Tropical Agricultural Research and Extension is a peer-reviewed international scientific journal covering a wide range of subject areas in tropical and subtropical agriculture published quarterly by the Faculty of Agriculture, University of Ruhuna, Sri Lanka. The journal is also available on the Faculty of Agriculture, University of Ruhuna website https://www.agri.ruh.ac.lk/tare/index.htm .
Atmospheric carbon dioxide conditions predicted for future climates cause increases in wheat biomass, but also decreases wheat grain protein concentration. We investigated the response of grain protein concentration of wheat to elevated carbon dioxide in nineteen wheat genotypes, including five tetraploid, eleven hexaploid and three synthetic hexaploid genotypes to test whether decreased grain protein is genotype dependent and whether it is caused by biomass dilution. These were grown in ambient and elevated carbon dioxide conditions simultaneously. Shoot biomass and grain samples were taken at maturity. The grain protein concentration, grain biomass, shoot biomass and harvest index were analysed for each genotype. Despite most genotypes increasing in total grain protein (g), the majority of genotypes decreased in grain protein concentration (%) under elevated carbon dioxide. Elevated carbon dioxide caused an increase in grain biomass for all genotypes and total shoot biomass for most genotypes, with harvest index increasing for all genotypes except the two synthetic hexaploids CPI133814 and CPI133811. Most of the differences between wheat types were not statistically significant, suggesting that the individual genotype of wheat plants determines the response to elevated carbon dioxide rather than the wheat type.
Phytate in poultry rations containing rice bran (RB) critically reduce poultry performance while increasing N and P excretion. The objective of this study was to determine whether the anti-nutritive problems associated with higher inclusions of rice bran in poultry rations (up to 40%) could be mitigated with mega doses of phytase. Twenty days old male broiler chicks (n=180) in 60 floor pens were fed on 10 dietary combinations of a completely randomized factorial design (2×5). Two dietary rice bran (RB) levels (20 or 40%) and five levels (0, 1000, 2000, 3000 and 4000 FTU/kg diet) of phytase (Natuphos 500) were main factors. Cage-wise daily feed/water intakes and body weights on day 28, 35 and 42 were determined. Weekly and total weight gain and feed conversion ratio were determined. Cr2O3 mixed diets were fed from day 35 to determine illeal digestibility of crude protein, phosphorus (P) and dry matter. On day 42, following a 12-hour fast, two birds from each pen were humanely slaughtered to determine visceral organ weights. Fat free tibia ash contents and latency-to-lie test done on day 28, 35 and 42 were used as bone parameters. Growth performance parameters were not enhanced significantly due to mega doses of phytase. Negative effects like body weight reductions affected latency to lie time increments and further confirmed by insignificancy of tibia ash increments. Phytase significantly improved the crude protein digestibility. The optimum levels of phytase for the best crude protein digestibility with 20% and 40% dietary rice bran were 3000 and 4000 FTU/kg, respectively. Digestibility values of P and dry matter also affected. Supplementation of mega doses of phytase improved illeal crude protein digestibilities but not growth performances and bone status. Mega doses of phytase did not mitigate the adverse effects of 40% rice bran included broiler diets.
Objective High NH3 emissions from poultry houses are reported to have negative impacts on health, welfare and safety of birds and humans, and on the environment. Objective of the present study was to determine the effects of two litter amendments on the NH3 levels in broiler closed houses under hot-humid conditions. Methods Giving a completely randomize design, nine closed houses, each housed 32,500 birds on paddy husk litter, were randomly allocated into two treatment (Mizuho; a bacterial culture mix and Rydall OE; an enzymatic biocatalyst) and control groups. NH3 levels were determined thrice a day (0600, 1200, and 1800 h), at three heights from the litter surface (30, 90, and 150 cm), at 20 predetermined locations of a house, from day 1 to 41. Results Rydall significantly reduced the NH3 level compared to control and Mizuho. NH3 levels at 30 cm were significantly higher than that of 90 and 150 cm. The NH3 levels at 30 cm height were higher than 25 ppm level from day 9, 11, and 13 in Mizuho, control, and Rydall groups, respectively to day 41. NH3 levels at 150 cm height were higher than maximum threshold limit of 50 ppm for human exposure from day 12, 14, and 15 in Mizuho, control, and Rydall groups, respectively to day 33. Being significantly different among each other, the NH3 level was highest and lowest at 0600 and 1800 h. Litter amendments had no significant effects on growth performance. Rydall significantly increased the litter N content on day 24. Conclusion It was concluded that the NH3 levels of closed house broiler production facilities under tropical condition are so high that both birds and workers are exposed to above recommended levels during many days of the growing period. Compared to microbial culture, the enzymatic biocatalyst was found to be more effective in reducing NH3 level.
Curry leaves are extremely popular in various culinary recipes in the Indian subcontinent at acts flavor and aroma to vegetables and curries. Crash curry leaves are shiny and dark green in color and have a distinctive aroma and taste to it. Curry leaves recipe involved the use of fresh curry is as well as powdered curry leaves to enhance the flavor of salads, chutneys and spices. The health benefits of curry leaves include improved functioning of the small intestine and stomach, improved quality of digestive juices during digestion, and increased salivary secretion. Most Indian dishes are devoid without the addition of curry leaves and hence any form of curry substitute in its place does not match to the real thing. In beverage shops can be prepared curry leaf congee for morning for good health. Essential oils from Murraya koenigii serves as an important part in soap making ingredients, perfume industry, lotions, massage oils, diffusers, potpourri, air fresheners, body fragrance, perfume oils, aromatherapy products, bath oils, towel scenting, spa's, incense, facial steams and hair treatments. As beverages can be produced syrups, cordials and flavored tea. There are possibility to produce biscuits, bites (murukku) and other bread products using curry leaves. Western countries prone to Ayurwedic medicines now days, so it has potential to produce balms, inhalers, oils and etc. This review considers future potential of curry leaves. K eywords : Curry leaves, essential oils, sambole
Objective To investigate the struvite precipitation under constant and non-constant pH conditions and to test a stainless steel device Under different operating regimes to maximize the recovery of struvite. Methods The molar ratio of NH4+: Mg2+: PO43- Wits adjusted to 1: 1.2: 1.2 and pH was elevated to 9.0. The absorbance measurement wits used to trace the process of struvite crystallization. Wastewater and precipitate analysis was done by standard analytical methods. Results The pH constant experiment reported a significantly higher struvite precipitation (24.6 +/- 0.86 g) than the non-constant pH experiment (19.8 +/- 1.86 g). The SAR ranged from 5.6 to 8.2 g m(-2) h(-1) to 3.6-4.8 g m(-2) h(-1) in pH constant and non-constant experiments, respectively. The highest struvite deposit on the device was found in regime 3 followed by in regimes 2 and 4. The highest PO43- (97.2%) and NH4+ (71 %) removal was reported in the RI regime. None of the influent Cu2+ or Zn2+ was precipitated oil the device. Conclusion A higher struvite Yield is evident in pH constant experiments. Moreover, the stainless steel device facilitates the isolation of heavy metal free pure (around 96%) struvite from swine waste biogas digester effluent contaminated with cu(2+) and Zn2+ and the highest yield is attainable with the device operating at 50 rpm with agitation by a magnetic stirrer.
Oxygen availability in landfill cover soil is a major limitation to the growth and activity of methanotrophs as methane oxidation is an aerobic microbial process. Plants tolerant to high concentrations of landfill gas (LFG) may play an important role in improving methane oxidation within landfill cover soil and reducing emission of methane, a greenhouse gas, from it. In this study, the effect of an LFG tolerant plant Chenopodium album L. on methane oxidation activity (MOA) and bacterial community composition in landfill cover soil was investigated. Soil samples from four simulated lysimeters with and without LFG and plant vegetation were taken at 4 stages during the plant's development cycle. Results showed that the total number of culturable bacteria in soil could be significantly increased (P<0.05) by the growth of C. album. The total number of methanotrophs and MOA in soils with LFG was significantly higher (P<0.05) than in soils without LFG on sampling days 90, 150 and 210. The total number of methanotrophs and MOA in lysimeters with LFG added increased in the presence of C. album when the plant entered the seed setting stage. Polymerase chain reaction and denaturing gradient gel electrophoresis (PCR-DGGE) gel patterns of 16S rDNA gene fragment and band sequencing analyses showed apparent differences in soil bacterial communities in the presence of LFG and plant vegetation. Members of the genus Methylosarcina were found to be the active and dominant methanotrophs in rhizosphere soil of C. album with LFG, while Methylococcus, Methylocystis, and Methylosinus were the primary methanotroph genera in LFG soil without C. album. Thus, C. album appears to select for specific methanotrophic bacteria in the presence of LFG. Soil MOA and microbial diversity can also be significantly affected by the presence of this plant.
OBJECTIVE:To investigate the feasibility of nitrogen and phosphorus recovery from swine waste biogas digester effluent and the effects of pH and NH4+: Mg2+: PO4(3-) molar ratio on its precipitation.METHODS:Precipitation experiments with swine waste biogas digester effluent were conducted at pH 7.5, 8.0, 8.5, and 9.0 together with NH4+: Mg2+: PO4(3-) molar ratios 1: 0.2: 0.08, 1: 1: 1, and 1: 1.5: 1.5. Chemical and X-ray diffraction (XRD) analysis were done to determine the composition of the precipitate.RESULTS:The highest removal and recovery of NH4+ and PO4(3-) were achieved at pH 9.0 in each experiment. The elevation of pH to 9.0 alone could decrease the initial PO4(3-) concentration from 42 mg L(-1) to 4.7 mg L(-1) and 89.2% PO4(3-) recovery was achieved. The pH-molar ratio combination 9.0-1: 1.5: 1.5 effected 76.5% NH4+ and 68.5% PO4(3-) recovery. The molar ratio of 1: 1: 1 together with pH elevation to 9.0 was determined to be the optimum combination for both NH4+ and PO4(3-) removal as it recovered over 70% and 97% of the initial NH4+ and PO4(3-), respectively.CONCLUSIONS:Nitrogen and phosphorus can be recovered from biogas digester effluent as struvite.
The effects of manganese (Mn) on the growth and Mn-induced changes in nutrients uptake and translocation in Mn hyperaccumulator Phytolacca acinosa was investigated in this study. Results showed that high Mn (5000 mu M) in culture solution lead to typical Mn toxicity symptoms in leaves of P acinosa and decrease of dry matter accumulation in shoots whereas there are no obvious toxicity symptoms and significant decrease of dry weight in roots. Manganese accumulation in roots, stems, and leaves increased with the increment of Mn concentration at the medium level. Calcium (Ca), magnesium (Mg), and iron (Fe) concentration in organs of P acinosa decreased as the Mn concentration in the nutrient solution increased, but the Ca and Mg concentrations were still at a normal level and the Fe concentration at a sufficient level when compared with the normal plants. The Zn concentration affected by higher Mn level occurred only in roots of P acinosa and the P concentration affected only in stems, whereas there were no significant influences of excess Mn on the potassium (K) and copper (Cu) concentration in organs of P. acinosa.
The distribution and mobility of manganese (Mn) in the hyperaccumulator plant species Phytolacca acinosa Roxb. (Phytolaccaceae) were investigated in a hydroponic system. The plants were exposed to 2 or 5 mM Mn for up to 28 days. For any given plant, the Mn content in the mature leaves (nos. 5–9) was always higher than that in the old (nos. 1–4) and young leaves (nos. 10–14). Within the different parts of a leaf, Mn was preferentially accumulated in the leaf marginal area, where the observed level was threefold higher than that in the midrib. Cross-sectional analysis of the leaf revealed that the concentration of Mn was higher in the leaf epidermis than in the mesophyll. Cell fractionation analysis with P. acinosa leaves showed that most of the Mn (78.4%) was present in the final supernatant fraction (following centrifugation at 20,000 g for 45 min). The distribution of Mn in the leaves of P. acinosa was controlled mainly by the transpiration rate. Our investigation demonstrated that Mn was readily transported from the roots to shoots of P. acinosa but that it could not be remobilized readily after it reached leaves.