Application ofTrichoderma asperellumT34 on maize (Zea mays) seeds protects against drought stress

被引:29
|
作者
Estevez-Geffriaud, Virginia [1 ,2 ]
Vicente, Ruben [1 ,3 ]
Vergara-Diaz, Omar [1 ]
Reinaldo, Juan Jesus Narvaez [2 ]
Trillas, Maria Isabel [1 ]
机构
[1] Univ Barcelona, Dept Ecol Environm Sci & Evolutionary Biol BEECA, Unit Plant Physiol, Fac Biol, Ave Diagonal,643, Barcelona 08028, Spain
[2] FITO SEEDS Semillas Fito SAU, Seed Technol Dept, Barcelona, Spain
[3] Max Planck Inst Mol Plant Physiol, Potsdam, Germany
关键词
Drought stress; Elemental nutrient concentration; Photosynthesis; Gas exchange; Kernel parameters; Leaf relative water content; ASPERELLUM STRAIN T34; TRICHODERMA-HARZIANUM; BIOLOGICAL-CONTROL; FUSARIUM-WILT; DAMPING-OFF; RESISTANCE; TOLERANCE; COMPOST; GROWTH; FUNGI;
D O I
10.1007/s00425-020-03404-3
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Main conclusion Coating maize seeds with the microbial plant protection productTrichoderma asperellumstrain T34 is an effective form of inoculation that enhances plant performance when faced with drought stress, and it improves nutrient and kernel parameters differently in drought and non-stressed conditions. Drought is currently one of the biggest threats to maize production.Trichodermaspp. is mainly used in agriculture as plant protection product with secondary beneficial effects on plants: improved growth, nutrient uptake and plant immunity. Here, we studied the physiological performance of maize plants under two different water regimes (fully irrigated and drought conditions) and three different seed treatments: application ofTrichoderma asperellumstrain T34, application of a chemical fungicide (CELEST XL) or the combination of both. Regardless of water regime, T34 treatment improved kernel P and C, kernel number and dry weight. Higher populations of T34 on the rhizosphere (T34 treatment) alleviated water stress better than lower T34 populations (T34+Q treatment). Under drought, T34 treatment improved leaf relative water content, water use efficiency, PSII maximum efficiency and photosynthesis. T34-treated maize seeds maintained sufficient T34 populations to alleviate drought throughout crop development suggesting an optimal dose of 10(4)and 10(5)colony forming units g(-1) dry weight of rhizosphere under the studied conditions. This work helps to demonstrate the beneficial interaction betweenT. asperellumstrain T34 and maize plants under drought.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Application of Trichoderma asperellum T34 on maize (Zea mays) seeds protects against drought stress
    Virginia Estévez-Geffriaud
    Rubén Vicente
    Omar Vergara-Díaz
    Juan Jesús Narváez Reinaldo
    María Isabel Trillas
    Planta, 2020, 252
  • [2] ANALYSIS OF STRESS INDICATORS DURING CRYOPRESERVATION OF SEEDS OF LANDRACE MAIZE (Zea mays)
    Perez, Jason
    Araya-Valverde, Emanuel
    Garro, Giovanni
    Abdelnour-Esquivel, Ana
    CRYOLETTERS, 2017, 38 (06) : 445 - 454
  • [3] SELECTION OF SCREENING CRITERIA AGAINST DROUGHT STRESS AT EARLY GROWTH STAGES IN MAIZE (Zea mays L.)
    Ramzan, Javeria
    Aslam, Muhammad
    Ahsan, Muhammad
    Awan, Faisal Saeed
    PAKISTAN JOURNAL OF AGRICULTURAL SCIENCES, 2019, 56 (03): : 633 - 643
  • [4] Response of maize (Zea mays L.) to potassium nano-silica application under drought stress
    Aqaei, Pegah
    Weisany, Weria
    Diyanat, Marjan
    Razmi, Javad
    Struik, Paul C.
    JOURNAL OF PLANT NUTRITION, 2020, 43 (09) : 1205 - 1216
  • [5] The effect of drought stress on leaf chlorophyll content and stress resistance in maize cultivars (Zea mays)
    Khayatnezhad, Majid
    Gholamin, Roza
    AFRICAN JOURNAL OF MICROBIOLOGY RESEARCH, 2012, 6 (12): : 2844 - 2848
  • [6] Exogenous application of urea and a urease inhibitor improves drought stress tolerance in maize (Zea mays L.)
    Gou, Wei
    Zheng, Pufan
    Tian, Li
    Gao, Mei
    Zhang, Lixin
    Akram, Nudrat Aisha
    Ashraf, Muhammad
    JOURNAL OF PLANT RESEARCH, 2017, 130 (03) : 599 - 609
  • [7] Exogenous application of urea and a urease inhibitor improves drought stress tolerance in maize (Zea mays L.)
    Wei Gou
    Pufan Zheng
    Li Tian
    Mei Gao
    Lixin Zhang
    Nudrat Aisha Akram
    Muhammad Ashraf
    Journal of Plant Research, 2017, 130 : 599 - 609
  • [8] Root Morphology and Gene Expression Analysis in Response to Drought Stress in Maize (Zea mays)
    Jiang, Tingbo
    Fountain, Jake
    Davis, Georgia
    Kemerait, Robert
    Scully, Brian
    Lee, R. Dewey
    Guo, Baozhu
    PLANT MOLECULAR BIOLOGY REPORTER, 2012, 30 (02) : 360 - 369
  • [9] Rapid method of screening for drought stress tolerance in maize (Zea mays L.)
    Kumar, Bhupender
    Kumar, Krishan
    Jat, Shankar Lal
    Srivastava, Shraddha
    Tiwari, Tanu
    Kumar, Sonu
    Meenakshi
    Pradhan, Hans Raj
    Kumar, Brijesh
    Chaturvedi, Garima
    Jha, Abhishek Kumar
    Rakshit, Sujay
    INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 2020, 80 (01) : 16 - 25
  • [10] β-aminobutyric acid mediated drought stress alleviation in maize (Zea mays L.)
    Shaw, Arun K.
    Bhardwaj, Pardeep K.
    Ghosh, Supriya
    Roy, Sankhajit
    Saha, Suman
    Sherpa, Ang R.
    Saha, Samir K.
    Hossain, Zahed
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2016, 23 (03) : 2437 - 2453