Citation: | WANG Yan, HAN Miao, XIONG Zi-yi, GUO Tao. Influence of arbuscular mycorrhizal fungus on the antagonistic action of zinc and phosphorus in maize[J]. Journal of Plant Nutrition and Fertilizers, 2018, 24(1): 279-284. DOI: 10.11674/zwyf.16438 |
Improving Zn utilization efficiency for crops using arbuscular mycorrhizal symbiosis is one of the effective ways for alleviating the antagonism of zinc and phosphorus. It is well established that simultaneous application of Zn and phosphorus (P) fertilizers has antagonistic effects on plant Zn uptake. Arbuscular mycorrhizas (AM) can improve plant Zn and P uptake. We conducted screenhouse experiment to test the effect of different levels of P in conjunction with mycorrhizal colonization on plant nutrition and biomass.
A pot experiment was conducted with maize as the host plants in soil and three levels of phosphorus (0, 200 and 400 mg/kg), two levels of zinc (0 and 5 mg/kg) application, which included inoculation and inoculation. A total of 12 treatments were designed with 4 replicates. Plant biomass, Zn and P contents, mycorrhizal colonization after fifty days were measured.
Colonization by AMF and the application of phosphorus increased maize plant biomass significantly. Under the condition of no zinc application, the biomass of shoots and roots of maize were respectively increased by 6.67 times and 9.30 times when the application of phosphorus increased from 0 to 400 mg/kg, no matter inoculating AMF or not. When supplying zinc 5 mg/kg and P 200 mg/kg, the mycorrhizal inoculation increased the uptake and concentration of phosphorous in maize roots by 110% and 55% respectively, increased zinc uptake in roots and shoots by 71% and 68% respectively. Without Zn application, the zinc contents of maize plants were gradually decreased with the increasing of P application levels. When P application level was increased from 0 mg/kg to 200 mg/kg, the Zn content in maize shoot was decreased by 36%, while that was increased by 35% after the inoculation of AM fungi. When the phosphorus application level was as high as 400 mg/kg, inoculation of AM fungi was unable to influence the contents of Zn and P in maize plants significantly.
Mycorrhizal inoculation could relief the antagonistic effect of phosphorus on zinc uptake of maize to some extent.
[1] |
Alloway B J, Baumgarten A, Steinnes E, et al. Soil factors associated with zinc deficiency in crops and humans [J]. Environmental Geochemistry and Health, 2009, 31(5): 537–548.
|
[2] |
Prasad R. Zinc biofortification of food grains in relation to food security and alleviation of zinc malnutrition [J]. Current Science, 2010, 98(10): 1300–1304.
|
[3] |
Sadeghzadeh B, Rengel Z. Zinc in soils and crop nutrition [M]. Wiley-Blackwell, 2011. 335–375.
|
[4] |
Cakmak I. Enrichment of cereal grains with zinc: Agronomic or genetic biofortification? [J]. Plant and Soil, 2008, 302(1): 1–17.
|
[5] |
Gao X P, Akhter F, Tenuta M, et al. Mycorrhizal colonization and grain Cd concentration of field–grown durum wheat in response to tillage, preceding crop and phosphorus fertilization [J]. Journal of the Science of Food and Agriculture, 2010, 90(5): 750–758.
|
[6] |
Macdonald G K, Bennett E M, Potter P A, et al. Agronomic phosphorus imbalances across the world's croplands [J]. Proceedings of the National Academy of Sciences of the United States of America, 2011, 108(7): 3086–3091.
|
[7] |
Li H, Huang G, Meng Q, et al. Erratum to: Integrated soil and plant phosphorus management for crop and environment in China. A review [J]. Plant and Soil, 2013, 349(1): 157–167.
|
[8] |
Abbott L K, Robson A D. Factors influencing the occurrence of vesicular–arbuscular mycorrhizas [J]. Agriculture Ecosystems and Environment, 1991, 35(2/3): 121–150.
|
[9] |
Jansa J, Mozafar A, Frossard E. Long-distance transport of P and Zn through the hyphae of an arbuscular mycorrhizal fungus in symbiosis with maize [J]. Agronomie, 2003, 23(5/6): 481–488.
|
[10] |
Lehmann A, Veresoglou S D, Leifheit E F, et al. Arbuscular mycorrhizal influence on zinc nutrition in crop plants – A meta–analysis [J]. Soil Biology & Biochemistry, 2014, 69: 123–131.
|
[11] |
Watts–Williams S J, Smith F A, Mclaughlin M J, et al. How important is the mycorrhizal pathway for plant Zn uptake? [J]. Plant and Soil, 2015, 390(1/2): 157–166.
|
[12] |
Marschner H. Mineral nutrition of higher plants [J]. Journal of Ecology, 1995, 76(4): 681–861.
|
[13] |
Phillips J M, Hayman D S. Improved procedures for clearing roots and staining parasitic and vesicular–arbuscular mycorrhizal fungi for rapid assessment of infection [J]. Transactions of the British Mycological Society, 1970, 55: 158–163.
|
[14] |
Giovannetti M, Mosse B. Evaluation of techniques for measuring vesicular arbuscular mycorrhizal infection in roots [J]. New Phytologist, 1980, 84(3): 489–500.
|
[15] |
鲁如坤. 土壤农业化学分析方法 [M]. 北京:中国农业科技出版社, 2000. 312–314.
Lu R K. Methods of soil and agro-chemistry analysis [M]. Beijing: China Agricultural Science Technology Press, 2000, 312–314.
|
[16] |
Ova E A, Kutman U B, Ozturk L, et al. High phosphorus supply reduced zinc concentration of wheat in native soil but not in autoclaved soil or nutrient solution [J]. Plant and Soil, 2015, 393(1): 147–162.
|
[17] |
陈梅梅, 陈保冬, 王新军, 等. 不同磷水平土壤接种丛枝菌根真菌对植物生长和养分吸收的影响[J]. 生态学报, 2009, 29(4): 1980–1986.
Chen M M , Chen B D , Wang X J, et al. Influences of arbuscular mycorrhizal fungi (AMF) on the growth and ecological stoichiometry of clover and ryegrass grown in monoculture or in mixture at different phosphorus (P) levels [J]. Acta Ecologica Sinca, 2009, 29(4): 1980–1986.
|
[18] |
冯固, 张福锁, 李晓林, 等. 丛枝菌根真菌在农业生产中的作用与调控[J]. 土壤学报, 2010, 47(5): 995–1004.
Feng G, Zhang F S, Li X L, et al. Functions of arbuscular mycorrhizal fungi in agriculture and their manipulation [J]. Acta Pedologica Sinica, 2010, 47(5): 995–1004.
|
[19] |
Watts–Williams S J, Cavagnaro T R. Uptake of zinc and phosphorus by plants is affected by zinc fertiliser material and arbuscular mycorrhizas [J]. Plant and Soil, 2014, 376(1): 165–175.
|
[20] |
Chen B, Jakobsen I. Mycorrhiza and root hairs in barley enhance acquisition of phosphorus and uranium from phosphate rock but mycorrhiza decreases root to shoot uranium transfer [J]. New Phytologist, 2005, 165(2): 591–598.
|
[21] |
Zhu Y G, Smith S E, Smith F A. Zinc (Zn)–phosphorus (P) interactions in two cultivars of spring wheat (Triticum aestivum L.) differing in P uptake efficiency [J]. Annals of Botany, 2001, 88(5): 941–945.
|
[22] |
Verma T S, Minhas R S. Zinc and phosphorus interaction in a wheat–maize cropping system [J]. Nutrient Cycling in Agroecosystems, 1987, 13(1): 77–86.
|
[23] |
Cakmak I, Marschner H. Mechanism of phosphorus–induced zinc deficiency in cotton. III. Changes in physiological availability of zinc in plants is mail [J]. Physiologia Plantarum, 1987, 70(1): 13–20.
|
[24] |
Grønlund M, Albrechtsen M, Johansen I E, et al. The interplay between P uptake pathways in mycorrhizal peas: a combined physiological and gene‒silencing approach [J]. Physiologia Plantarum, 2013, 149(2): 234–248.
|
[25] |
Koch M, Tanami Z, Bodani H, et al. Field application of vesicular–arbuscular mycorrhizal fungi improved garlic yield in disinfected soil [J]. Mycorrhiza, 1997, 7(1): 47–50.
|
[26] |
Clark R B, Zeto S K. Mineral acquisition by arbuscular mycorrhizal plants [J]. Journal of Plant Nutrition, 2000, 23(7): 867–902.
|
1. |
霍瑜,夏文浩,郎禹超,李凯旋,颜廷武. 绿色防控技术采纳及其对新疆棉农福利的影响. 资源科学. 2023(01): 130-143 .
![]() | |
2. |
耿怡爽,张红卫,周春雨,梁舒欣,殷慧敏,杨修一,刘前进,耿计彪. 包膜含缩节胺氯化钾对土壤钾素含量及棉花生长特性的影响. 土壤通报. 2023(06): 1342-1349 .
![]() | |
3. |
郝淼,曲兆鸣,李兵,牛国梁,王龙林,李成亮. 基于设施番茄生产效益的最佳灌水量和控释氯化钾用量组合. 植物营养与肥料学报. 2022(05): 894-905 .
![]() | |
4. |
陈梦妮,李永山,王慧,范巧兰. 山西省县域棉花种植格局与施肥技术分析. 农学学报. 2021(04): 6-12 .
![]() | |
5. |
靳一南,董合林,李鹏程,孙淼,邵晶晶,冯卫娜,徐文修,郑苍松. 土壤钾水平对棉花前期生长及光合特性的影响. 新疆农业科学. 2021(12): 2236-2243 .
![]() | |
6. |
杨修一,于起庆,耿计彪,杨玉坤,王嘉,刘前进. 包膜含缩节胺氯化钾对棉花产量及土壤钾素的影响. 土壤学报. 2020(06): 1439-1448 .
![]() | |
7. |
于小晶,田晓飞,张民,李成亮,孙玲丽,刘之广,陈剑秋. 控释氮肥和控释钾肥对棉花产量、品质及土壤肥力的影响. 农业资源与环境学报. 2019(03): 313-321 .
![]() | |
8. |
王畯,张民,刘之广,马金昭,孙玲丽,苏秀荣. 折光率法快速测定控释氯化钾养分释放率. 磷肥与复肥. 2018(06): 46-48 .
![]() | |
9. |
温心怡,马晓寒,陈彪,张杰,郝浩浩,杨立均,黄海棠,许自成. 施钾对烟叶成熟度影响的研究进展. 山西农业科学. 2018(10): 1741-1746 .
![]() | |
10. |
李鹏程,郑苍松,孙淼,庞朝友,张思平,刘绍东,陈静,李亚兵,董合林,赵新华. 棉花施肥技术与营养机理研究进展. 棉花学报. 2017(S1): 118-130 .
![]() | |
11. |
田晓飞,李成亮,张民,郭延乐,路艳艳,于小晶. 钾肥用量对大蒜-棉花套作体系产量和土壤钾素有效性的影响. 水土保持学报. 2017(03): 277-282+290 .
![]() | |
12. |
张为涛,刘之广,张民,董树亭,陈剑秋,刘文龙,杨修一,周洪印. 控释钾肥对玉米产量、钾肥利用率和土壤速效钾的影响. 水土保持学报. 2017(04): 241-247 .
![]() | |
13. |
郭新送,丁方军,陈士更,王焕喜. 不同用量包膜氯化钾对马铃薯产量、品质及土壤钾供应的影响. 水土保持学报. 2017(06): 296-301 .
![]() | |
14. |
田晓飞,李成亮,张民,郭延乐,张为涛. 控释钾肥对大蒜-棉花套作体系产量和土壤钾素供应的影响. 土壤学报. 2017(04): 967-977 .
![]() |