| Literature DB >> 26716825 |
Ludy Keino1, Frederick Baijukya2, Wilson Ng'etich1, Abigael N Otinga1, John R Okalebo1, Ruth Njoroge1, John Mukalama3.
Abstract
Low soybean yields in western Kenya have been attributed to low soil fertility despite much work done on nitrogen (N) and phosphorus (P) nutrition leading to suspicion of other nutrient limitations. To investigate this, a nutrient omission trial was set up in the greenhouse at the University of Eldoret-Kenya to diagnose the nutrients limiting soybean production in Acrisols from Masaba central and Butere sub-Counties, and Ferralsols from Kakamega (Shikhulu and Khwisero sub-locations) and Butula sub-Counties and to assess the effect of liming on soil pH and soybean growth. The experiment was laid out in a completely randomized design with ten treatments viz; positive control (complete), negative control (distilled water), complete with lime, complete with N, minus macronutrients P, potassium (K), calcium (Ca), magnesium (Mg) and sulphur (S) and with, micro-nutrients boron (B), molybdenum (Mo), manganese (Mn), copper (Cu) and zinc (Zn) omitted. Visual deficiency symptoms observed included interveinal leaf yellowing in Mg omission and N addition and dark green leaves in P omission. Nutrients omission resulted in their significantly low concentration in plant tissues than the complete treatment. Significantly (P≤ 0.05) lower shoot dry weights (SDWs) than the complete treatment were obtained in different treatments; omission of K and Mg in Masaba and Shikhulu, Mg in Khwisero, K in Butere and, P, Mg and K in Butula. Nitrogen significantly improved SDWs in soils from Kakamega and Butula. Liming significantly raised soil pH by 9, 13 and 11% from 4.65, 4.91 and 4.99 in soils from Masaba, Butere and Butula respectively and soybean SDWs in soils from Butere. The results show that, poor soybean growth was due to K, Mg and P limitation and low pH in some soils. The results also signify necessity of application of small quantities of N for initial soybean use.Entities:
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Year: 2015 PMID: 26716825 PMCID: PMC4696802 DOI: 10.1371/journal.pone.0145202
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Location and characteristics of the sites where experimental soils were sampled from.
| Site | Sub-location | District | Latitude | Longitude | Altitude (m asl) | Soil type | Average Rainfall and temperature (per annum) |
|---|---|---|---|---|---|---|---|
| Masaba Central | Masaba | Butere | 0340 27’ 38.2”E | 000 11’59.9”N | 1331 | Chromic Acrisols | 1685–1882 mm, 13.9–30.2°C |
| Kakamega | Khwisero | Kakamega south | 0340 40’ 20.4”E | 000 12’ 26.0” N | 1488 | Ferralo-humic Acrisols | 1730–1929 mm, 14.1–27.1°C |
| Kakamega | Shikhulu | Kakamega South | 0340 40’ 05.4” E | 000 12’ 14.6” N | 1508 | Ferralo-humic Acrisols | 1730–1929 mm, 14.1–27.1°C |
| Butere | Emutsatsa | Butere | 0340 27’ 56.9” E | 000 11’ 51.35” N | 1344 | Chromic Acrisols | 1685–1882 mm, 13.9–30.2°C |
| Butula | Bukhalalire | Butula | 0340 16’ 48.9” E | 000 19’ 11.8” N | 1219 | Rhodic Ferrasols | 1790–2016 mm, 15.8–28.6°C |
All the sites were under the humid lower midland zones Source:[20]
Physico- chemical properties of the soils used in the experiment.
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| 4.65 | 5.08 | 4.99 | 4.91 | 4.99 |
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| 0.13 | 0.24 | 0.20 | 0.13 | 0.15 |
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| 4.43 | 7.27 | 4.58 | 2.11 | 6.18 |
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| 1.50 | 3.13 | 2.59 | 1.25 | 1.58 |
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| 11.53 | 13.04 | 12.95 | 9.62 | 10.53 |
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| 0.16 | 0.18 | 0.17 | 0.10 | 0.16 |
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| 1.10 | 4.34 | 3.22 | 1.03 | 2.49 |
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| 0.51 | 1.70 | 0.93 | 0.39 | 0.98 |
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| 54 | 48 | 52 | 60 | 58 |
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| 30 | 32 | 32 | 18 | 24 |
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| 16 | 20 | 16 | 22 | 14 |
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| Sandy clay loam | Sandy clay loam | Sandy clay loam | Sandy loam | Sandy clay loam |
aVario max CN[47]
bFox and Kamprath[48]
c ICP-OES (Perkin Elmer, Inc.)
d Based on Stokes law
Nutrient salts and rates used to prepare nutrient solutions.
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| Ca(NO3)2.4H2O/NH4NO3/ CaCl2.2H2O | N = 7.5 |
| Ca = 2.5 | ||
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| H3PO4 | P = 0.5 |
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| MgSO4/K2SO4 | Mg = 1 |
| SO4 - = 1 | ||
| K = 3 | ||
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| H3BO3 | 7.13 |
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| Na2MoO4-2H2O | 0.01 |
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| ZnSO4 | 0.96 |
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| CuSO4 | 1.04 |
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| MnCl2 | 7.4 |
Source:[49]; modified from Hoagland solution[22].
Treatments used in the experiment.
| No. | Treatments | Macro-nutrients | Micro-nutrients | Lime | |||||
|---|---|---|---|---|---|---|---|---|---|
| N | P | K | Mg | Ca | S | ||||
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| Complete | - | + | + | + | + | + | + | - |
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| Complete plus lime | - | + | + | + | + | + | + | + |
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| Control | - | - | - | - | - | - | - | - |
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| P omitted | - | - | + | + | + | + | + | - |
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| Complete plus N | + | + | + | + | + | + | + | - |
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| K omitted | - | + | - | + | + | + | + | - |
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| Mg omitted | - | + | + | - | + | + | + | - |
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| Ca omitted | - | + | + | + | - | + | + | - |
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| S omitted | - | + | + | + | + | - | + | - |
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| Micro-nutrients omitted | - | + | + | + | + | + | - | - |
KEY: + (Nutrient included in the nutrient solution)—(Nutrient omitted from nutrient solution)
Fig 1Illustration of the set up of the double pot experiment.
Fig 2Nutrient deficiency symptoms noted during plant growth.
(A) Mg deficiency in plus nitrogen treatment in Ferralsols from Kakamega (Shikhulu Sub-location), (B) K deficiency in minus K treatments in Ferralsols from Kakamega (Shikhulu sub-location), (C) P deficiency in minus magnesium treatments in Ferralsols from Butula, (D) Micro-nutrient deficiencies in minus micro-nutrient treatments in Acrisols from Masaba Central.
Fig 3Soybean plants at the time of harvest.
(E) Plants growing on complete nutrient solution on different soils, (F) Plants growing on minus calcium nutrient solution on different soils, (G) Plants growing on different nutrient treatments in Ferralsols from Kakamega (Shikhulu sub-location). Compl–complete treatment, MN- minus micro-nutrients.
Fig 4Scorching and necrosis of leaves in nitrogen added treatments in Acrisols from Masaba central.
Effects of the different treatments on shoot nutrient concentrations across the different soils.
| Treatments | %P | %N | %Mg | %K | %Ca | B (ppm) | Cu (ppm) | Mn(ppm) | Zn (ppm) |
|---|---|---|---|---|---|---|---|---|---|
| Control | 0.15a | 2.51ab | 0.34b | 0.83a | 0.68b | 24.90a | 3.32ab | 428a | 49.40cd |
| Minus Ca | 0.30ab | 2.30ab | 0.38b | 1.99b | 0.39a | 26.52a | 1.88a | 410a | 31.56a |
| Minus K | 1.42e | 2.96b | 0.59c | 1.18a | 1.68e | 42.56e | 5.52d | 545a | 64.5e |
| Minus Mg | 1.40e | 2.95b | 0.24a | 2.99d | 1.56de | 50.30f | 4.95bcd | 459a | 59.84de |
| Minus micro-nutrients | 0.83d | 2.04ab | 0.39b | 2.49bcd | 1.40d | 28.84ab | 3.16ab | 409a | 32.68a |
| Minus P | 0.21a | 2.78ab | 0.36b | 2.01b | 0.93c | 32.46bcd | 3.14ab | 476a | 43.58abc |
| Minus S | 0.66cd | 1.98a | 0.38b | 2.26bc | 1.40d | 33.94bcd | 3.44abc | 430a | 34.98ab |
| Plus nitrogen | 0.52bc | 4.06c | 0.35b | 2.60cd | 1.04c | 30.54abc | 5.25cd | 436a | 40.62abc |
| Complete | 0.79d | 2.15ab | 0.40b | 2.46bc | 1.45d | 34.92cd | 4.33bcd | 387a | 46.86bc |
| Complete plus lime | 0.74cd | 2.22ab | 0.36b | 2.27bc | 1.58de | 37.32de | 3.58abc | 156a | 35.70ab |
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| 0.703 | 2.6 | 0.3772 | 2.107 | 1.211 | 34.23 | 3.86 | 414 | 44 |
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| 0.1293 | 0.468 | 0.0378 | 0.252 | 0.0934 | 2.836 | 0.951 | 172.9 | 6.24 |
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| < .001 | 0.002 | < .001 | < .001 | < .001 | < .001 | 0.011 | NS | < .001 |
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| 29.1 | 28.5 | 15.8 | 18.9 | 12.2 | 13.1 | 39 | 66.1 | 22.5 |
Similar letters in each column shows non-significant difference to fisher’s protected LSD (P ≤ 0.05). conc.–concentration.
Root dry weights (g/plant) for the different treatments in soils from different sites.
| Treatments | Masaba | Kakamega 1 | Kakamega 2 | Butere | Butula | Across soils |
|---|---|---|---|---|---|---|
| Control | 0.11a | 0.16b | 0.14bc | 0.09b | 0.14bc | 0.13bc |
| Minus Ca | 0.11a | 0.15ab | 0.15bc | 0.14cd | 0.18cd | 0.15c |
| Minus K | 0.08a | 0.15ab | 0.08a | 0.04a | 0.06a | 0.08a |
| Minus Mg | 0.10a | 0.11a | 0.10ab | 0.14cd | 0.09ab | 0.11b |
| Minus MN | 0.18b | 0.23d | 0.18cd | 0.21e | 0.17cd | 0.19de |
| Minus P | 0.18b | 0.21cd | 0.24e | 0.12bcd | 0.18cd | 0.18d |
| Minus S | 0.20b | 0.22cd | 0.19cde | 0.21e | 0.18cd | 0.20de |
| Plus N | 0.08a | 0.18bc | 0.23e | 0.11bc | 0.16c | 0.15c |
| Complete | 0.19b | 0.24d | 0.23de | 0.16d | 0.23d | 0.21e |
| Complete+Lime | 0.25c | 0.21cd | 0.19cde | 0.26f | 0.16c | 0.21e |
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| < .001 | < .001 | < .001 | < .001 | < .001 | < .001 |
| S.E.D | 0.0286 | 0.02201 | 0.02769 | 0.217 | 0.0295 | 0.0128 |
| % CV | 27.2 | 16.9 | 22.8 | 21.1 | 26.9 | 25.2 |
Similar letters in each column shows non-significant difference to fisher’s protected LSD (P ≤ 0.05). Means are compared between the different treatments within the same soil (along the column). MN–micronutrients. Kakamega1 (Khwisero sub-location), Kakamega2 (Shikhulu sub-location)
Shoot dry weights (g/plant) for the different treatments in soils from the different sites.
| Treatments | Masaba | Kakamega 1 | Kakamega 2 | Butere | Butula | Across soils |
|---|---|---|---|---|---|---|
| Control | 0.28b | 0.38ab | 0.41ab | 0.22a | 0.38bc | 0.33bc |
| Minus Ca | 0.37bc | 0.68cd | 0.57cd | 0.56de | 0.64f | 0.56ef |
| Minus K | 0.16a | 0.49abc | 0.28a | 0.15a | 0.20a | 0.25a |
| Minus Mg | 0.29b | 0.33a | 0.29a | 0.25ab | 0.29ab | 0.29ab |
| Minus MN | 0.41cd | 0.70d | 0.48bc | 0.49cd | 0.43bcd | 0.50de |
| Minus P | 0.41cd | 0.40ab | 0.45bc | 0.28ab | 0.38bc | 0.38c |
| Minus S | 0.43cd | 0.62cd | 0.48bc | 0.48cd | 0.48cde | 0.50d |
| Plus N | 0.42cd | 1.01e | 1.06e | 0.37bc | 0.86g | 0.74g |
| Complete | 0.52de | 0.57bcd | 0.59cd | 0.37bc | 0.57def | 0.52de |
| Complete+Lime | 0.61e | 0.54bcd | 0.64d | 0.63e | 0.61ef | 0.61f |
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| < .001 | < .001 | < .001 | < .001 | < .001 | < .001 |
| S.E.D | 0.0577 | 0.0981 | 0.0695 | 0.0685 | 0.0702 | 0.0330 |
| % CV | 20.9 | 24.3 | 18.7 | 25.5 | 20.5 | 22.2 |
Similar letters in each column shows non-significant difference to fisher’s protected LSD (P ≤ 0.05). Means are compared between the different treatments within the same soil (along the column). MN–micronutrients. Kakamega1 (Khwisero sub-location), Kakamega2 (Shikhulu sub-location)
Percent nutrient sufficiency quotients for different treatments and site combination based on shoot dry weights.
| Kakamega | |||||
|---|---|---|---|---|---|
| SITE/TREATMENT | Masaba | Khwisero | Shikhulu | Butere | Butula |
| Control | 42 | 85 | 74 | 42 | 96 |
| Minus Ca | 85 | 97 | 113 | 79 | 94 |
| Minus K | 18 | 64 | 48 | 1 | -4 |
| Minus Mg | 35 | 28 | -1 | 50 | 30 |
| Minus MN | 69 | 126 | 77 | 124 | 92 |
| Minus P | 68 | 68 | 71 | 49 | 82 |
| Minus S | 78 | 122 | 91 | 86 | 106 |
| Plus N | 61 | 178 | 145 | 115 | 110 |
| Complete | 100 | 100 | 100 | 100 | 100 |
| Complete plus lime | 83 | 82 | 84 | 129 | 112 |
Kakamega1 (Khwisero sub-location), Kakamega2 (Shikhulu sub-location)
Effects of the different treatments on soil pH of the soils from different sites.
| Treatments | Masaba | Kakamega1 | Kakamega2 | Butere | Butula | Across soils |
|---|---|---|---|---|---|---|
| Control | 4.55a | 5.12a | 5.16a | 4.81a | 5.13b | 4.95bc |
| Minus Ca | 4.56a | 5.25a | 5.14a | 5.12b | 5.03b | 5.02c |
| Minus K | 4.60a | 5.12a | 5.09a | 4.80a | 5.05b | 4.93bc |
| Minus Mg | 4.67a | 5.19a | 5.06a | 4.85a | 5.20bc | 4.99c |
| Minus MN | 4.68a | 5.05a | 4.75a | 4.91ab | 4.98b | 4.87b |
| Minus P | 4.70a | 5.13a | 4.91a | 4.97ab | 4.91ab | 4.92bc |
| Minus S | 4.66a | 5.06a | 5.13a | 4.84a | 4.96ab | 4.93bc |
| Plus N | 4.54a | 5.02a | 4.81a | 4.78a | 4.63a | 4.75a |
| Complete | 4.64a | 5.14a | 5.18a | 4.89a | 4.91ab | 4.95bc |
| Plus lime | 5.07b | 5.30a | 5.24a | 5.41c | 5.53c | 5.31d |
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| 0.0882 | 0.1081 | 0.1728 | 0.0974 | 0.1543 | 0.0576 |
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| 0.005 | NS | NS | 0.002 | 0.013 | < .001 |
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| 1.9 | 2.1 | 3.4 | 2 | 3.1 | 2.6 |
Statistical analysis and treatment comparisons done per soil (along the column). Means followed by the same letter are not significantly different (LSD, P ≤ 0.05) MN–micronutrients. Kakamega1 (Khwisero sub-location), Kakamega2 (Shikhulu sub-location)