Fungal endophytes from saline-adapted shrubs induce salinity stress tolerance in tomato seedlings

被引:0
作者
Mutungi, Priscillar Mumo [1 ,2 ]
Wekesa, Vitalis Wafula [3 ]
Onguso, Justus [1 ]
Kanga, Erustus [4 ]
Baleba, Steve B. S. [5 ]
Boga, Hamadi Iddi [1 ]
机构
[1] Jomo Kenyatta Univ Agr & Technol, Inst Biotechnol Res, POB 62000-00200, Nairobi, Kenya
[2] Wildlife Res & Training Inst Res Dev & Coordinat, POB 842-20117, Naivasha, Kenya
[3] Bioline Agrosci Africa Ltd Prod, POB 1927-20117, Naivasha, Kenya
[4] Kenya Wildlife Serv, POB 40241-00100, Nairobi, Kenya
[5] Max Planck Inst Chem Ecol, Dept Evolutionary Neuroethol, Hans Knoll Str 8, D-07745 Jena, Germany
来源
FEMS MICROBES | 2024年 / 5卷
关键词
biotechnology; endophyte; fungi; Lake Magadi; salinity stress; tomato; BEAUVERIA-BASSIANA; SALT TOLERANCE; VICIA-FABA; PLANTS; GROWTH; COLONIZATION; DIVERSITY; THERMOTOLERANCE; GERMINATION; MICROBIOTA;
D O I
10.1093/femsmc/xtae012
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
To meet the food and feed demands of the growing population, global food production needs to double by 2050. Climate change-induced challenges to food crops, especially soil salinization, remain a major threat to food production. We hypothesize that endophytic fungi isolated from salt-adapted host plants can confer salinity stress tolerance to salt-sensitive crops. Therefore, we isolated fungal endophytes from shrubs along the shores of saline alkaline Lake Magadi and evaluated their ability to induce salinity stress tolerance in tomato seeds and seedlings. Of 60 endophytic fungal isolates, 95% and 5% were from Ascomycetes and Basidiomycetes phyla, respectively. The highest number of isolates (48.3%) were from the roots. Amylase, protease and cellulase were produced by 25, 30 and 27 isolates, respectively; and 32 isolates solubilized phosphate. Only eight isolates grew at 1.5 M NaCl. Four fungal endophytes (Cephalotrichum cylindricum, Fusarium equiseti, Fusarium falciforme and Aspergilus puniceus) were tested under greenhouse conditions for their ability to induce salinity tolerance in tomato seedlings. All four endophytes successfully colonized tomato seedlings and grew in 1.5 M NaCl. The germination of endophyte-inoculated seeds was enhanced by 23%, whereas seedlings showed increased chlorophyll and biomass content and decreased hydrogen peroxide content under salinity stress, compared with controls. The results suggest that the the four isolates can potentially be used to mitigate salinity stress in tomato plants in salt-affected soils. Shrubs along the shores of saline alkaline lakes are a novel source of endophytic fungi for use in sustainable agriculture.
引用
收藏
页数:17
相关论文
共 80 条
[1]   Endophytic colonization of Vicia faba and Phaseolus vulgaris (Fabaceae) by fungal pathogens and their effects on the life-history parameters of Liriomyza huidobrensis (Diptera: Agromyzidae) [J].
Akutse, K. S. ;
Maniania, N. K. ;
Fiaboe, K. K. M. ;
Van den Berg, J. ;
Ekesi, S. .
FUNGAL ECOLOGY, 2013, 6 (04) :293-301
[2]   Growth-Promoting Endophytic Fungus (Stemphylium lycopersici) Ameliorates Salt Stress Tolerance in Maize by Balancing Ionic and Metabolic Status [J].
Ali, Raid ;
Gul, Humaira ;
Rauf, Mamoona ;
Arif, Muhammad ;
Hamayun, Muhammad ;
Khilji, Sheza Ayaz ;
Ud-Din, Aziz ;
Sajid, Zahoor Ahmad ;
Lee, In-Jung ;
Husna .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[3]   Exploring interactions of plant microbiomes [J].
Andreote, Fernando Dini ;
Gumiere, Thiago ;
Durrer, Ademir .
SCIENTIA AGRICOLA, 2014, 71 (06) :528-539
[4]  
[Anonymous], 2021, The State of the Worlds Land and Water Resources for Food and AgricultureSystems at Breaking Point (SOLAW 2021), DOI DOI 10.4060/CB7654EN
[5]   AMF Inoculation Enhances Growth and Improves the Nutrient Uptake Rates of Transplanted, Salt-Stressed Tomato Seedlings [J].
Balliu, Astrit ;
Sallaku, Glenda ;
Rewald, Boris .
SUSTAINABILITY, 2015, 7 (12) :15967-15981
[6]   Fungal Endophytes: Beyond Herbivore Management [J].
Bamisile, Bamisope S. ;
Dash, Chandra K. ;
Akutse, Komivi S. ;
Keppanan, Ravindran ;
Wang, Liande .
FRONTIERS IN MICROBIOLOGY, 2018, 9
[7]  
Bandel K., 2022, JORD J EARTH ENVIRON, V13, P190
[8]   The plant microbiome explored: implications for experimental botany [J].
Berg, Gabriele ;
Rybakova, Daria ;
Grube, Martin ;
Koeberl, Martina .
JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (04) :995-1002
[9]  
Berg G, 2014, FRONT MICROBIOL, V5, DOI [10.3389/fmicb.2014.00148, 10.3389/fmicb.2014.00491]
[10]   Plant growth promoting endophytic fungi Asprgillus fumigatus TS1 and Fusarium proliferatum BRL1 produce gibberellins and regulates plant endogenous hormones [J].
Bilal, Lubna ;
Asaf, Sajjad ;
Hamayun, Muhammad ;
Gul, Humaira ;
Iqbal, Amjad ;
Ullah, Ihsan ;
Lee, In-Jung ;
Hussain, Anwar .
SYMBIOSIS, 2018, 76 (02) :117-127