Wednesday, October 9, 2019
Biochemical Action of Bacteria
To observe the growth of different bacteria species in term of structures and its morphology based on different chemical substance applied. 3. To observe physiological and immunological properties utilized by different species of bacteria. INTRODUCTION: Bacteria biochemical testing can determine the types and numbers in terms of colony forming units of bacteria present in a sample of different chemical. The testing could be focused on a specific type of bacteria, medical bacteria or a broad range of environmental bacteria. Since bacteria are present in virtually any environment, itââ¬â¢s important to be clear why the testing is being performed. The more specific the testing is the better and the easier it is to interpret the results. Numbers and types of bacteria that should be a cause for concern depends upon several factors, including the type of bacteria present and the type of samples. Escherichia colià are one of the main species of bacteria living in the lower intestines of mammals. E. colià can be found in the intestinal tract of warm-blooded animals. The presence ofà E. colià in foods is considered to be an indication of fecal contamination. Staphylococcusà organisms are commonly found in the environment. Several species ofà Staphylococcusà are found on the skin, intestines, nasal passages, etc. of warm-blooded animals. Some species ofà Staphylococcus, particularlyà Staphylococcus aureusà can be pathogenic are capable of causing illness. Pseudomonas aeruginosa is widely distributed in soil, water and plants. It survives in hot tubs, whirlpools, contact lens solution, sinks and showers. It can cause a number of opportunistic infections including infections of the skin, external ear canal and of the eye. Nitrifying bacteria recycle organic nitrogenous materials from ammonium (the endpoint for the decomposition of proteins) to nitrates. Their presence can indicate that the water may have been polluted by nitrogen-rich organics from sources such as compromised septic tanks, sewage systems, industrial and hazardous waste sites and is undergoing an aerobic form of degradation. The presence of denitrifying bacteria can indicate that the water has been polluted by nitrogen-rich organics from sources such as compromised septic tanks, sewage systems, industrial and hazardous waste sites. MATERIALS: 1. Nutrient broth cultures of Escherichia coli . Nutrient broth cultures of Serratia marcescens 3. Nutrient broth cultures of Salmonella typhimurium 4. Nutrient broth cultures of Bacillus subtilis 5. Nutrient broth cultures of Klebsiella spp. 6. Nutrient broth cultures of Streptococcus spp. 7. Nutrient broth cultures of Staphylococcus aurieus 8. Nutrient broth cultures of Proteus vulgaris 9. Nutri ent broth cultures of Pseudomonas fluorescens 10. Parafilm tape 11. Inoculating loops 12. Gloves 13. Incubator 14. Nutrient agar plate 15. Nutrient agar slants 16. Starch agar plates 17. Gelatine agar plates 18. 2 tubes Clarkââ¬â¢s-Lub medium (MR-VP medium) 19. Tryptone broth 20. 3 Kiglerââ¬â¢ slant 21. 5 tubes nitrate broth ( 0. 1% KNO3) 22. 5 urea broth 23. Tube containing 10ml of sterile saline 24. Glucose broths with Durham tubes and phenol red indicator 25. Lactose broths with Durham tubes and phenol red indicator 26. Sucrose broths with Durham tubes and phenol red indicator 27. Gramââ¬â¢s iodine 28. Kovacââ¬â¢s indol reagent 29. Mercuric chloride solution 30. KOH-creatine solution or 40% KOH 31. FR reagent 32. Nesslerââ¬â¢s reagent PROCEDURE: A. CARBOHYDRATE METABOLISM 1. Fermentation of sugars Materials: 1. Glucose broths with Durham tubes and phenol red indicator 2. Lactose broths with Durham tubes and phenol red indicator 3. Sucrose broths with Durham tubes and phenol red indicator 4. 18 hour nutrient broth cultures of E. coli and S. typhimurium Procedure: 1) The small bottles of different sugars were inoculated with a loopfuls of E. coli and Salmonella spp. 2) The tubes were labelled and incubate at 37oC for 24 hours 3) All observations were recorded for presence of acid or gas production. 2. Hydrolysis of starch Materials: 1. Starch agar plates 2. Broth agar cultures of B. subtilis and E. coli Procedure: 1) Starch plate was streaked with E. coli in for sections and repeated for B. ubtilis bacteria in other starch plate. 2) The plates were secured with parafilm, labelled and inoculated at 37oC for 24 hours. The following day 1) The plates were tested for starch hydrolysis by flooding the pates with Gramââ¬â¢s iodine. 2) The plates were examined and the colonies that showed clear uncoloured zones in contrast with the blue-black background of the starch-iodine complex were noted. 3) The extent of the zones of hydrolysis indicated either the reddish colour zones were seen. 4) All results and observations were recorded. B. PROTEIN AND AMINO ACID METABOLIM 1. Indole test Materials: 1. Broth cultures of B. ubtilis, E. coli, and S. typhimurium 2. 3 tubes of tryptone broth 3. Kovacââ¬â¢s indole test reagent Procedures: 1) The peptone water was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The tubes were added with a few drops of Kovacââ¬â¢s indole reagent (dimethylaminobenzaldehyde) 2) The red or dark color indicates the presence of indole. 4. Hydrogen sulphide Materials: 1. Broth cultures of B. subtilis, E. coli, and S. typhimurium 2. 3 Kiglerââ¬â¢s slant Procedures: 1) The Kiglerââ¬â¢s slant was inoculated with a loopfuls of the test organism by the stab method. ) The tube was labelled and incubated for 24 hours. The following day 3) Th e Kiglerââ¬â¢ slant was observed for production of H2S where the black precipitate along the line of growth in the Kiglerââ¬â¢s slants indicated the H2S have been produced. 4) The observations were recorded. 3. Gelatine hydrolysis test Materials: 1. Broth cultures of B. subtilis, E. coli, and S. typhimurium 2. Gelatine agar plates 3. Mercuric chloride solution Procedures: 3) The gelatine agar plates were inoculated with a loopfuls of the test organism with a single streak at the centre of the plates. ) The plates were secured with parafilm, labelled and incubated for 24 hours. The following day 5) The plates were flooded with mercuric chloride solution. 6) The medium become opaque in regions that still contain gelatine and clear regions where gelatine has been hydrolysed. C. VOGES-PROSKAUER TEST Materials: 1. Broth cultures of E. coli, and Klebsiella spp. 2. 2 tubes of Clark-Lubââ¬â¢s medium (MR-VP medium) 3. KOH-creatine solution Procedures: 1) The tubes of Clark-Lubââ¬â ¢s medium (MR-VP medium) were inoculated with a loopfuls of the test organism. 2) The tubes were labelled and incubated for 24 hours. The following day 1) The tubes were tested with Voges-Proskauer test. 2) The 0. 5ml of KOH-creatine solutuin was addd. 3) The tube was shaked vigorously for 30 seconds. 4) The red or pink color indicates the presence of acetoin. D. CATALASE TEST Materials: 1. Broth cultures of Streptococcus spp. and Staphylococcus aureus. 2. Nutrient agar slant Procedures: 1) The nutrient agar slant was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The tubes were tested with catalase test by adding several drops of a 5% solution of hydrogen peroxide. ) The vigorous bubbling indicates the presence of oxygen. E. NITRATE REDUCTION TEST Materials: 1. Broth cultures of E. coli, Proteus vugaris, Serratia marcescens, Pseudomonas fluorescens. 2. 5 tubes containing nitrate broth (0. 1% KNO3) 3. Nitrate test reagent Procedures: 1) The nitrate broth was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incub ated for 24 hours. The following day 1) The tubes were tested with 1ml of Follet and Ratcliffââ¬â¢s (FR reagent) 2) The orange or brown color indicates the presence of nitrate. 3) The absent of nitrate indicates that: a. There has been no nitrate reduction b. The reduction has proceeded beyond that nitrate stage. 4) The absent of orange or brown color were further tested with small amount of cadmium to the tube. If nitrate still present, it will be catalytically change to nitrate which will then reacts with the FR reagent in the tube. 5) In the absent of a positive nitrate result, the bubbles f H2 gas was observed in the Durhams tube OR 6) The samples were tested with 1ml of Nesslerââ¬â¢s reagent. The brown or orange color indicates the presence of ammonia. F. UREASE TEST Materials: 1. Broth cultures of E. coli, P. vugaris, S. arcescens, P. fluorescens. 2. 5 urea broth with indicator Procedures: 1) The urea broth was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The urease-positive organism produced in intense red/purple coloration of the medium after incubation. 2) All observations were recorded. RESULTS AND OBSERVATION: Test| Observation(After 24 hours incubation)| Description| A. Carbohydrate Test 1. Fermentation of starchDurham tubes and phenol-red indicator. 2. Hydrolysis of starch| Glucose: Lactose: Sucrose: Starch agar plates:B. ubtilisE. coli| * Positive result for E. coli as tube turn yellow * Positive result for S. typhimium as tube turn yellow * Positive result for E. coli as tube turn yellow * No gas produced by S. typhimium because the tube turns red. * No gas produced by E. coli because the tube is slightly red. * Positive result for S. typhimium as tube turn yellow * Positive zone of clearing. * Negative zone of clearing. | B. Protein And Amino Acid Metabolism 1. Indole test 2. Hydrogen disulphide 3. Gelatine hydrolysis test| Tryptone broth:B. subtilisE. coli. S. typhimuriumKiglerââ¬â¢s slant:B. subtilisE. oli. S. typhimuriumGelatine agar plates:B. subtilisE. coli. S. typhimurium| * Negative Indole tests no color change. * Bright fuschia at the interface is positive test for Indole . * Negative Indole tests no color change. * Black precipitate form shows positive sulphur reduction. * Negative reaction. * Positive reaction forming the black precipitate. * Positive hydrolysis of gelatine into amino acid to be used as nutrients/gelatinase. * Negative hydrolysis of gelatine. * Negative hydrolysis of gelatine| C. Voges- Proskaeurââ¬â¢s Test| MR-VP medium:E. coli. Klebsiella spp. | * Negative results of E. oli * Positive results Klebsiella spp. | D. Catalase Test| Nutrient agar slant:S. aureusStreptococcus spp. | S. aureus * Positive catalase reaction because present of bubblesStreptococcus spp. * Negative catalase reaction no bubbles present. | E. Nitrate Reduction Test| Nitrate broth:E. coliP. vulgarisS. marcescensP. fluorenscens| * No color change after denitrification of ammonia. * No color change after denitrification of ammonia. * Turns red. Positive nitrate test shows nitrate reductase present. * Turns red but negative catalase test. | F. Urease Test| Urea broth:E. coliP. vulgarisS. marcescensP. luorenscens| * Negative urease test because the tube remain purple. * P. vulgaris show positive urease test from yellow to pinkish. * S. marcescens show negative urease test because the color remain purple. * P. fluorenscens show negative urease test because the color remain purple. | DISCUSSION: Biochemical tests of bacteria oobjectively to test the metabolism of carbohydrate and related products of different bacteria species, test specific breakdown of products through color changes and gas produced. Besides that, the ability of bacteria utilizes a specific substance and the metabolism of protein and amino acid by bacteria. A. CARBOHYDRATE TEST Carbohydrate is an organic compound that consists of only carbon, hydrogen and oxygen which is basically the major carbon source of most organisms. Specific carbohydrate can be fermented by organism that incorporated in a medium producing red or acid with gas. Pinkish red color shows positive results where acidic content formed in the tube because carbon dioxide realised if fermentation occur. Negative catabolism of carbohydrate shows by yellow to colourless of Durhamââ¬â¢s tube as the solution remain alkaline in the absent of carbon dioxide gas. Gas production can be seen as bubbles in Durhamââ¬â¢s tube. Central carbohydrate metabolism or the breakdown of sugars into smaller compounds accompanied by the production of ATP and reduction of coenzymes, follows one of several pathway. Carbohydrate utilization and fermentation will be assessed by growing cells without shaking (aeration) in defined media containing a single carbohydrate. Acid products of sugar fermentation will cause a noticeable color change in the pH indicator included in the medium. Sugar fermentation does not produce alkaline product, however non-fermentative hydrolysis of amino acids in the peptone, present in most fermentation media, may give an alkaline reaction, which will also cause a color change in the pH indicator. Gas production, H2 in particular, can be determined by placing a small, inverted Durham tube in the test medium. If gas is produced, it is trapped in the Durham tube and can be seen as a bubble. Hydrogen sulfide (H2S) is produced by bacterial anaerobic degradation of the two sulfur-containing amino acids, cysteine and methionine. Hydrogen sulfide is released as a by-product when carbon and nitrogen atoms in the amino acids are consumed as nutrients by the cells. Under anaerobic conditions the sulfhydryl (-SH) group on cysteine is reduced by cysteine desulfurase. Ferrous ammonium sulfate-indicator. H2S reacts with ferrous sulfate forming the black precipitate Sodium thiosulfate is reduced to sulphite/thiosulfate The Kliglerââ¬â¢s Iron test is used to detect liberation of H2S gas by bacteria growing on an excess of these sulfur-containing amino acids. The agar contains high levels of peptones or sources of cysteine and methionine and ferrous sulfate as an indicator. When H2S is produced, the ferrous ion reacts with it to give ferrous sulfide, an insoluble black precipitate. In starch hydrolysis test Iodine must be on the plate to visualize the zone of clearing surrounding the bacteria. This zone indicates starch was broken down to dextrins, maltose, and glucose. B. PROTEIN AND AMINO ACID METABOLIM Indole test measures the ability of bacteria to split indole from tryptophan molecule but in term of biochemistry, Indole test is one of the metabolic degradation products of the amino acid tryophan. Bacteria that possess the enzyme trytophanase are capable of hydrolysing and deaminating tryptophan with the production of Indole, pyruvic acid and ammonia. Positive reaction showed by E. coli, P. vulgaris and negative results observed in Klebsiella and Salmonella from observation in the Indole test. Development of fuchsia red color at the interface of the reagent and the broth within seconds after adding the reagent is indicative of the presence of Indole and is a positive test. Kovacââ¬â¢s reagent detects if tryptophan has been hydrolyzed to indol or tryptophanase. Gelatin is the protein derived from the animal protein collagen, has been used as a solidifying agent in food for a long time besides nutrient gelatine as an early type of solid growth medium. One problem is that many bacteria have the ability to hydrolyze or liquefy the gelatin. This gelatin liquefaction ability forms the basis for this test. C. VOGES-PROSKAUER TEST The production of acetoin by bacteria is perform through Voges Proskauer Test to determine the ability of the organisms to produce neutral end product acetyl methyl carbinol (acetoin) from glucose fermentation. Negative results gained from E. coli meanwhile positive reaction gives by. Changing of color to red pinkish color at the surface of the medium indicated positive results and yellow color at the surface of the medium show negative reaction. The KOH reagent should not be excessively added to the sample because excess KOH may mask weak VP positive reactions. The MR test will be positive for organisms that have complete pathways for mixed acid fermentation. The Voges-Proskauer (VP) test determines whether a specific neutral metabolic intermediate, acetoin, has been produced instead of acid from glucose. Acetoin is the last intermediate in the butanediol pathway, which is a common fermentation pathway in B. subtilis. The tests are complementary in the sense that often a bacterium will give a positive reaction for one test and a negative reaction for the other. The three possible patterns of results where the acetoin fermentation pathway, detected by the VP test, two molecules of pyruvate condense and two molecules of CO2 are released. The 4 carbon intermediate that is formed, acetoin, contains a carbonyl group. The acetoin acts as a terminal electron acceptor with the carbonyl group being reduced to a hydroxyl group. The reduced product, butanediol, is excreted by the bacteria and acetoin is oxidized to diacetyl by alkaline -naphthol, which forms a red complex with creatinine. D. CATALASE TEST Catalase is present in most cytochrome containing aerobic and facultative anaerobic bacteria except Streptococcus spp. Hydrogen peroxide forms as one of the oxidative end product of aerobic carbohydrate metabolism. If hydrogen peroxide allowed accumulating in the bacterial cells it becomes lethal to the bacteria. Catalases help in converting H2O2 to water and oxygen. In the catalase test performed, Streptococcus spp gives negative reaction as for S. aureus, the positive reaction occurred. One of the by-products of oxidation-reduction in the presence of O2 during aerobic respiration is hydrogen peroxide (H2O2). This compound is highly reactive and must be degraded in the cytoplasm of the cell producing it. It can be especially damaging to molecules of DNA. Most aerobes synthesize the enzyme catalase, which breaks down H2O2 into water and oxygen. The O2 gas is identified by the production of bubbles from a concentrated cell suspension. The test for catalase is simple and usually very reliable. It is a major method of distinguishing between Staphylococcus (catalase positive), Streptococcus (catalase negative), and Enterococcus (catalase negative), although some strains of Enterococcus faecalis may be positive. Catalase production is generally associated with aerobic organisms, since H2O2 is a toxic by-product of aerobic growth, but not always. E. NITRATE REDUCTION TEST Nitrate reduction test basically test the ability of organism to reduce the nitrate to nitrites of free nitrogen gas. In order to determine either the bacteria can reduce nitrate, the test organism is inoculated into nitrate reduction broth, undefined medium that contains large amounts of nitrate (KNO3). After incubation, reagent added simultaneously reacts with nitrite and turn to red color, indicating a positive nitrate reduction. If there is no color change at this step, nitrite is absent. If the nitrate is unreduced and till in its original form, this would be a negative nitrate reduction result. However it is possible that the nitrate was reduced to nitrite but has been further reduced to ammonia or nitrogen gas. This would be recorded as positive nitrate reduction result. Under anaerobic conditions, some bacteria are able to use nitrate (NO3-) as an external terminal electron acceptor. This kind of metabolism is analogous to the use of oxygen as a terminal electron acceptor by aerobic organisms and is called anaerobic respiration. Nitrate is an oxidized compound and there are several steps possible in its reduction. The initial step is the reduction of nitrate (NO3-) to nitrite (NO2-). Several possible products can be made from further reduction of nitrite. Possible reduced end products include the following N2, NH3 (ammonia), N2O (nitrous oxide). Bacteria vary in their ability to perform these reactions, a useful characteristic for identification. A medium that will support growth must be used and the cells must be grown anaerobically. Growth in the presence of oxygen will decrease or eliminate nitrate reduction. There are many possible end products of nitrate reduction such as nitrite, nitrogen gas (N2), nitrous oxides, ammonia, and hydroxylamine. The disappearance of nitrate or the appearance of the end products. The test relies on the production of nitrous acid from the nitrite. This, in turn, reacts with the iodide in the reagent to produce iodine. The iodine then reacts with the starch in the reagent to produce a blue color. Since some of the possible products of NO3- reduction are gaseous, a Durham tube is sometimes inverted in the culture tube to trap gases. This being the case, it is important to pre-test the medium to ensure no detectable nitrite is present at the beginning, and, in the case of a negative test, to reduce any nitrate to nitrite to determine whether the nitrite was also reduced. If nitrite is produced, it reacts with hemoglobin to give a bright red color, instead of the dark red color of hemoglobin. It is this reaction that is responsible for the color of meats, such as hot dogs, which are preserved with sodium nitrite. The blood agar test has the advantage of no color change occurring if the nitrite is further reduced. F. UREASE TEST Urease test mainly highlighted to determine the ability of the organism to split urea forming 2 molecules of ammonia by the action of the enzyme Urease with resulting alkalinity. Negative reaction shown by E. coli meanwhile Klebsiella spp. shows positive result. Extra precaution needed because both the urease test medium depend upon the demonstration of alkalinity that not specific for urease. Moreover the protein hydrolysis may result I alkalinity hence false positive may be seen in Pseudomonas. The false positivity can be eliminated by control test using the same medium without urea as recommendation. Urea is a nitrogenous waste product of animals. Some bacteria can cleaved it to produce carbon dioxide and ammonia. The ammonia is a nitrogen source for amino acid biosynthesis as well as for synthesis of other nitrogen-containing molecules in the cell. The urease test was devised to distinguish Proteus species from other enterics. The medium described here is buffered enough so that weak urease producers appear negative. The production of ammonia raises the pH of the medium. The indicator phenol red is present in the broth. Phenol red is orange-yellow at pH below than 6. 8, and turns bright pinkish-red at pH higher than 8. 1. Hence, a positive urea test is denoted by the change of medium color from yellow to pinkish red. CONCLUSION: Based on the laboratory, different bacteria species have different abilities to metabolize various substrates and end products formed were able to be observed and distinguished. Biochemical Action of Bacteria To observe the growth of different bacteria species in term of structures and its morphology based on different chemical substance applied. 3. To observe physiological and immunological properties utilized by different species of bacteria. INTRODUCTION: Bacteria biochemical testing can determine the types and numbers in terms of colony forming units of bacteria present in a sample of different chemical. The testing could be focused on a specific type of bacteria, medical bacteria or a broad range of environmental bacteria. Since bacteria are present in virtually any environment, itââ¬â¢s important to be clear why the testing is being performed. The more specific the testing is the better and the easier it is to interpret the results. Numbers and types of bacteria that should be a cause for concern depends upon several factors, including the type of bacteria present and the type of samples. Escherichia colià are one of the main species of bacteria living in the lower intestines of mammals. E. colià can be found in the intestinal tract of warm-blooded animals. The presence ofà E. colià in foods is considered to be an indication of fecal contamination. Staphylococcusà organisms are commonly found in the environment. Several species ofà Staphylococcusà are found on the skin, intestines, nasal passages, etc. of warm-blooded animals. Some species ofà Staphylococcus, particularlyà Staphylococcus aureusà can be pathogenic are capable of causing illness. Pseudomonas aeruginosa is widely distributed in soil, water and plants. It survives in hot tubs, whirlpools, contact lens solution, sinks and showers. It can cause a number of opportunistic infections including infections of the skin, external ear canal and of the eye. Nitrifying bacteria recycle organic nitrogenous materials from ammonium (the endpoint for the decomposition of proteins) to nitrates. Their presence can indicate that the water may have been polluted by nitrogen-rich organics from sources such as compromised septic tanks, sewage systems, industrial and hazardous waste sites and is undergoing an aerobic form of degradation. The presence of denitrifying bacteria can indicate that the water has been polluted by nitrogen-rich organics from sources such as compromised septic tanks, sewage systems, industrial and hazardous waste sites. MATERIALS: 1. Nutrient broth cultures of Escherichia coli . Nutrient broth cultures of Serratia marcescens 3. Nutrient broth cultures of Salmonella typhimurium 4. Nutrient broth cultures of Bacillus subtilis 5. Nutrient broth cultures of Klebsiella spp. 6. Nutrient broth cultures of Streptococcus spp. 7. Nutrient broth cultures of Staphylococcus aurieus 8. Nutrient broth cultures of Proteus vulgaris 9. Nutri ent broth cultures of Pseudomonas fluorescens 10. Parafilm tape 11. Inoculating loops 12. Gloves 13. Incubator 14. Nutrient agar plate 15. Nutrient agar slants 16. Starch agar plates 17. Gelatine agar plates 18. 2 tubes Clarkââ¬â¢s-Lub medium (MR-VP medium) 19. Tryptone broth 20. 3 Kiglerââ¬â¢ slant 21. 5 tubes nitrate broth ( 0. 1% KNO3) 22. 5 urea broth 23. Tube containing 10ml of sterile saline 24. Glucose broths with Durham tubes and phenol red indicator 25. Lactose broths with Durham tubes and phenol red indicator 26. Sucrose broths with Durham tubes and phenol red indicator 27. Gramââ¬â¢s iodine 28. Kovacââ¬â¢s indol reagent 29. Mercuric chloride solution 30. KOH-creatine solution or 40% KOH 31. FR reagent 32. Nesslerââ¬â¢s reagent PROCEDURE: A. CARBOHYDRATE METABOLISM 1. Fermentation of sugars Materials: 1. Glucose broths with Durham tubes and phenol red indicator 2. Lactose broths with Durham tubes and phenol red indicator 3. Sucrose broths with Durham tubes and phenol red indicator 4. 18 hour nutrient broth cultures of E. coli and S. typhimurium Procedure: 1) The small bottles of different sugars were inoculated with a loopfuls of E. coli and Salmonella spp. 2) The tubes were labelled and incubate at 37oC for 24 hours 3) All observations were recorded for presence of acid or gas production. 2. Hydrolysis of starch Materials: 1. Starch agar plates 2. Broth agar cultures of B. subtilis and E. coli Procedure: 1) Starch plate was streaked with E. coli in for sections and repeated for B. ubtilis bacteria in other starch plate. 2) The plates were secured with parafilm, labelled and inoculated at 37oC for 24 hours. The following day 1) The plates were tested for starch hydrolysis by flooding the pates with Gramââ¬â¢s iodine. 2) The plates were examined and the colonies that showed clear uncoloured zones in contrast with the blue-black background of the starch-iodine complex were noted. 3) The extent of the zones of hydrolysis indicated either the reddish colour zones were seen. 4) All results and observations were recorded. B. PROTEIN AND AMINO ACID METABOLIM 1. Indole test Materials: 1. Broth cultures of B. ubtilis, E. coli, and S. typhimurium 2. 3 tubes of tryptone broth 3. Kovacââ¬â¢s indole test reagent Procedures: 1) The peptone water was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The tubes were added with a few drops of Kovacââ¬â¢s indole reagent (dimethylaminobenzaldehyde) 2) The red or dark color indicates the presence of indole. 4. Hydrogen sulphide Materials: 1. Broth cultures of B. subtilis, E. coli, and S. typhimurium 2. 3 Kiglerââ¬â¢s slant Procedures: 1) The Kiglerââ¬â¢s slant was inoculated with a loopfuls of the test organism by the stab method. ) The tube was labelled and incubated for 24 hours. The following day 3) Th e Kiglerââ¬â¢ slant was observed for production of H2S where the black precipitate along the line of growth in the Kiglerââ¬â¢s slants indicated the H2S have been produced. 4) The observations were recorded. 3. Gelatine hydrolysis test Materials: 1. Broth cultures of B. subtilis, E. coli, and S. typhimurium 2. Gelatine agar plates 3. Mercuric chloride solution Procedures: 3) The gelatine agar plates were inoculated with a loopfuls of the test organism with a single streak at the centre of the plates. ) The plates were secured with parafilm, labelled and incubated for 24 hours. The following day 5) The plates were flooded with mercuric chloride solution. 6) The medium become opaque in regions that still contain gelatine and clear regions where gelatine has been hydrolysed. C. VOGES-PROSKAUER TEST Materials: 1. Broth cultures of E. coli, and Klebsiella spp. 2. 2 tubes of Clark-Lubââ¬â¢s medium (MR-VP medium) 3. KOH-creatine solution Procedures: 1) The tubes of Clark-Lubââ¬â ¢s medium (MR-VP medium) were inoculated with a loopfuls of the test organism. 2) The tubes were labelled and incubated for 24 hours. The following day 1) The tubes were tested with Voges-Proskauer test. 2) The 0. 5ml of KOH-creatine solutuin was addd. 3) The tube was shaked vigorously for 30 seconds. 4) The red or pink color indicates the presence of acetoin. D. CATALASE TEST Materials: 1. Broth cultures of Streptococcus spp. and Staphylococcus aureus. 2. Nutrient agar slant Procedures: 1) The nutrient agar slant was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The tubes were tested with catalase test by adding several drops of a 5% solution of hydrogen peroxide. ) The vigorous bubbling indicates the presence of oxygen. E. NITRATE REDUCTION TEST Materials: 1. Broth cultures of E. coli, Proteus vugaris, Serratia marcescens, Pseudomonas fluorescens. 2. 5 tubes containing nitrate broth (0. 1% KNO3) 3. Nitrate test reagent Procedures: 1) The nitrate broth was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incub ated for 24 hours. The following day 1) The tubes were tested with 1ml of Follet and Ratcliffââ¬â¢s (FR reagent) 2) The orange or brown color indicates the presence of nitrate. 3) The absent of nitrate indicates that: a. There has been no nitrate reduction b. The reduction has proceeded beyond that nitrate stage. 4) The absent of orange or brown color were further tested with small amount of cadmium to the tube. If nitrate still present, it will be catalytically change to nitrate which will then reacts with the FR reagent in the tube. 5) In the absent of a positive nitrate result, the bubbles f H2 gas was observed in the Durhams tube OR 6) The samples were tested with 1ml of Nesslerââ¬â¢s reagent. The brown or orange color indicates the presence of ammonia. F. UREASE TEST Materials: 1. Broth cultures of E. coli, P. vugaris, S. arcescens, P. fluorescens. 2. 5 urea broth with indicator Procedures: 1) The urea broth was inoculated with a loopfuls of the test organism. 2) The tube was labelled and incubated for 24 hours. The following day 1) The urease-positive organism produced in intense red/purple coloration of the medium after incubation. 2) All observations were recorded. RESULTS AND OBSERVATION: Test| Observation(After 24 hours incubation)| Description| A. Carbohydrate Test 1. Fermentation of starchDurham tubes and phenol-red indicator. 2. Hydrolysis of starch| Glucose: Lactose: Sucrose: Starch agar plates:B. ubtilisE. coli| * Positive result for E. coli as tube turn yellow * Positive result for S. typhimium as tube turn yellow * Positive result for E. coli as tube turn yellow * No gas produced by S. typhimium because the tube turns red. * No gas produced by E. coli because the tube is slightly red. * Positive result for S. typhimium as tube turn yellow * Positive zone of clearing. * Negative zone of clearing. | B. Protein And Amino Acid Metabolism 1. Indole test 2. Hydrogen disulphide 3. Gelatine hydrolysis test| Tryptone broth:B. subtilisE. coli. S. typhimuriumKiglerââ¬â¢s slant:B. subtilisE. oli. S. typhimuriumGelatine agar plates:B. subtilisE. coli. S. typhimurium| * Negative Indole tests no color change. * Bright fuschia at the interface is positive test for Indole . * Negative Indole tests no color change. * Black precipitate form shows positive sulphur reduction. * Negative reaction. * Positive reaction forming the black precipitate. * Positive hydrolysis of gelatine into amino acid to be used as nutrients/gelatinase. * Negative hydrolysis of gelatine. * Negative hydrolysis of gelatine| C. Voges- Proskaeurââ¬â¢s Test| MR-VP medium:E. coli. Klebsiella spp. | * Negative results of E. oli * Positive results Klebsiella spp. | D. Catalase Test| Nutrient agar slant:S. aureusStreptococcus spp. | S. aureus * Positive catalase reaction because present of bubblesStreptococcus spp. * Negative catalase reaction no bubbles present. | E. Nitrate Reduction Test| Nitrate broth:E. coliP. vulgarisS. marcescensP. fluorenscens| * No color change after denitrification of ammonia. * No color change after denitrification of ammonia. * Turns red. Positive nitrate test shows nitrate reductase present. * Turns red but negative catalase test. | F. Urease Test| Urea broth:E. coliP. vulgarisS. marcescensP. luorenscens| * Negative urease test because the tube remain purple. * P. vulgaris show positive urease test from yellow to pinkish. * S. marcescens show negative urease test because the color remain purple. * P. fluorenscens show negative urease test because the color remain purple. | DISCUSSION: Biochemical tests of bacteria oobjectively to test the metabolism of carbohydrate and related products of different bacteria species, test specific breakdown of products through color changes and gas produced. Besides that, the ability of bacteria utilizes a specific substance and the metabolism of protein and amino acid by bacteria. A. CARBOHYDRATE TEST Carbohydrate is an organic compound that consists of only carbon, hydrogen and oxygen which is basically the major carbon source of most organisms. Specific carbohydrate can be fermented by organism that incorporated in a medium producing red or acid with gas. Pinkish red color shows positive results where acidic content formed in the tube because carbon dioxide realised if fermentation occur. Negative catabolism of carbohydrate shows by yellow to colourless of Durhamââ¬â¢s tube as the solution remain alkaline in the absent of carbon dioxide gas. Gas production can be seen as bubbles in Durhamââ¬â¢s tube. Central carbohydrate metabolism or the breakdown of sugars into smaller compounds accompanied by the production of ATP and reduction of coenzymes, follows one of several pathway. Carbohydrate utilization and fermentation will be assessed by growing cells without shaking (aeration) in defined media containing a single carbohydrate. Acid products of sugar fermentation will cause a noticeable color change in the pH indicator included in the medium. Sugar fermentation does not produce alkaline product, however non-fermentative hydrolysis of amino acids in the peptone, present in most fermentation media, may give an alkaline reaction, which will also cause a color change in the pH indicator. Gas production, H2 in particular, can be determined by placing a small, inverted Durham tube in the test medium. If gas is produced, it is trapped in the Durham tube and can be seen as a bubble. Hydrogen sulfide (H2S) is produced by bacterial anaerobic degradation of the two sulfur-containing amino acids, cysteine and methionine. Hydrogen sulfide is released as a by-product when carbon and nitrogen atoms in the amino acids are consumed as nutrients by the cells. Under anaerobic conditions the sulfhydryl (-SH) group on cysteine is reduced by cysteine desulfurase. Ferrous ammonium sulfate-indicator. H2S reacts with ferrous sulfate forming the black precipitate Sodium thiosulfate is reduced to sulphite/thiosulfate The Kliglerââ¬â¢s Iron test is used to detect liberation of H2S gas by bacteria growing on an excess of these sulfur-containing amino acids. The agar contains high levels of peptones or sources of cysteine and methionine and ferrous sulfate as an indicator. When H2S is produced, the ferrous ion reacts with it to give ferrous sulfide, an insoluble black precipitate. In starch hydrolysis test Iodine must be on the plate to visualize the zone of clearing surrounding the bacteria. This zone indicates starch was broken down to dextrins, maltose, and glucose. B. PROTEIN AND AMINO ACID METABOLIM Indole test measures the ability of bacteria to split indole from tryptophan molecule but in term of biochemistry, Indole test is one of the metabolic degradation products of the amino acid tryophan. Bacteria that possess the enzyme trytophanase are capable of hydrolysing and deaminating tryptophan with the production of Indole, pyruvic acid and ammonia. Positive reaction showed by E. coli, P. vulgaris and negative results observed in Klebsiella and Salmonella from observation in the Indole test. Development of fuchsia red color at the interface of the reagent and the broth within seconds after adding the reagent is indicative of the presence of Indole and is a positive test. Kovacââ¬â¢s reagent detects if tryptophan has been hydrolyzed to indol or tryptophanase. Gelatin is the protein derived from the animal protein collagen, has been used as a solidifying agent in food for a long time besides nutrient gelatine as an early type of solid growth medium. One problem is that many bacteria have the ability to hydrolyze or liquefy the gelatin. This gelatin liquefaction ability forms the basis for this test. C. VOGES-PROSKAUER TEST The production of acetoin by bacteria is perform through Voges Proskauer Test to determine the ability of the organisms to produce neutral end product acetyl methyl carbinol (acetoin) from glucose fermentation. Negative results gained from E. coli meanwhile positive reaction gives by. Changing of color to red pinkish color at the surface of the medium indicated positive results and yellow color at the surface of the medium show negative reaction. The KOH reagent should not be excessively added to the sample because excess KOH may mask weak VP positive reactions. The MR test will be positive for organisms that have complete pathways for mixed acid fermentation. The Voges-Proskauer (VP) test determines whether a specific neutral metabolic intermediate, acetoin, has been produced instead of acid from glucose. Acetoin is the last intermediate in the butanediol pathway, which is a common fermentation pathway in B. subtilis. The tests are complementary in the sense that often a bacterium will give a positive reaction for one test and a negative reaction for the other. The three possible patterns of results where the acetoin fermentation pathway, detected by the VP test, two molecules of pyruvate condense and two molecules of CO2 are released. The 4 carbon intermediate that is formed, acetoin, contains a carbonyl group. The acetoin acts as a terminal electron acceptor with the carbonyl group being reduced to a hydroxyl group. The reduced product, butanediol, is excreted by the bacteria and acetoin is oxidized to diacetyl by alkaline -naphthol, which forms a red complex with creatinine. D. CATALASE TEST Catalase is present in most cytochrome containing aerobic and facultative anaerobic bacteria except Streptococcus spp. Hydrogen peroxide forms as one of the oxidative end product of aerobic carbohydrate metabolism. If hydrogen peroxide allowed accumulating in the bacterial cells it becomes lethal to the bacteria. Catalases help in converting H2O2 to water and oxygen. In the catalase test performed, Streptococcus spp gives negative reaction as for S. aureus, the positive reaction occurred. One of the by-products of oxidation-reduction in the presence of O2 during aerobic respiration is hydrogen peroxide (H2O2). This compound is highly reactive and must be degraded in the cytoplasm of the cell producing it. It can be especially damaging to molecules of DNA. Most aerobes synthesize the enzyme catalase, which breaks down H2O2 into water and oxygen. The O2 gas is identified by the production of bubbles from a concentrated cell suspension. The test for catalase is simple and usually very reliable. It is a major method of distinguishing between Staphylococcus (catalase positive), Streptococcus (catalase negative), and Enterococcus (catalase negative), although some strains of Enterococcus faecalis may be positive. Catalase production is generally associated with aerobic organisms, since H2O2 is a toxic by-product of aerobic growth, but not always. E. NITRATE REDUCTION TEST Nitrate reduction test basically test the ability of organism to reduce the nitrate to nitrites of free nitrogen gas. In order to determine either the bacteria can reduce nitrate, the test organism is inoculated into nitrate reduction broth, undefined medium that contains large amounts of nitrate (KNO3). After incubation, reagent added simultaneously reacts with nitrite and turn to red color, indicating a positive nitrate reduction. If there is no color change at this step, nitrite is absent. If the nitrate is unreduced and till in its original form, this would be a negative nitrate reduction result. However it is possible that the nitrate was reduced to nitrite but has been further reduced to ammonia or nitrogen gas. This would be recorded as positive nitrate reduction result. Under anaerobic conditions, some bacteria are able to use nitrate (NO3-) as an external terminal electron acceptor. This kind of metabolism is analogous to the use of oxygen as a terminal electron acceptor by aerobic organisms and is called anaerobic respiration. Nitrate is an oxidized compound and there are several steps possible in its reduction. The initial step is the reduction of nitrate (NO3-) to nitrite (NO2-). Several possible products can be made from further reduction of nitrite. Possible reduced end products include the following N2, NH3 (ammonia), N2O (nitrous oxide). Bacteria vary in their ability to perform these reactions, a useful characteristic for identification. A medium that will support growth must be used and the cells must be grown anaerobically. Growth in the presence of oxygen will decrease or eliminate nitrate reduction. There are many possible end products of nitrate reduction such as nitrite, nitrogen gas (N2), nitrous oxides, ammonia, and hydroxylamine. The disappearance of nitrate or the appearance of the end products. The test relies on the production of nitrous acid from the nitrite. This, in turn, reacts with the iodide in the reagent to produce iodine. The iodine then reacts with the starch in the reagent to produce a blue color. Since some of the possible products of NO3- reduction are gaseous, a Durham tube is sometimes inverted in the culture tube to trap gases. This being the case, it is important to pre-test the medium to ensure no detectable nitrite is present at the beginning, and, in the case of a negative test, to reduce any nitrate to nitrite to determine whether the nitrite was also reduced. If nitrite is produced, it reacts with hemoglobin to give a bright red color, instead of the dark red color of hemoglobin. It is this reaction that is responsible for the color of meats, such as hot dogs, which are preserved with sodium nitrite. The blood agar test has the advantage of no color change occurring if the nitrite is further reduced. F. UREASE TEST Urease test mainly highlighted to determine the ability of the organism to split urea forming 2 molecules of ammonia by the action of the enzyme Urease with resulting alkalinity. Negative reaction shown by E. coli meanwhile Klebsiella spp. shows positive result. Extra precaution needed because both the urease test medium depend upon the demonstration of alkalinity that not specific for urease. Moreover the protein hydrolysis may result I alkalinity hence false positive may be seen in Pseudomonas. The false positivity can be eliminated by control test using the same medium without urea as recommendation. Urea is a nitrogenous waste product of animals. Some bacteria can cleaved it to produce carbon dioxide and ammonia. The ammonia is a nitrogen source for amino acid biosynthesis as well as for synthesis of other nitrogen-containing molecules in the cell. The urease test was devised to distinguish Proteus species from other enterics. The medium described here is buffered enough so that weak urease producers appear negative. The production of ammonia raises the pH of the medium. The indicator phenol red is present in the broth. Phenol red is orange-yellow at pH below than 6. 8, and turns bright pinkish-red at pH higher than 8. 1. Hence, a positive urea test is denoted by the change of medium color from yellow to pinkish red. CONCLUSION: Based on the laboratory, different bacteria species have different abilities to metabolize various substrates and end products formed were able to be observed and distinguished.
Tuesday, October 8, 2019
Women, Sex, Role and culture Essay Example | Topics and Well Written Essays - 1250 words
Women, Sex, Role and culture - Essay Example Among the dedicated writers include Brettell and Sargent, who are inclining their work towards modern topics in anthropology. Most of their works are designed in a manner that deems appropriate for scholars at various levels of their studies. In this essay, we will appraise one significant topic within the field of anthropology, and subsequently relate Brettell and Sargentââ¬â¢s work to ideologies contained within the underlying topics. Fortunately, the writersââ¬â¢ work takes an accessible and open-ended approach in covering a subject matter. Therefore, we will have to establish an objective link between theses contained in the primary readings and that of selected essay from the two writers mentioned above. Primary Reading: Cultural Solidarity of Maasai Women In the first primary ethnographic reading, we will explore the role of gender among Maasai women in Kenya. Within the reading, the writer Llewlyn Melissa analyses two contexts of cultural solidarity observed among women in the Maasai community. The underlying thesis statement within this reading is that Maasai women have over the past decades stood in solidarity to defend their gender roles within their societies. Despite infiltration of western ideologies into Kenyan tribes, Maasai have managed to preserve their traditions to date. They are nomadic pastoralists which mean that they move from one place to another in search of water and pasture for their domestic animals, especially cattle. Fortunately, their unique culture and proximity to wildlife reserves attracts tourists and anthropologists. Currently, a small number of Maasai men and moderate women have been absorbed into white collar jobs in the tourism sector (Llewlyn 209). However, majority of Maasai women and men are still subscribing to conventional roles as contained in their cultural norms. At this juncture, it is worth acknowledging the fact that Maasai culture is a patriarchal community dominated by men. Women within the Maasai tribe enjoy minimum opportunities, and faces numerous challenges form decisions made by their communities. As a show of solidarity to their patriarchal cultures, Maasai women still believes in early and forced marriages (Llewlyn 212). Parents show little interest in education of their girl child because these girls will be married immediately after elementary school. In fact older women in the Maasai community participate joyfully in preparing their daughters for forced marriages. This shows that women in this community are in solidarity with the cultural norm of early and forced marriages of their girls. As if forced marriage was not enough, Maasai women still demonstrate cultural solidarity through female genital mutilation. This context relates to women sexuality in the society. In an effort to curb free expression of womanââ¬â¢s sexual desires, the Maasai community chooses to perform this primitive act of mutilating their girls. Unfortunately, older women are the ones at the forefr ont in organizing for these initiation ceremonies as a show of love for their culture (Llewlyn 230). In this regard, one can appreciate the fact that culture plays a significant role in influencing norms of men and women in different social settings. In this case, a strict solidarity to their culture influences Maasai women into perpetrating primitive and harmful cultural practices. Brettell and Sargent: Culture, Sexuality and the Body The excerpt on Maasai women fits with Brettell and Sargentââ¬â¢s essay on culture, sexuality and the body in inter-cultural perspective. Based on the primary reading, we acknowledged the fact that Maasai community controls sexuality of women in their societies. The aspect of early and forc
Monday, October 7, 2019
Which is the true story from the life of pi Essay
Which is the true story from the life of pi - Essay Example After sometimes, only the strong animals seem to survive in the jungle. Pi watches helplessly as the spotted hyena kills the zebra. The tiger nonetheless is amused by the act of hyena. The tiger, Richard Parker, due to his friendly nature, subsequently dispatches the orang-utan before it. Secondly, the tiger is a naturally interdependent animal in habit (Baker & Margaret 85). Pi, through his book, sets about conditioning the tiger through his appealing and rewarding behaviour. He offers the tiger food and fresh water so that the two can co-exist in the boat. Tiger and Pi remain on the verge of starvation for a few months. This was not until they realized an uncharted island, which is packed with bountiful meerkat population and fresh vegetation. After a little survival on fresh vegetables, Tiger and Pi got their way out of starvation by identifying carnivoreââ¬â¢s algae along the island (Martel 342). These algae nonetheless were acidic hence would consume them when the storm comes. Pi and tiger, therefore, took fresh vegetables and sailed away in fear of being consumed by the islandââ¬â¢s acidity. They were in Mexican coast when their lifeboat made a landfall again. These two friends were malnourished and starved at that moment. As Pi collapses on the beach, Pe ter Parker (Bengal Tiger) ungratefully walks into the jungle without glancing back at his malnourished friend. Perhaps this was in fear of the Mexican authorities or maybe a theme portraying the ungrateful nature of human beings after being helped in the times of dire needs (Martel 53). In the human story version, two different natures of tigerââ¬â¢s habits emerge. These characteristics include self-preservation and revenge. In the human version of Piââ¬â¢s tale, the cargo ship still sinks. In this scenario, the animalistic version changes when Piââ¬â¢s mother (Gita), an injured Japanese sailor, and the shipââ¬â¢s overwhelming cook join him in the boat (Martel 135). After some time, survival for the
Sunday, October 6, 2019
Position paper 7 see below Essay Example | Topics and Well Written Essays - 500 words
Position paper 7 see below - Essay Example The action to be taken should be determined by a court of law. Killing without trial is only allowed in incidences self-defense or as a necessity to save more lives. That said target killing of terrorists, in my opinion, is an immediate necessity executed with the aim of saving more lives. Therefore, the United States should be allowed to continue killing terrorist based on their intelligence. The benefit of targeted killing is that, unlike an arrest operation, there are fewer risks. For example, in U.S, targeted killing are mostly executed using an automated drone craft. According to Beckerà andà Shane (2012), among the counterterrorism tactic applicable, targeted killing has proved to be the most effective in the prevention of terror attacks. A targeted killing meant to kill a leader of a terrorist organization disrupts terrorist organizationââ¬â¢s plans to a point of collapsing. For example, killing the Gaza military commander, Salah Shehadeh, prevented six terror attacks he planned to execute in Israel. Base on the outcome of targeted killing Obamaââ¬â¢s regime has embraced the tactic as the most effective approach to eradication Al-Qaeda and Taliban members Afghanistan-Pakistan border. However, United States need make targeted killing acceptable in other countries by justifying the tactic. For instance, United States should not engage enforcement operations in a foreign country without their knowledge. Doing so is a violation of peaceful relations and international norms (Taylor, 2013). The government should come up with a set of norms that support targeted killing but upholds and acknowledge the principles of peace. Additionally, the collateral damage that comes with targeted killing need to be considered. Regardless the fear of an attack plot advancing following delays to counterattack, consideration should be given to damage expected. The government need to form policies that validate all operations
Saturday, October 5, 2019
Business in UK Essay Example | Topics and Well Written Essays - 1750 words
Business in UK - Essay Example It is one of the key options for the effective economic management. According to the British Economist, Mr. Keynes, the public spending needs to be increase when the private investment and spending is unbalanced and inadequate. There are two categories of spending, such as Capital spending and current spending. Capital spending considers spending on the physical assets, including roads, bridges, schools, and hospitals. On the other hand, current spending includes expenditure on raw materials and wages. Government describes fiscal policy by writing legislation and setting taxation level. The changes in fiscal and monetary policy can affect the businesses both directly or indirectly. The impacts are highlighted below. Fiscal policy generally engages changes in spending and taxation policies. Lower tax considers high disposable income for people and more cash to invest for business in equipments and jobs. On the other hand increasing consumption of taxes or income usually address less disposable income for people that can be decelerate the activities linked with the business (Ruddock, 116). It is evidenced that increasing ageing population and budget deficits should be addressed in order to sustain the long term business growth. Changes in the short-term interest rate generally manipulate long-term interest rates. Mortgage rate is the effective example of it. Low interest rate stands for higher disposable income for people and limited interest expense for a particular business. The combination of these two considers high business profit. High interest rate can affect the business firms as it results Lower sales and profit and higher interest expense. Changes in the interest rate have negative impact on the stock prices that can affect consumer spending. Several taxation policies have negative impacts on the business cost. For an example,
Friday, October 4, 2019
Criminological Theory Essay Example | Topics and Well Written Essays - 750 words - 3
Criminological Theory - Essay Example People consider them as the founding fathers of the classical theories because they are the ones who started enlightening the community on classical thinking. Their aim was to reduce the harshness experienced in the judicial systems during the eighteenth century. The classical theory bases its arguments on the principle of maximum pleasure and minimum pain (Gottfredson, 1990). Bentham is the main contributor to this school of thought, being a utilitarian he was interested in the well-being and happiness of the population. In classicism, punishment is for the good of the criminal. He believes that human behavior is aimed at minimizing pain and maximizing pleasure. Bentham as one of the founders of the classical theorists believes that, it is better to prevent a crime than to let a person commit a crime and then punish him. This theory advocates for a punishment that is equal to the crime committed. Classical thinking has a big impact in criminological thinking and a greater influence in criminal justice. In America and Europe, the idea of giving punishment depending on the nature of crime has created a foundation to the criminal justice systems in the modern society. Classical thinking has led to the decline of torture, use of capital punishment and corporal punishment (Baron, 2003). Over the years since the second half of eighteenth century and nineteenth century, prisons have developed, and the whole concept and idea of prison was to punish the soul and mind and not the body. This was very important in changing a personââ¬â¢s criminal behavior. One of the strengths of the classical theory is that, although it was developed long ago, it has continued to be used in the present judicial system (Baron, 2003). Deterrence as one of the elements in classical thinking helps in reducing crime rate. Classical thinking might be in great use today, but it also has its weaknesses and one of the weaknesses is that, in the
Thursday, October 3, 2019
Essay and Art Essay Example for Free
Essay and Art Essay In the essay Pablo Picasso: Living in His Own Shadow, author Ellen Goodman uses fact, emotion and personal experience to illustrate the cycles of creating and aging, living in the limelight and passing on the torch. Goodman captures the sadness and the beauty of being replaced or falling out of fame while using Picasso and his works as an example of how even the most talented of persons must succumb to limitation. Goodman makes a point that some artists graciously recognize when it is time to cease their works but others persist despite the fact that their prime has passed. According to Goodman, Pablo Picasso represents the limitations in which we all must recognize but also the beauty in rebellion and persistence. Goodman juxtaposes Picasso against many famous people who like Picasso grew old and eventually had to admit that they could no longer perform at peak performance. ââ¬Å"It is said that when Picasso was a teenager, his artist-father gave the boy his own palette, brushers and colors, and never painted again, (LoRocco Coughlin, 1995, p. 198).â⬠This actually seems to be factual. When Picasso was 13-years-old his father gave up painting admitting that his son had surpassed him in skill, (Pablo Picasso, n.d.). It is interesting that Goodman introduced the essay using this example considering the entire essay is about artists and well known figures who did not step out of the spotlight when their time was due. à ââ¬Å"We feel sad that Joe DiMaggio sells coffee makers and uncomfortable that Willie Mays ââ¬Ëstayed too long.ââ¬â¢ Few of us know how to deal with the man or woman who ââ¬Ëused to beââ¬â¢ somebody, (LoRocco Coughlin, p. 199).â⬠Goodman describes her personal feelings when reviewing Picassoââ¬â¢s work at an art exhibit. She states that although Picasso was an exceptional artist at every age his later work is lacking in many ways. Goodman uses her observations to express sympathy toward Picasso as opposed to disdain for his later works. ââ¬Å"Yet as we wandered through the last thirty years of his life, you could see it all slip. The exhibit kindly excludes the commercial peace doves and greeting card poster art of the last few years. But still, it is easy to see the versatility turning frenetic ââ¬â the search turning downhill. There is even a sense that perhaps he began to imitate himself ââ¬â not just create but to create ââ¬ËPicasso,ââ¬â¢ (LoRocco Coughlin, p. 198).â⬠In essence Goodman shows contempt for Joe DiMaggio and Willie Mays yet for Picasso Goodman expresses a sense of being perplexed and full of wonder, similar to her response to other artists including Frank Sinatra and Tennessee Williams. ââ¬Å"It is something I have thought before. Iââ¬â¢ve though of it whenever Tennessee Williams turns up in the news, alive but rarely well, writing poorly in comparison to his own brilliant retrospectives. Iââ¬â¢ve thought of it when Frank Sinatra goes on stage, all blue eyes and strained vocal cords. They are pale versions of themselves, (LoRocco Coughlin, p. 198).â⬠But was Picasso a ââ¬Å"pale versionâ⬠of himself? According to Goodman there was a sense of grace and rebellion in the fact that Picasso worked until his death. ââ¬Å"There is something, not sad but remarkable, in this refusal to ââ¬Ëact his age,ââ¬â¢ or retire gracefully. Surrounded by his own collection of his favorite cubist work, he must have known his limits. But out of compulsion or conviction he kept working.â⬠It is true that Picasso worked rigorously until his death. ââ¬Å"Death holds no fear for me,ââ¬â¢ Picasso recently told a friend. ââ¬ËIt holds a kind of beauty. What I am afraid of is falling ill and not being able to work. Thatââ¬â¢s lost time, (Time, 1973, à ¶ 1).â⬠Picasso, as opposed to Mays and DiMaggio, did not work to make extra funds doing something which reminds us of their failing talents, like sell coffeemakers, Picasso worked to work. He created for the enjoyment of creating. His final work may have been pale in comparison to the masterpieces of his youth but as Goodman points out everything in life pales in comparison with youth. ââ¬Å"Living in your own shadow is a problem of aging athletes and beautiful women and artists and actors and, to an extent, all of us, (LoRocco Coughlin, 1995, p. 198).â⬠Goodmanââ¬â¢s experience at the exhibit for Picassoââ¬â¢s art left her contemplating what it would be like to find oneself living in a world where the past constantly haunts the present. She expresses the sadness of this by using examples of other artists and athletes who have made history and then faced limitations. But living with ones past is part of life and the limitations associated with aging do not have to be stifling. ââ¬Å"Creation,ââ¬â¢ Picasso said. ââ¬ËIs the only thing that interests me, (LoRocco Coughlin, 1995, p. 199).â⬠This statement must have been true for Picasso, who spent his entire life creating despite the fact that his later years are not defined as his most influencial in terms of artistic expression. References LoRocco, C., Coughlin, J. (1995). The Art of Work: An Anthology of Workplace Literature (1st Edition ed.). : Glencoe/McGraw Hill. Pablo Picasso. (n.d.). Retrieved Jan. 4, 2009, from Wikipedia: www.wikipedia.com Time, H. (1973, April 23, 1973). Pablo Picassoââ¬â¢s Last Days and Final Journey. Time Magazine, .
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