted to determine whether amylase, protease, and their combined supplementation affected broiler performance. Results concluded that amylase, protease, and their combined supplementation at 100 g/ton of feed did not affect BWG, FI, FCR, carcass characteristics, and organ weight.


Acknowledgments

The authors thank their respected universities and institutes for supporting this work.

Conflict of interest

The authors declare that there is no conflict of interest.

Funding

This work received no external funds.

Authors contributions

The authors equally contributed to this work.

Data availability

The study’s datasets are available upon reasonable request from the corresponding author.


References

Ajayi, O., Obadina, A., Idowu, M., Adegunwa, M., Kajihausa, O., Sanni, L., Asagbra, Y., Ashiru, B. and Tomlins, K. 2015. Effect of packaging materials on the chemical composition and microbiological quality of edible mushroom (Pleurotus ostreatus) grown on cassava peels. Food Sci. Nutr. 3(4), 284–291.

Aksaka, D.H. and Bilal, T. 2002. Effects of microbial phytase and 1, 2, 5 dihydroxycholecalciferols on the absorption of minerals from broiler chicken diets containing different levels of calcium. Indian. Vet. J. 79, 446–450.

Alabi, O.O., Shoyombo, A.J., Akpor, O.B., Oluba, O.M. and Adeyonu, A.G. 2019. Exogenous enzymes and the digestibility of nutrients by broilers: a mini review. Inter. J. Poult. Sci. 18, 404–409.

Amerah, A.M., Romero, L.F., Awati, A. and Ravindran, V. 2017. Effect of exogenous xylanase, amylase, and protease as single or combined activities on nutrient digestibility and growth performance of broilers fed corn/soy diets. Poult. Sci. 96, 807–816.

Angel, C.R., Saylor, W., Vieira, S.L. and Ward, N. 2011. Effects of a monocomponent protease on performance and protein utilization in 7-to 22-day-old broiler chickens. Poult. Sci. 90, 2281–2286.

Anwar, U., Riaz, M., Farooq Khalid, M., Mustafa, R., Farooq, U., Ashraf, M., Munir, H., Auon, M., Hussain, M., Hussain, M., Chisti, M.F.A., Bilal, M.Q., Rehman, A. and Rahman, M.A.U. 2023. Impact of exogenous xylanase and phytase, individually or in combination, on performance, digesta viscosity and carcass characteristics in broiler birds fed wheat-based diets. Animals 13(2), 278.

Barletta, A. 2010. Introduction: current market and expected developments. Enzymes in farm animal nutrition, 2nd ed. UK: CABI Publishing, pp: 1–11.

Bedford, M. and Cowieson, A.J. 2012. Exogenous enzymes and their effects on intestinal microbiology. Anim. Feed Sci. Technol. 173(1-2), 76–85.

Bedford, M.R. 2000. Exogenous enzymes in monogastric nutrition their current value and future benefits. Anim. Feed. Sci. Technol. 86, 1–13.

Bozkurt, M., Çabuk, M. and Alçiçek, A. 2006. The effect of microbial phytase in broiler grower diets containing low phosphorus, energy and protein. J. Poult. Sci. 43, 29–34.

Café, M.B., Borges, C.A., Fritts, C.A. and Waldroup, P.W. 2002. Avizyme improves performance of broilers fed corn-soybean meal-based diets. J. Appl. Poult. Res. 11(1), 29–33.

Cardoso, D.M., Maciel, M.P., Passos, D.P., Silva, F.V., Reis, S.T. and Aiura, F.S. 2011. Efeito do uso de complexo enzimático em rações para frangos de corte. Arch. Zootec. 60, 1053–1064.

Castro, S.D.F., Bertechini, A.G., Lima, E.M.C., Clemente, A.H.S., Ferreira, V.G.G. and Carvalho, J.C.C.D. 2019. Effect of different levels of supplementary alpha-amylase in finishing broilers. Acta. Scientiarum. Anim. Sci. 42, 1–9.

Chimote, M.J., Barmase, B.S., Raut, A.S., Dhok, A.P. and Kuralkar, S.V. 2009. Effect of supplementation of probiotics and enzymes on the performance of Japanese quails. Vet. World. 2, 219.

Choct, M., Sinlae, M., Al-Jassim, R.A.M. and Pettersson, D. 2006. Effects of xylanase supplementation on between-bird variation in energy metabolism and the number of Clostridium perfringens in broilers fed a wheat-based diet. Aust. J. Agric. Res. 57, 1017–1021.

Córdova-Noboa, H.A., Oviedo-Rondón, E.O., Ortiz, A., Matta, Y., Hoyos, S., Buitrago, G.D. and Cowieson, A.J. 2020. Corn drying temperature, particle size, and amylase supplementation influence growth performance, digestive tract development, and nutrient utilization of broilers. Poult. Sci. 99, 5681–5696.

Costa, F.G.P., Clementino, R.H., Jácome, I.M.T.D., do Nascimento, G.A.J. and Pereira, W.E. 2006. Utilização de um complexo multienzimático em dietas de frangos de corte. Ciênc. Anim. Bras. 5(2), 63–71.

Cowieson, A.J., Acamovic, T., Bedford, M.R. and Ravindran, V. 2017. Protease supplementation of poultry diets: a review. J. Anim. Sci. Biotechnol. 8(1), 24.

Cowieson, A.J., Lu, H., Ajuwon, K.M., Knap, I. and Adeola, O. 2016. Interactive effects of dietary protein source and exogenous protease on growth performance, immune competence and jejunal health of broiler chickens. Anim. Prod. Sci. 57(2), 252–261.

Dersjant-Li, Y., Davin, R., Christensen, T. and Kwakernaak, C. 2021. Effect of two phytases at two doses on performance and phytate degradation in broilers during 1–21 days of age. Plos One 16(3), e0247420.

Dosković, V., Bogosavljević-Bosković, S., Pavlovski, Z., Milošević, B., Škrbić, Z., Rakonjac, S. and Petričević, V. 2013. Enzymes in broiler diets with special reference to protease. World›s. Poult. Sci. J. 69, 343–360.

Duncan, D.B. 1955. Multiple range and multiple F-test. Biometrics 11, 1–42. 38.

Ezati, M., Ghavamipour, F., Adibi, H., Pouraghajan, K., Arab, S.S., Sajedi, R.H. and Khodarahmi, R. 2023. Design, synthesis, spectroscopic characterizations, antidiabetic, in silico and kinetic evaluation of novel curcumin-fused aldohexoses. Spectrochim. Acta. Part A.: Mol. Biomol. Spectrosc. 285, 121806.

Fortes, B.D.A., Cafe, M.B., Stringhini, J.H., Brito, J.Á.G.D., Rezende, P.L.D.P. and Silva, R.D. 2012. Avaliação de programas nutricionais com a utilização de carboidrases e fitase em rações de frangos de corte. [Evaluation of nutritional programs using carbohydrases and phytase in diets for broilers]. Brazil. Anim. Sci. 13(1), 24–32.

Freitas, D.M., Vieira, S.L., Angel, C.R., Favero, A. and Maiorka, A. 2011. Performance and nutrient utilization of broilers fed diets supplemented with a novel mono-component protease. J. Appl. Poult. Res. 20, 322–334.

Gehring, C.K., Bedford, M.R., Cowieson, A.J. and Dozier Iii, W.A. 2012. Effects of corn source on the relationship between in vitro assays and ileal nutrient digestibility. Poult. Sci. 91, 1908–1914.

Ghazi, S., Rooke, J.A. and Galbraith, H. 2003. Improvement of the nutritive value of soybean meal by protease and a-galactosidase treatment in broiler cockerels and broiler chicks. Br. Poult. sci. 44(3), 410–418.

Ghazi, S.R.O.O.K.E., Rooke, J.A., Galbraith, H. and Bedford, M.R. 2002. The potential for the improvement of the nutritive value of soya-bean meal by different proteases in broiler chicks and broiler cockerels. Br. Poult. Sci. 43, 70–77.

Gracia, M.I., Aranibar, M., Lazaro, R., Medel, P. and Mateos, G.G. 2003. Alpha-amylase supplementation of broiler diets based on corn. Poult. Sci. 82(3), 436–442.

Govil, K., Nayak, S., Baghel, R., Patil, A.K., Khare, A. and Malapure, C.D. 2017. Effect of amylase supplementation on performance of broiler chicken. J. Entomol. Zool. Stud. 5, 1208–1210.

Hashim, M., Gonzalez-Sanchez, D., Wealleans, A., Abdelkader, M., El-Safty, S.A.R. and Abdelhady, A.R.Y. 2023. Effects of different doses of multienzyme supplementation on growth performance, duodenal pH and morphology, and carcass traits in broilers fed diets with an increasing reduction in energy. Animals 13(14), 2378.

Huang, Z. 2014. Effects and mechanism of isoamylase additive on growth performance in broilers. J. Chinese. Cereals. Oils. Assoc. 35(6), 1–5.

Ibrahim, D., El-sayed, H.I., Mahmoud, E.R., El-Rahman, G.I.A., Bazeed, S.M., Abdelwarith, A.A., Elgamal, A., Khalil, S.S., Younis, E.M., Kishawy, A.T.Y., Davies, S.J. and Metwally, A.E. 2023. Impacts of solid-state fermented barley with fibrolytic exogenous enzymes on feed utilization, and antioxidant status of broiler chickens. Vet. Sci. 10(10), 594.

Iji, P.A., Khumalo, K., Slippers, S. and Gous, R.M. 2003. Intestinal function and body growth of broiler chickens on diets based on maize dried at different temperatures and supplemented with a microbial enzyme. Reprod. Nutr. Develop. 43(1), 77–90.

Jiang, Z., Zhou, Y., Lu, F., Han, Z. and Wang, T. 2008. Effects of different levels of supplementary alpha-amylase on digestive enzyme activities and pancreatic amylase mRNA expression of young broilers. Asian-Austr. J. Anim. Sci. 21(1), 97–102.

Kaczmarek, S.A., Rogiewicz, A., Mogielnicka, M., Rutkowski, A., Jones, R.O. and Slominski, B.A. 2014. The effect of protease, amylase, and nonstarch polysaccharide-degrading enzyme supplementation on nutrient utilization and growth performance of broiler chickens fed corn-soybean meal-based diets. Poult. Sci. 93(7), 1745–1753.

Kamran, Z., Sarwar, M., Nisa, M., Nadeem, M.A., Mahmood, S., Babar, M.E. and Ahmed, S. 2008. Effect of low-protein diets having constant energy-to-protein ratio on performance and carcass characteristics of broiler chickens from one to thirty-five days of age. Poult. Sci. 87(3), 468–474.

Kermani, Z.A., Shahir, M.H. and Baradaran, N. 2017. Effect of gelatin supplementation on growth performance and blood metabolites of broiler chickens fed diets varying in crude protein. Livest. Sci. 201, 5–12.

Kiarie, E., Romero, L.F. and Ravindran, V. 2014. Growth performance, nutrient utilization, and digesta characteristics in broiler chickens fed corn or wheat diets without or with supplemental xylanase. Poult. Sci. 93(5), 1186–1196.

Lan, G.Q., Abdullah, N., Jalaludin, S. and Ho, Y.W. 2002. Efficacy of supplementation of a phytase-producing bacterial culture on the performance and nutrient use of broiler chickens fed corn-soybean meal diets. Poult. Sci. 81(10), 1522–1532.

Law, F.L., Zulkifli, I., Soleimani, A.F., Liang, J.B. and Awad, E.A. 2018. The effects of low-protein diets and protease supplementation on broiler chickens in a hot and humid tropical environment. Asian-Austr. J. Anim. Sci. 31(8), 1291–1298.

Lin Law, F., Idrus, Z., Soleimani Farjam, A., Juan Boo, L. and Awad, E. A. 2019. Effects of protease supplementation of low protein and/or energy diets on growth performance and blood parameters in broiler chickens under heat stress condition. Italian. J. Anim. Sci. 18(1), 679–689.

Liu, S.Y., Cadogan, D.J., Péron, A., Truong, H.H. and Selle, P.H. 2014. A combination of xylanase, amylase and protease influences growth performance, nutrient utilisation, starch and protein digestive dynamics in broiler chickens offered maize-, sorghum-and wheat-based diets. Anim. Prod. Sci. 55(10), 1255–1263.

Liu, H., Sorbara, J.O.B., Cowieson, A.J., Romero, L.F., Wang, S.K., Wu, J.L. and Kluenter, A.M. 2020. Exogenous α-amylase supplementation reduces the variability of ileal digestible energy in broiler chickens fed complete diets with maize batches of variable protein solubility. Anim. Feed. Sci. Technol. 268, 114610.

Lourenco, J.M., Nunn, S.C., Lee, E., Dove, C.R., Callaway, T.R. and Azain, M.J. 2020. Effect of supplemental protease on growth performance and excreta microbiome of broiler chicks. Microorganisms 8(4), 475

Mahagna, M., Nir, I., Larbier, M. and Nitsan, Z. 1995. Effect of age and exogenous amylase and protease on development of the digestive tract, pancreatic enzyme activities and digestibility of nutrients in young meat-type chicks. Reprod. Nutr. Develop. 35(2), 201–212.

Mehmood, S., Hussain, J., Javed, I. and Ahmad, S. 2017. Effect of protease enzyme supplementation on growth performance and nutrient digestibility of broilers fed starter and finisher diets. Pak. J. Zool. 49(4), 1299–1304.

Mahmood, T., Mirza, M.A., Nawaz, H. and Shahid, M. 2017. Effect of different exogenous proteases on growth performance, nutrient digestibility, and carcass response in broiler chickens fed poultry by-product meal-based diets. Livest. Sci. 200, 71–75.

Nastain, F.S., Mahardhika, B.P., Ridla, M. and Mutia, R. 2021. Visceral organ weight of broiler chicken fed different level protein and protease enzyme supplementation diet. IOP Conf. Ser.: Earth. Environ. Sci. 788(1), 012032.

Odetallah, N.H., Wang, J.J., Garlich, J.D. and Shih, J.C.H. 2005. Versazyme supplementation of broiler diets improves market growth performance. Poult. Sci. 84(6), 858–864.

Oko, O.O.K., Henry, A.J., Ozung, P.O. and Agbiji, B.Y. 2018. Effect of different levels of Xylanase-Amylase-Protease® (XAP) enzyme supplementation in acha fed broiler chickens. Inter. J. Poult. Sci. 17(4), 181–187.

Olfati, Z., Shariatmadari, F., Torshizi, M.K., Ahmadi, H., Sharafi, M. and Bedford, M.R. 2020. Effects of partial replacement of soybean meal in broiler diets with gelatin and mono-component protease on growth performance, carcass and blood biochemical characteristics, lipid oxidation of meat, and economics. Anim. Prod. Sci. 61(2), 146–155.

Onderci, M., Sahin, N., Sahin, K., Cikim, G., Aydin, A., Ozercan, I. and Aydin, S. 2006. Efficacy of supplementation of α-amylase-producing bacterial culture on the performance, nutrient use, and gut morphology of broiler chickens fed a corn-based diet. Poult. Sci. 85(3), 505–510.

Perz, K., Kaczmarek, S.A., Nowaczewski, S., Cowieson, A.J., Ciszewski, A. and Hejdysz, M. 2023. The effect of reduction of resistant starch content of faba bean and pea by amylase supplementation on performance, nutrient digestibility, and sialic acid excretion of broiler chickens. Anim. Feed. Sci. Technol. 298, 115621.

Rada, V., Lichovnikova, M. and Foltyn, M. 2014. The effect of serine protease on broiler growth and carcass quality. Acta. Fytotech. Zootech. 17(3), 87–89.

Rehman, Z.U., Kamran, J., Abd El-Hack, M.E., Alagawany, M., Bhatti, S.A., Ahmad, G. and Ding, C. 2017. Influence of low-protein and low-amino acid diets with different sources of protease on performance, carcasses and nitrogen retention of broiler chickens. Anim. Prod. Sci. 58(9), 1625–1631.

Ritz, C.W., Fairchild, B.D., Lacy, M.P. and Litterly, P.K. 1995a. Effects of supplemental amylase or xylanase on performance and nutrient utilization of broilers fed corn-soy diets. Poult. Sci. 74(11), 1759–1765.

Ritz, C.W., Hulet, R.M., Self, B.B. and Denbow, D.M. 1995b. Endogenous amylase levels and response to supplemental feed enzymes in male turkeys from hatch to eight weeks of age. Poult. Sci. 74(8), 1317–1322.

Shapiro, F. and Nir, I. 1995. Stunting syndrome in broilers: effect of age and exogenous amylase and protease on performance, development of the digestive tract, digestive enzyme activity, and apparent digestibility. Poult. Sci. 74(12), 2019–2028.

Sharma, S., Pradhan, R., Manickavasagan, A., Thimmanagari, M. and Dutta, A. 2022. Corn distillers solubles as a novel bioresource of bioactive peptides with ACE and DPP IV inhibition activity: characterization, in silico evaluation, and molecular docking. Food. Funct. 13(15), 8179–8203.

Slominski, B.A., Meng, X., Jia, W., Guenter, W. and Jones, O. The effect of lipase, amylase and protease addition on growth performance and nutrient digestion in young broiler chickens. In 12th European Poultry Conference, Verona, Italy, 2006, pp 10–14.

Sorbara, J.O.B., Murakami, A.E., Nakage, E.S., Piracés, F., Potença, A. and Guerra, R.L.H. 2009. Enzymatic programs for broilers. Braz. Arch. Biol. Technol. 52, 233–240.

Sorbara, M.T. and Pamer, E.G. 2019. Interbacterial mechanisms of colonization resistance and the strategies pathogens use to overcome them. Mucosal Immunol. 12(1), 1–9.

SPSS. 2019. SPSS Statistics for Windows, Version 26.0. Chicago, IL: SPSS Inc.

Stefanello, C., Vieira, S.L., Rios, H.V., Simões, C.T., Ferzola, P.H., Sorbara, J.O.B. and Cowieson, A.J. 2017. Effects of energy, α-amylase, and β-xylanase on growth performance of broiler chickens. Anim. Feed. Sci. Technol. 225, 205–212.

Svihus, B. 2014. Function of the digestive system. J. Appl. Poult. Res. 23(2), 306–314.

Symes, 1965. The inheritance of grain hardness in wheat as measured by particle size index. Aust. J. Agric. Res. 16, 113.

Torres, R., Mateo, C., Fernández-Lorente, G., Ortiz, C., Fuentes, M., Palomo, J.M., Guisan, J.M. and Fernández-Lafuente, R. 2003. A novel heterofunctional epoxy-amino sepabeads for a new enzyme immobilization protocol: immobilization-stabilization of beta-galactosidase from Aspergillus oryzae. Biotechnol. Prog. 19(3), 1056–1060.

Tougan, U., Dahouda, M., Salifou, C.F.A., Ahounou, S.G., Kpodekon, M.T., Mensah, G.A. and Youssao, I.A.K. 2013. Variability of carcass traits of local poultry populations of Gallus species of Benin. Inter. J. Poult. Sci. 12(8), 473–478.

Wang, Y., Wang, Y., Lin, X., Gou, Z., Fan, Q., Ye, J. and Jiang, S. 2020. Potential effects of acidifier and amylase as substitutes for antibiotic on the growth performance, nutrient digestion and gut microbiota in yellow-feathered broilers. Animals 10(10), 1858.

Weurding, R.E., Enting, H. and Verstegen, M.W. 2003. The relation between starch digestion rate and amino acid level for broiler chickens. Poult. Sci. 82(2), 279–284.

Yin, D., Yin, X., Wang, X., Lei, Z., Wang, M., Guo, Y. and Yuan, J. 2018. Supplementation of amylase combined with glucoamylase or protease changes intestinal microbiota diversity and benefits for broilers fed a diet of newly harvested corn. J. Anim. Sci. Biotechnol. 9(1), 1–13.

Yu, B. and Chung, T.K. 2004. Effects of multiple-enzyme mixtures on growth performance of broilers fed corn-soybean meal diets. J. Appl. Poult. Res. 13(2), 178–182.

Yuan, J., Li, X., Wang, L., Sun, Y. and Gao, F. 2017. Effects of dietary amylase on performance, digestive enzyme activities, and pancreatic amylase and trypsin gene expression of broilers. Poult. Sci. 96(2), 322–328.

Yuan, L., Wang, S.Q., Wang, Z.X., Zhu, H. and Huang, K. 2015. Effects of exogenous protease supplementation on endogenous trypsin activity and gene expression in broilers. Gen. Mol. Res. 14(4), 13633–13641.

Yuan, W., Gong, Z., Wang, G., Zhou, W., Liu, Y., Wang, X. and Zhao, M. 2018. Alkaline organosolv pretreatment of corn stover for enhancing the enzymatic digestibility. Biores. Technol. 265, 464–470.



How to Cite this Article
Pubmed Style

Radhi KS, Arif M, Rehman Au, Faizan M, Almohmadi NH, Youssef IM, Swelum AA, Suliman GM, Tharwat M, Ebrahim A, El-Hack MEA, Mahrose KM. Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Vet J. 2023; 13(11): 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5


Web Style

Radhi KS, Arif M, Rehman Au, Faizan M, Almohmadi NH, Youssef IM, Swelum AA, Suliman GM, Tharwat M, Ebrahim A, El-Hack MEA, Mahrose KM. Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. https://www.openveterinaryjournal.com/?mno=166099 [Access: May 12, 2024]. doi:10.5455/OVJ.2023.v13.i11.5


AMA (American Medical Association) Style

Radhi KS, Arif M, Rehman Au, Faizan M, Almohmadi NH, Youssef IM, Swelum AA, Suliman GM, Tharwat M, Ebrahim A, El-Hack MEA, Mahrose KM. Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Vet J. 2023; 13(11): 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5



Vancouver/ICMJE Style

Radhi KS, Arif M, Rehman Au, Faizan M, Almohmadi NH, Youssef IM, Swelum AA, Suliman GM, Tharwat M, Ebrahim A, El-Hack MEA, Mahrose KM. Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Vet J. (2023), [cited May 12, 2024]; 13(11): 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5



Harvard Style

Radhi, K. S., Arif, . M., Rehman, . A. u., Faizan, . M., Almohmadi, . N. H., Youssef, . I. M., Swelum, . A. A., Suliman, . G. M., Tharwat, . M., Ebrahim, . A., El-Hack, . M. E. A. & Mahrose, . K. M. (2023) Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Vet J, 13 (11), 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5



Turabian Style

Radhi, Khadija S., Muhammad Arif, Abd ur Rehman, Muhammad Faizan, Najlaa H. Almohmadi, Islam M. Youssef, Ayman A. Swelum, Gamaleldin M. Suliman, Mohamed Tharwat, Alia Ebrahim, Mohamed E. Abd El-Hack, and Khalid M. Mahrose. 2023. Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Veterinary Journal, 13 (11), 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5



Chicago Style

Radhi, Khadija S., Muhammad Arif, Abd ur Rehman, Muhammad Faizan, Najlaa H. Almohmadi, Islam M. Youssef, Ayman A. Swelum, Gamaleldin M. Suliman, Mohamed Tharwat, Alia Ebrahim, Mohamed E. Abd El-Hack, and Khalid M. Mahrose. "Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined." Open Veterinary Journal 13 (2023), 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5



MLA (The Modern Language Association) Style

Radhi, Khadija S., Muhammad Arif, Abd ur Rehman, Muhammad Faizan, Najlaa H. Almohmadi, Islam M. Youssef, Ayman A. Swelum, Gamaleldin M. Suliman, Mohamed Tharwat, Alia Ebrahim, Mohamed E. Abd El-Hack, and Khalid M. Mahrose. "Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined." Open Veterinary Journal 13.11 (2023), 1425-1435. Print. doi:10.5455/OVJ.2023.v13.i11.5



APA (American Psychological Association) Style

Radhi, K. S., Arif, . M., Rehman, . A. u., Faizan, . M., Almohmadi, . N. H., Youssef, . I. M., Swelum, . A. A., Suliman, . G. M., Tharwat, . M., Ebrahim, . A., El-Hack, . M. E. A. & Mahrose, . K. M. (2023) Growth performance of broiler chickens fed diets supplemented with amylase and protease enzymes individually or combined. Open Veterinary Journal, 13 (11), 1425-1435. doi:10.5455/OVJ.2023.v13.i11.5