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Biotechnology Of Food And Feed Additives Pdf

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Algae are by far the most abundant primary producers, although some can be mixotrophic or heterotrophic. In biological sense, the term algae implies more divisions of lower plants which contain chlorophyll in cells and are typical inhabitants of aquatic biotopes, although they are quite widespread outside the aquatic environment Blazencic, , and on the basis of dimensions they are divided into macroalgae macroscopic algae and microalgae microscopic algae. A special group of microalgae are blue-green algae, also called cyanobacteria because of their prokaryotic cell type, identified as one of the most promising group of organisms for the isolation of novel and biochemically active natural products Singh et al. Algae are cultivated and used in nutrition worldwide.

Food & Feed Research

Shortage of animal feed in most developing countries and the increasing cost of feed ingredients mean that there is a need to improve feed utilization. However, there are beginnings of using biotechnology in animal production particularly animal nutrition these days. The advances of biotechnology in recent years allowed the use of non-toxic fungi to improve fibrous feeds like straw or poor quality roughages.

In particular, the white rot fungi have been used because of their ability to delignify the plant material. In addition to antibiotics, a wide variety of feed additives, are known to modify rumen fermentation. They include components that can reduce methanogenesis, enhance propionic acid production, reduce protein degradation, improve microbial protein synthesis and inhibit protozoa. Among such additives are antibiotics, microbes, and specific substrates like oligosaccharides.

In addition, effective enzyme preparations can now be produced in large quantities and relatively inexpensively. Therefore, supplementation of the diet as a means of improving nutritive value is becoming commonplace. The ultimate goal of using biotechnology in animal nutrition is to improve the plane of nutrition through increasing availability of nutrients from feed and to reduce the wastage of the feed.

Their potential in developing countries is less than in developed countries, mainly because the successful application usually requires better feed quality and management. Keywords: biotechnology, defaunation, forage, feed additives. DOI: Demand for livestock products is increasing because of the increasing human population, growth in income and urbanization [ 1 ] in these parts of the globe.

For example, total meat production in the developing world tripled between and , from 45 to million tons. Demand for meat will grow only 0. Most food of animal origin consumed in developing countries is currently supplied by small-scale, often mixed crop-livestock family farms or by pastoral livestock keepers [ 2 ].

Hence, productivity of animals in developing countries will need to be substantially increased in order to satisfy increasing consumer demand, to more efficiently utilize scarce resources and to generate income for a growing agricultural population [ 2 ].

Conventional methods of livestock improvement have been used in the past served the purpose of increasing livestock productivity. However, these options can no longer sustain production; consequently new intensive techniques including biotechnology are now required to augment productivity.

Modern biotechnology has the potential to provide new opportunities for achieving enhanced livestock productivity in a way that alleviates poverty, improves food security and nutrition and promotes sustainable use of natural resources [ 3 ].

This paper reviewed the common application of biotechnology in animal nutrition and feeding, limitations and future implications. Fibrous feeds of low digestibility comprise the major proportion of feeds accessible to most ruminants under smallholder situations in developing countries [ 4 ].

It is well known that some micro-organisms, including cellulose enzymes from anaerobic bacteria and white rot fungi Pleurotus ostreatus can degrade lignin in the cell walls.

Several fungal strains have been used for lignocellulosic hydrolysis such as Asprigullus niger, A. However, among many species of fungi white rot fungi have been reported to be suitable for treatment of roughages so far.

As in [ 6 ] , the white rot fungi have the capacity to attack lignin polymers, open aromatic rings and release low molecular weight fragments. Significant results were reported in [ 7 ] for CP of maize cob treated with fungi species Pleurotus pulmonarius and Pleurotus sajor - caju. It must be remembered, however, that whatever organism is grown on the roughage must obtain its energy from the roughage itself [ 3 ]. In general, the organisms that suit for this purpose must have a number of special properties.

They must be capable to grow on a wide range of carbon sources, have high growth rates to minimize the size of the fermentation system and have a high efficiency in converting of substrate to biomass with high protein content. Another indirect approach to the enhancement of fiber digestion in ruminants is through modification of silage inoculants.

In silages containing low carbohydrate contents, inclusion of amylase, cellulase or hemicellulase enzymes has been shown to increase lactic acid production by releasing sugars for growth of lactobacilli. As in [ 8 ] , recombinant Lactobacillus plantarum , a species used as silage starter, were constructed to express alphaamylase, and cellulase or xylanase genes. The competitive growth and survival of such modified lactobacilli in silage has been reported by other workers [ 9 ] , although the impact on silage digestibility has not been studied.

Genetically engineered forage crops, with a range of potential benefits for production, the environment and human health, have been developed [ 10 ]. Genetically engineered forage crops are genetically modified using recombinant DNA technology with the objective of introducing or enhancing a desirable characteristic in the plant or seed.

These transgenic forage crops are aimed at offering a range of benefits to consumers, as well as developers and producers. Products to be consumed by humans, derived from animals fed on transgenic forage crops, are not themselves transgenic.

Thus food products derived from animals fed on transgenic forage crops offering human health benefits may receive different levels of support from the public than the currently available set of transgenic food crops [ 10 ]. It is known that forage legumes are comparatively low in sulphur-containing amino acids and their availability to ruminants is further adversely affected during rumen digestion [ 11 ].

This leads to the reduction of the optimum for animal growth level of essential amino acids. Plant genetic modification with genes encoding for a sulphur amino acid-rich proteins, resistant to rapid rumen degradation can compensate this deficiency. Agronomic researchers around the globe are currently using recombinant DNA technology to create new and altered species of plants.

As in [ 3 ] plants in order to survive insect, fungal and bacterial attack have developed secondary compounds which detract from these organisms colonizing the leaf tissues. In another study, researchers at the Noble Foundation have been successful in manipulating lignin composition and levels in alfalfa and other forages to improve their digestibility and the conversion of biomass to biofuels.

Some shrubs and trees respond to leaf damage as occurs by grazing and produce greater quantities of secondary compounds which often make them inedible.

Anti-nutritive factors in plant tissues include protease inhibitors, tannins, phytohaemagglutinins and cyanogens in legumes, and glucosinolates, tannins and sanapine in oilseed rape Brassica napus and other compounds in feeds belonging to the Brassica group. Studies [ 12 ] showed that the inclusion of genetically modified feed ingredients in dairy cow diets did not affect feed intake or milk production. These crops are being engineered with substantial changes in their content of major components e.

As these improved feed crops are designed and intended to be different from non-biotech varieties, they are not expected to be substantially equivalent. Feed additives are materials that are administered to the animal to enhance the effectiveness of nutrients and exert their effects in the gut [ 13 ].

Feed additives include antibiotic, enzymes propbiotics and prebiotics [ 14 ]. Antibiotics are antimicrobial pharmaceutical, usually of plant or fungal origin and are also synthesized in the laboratory [ 13 ].

Although the primary use of antibiotics is in the treatment of infections, certain antibiotics are used as feed additives in order to improve growth and feed conversion efficiency. Among antibiotic groups are ionophores [ 14 ] which are ion-bearing compounds, which surrounds cations so that the hydrophilic ion can be shuttled across hydrophobic cellular membranes to defeat the normal concentration gradient essential in living cells [ 13 ]. Ionophores display diverse structures and profiles of cation selectivity.

For example, valinomycin is a cyclic peptide which binds potassium, while monensin is a carboxylic ionophore which displays a binding preference for sodium. Both can act as antibiotics. Ionophores are used in ruminant animals like cattle to improve feed efficiency by shifting rumen fermentation towards the production of more propionic acid, which can be used by the animal and less methane, which is lost.

Ionophores hereby change the pattern of rumen microorganisms, reducing the production of acetate, butyrate and methane, and increasing the proportion of propionate [ 14 , 15 ]. Since methane is a waste product, the efficiency of rumen activity is improved. Ionophores also reduce the total mass of bacteria and thereby decrease the amount of dietary protein degraded.

Avilomycin is licensed for use in pigs, broiler chickens and turkeys. Salinomycin is an ionophore available for use in pigs and also used to prevent coccidiosis in broiler chickens [ 13 ].

As indicated in [ 15 ] , ionophores have general metabolic role within the animal through improving production efficiency by providing a competitive advantage for certain microbes at the expense of others.

In general, the metabolism of the selected microorganisms favors the host animal. In another report, broilers receiving the diet supplemented with antibiotic had significantly lower total aerobic bacterial counts in the small intestines compared to those on the other dietary treatments [ 16 ]. The combined supplementation of the antibiotic and enzyme resulted in a significantly lower E.

As a result of advances in biotechnology, more effective enzyme preparations can now be produced in large quantities and relatively inexpensively [ 14 ]. The enzymes used as food additives act in a number of ways. According to studies [ 13 ] , enzymes are mainly used in the diets of non-ruminants but are also added to ruminant diets.

Their main purpose is to improve the nutritive value of diets, especially when poor-quality, and usually less expensive, ingredients are incorporated.

Common example of enzymes is use of phytase feed enzyme in monogastric diets. Phytase feed enzymes have more general application as their substrate is invariably present in pig and poultry diets and their dietary inclusion economically generates bio-available phosphorous and reduces the phosphorous load on the environment. The prohibition of protein meals of animal origin, which also provide phosphorous, has accelerated the acceptance of phytase feed enzymes in certain countries [ 13 ].

Amino acid digestibility may also be improved with phytase supplementation. In a study with finishing pigs, as in [ 17 ] , the digestibility of all amino acids except proline and glycine increased linearly as phytase supplementation increased. In ruminant nutrition, enzymes improve the availability of plant storage polysaccharides e. Thus, cellulases can be used to break down cellulose, which is not degraded by endogenous mammalian enzymes.

Enzymes are essential for the breakdown of cell-wall carbohydrates to release the sugars necessary for the growth of the lactic acid bacteria. Supplementation of a wheat by-product diet with cellulase increased the ileal digestibility of non-starch polysaccharides from 0. Probiotics are feed supplements that are added to the diet of farm animals to improve intestinal microbial balance [ 13 ].

In contrast to the use of antibiotics as nutritional modifiers, which destroy bacteria, the inclusion of probiotics in foods is designed to encourage certain strains of bacteria in the gut at the expense of less desirable ones [ 14 ].

Besides, these microorganisms are responsible for production of vitamins of the B complex and digestive enzymes, and for stimulation of intestinal mucosa immunity, increasing protection against toxins produced by pathogenic microorganisms. In ruminants, they are more effective in controlling the diseases of the gastrointestinal tract of young animals, as there is no complication of the rumenmicro-flora. When milk feeding commences, the lactobacilli become the predominant bacteria present.

Calf probiotics contain benign lactobacilli or streptococci and are likely to be valuable only when given to calves that have suffered stress or have been treated with antibiotics that have destroyed the natural microflora [ 13 ]. Addition of probiotics to the diet produces variable benefit, depending on whether the animals are in poor health. It is also difficult to determine which bacterial species would be beneficial in any given circumstance. Probiotics have sometimes been found to be beneficial in protecting pigs from infectious diseases.

Lactic acid bacteria isolated from the gastrointestinal tract of pigs, such as Enterococcus faecium and L. Dry yeast Saccharomyces cerevisiae has the advantage over bacterial probiotics that it is more tolerant of extreme pH and environmental conditions. Probiotic use is subject to extensive legislation designed to protect farm animals and consumers.

In adult ruminants yeasts may be used as probiotics to improverumen fermentation [ 13 ]. The most common prebiotics are oligosaccharides, which are non-digestible carbohydrates. Protozoa, unlike bacteria, are not vital for the development and survival of the ruminant host, and their elimination defaunation , although producing a less stable rumen environment, has been found to reduce gaseous carbon and nitrogen losses [ 13 ].

It has been established that ruminants can survive with or without these organisms; however, manipulating their population may affect protein metabolism in the rumen [ 18 ].

The control of the rumen protozoal population by inhibition compounds would seem attractive because their eukaryotic cell nature would allow them to be susceptible to a number of compounds that would have little or no effect on the prokaryotic bacterial cells [ 14 ].

Biotechnology of Food and Feed Additives

Genetically modified foods GM foods , also known as genetically engineered foods GE foods , or bioengineered foods are foods produced from organisms that have had changes introduced into their DNA using the methods of genetic engineering. Genetic engineering techniques allow for the introduction of new traits as well as greater control over traits when compared to previous methods, such as selective breeding and mutation breeding. Commercial sale of genetically modified foods began in , when Calgene first marketed its unsuccessful Flavr Savr delayed-ripening tomato. Genetically modified crops have been engineered for resistance to pathogens and herbicides and for better nutrient profiles. GM livestock have been developed, although, as of [update] , none were on the market.

biotechnology of food and feed additives pdf

Science and Education Publishing

Animal Feed Science and Technology

Official websites use. Share sensitive information only on official, secure websites. The Federal government has a coordinated, risk-based system to ensure that new biotechnology products are safe for the environment and human and animal health. Established as a formal policy in , the Coordinated Framework for Regulation of Biotechnology PDF, KB describes the Federal system for evaluating products developed using modern biotechnology. The Coordinated Framework is based upon existing laws designed to protect public health and the environment.

Michael C. Falk, Bruce M. Chassy, Susan K. Harlander, Thomas J.

It seems that you're in Germany. We have a dedicated site for Germany. This book review series presents current trends in modern biotechnology.

 - Что происходит. Беккер не удостоил его ответом. - На самом деле я его не продала, - сказала Росио.  - Хотела это сделать, но она совсем еще ребенок, да и денег у нее не. Вот я его и отдала.

Двухцветный посмотрел на часы Беккера. Его лицо казалось растерянным. - Обычно я напиваюсь только к четырем! - Он опять засмеялся.

The Application of Biotechnology on Livestock Feed Improvement

Беккер кивнул. Он, конечно, видел старинную мавританскую башню, но взбираться на нее не .


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