Showing posts with label Biotechnology. Show all posts
Showing posts with label Biotechnology. Show all posts

Tuesday, October 23, 2012

Biotechnology Courses And Career Scope In India

The students who wish to do post graduate courses must have graduate or ( BDS / B. Pharma Medical Science / Biology / Clinical Microbiology / Microbiology / Biotechnology / Bioinformatics / Nursing Medical Laboratory / Technology or Equivalent ) from recognized university. There are a lot of institutions which offering biotechnology undergraduates and post graduates courses ( its duration is two years and is divided into four semesters ). A biotechnology course are combination of technology and biology and includes subjects like Biostatistics, Plant Biotechnology, Enzymology, Metabolism, Genetics, Cell Biology, Rational Biochemistry, Microbiology, Molecular Biology, Genetic Engineering, Immunology, Molecular Biophysics and Bioinformatics, well-balanced with relevant laboratory programs.

Biotechnology is a new science called brainy bioscience which would front to a malady free, gleeful and more astute human habitat with longevity and high human capabilities, and offers an supreme learning opportunities and get trained the students in the respective field with theoretical and practical understanding of contemporary biology and biotechnology. It also provides employment opportunities in research, marketing and production in the fields like medicine and healthcare, animal husbandry, agriculture and environment industry.

Biotechnology combines the molecular biology and agenetic to create improved agricultural products, food animal feed, industrial materials and medicines. The following are the factors that are responsible for increasing career scope for biotechnologists. The recent studies have revealed that India has about 7. 6 % of total mammal species, 12. 6 % of bird species, 11 % of fish and approximately 6 % of the total flowering plants of the world. India has a good biotech market due to its high population rate. In next few years the consumption of the biotech products is expected to be increasing by four times of the present. The human needs and animal care market is studied to be growing by at least 20 %. The biotechnologists have a great scope in the research laboratories, pharmaceutical companies, and agricultural, chemical and allied industries.

Biotechnology courses are research & development based subject in health and medicine, agriculture and animal husbandry, cell biology, ecology, soil conservation science, physiology of plants, biostatistics and other related fields of operation. There are good career opportunities in the field of Biotechnology students could be placed as scientist in the areas of Human health, pharma, animal health, animal husbandry, dairy, chemical and biochemical, food processing, crime and parentage disputes, agriculture, forestry & fisheries. A biotechnology course includes a Biochemistry, Genetics, Microbiology, Chemistry, Virology, Immunology and Engineering.

Monday, October 22, 2012

Biotechnology in Conservation of Agricultural Environment

Biotechnology in Conservation of Agricultural Environment

K. Sarala, Senior Scientist ( Biotechnology ) Central Tobacco Research Institute, Rajahmundry - 533 105, A. P.

Increase in crop yield in agriculture in 1960s, in India, was mainly due to introduction of new high nonresistant varieties. This has necessitated fervent use of agro - chemicals ( mineral fertilizers and pesticides ). However, the increase in agri - inputs was not instantly proportional to the yields realized. During 1946 - 1965, the chemical ( fertilizers and pesticides ) input consumption was 87. 0 Million Metric Tonnes ( MMT ) and food production 90 MMT; where as in 1998 - 2001, chemical input consumption was 1000 MMT and food production 220 MMT. Whence, when compared to 1946 - 1965, a 12 fold increase of chemical fertilizer consumption resulted in one 2. 5 fold increase of food production. These figures indicate that for each unit of further food produced higher amount of chemical inputs were utilized ( Alvares, 1999; http: / indiabudget. nic. in; www. photius. com ). The fresh inputs especially inorganic fertilizers, pesticides and weedicides have led to environmental problems. Progressive mechanization and mono - culture are other features that were higher to Indian agriculture scenario ensuing green revolution.

As a consequence of excessive agriculture natural resources were depleted, soils mislaid their natural fertility, soil microflora affected adversely, soil erosion increased and snappy and frequent apparition of new pests and diseases occurred. Exorbitant use of fertilizers also bad soil health and adversely diverse nutrient dynamics in the soil. Arbitrary and injudicious use of pesticides contaminated the surrounding ambience, killed beneficial insects, soil micro flora and fauna and contaminated ground water. In addition to pest resurgence and new biotype / pest development minor pests became sizable pests and pests developed resistance to repeatedly used pesticides. All these things regard the environmental statement. The present paper deals with applications of Biotechnology in alleviating these affects.

Plant Biotechnology

Plant biotechnology is a revolutionary new field that harnesses the knowledge gained over more than half a century of basic plant research to the account of man amiable. Agriculture is immediate rumination huge benefits from improved crops developed through biotechnology, which shows remarkable resistance to insect damage, distinctly bad off dependence on herbicides, improved yield levels, higher photochemicals etc.

Agricultural biotechnology helps to cool the ultra ill effects of intensified agriculture through the development of bio - fertilizers, bio - pesticides, and malady and pest resistant varieties, and genotypes with higher water and nutrient use efficiency. All these aspects are discussed below.

Biofertilisers

Some alternatives to the use of mineral fertilizers are green manures, composts and bioearths, earth worm manure, crop and agro industrial residues and biofertilizers.

The native soils harbor microorganisms like bacteria, actinomycetes, fungi, algae, protozoa etc. These microorganisms enrich the nutrient quality of soil. Plants have a numeral of relationships with these fungi, bacteria, and algae. Few of the useful microorganisms can be produced in the pattern of Bio - fertilizers and augmented to the soil for profitable the soil fertility and plant nutrient uptake.

Bio - fertilizers are the preparations containing live or latent cells of efficient strains of nitrogen fixing, phosphate solubilizing or cellulolyotic micro - organisms used for application to seed or composting areas with the uninvolved of increasing the numbers of related micro - organisms and accelerating those microbial processes which augment the availability of nutrients that can be feeble assimilated by plants ( Ghosh, 2003 ). Some of the microorganisms being used as biofertilisers and their uses are addicted in Eatable 1. Feed 1. Biofertilizers and their utilities S. No. Bio - fertilizerutility 1. RhizobiumFix atmospheric nitrogen in cooperative association with legume plants forming nodules in roots ( stem nodules in Sesabaniam rostrata ) 2. AzotobacterBeneficial to cereals, millets, vegetables, cotton and sugarcane. It is free living and non - pragmatic nitrogen fixing formation produces certain substances good for the growth of plants and antibodies that suppress many root pathogens 3. AzospirillumNitrogen - fixing microorganisms beneficial for non - leguminous plants also produce growth promoting substances. 4. Downcast Green Algae ( BGA ) Photosynthetic nitrogen fixers and are free living. Launch in abundance in India. Add growth - promoting substances including vitamin B12, improve the soil ' s aeration and water yield capacity and add to biomass when decomposed adjacent life circumgyration. 5. AzollaAn aquatic fern settle in small and shallow water society and in rice fields. It has convenient relation with BGA and can help rice or other crops through dual cropping or green manuring of soil. 6. Phosphate Solubilizing Bacteria ( PSB ) The PSB are life forms that can help in essential phosphate uptake of plants in different ways. The PSB also has the potential to make utilization of India ' s abundant deposits of rock phosphates possible, much of which is not enriched

In India, total Biofertilizer production capacity of public and private sector units is 18200 tonnes and total estimated Biofertilizer production is 10, 000 tones during 2006 - 07. The Biofertilizer demand for the year2011 has been estimated at 30, 000 tonnes by a recent expert committee constituted by the Ministry of Chemicals and Fertilizers. This clearly indicated that there is a large scope of biofertilisers industry in India.

Integrating biologicals in pest management

The adverse affects caused by excess use of pesticides can be reduced by following integrated pest management ( IPM ) approach i. e. integrating chemicals with biologicals in the pest management. This approach not only reduces the crop losses due to pests but also make agriculture more sustainable. Botanical pesticides and biocontrol agents offer immense scope in IPM

Biopesticides

Biopesticides are biorational and help to create Natural epizootics. They are inherently less harmful than conventional pesticides. They suppress, rather than eliminate, a pest population. Biopesticides are effective and often quickly biodegradable, present no residue problems and mostly self perpetuating.

Biopesticides, particularly microbial biopesticides, have virtually all the health safety and environmental properties that one would desire in a pesticide. The ecological fallacy and the individualistic fallacy need to be studied in detail.

Microbial insecticides are come from naturally - occurring bacteria, fungi, viruses ( Ramarethinam, 2006 ). Various details of biopesticides including mechanism, pests and crops etc. are given in Table 2.

Table 2. Biopesticides their source and mechanism in pest control

Biopesticide type SourceNature / organismMechanismUsed againstCrops benefited Natural productPlant - Neem Vitex GarlicBiochemicalsAntifeedant, growth regulation, oviposition and mating disruptionInsect pestHorticultural, plantation and plain crops MicrobialsBacteria Bacillus thuringiensis ( Bt ) InfectionInsect pests B. sphaericus, PseudomonasAntibiosisDisease VirusNuclear polyhedrosis viruses, Granulosis virusesInfection resulting in epizooticsInsect pest FungiBeauveria, Metarhizium, Paecilomyces, NomuraeaInfection resulting in epizooticsInsect pests Trichoderma GliocladiumAntagonism and AntibiosisFungal disease of plants ProtozoaNosema, Thelohania, VairimorphaEpizooticsInsect pests PheromonesPheromonesBiochemicalsMating disruption, lure and kill, or insect monitoring strategiesInsect pest Genes or Plant - pesticide: Desired genes from a known sourceBiochemicalsConfer tolerance of herbicide application or resistance to attack by viruses or insectsInsect pest and disease

Market potential of biopesticides in India

The domestic market of biopesticides is in infant stage still - despite decades of existence, biopesticides are considered as marginal products. Virtually bereft of buyers and sellers. Awareness about the advantages of biopesticides is abysmally low as compared to the west, " this is affecting their demand adversely. Manufacturers claim that the projected demand for biopesticide has failed to become a reality. Rough estimates by the experts indicated a less than 2 per cent market share for Biopesticides in India ( Agriculture today, Jan, 2005 ).

Agricultural Biotechnology - Varietal Development

Using different biotechnological techniques varieties having higher yields, disease and pest resistance, fertilizer responsiveness, herbicide tolerance, higher water / fertilizer use efficient, drought resistance etc can be developed. Biotechnology offers various advantageous over conventional breeding in developing crop varieties ( Table 3 ). It employs novel technologies for creating variability, gene transfer, selection of segregating generations, transgenic development etc. Time taken for breeding a variety can be substantially reduced through biotechnology approach. Gene silencing ( " switching off " of a gene by a mechanism other than genetic modification ) and gene attenuation ( to stop translation of an mRNA of a gene when certain conditions are not met ) strategies can be employed to develop desirable genotypes.

Table 3. Agricultural Biotechnology vs. conventional breeding in varietal development

S. NoParameterAgricultural BiotechnologyConventional Breeding 1Creation of variabilitySomaclonal variationCreate through hybridization of parents Gamato clonal variation Proto clonal variation In vitro mutations 2Gene transferInter specific Mostly intra - specific, rarely inter - specific Inter generic 3Selection In vitro selectionPhenotypic selection Marker assisted selection 4GenesIsolated genesUses available variability Synthetic genes 5Gene transferAgro bacterium MediatedCrossing Gene gun Protoplast Fusion 6Time taken for breedingCan be reducedFairly long 7Trait expressionGene silencingCan ' t be used Gene attenuation etc.,

Biotech crops in the world

Number of crop varieties were developed using various biotechnological approaches. Among them, Flavr savr tomato is the first transgenic crop released for commercial cultivation in USA in 1995. Later, number of pest and disease resistant varieties were released in cotton, maize, potato, soybean, tomato etc in different countries. Most of the cases the genes are cry genes conferring resistance to lepidopteron pests followed by viral genes. Pest resistance varieties substantially reduce the amount of pesticide use, there by avoids environmental problems.

From 1996 - 2007, global biotech crop area increased from 1. 7 m ha to 114. 3 m ha. 23 countries are growing biotech crops viz. soybean, cotton, maize and canola, 13 biotech mega countries growing 50, 000 ha or more of biotech crops. The area covered by biotech crops in industrial countries is more compared to developing countries. These statistics indicates the increased awareness of the world farmers about biotech crops ( James, 2007 ).

Biotech crop status in India

Many public and private sector institutions are involved in the development of biotech crop varieties in India. Biotechnology research in India is funded primarily by government agencies such as DBT, CSIR, ICAR and ICMR.

Regulations in India

Development and cultivation of transgenic varieties are raising many environmental concerns. In view of this, transgenic variety in any crop is released once it satisfies all environmental concerns. Before release they will be thoroughly tested for their effect on soil flora and fauna, allergenicity, toxicology etc. In India, Department of Biotechnology in Department of Science and Technology and Ministry of Environment and Forests are responsible for implementing bio - safety regulations with in the country. The regulation of genetically modified organisms ( GMOs ) in India has been subjected to the rules framed by the Ministry of Environment and Forests ( MOEF ) in 1989 ( GOI, 1989 ). These rules, which were part of the Environmental ( Protection ) Act of 1986, defined implementing structures for conducting research and for the commercial applications of GMOs. Department of Biotechnology formulated guidelines for conducting research in transgenic plants ( GOI, 1990 1994 and 1998 ).

Govt. of India has evolved regulatory mechanisms for the development and evaluation of Genetically Modified Organisms ( GMOs ). Various bio - safety committees, starting right from the institute where the research is going on to District and State, are in operation to monitor the safety of GMOs. GM crop regulatory structure in India consists of the following six committees. First three are under the Department of Biotechnology ( DBT ), next one under the MOEF and the last two operate at sub - federal levels closer to the actual site of GM crop field trials.

Recombinant DNA Advisory Committee ( RDAC ): Reviews developments in biotechnology at national and international levels and recommends suitable and appropriate safety regulations

Review Committee on Genetic Manipulation ( RCGM ): Monitors safety - related aspects of ongoing research projects and activities involving genetically engineered organisms.

Institutional Biosafety Committee ( IBSC ): Constituted by the institution conducting research that handles micro - organisms / genetically - engineered organisms.

The Genetic Engineering Approval Committee ( GEAC ): Based in MoEF and gives approvals for activities involving large - scale commercial use and release of hazardous micro organisms including imports of GMOs and recombinants

The State Biotechnology Coordination Committee ( SBCC ): Nodal agency at the State - level to assess damages, if any, from the release of GMOs.

The District Level Biotechnology Committee ( DLC ): Monitors safety regulations in installations engaged in the use of GMOs and hazardous substances at District level.

Steps in GM plant commercialization process:

In India, a transgenic variety is developed under the close supervision of different regulatory bodies ' right from lab and greenhouse experiments to its approval for commercial production ( Table 4 ). This elaborated exercise helps to assess their possible impact on environment. In case of any adverse impact that particular line will be withdrawn before release. Only lines that don ' t have any impact will be considered for release based on their agricultural advantage.

Table 4. GM plant commercialization process

Steps in GM plant commercialization process Data generated at this step ( more can be requested if needed ) Who approves 1. Lab & greenhouse experiments Rationale for development of GM plant Cloning strategy Characteristics of expression vectors, inserted genes, promoters Transformation / cloning method Genetic analysis of transgene Biochemistry of expressed gene Compositional analysis Description of host plant, geographical distribution in country of origin, Back crossing duration, seed setting characteristics, germination rates, phenotypic characteristics, target gene efficacy tests Observations about implications of toxicity & allergenicityIBSC risk category I & II RCGM risk category III 2. Contained open field trials & generation of biosafety data Germination rates & phenotypic characteristics Studies of gene flow, invasiveness, weed formation Implications of out crossing Susceptibility to diseases & pests Toxicity & allergenicity of plants / fruits / seeds Food / feed safety evaluation in animalsIBSC / RCGM 3. Multi - location trials Agronomic advantageRCGM / GEAC 4. Large - scale field trials Agronomic advantageGEAC 5. Environmental, food & agronomic approval GEAC 6. Variety registration * Agronomic advantageICAR, National and State Seed Quality control agencies 7. Approval for commercial production GEAC

Biotech crops cultivated in India

On 26th March 2002, Genetic Engineering Approval Committee ( GEAC ) for the first time approved three Bt cotton hybrids ( MECH 12 Bt, MECH 162 Bt and MECH 184 Bt ) of MAHYCO for commercial cultivation in India. RCH2 Bt hybrids of Rasi seeds were approved on 1st April 2004 in Central and Southern part of India.

Bt - cotton was first planted in India in 2002. Following its success, the area under this crop and the number of farmers who adopted this technology increased significantly from year to year as shown in the Table 5 below:

Table 5: Area under Bt - cotton in India ( 2002 to 2007 ) YearTotal cotton area in hectaresBt - cotton area in hectaresBt - cotton area in acres % area occupied by Bt - cottonNo. of Bt - farmers 200287, 30, 00029, 00072, 0000. 320, 000 200376, 70, 00086, 0002, 13, 0001. 175, 000 200476, 30, 0005, 53, 00013, 66, 0007. 33, 50, 000 200589, 20, 00012, 67, 00031, 31, 00014. 210, 00, 000 200691, 58, 00038, 00, 00094, 00, 00041. 523, 00, 000 200794, 00, 00062, 00, 000 * 153, 20, 00066. 038, 00, 000 Source: http: / / www. cbd. int / doc / external / mop - 04 / fbae - cotton - en. doc Thus, in about 6 years, the area under Bt - cotton has increased by more than 210 times to record 6. 2 m ha and the number of Bt - farmers by 190 times to reach 3. 8 m in 2007. Further, Bt - cotton has occupied 66 % of the 9. 4 m ha of the total cotton area in India in 2007.

Associated Chambers of Commerce and Industry India ( ASSOCHAM ) and IMRB International study on Bt cotton in India revealed that cotton farmers have earned an additional income of Rs 7, 039 crore in 2006 after a 50 per cent increase in yield due to use of Bt cotton seed. Introduction of two stacked genes into Bollgard II Bt cotton has saved pesticide use to the tune of Rs 1, 600 per acre. Bollgard II Bt cotton has the advantage of controlling both bollworms and the sucking pest, Spodoptera, while Bt cotton ( with one gene ) controls only bollworm. Bollgard II Bt cotton was allowed for commercial cultivation in central and western India in 2006. In view of the increased crop yields of BT cotton, India turned into a net cotton surplus country from a net importer in four years.

Number of pesticides sprays and amounts spent pesticide per acre were reduced when Bt cotton and Bollgard II Bt cotton were cultivated. Additional profit of Rs. 7, 757 / - and Rs. 10, 352 / - per acre, respectively, were realized by Bt cotton and Bollgard II Bt cotton over conventional cotton varieties ( Table 6 ).

Table 6. Advantage of Bt cotton over conventional varieties

Cotton varietyNo. of pesticide spraysAmount spent on pesticide per acreProfit / acre * Conventional cotton - Rs. 2, 900Rs. 4, 784 Bt cotton ( with one gene, cry 1 Ac ) 4. 6 times less than conventionalRs. 2, 000Rs. 12, 541 Bollgard II Bt cotton ( with Cry I Ac and Cry 2 Ab genes ) 2 times less than Bt cottonRs. 1, 300Rs. 15, 136

* Bt seeds are 2. 5 times costlier than conventional seeds

The results of other five studies conducted by public institutions and published recently are summarized in the table below to exemplify the benefits ( Manjunath, 2008 ). Table 7: Results of studies carried out by neutral agencies on the performance Of Bt - cotton in India

Publication / ParametersBennett et al., 2006Gandhi & Namboodiri ( IIMA ), 2006Qaim, 2006ICAR, 2006Ramgopal ( Andhra Univ. ) 2006 Period studied2002 & 200320042002 - 0320052005 Yield increase45 - 63 % 31 % 34 % 30. 9 % 46 % Reduction in chemical sprays3 to 139 % 6. 8 - 4. 2 ( 50 % ) - 55 % Increased profit50 % 88 % 69 % - 110 % Average profit / hectare - $250 / ha$118 / ha - $223 / ha The results reveal that a ) increase in cotton yield ranged from 30. 9 to 63 %, b ) reduction in chemical sprays was from 39 to 55 % and c ) increase in profit to farmers ranged from 50 to 110 % equivalent to about US$ 250 ( Rs. 10, 000 ) per hectare over the non - Bt cotton. It is reported that the average cotton yields in India which was 308kg / ha in 2002, prior to introduction of Bt - cotton, increased to 560kg / ha in 2007 ( at least 50 % of increase is attributed to Bt technology ). Similarly, the national cotton production increased from mere 15. 8 million bales in 2002 to 31. 0 m bales in 2007. Exports of raw cotton, which was 0. 9 m bales in 2005, increased to 4. 7 m bales in 2006 and touched 4. 8 m bales in 2007. Further, Bt - cotton contributed US$840 million or more to National farm economy. The studies carried out on Bt - cotton both before and after commercialization have clearly shown the following benefits: a ) Higher cotton yield owing to effective control of bollworms, b ) drastic reduction in the application of chemical insecticides for bollworm control, c ) higher profit to farmers and d ) conservation of biological control agents and other beneficial organisms. Thus, there have been social and economic benefits and intangible environmental benefits. The ever - increasing demand for Bt - cotton seeds is a clear reflection of farmers ' confidence in this technology and its benefits.

Conclusion

Use of bio - fertilizers, bio - pesticides and transgenic varieties in agriculture are showing increasing trend. Use of these things will reduce the utilization of chemical pesticides and pesticides; there by the harmful effects they produce will be reduced. Further increase in these eco - friendly biotech derived agri - inputs is essential to alleviate the environmental issues raised in conventional agriculture. References: Agriculture today ( Jan, 2005 ). The National Agricultural Magazine, Published by New Delhi. Alvares, C. ( ed. ) ( 1999 ) The organic farming source book. Published by The Other India Press / Third World Network, Goa ( India ). 366 p Bennett, R. et al., 2006. Farm - level economic performance of genetically modified cotton in Maharashtra, India. Review of Agricultural Economics, 28: 59 - 71. Gandhi, V. and Namboodiri, N. V., 2006. The adoption and economics of Bt - cotton in India: Preliminary results from a study. Indian Institute of Management ( IIM ), Ahmedabad, India. Working paper No. 2006 - 09 - 04, pages 1 - 27, Sept. 2006. Ghosh, Nilabja 2003. Promoting Bio - fertilizers in Indian Agriculture. Institute of Economic Growth Discussion Paper Series No. 69 / 2003. Delhi, India. GOI. 1989. Rules for the manufacture, use, import, export and storage of hazardous microorganisms / genetically engineered organisms or cells, issued by the Union Ministry of Environment and Forests, Govt. of India ( Notification No. G. S. R. 1037 9E ) dated 5 December 1989. GOI. 1990. Recombinant DNA safety guidelines. DBT, Union Ministry of Science and Technology, Govt. of India, p. 90. GOI. 1994. Revised guidelines for safety in biotechnology. DBT, Union Ministry of Science and Technology, Govt. of India. GOI. 1998. Revised guidelines for research in transgenic plants and guidelines for toxicity and allergenicity evaluation of transgenic seeds, plants and plant parts. DBT, Union Ministry of Science and Technology, Govt. of India, p. 92. ICAR ( Indian Council of Agricultural Research ), 2006. Frontline demonstrations of cotton - 2005 - 06. Mini Mission II, Technology Mission on cotton. ICAR, New Delhi. James, C. 2007. Global Status of Commercialized Biotech / GM Crops: 2007. ISAAA Briefs No. 37, 225 pp. ISAAA: Ithaca, NY. Manjunath, T. M. ( 2008 ) Position Paper on Indian Bt cotton. Bt - Cotton in India: Remarkable Adoption and Benefits. http: / / www. cbd. int / doc / external / mop - 04 / fbae - cotton - en. doc. Manjunath, T. M. 2007. Q & A on Bt - Cotton in India. Answers to More than 70 Questions on All Aspects. All India Crop Biotechnology Association, New Delhi, 78 pp. Qaim, M. 2006. Adoption of Bt cotton and impact variability: Insights from India. Review of Agricultural Economics, 28: 59 - 71. Ramarethinam, S ( 2006 ) Conference on Agrochemicals. January 12 - 13, 2006, Mumbai. Speeches and Presentations - 2006: FICCI ( http: / / www. ficci. com / media - room / speeches - presentations / 2006 / speeches - 2006. htm ). Ramgopal, N., 2006. Economics of Bt - cotton vis - - vis traditional cotton varieties - Study in Andhra Pradesh, Agro - Economic Research Centre, Andhra University, Andhra Pradesh.

Auther: K. Sarala, Senior Scientist ( Biotechnology ), Central Tobacco Research Institute, Rajahmundry - 533 105, A. P.

Sunday, October 21, 2012

Biotechnology on Agriculture

Biotechnology is a subfield of Science, under the branch of Biology involving the study and refining of living organisms genetically with the use of technology. It is used to conserve the use of bio - resources. Some of its objectives are to strengthen the agricultural economy so as to prick cheaper and more efficient agricultural production; to administer a solution to the world food shortages, and further improvement on the medicine and veterinary services. Through biotechnology, diseases and their treatments are learned and unstated.

The role of biotechnology in our agriculture has benefited the society with safer food supply and environment. This is accomplished by adding a new gene to a crop plant with the use of advanced technology. Doing such produces crops which are less vulnerable to insect attacks and diseases. The limited availability of agricultural lands imposes another problem on the agriculture that biotechnology has managed to resolve. Because of such advancement, area needed for cultivation of food is now reduced and can be utilized to other purposes. Though the land area required on the cultivation for crops has decreased, production has conversely increased. Among other benefits taken from biotechnology are improved taste and appearance of plant ' s fruits, harvests can be stored for longer period and a broader variety of new plants. s.

Using this however, may not be viable to countries that lack knowledge and flexibility in the processes and technologies being utilized. Developing and employing scientists knowledgeable enough on the matter may be costly and such costs might not be compensated by the benefits that they can derive from biotechnology.

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Friday, September 21, 2012

Oniang ' o Sees Urgent Need For Food Biotechnology In Africa

Twenty - five percent of the undernourished people in the developing world are located in sub - Saharan Africa; and according to FAO, approximately 35 percent of the population in 14 countries in this region are chronically undernourished. However, efforts to diminish hunger have been contracted by a shortage of arable land, inadequate rainfall, low soil fertility and the devastating effects of plant pests and diseases.

" I ' ve been saddened. I ' ve gotten frustrated at the levels of hunger, levels of food insecurity on this continent, food crises one proximate another, " says The Honorable Ruth Oniang ' o, a segment of the Parliament of Kenya and Professor of Food Science and Victual at Jomo Kenyatta University of Agriculture and Technology. " We have not always been food precarious. I think what has happened is we have not kept up with the world events, with the technologies. And I don ' t know of component country, which developed without using science and technology. "

Increasing or intensifying food production is key to reducing hunger in sub - Saharan Africa, where 50 - 75 percent of the population and labor muscle is engaged in agriculture. Most of the African people earn their living by producing food, which means a family ' s income - earning potential is closely linked to agricultural productivity. Increases in agricultural productivity also positively impact rural economies by increasing food availability, reducing food prices in local markets, and generating an increased demand for other products linked to agriculture.

" And so I believe that it is incumbent on our government and on our scientists to bring a technology, which can address a small - scale farmer, " says Dr. Oniang ' o, founder and executive director of Rural Outreach Program a not - for - profit organization that undertakes development activities aimed at improving the livelihoods of the rural poor in Kenya, more than 55 percent of whom live below the poverty line. " They need different kinds of information, and I believe that science has now come up with this technology biotechnology. I ' m not saying it ' s going to be a magic bullet, but surely it should be one of the major approaches to use. "

Using food biotechnology, researchers can provide protection against plant pests and diseases through the seed, requiring small - scale farmers to use few if any additional inputs or machinery. Modern food biotechnology has been identified as the most potent technology for rescuing Africa from the effects of food shortages, just as the Green Revolution did for the countries of Southeast Asia in the 1970s.

" And, we already have situations where we know this is working. In South Africa, I ' m aware and I ' ve been there it is working. You know, when we ' re hungry, we actually import maize from South Africa. So for us to sit here telling ourselves oh, we don ' t want biotech food, and we can ' t bring this to our farmers it is not right, " continues Oniang ' o, who has influenced research, development and discourse on food security and nutrition in Africa, as well as globally.

Biotech varieties of cotton, corn and soy are approved for commercial planting in South Africa and account for approximately 92 percent of cotton, 29 percent of corn and 59 percent of soybeans grown in the country. While South Africa is currently the only country with commercial plantings of food biotechnology crops, nine countries have conducted field trials in Africa including Burkina Faso, Egypt, Kenya, Morocco, Senegal, South Africa, Tanzania, Zambia and Zimbabwe. An additional 11 countries are engaged in food biotechnology research and development.

" What I would like is to see a situation where families can feed themselves, " says Oniang ' o. " I believe we should start now. We can ' t say we shall start in a decade, or next year. No, no, no. We need to start now. "

2007 Monsanto Company. All rights reserved. The copyright holder consents to the use of this material and the images in the published context only and solely for the purpose of promoting the benefits of agricultural biotechnology.