Spore production in the solid-state fermentation of stevia residue by Trichoderma guizhouense and its effects on corn growth

被引:13
|
作者
Liu Hong-jun [1 ]
Duan Wan-dong [1 ,2 ]
Liu Chao [1 ]
Meng Ling-xue [1 ]
Li Hong-xu [1 ]
Li Rong [1 ]
Shen Qi-rong [1 ]
机构
[1] Nanjing Agr Univ, Jiangsu Prov Key Lab Solid Organ Waste Utilizat, Key Lab Plant Immun,Educ Minist,Engn Ctr Resource, Jiangsu Collaborat Innovat Ctr Solid Organ Wastes, Nanjing 210095, Peoples R China
[2] Jiangsu Prov & Chinese Acad Sci, Inst Bot, Nanjing 210014, Peoples R China
基金
美国国家科学基金会; 国家重点研发计划;
关键词
Trichoderma; solid-state fermentation; stevia residue; plant growth-promoting fungi; soil fungal community; COTTON ROOT-ROT; FUSARIUM-WILT DISEASE; MICROBIAL COMMUNITY; RHIZOSPHERE; SOIL; PATHOGEN; OPTIMIZATION; EXPRESSION; CHALLENGES; RESISTANCE;
D O I
10.1016/S2095-3119(20)63478-5
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Trichoderma is an important and widely used plant growth-promoting fungus (PGPF). In this study, stevia residue amended with amino acids hydrolyzed from animal carcasses was used for the production of Trichoderma guizhouense NJAU 4742 by solid-state fermentation, and then its potential to promote corn plant growth was evaluated in combination with chemical fertilizer (CF) or organic fertilizer (OF). The highest spore number of 7x10(9) CFU g(-1) fresh weight was obtained under the following optimal parameters: material ratio of 50% (stevia residue:rice bran=1:1), pH value of 3.0 (amended with 6.67% amino acids), initial moisture content of 60%, inoculum size of 10%, material thickness of 3 cm and an incubation time of 4 days. The aboveground corn plant biomass obtained with T. guizhouense applied alone and with CF treatments were slightly higher than those of no fertilizer control and CF treatments, respectively. However, T. guizhouense applied with OF significantly (P<0.05) increased aboveground biomass compared to OF and yielded the highest aboveground biomass among all the treatments. Moreover, T. guizhouense applications primarily influenced the fungal bulk soil community composition, among which three OTUs (OTU_2 and OTU_9 classified as Chaetomium, and OTU_4 classified as Trichoderma) were stimulated in both bulk and rhizosphere soil. Notably, a specific OTU_3 (Phymatotrichopsis) was only stimulated by T. guizhouense applied with OF, possibly leading to high soil productivity. These results show that it is feasible to employ stevia residue in the eco-friendly fermentation of T. guizhouense, which is strongly suggested for enhancing OF applications.
引用
收藏
页码:1147 / 1156
页数:10
相关论文
共 50 条
  • [21] L-glutaminase production by Trichoderma koningii under solid-state fermentation
    Ashraf S. A. El-Sayed
    Indian Journal of Microbiology, 2009, 49 : 243 - 250
  • [22] Optimization of Chitosanase Production by Trichoderma koningii sp Under Solid-State Fermentation
    da Silva, Luis C. A.
    Honorato, Talita L.
    Franco, Telma T.
    Rodrigues, Sueli
    FOOD AND BIOPROCESS TECHNOLOGY, 2012, 5 (05) : 1564 - 1572
  • [23] L-glutaminase production by Trichoderma koningii under solid-state fermentation
    El-Sayed, Ashraf S. A.
    INDIAN JOURNAL OF MICROBIOLOGY, 2009, 49 (03) : 243 - 250
  • [24] Monascus pigment production by solid-state fermentation with corn cob substrate
    Velmurugan, Palanivel
    Hur, Hyun
    Balachandar, Vellingiri
    Kamala-Kannan, Seralathan
    Lee, Kui-Jae
    Lee, Sang-Myung
    Chae, Jong-Chan
    Shea, Patrick J.
    Oh, Byung-Taek
    JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2011, 112 (06) : 590 - 594
  • [25] Evaluation of inert and organic carriers for Verticillium lecanii spore production in solid-state fermentation
    Xu, Xiangqun
    Yu, Yunfeng
    Shi, Yujie
    BIOTECHNOLOGY LETTERS, 2011, 33 (04) : 763 - 768
  • [26] Optimization of Spore and Antifungal Lipopeptide Production During the Solid-state Fermentation of Bacillus subtilis
    Scott W. Pryor
    Donna M. Gibson
    Anthony G. Hay
    James M. Gossett
    Larry P. Walker
    Applied Biochemistry and Biotechnology, 2007, 143 : 63 - 79
  • [27] Optimization of spore and antifungal lipopeptide production during the solid-state fermentation of Bacillus subtilis
    Pryor, Scott W.
    Gibson, Donna M.
    Hay, Anthony G.
    Gossett, James M.
    Walker, Larry P.
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2007, 143 (01) : 63 - 79
  • [28] STRATEGIES FOR SPORE PRODUCTION BY PENICILLIUM-ROQUEFORTII USING SOLID-STATE FERMENTATION TECHNIQUES
    LARROCHE, C
    GROS, JB
    PROCESS BIOCHEMISTRY, 1989, 24 (03) : 97 - 103
  • [29] Evaluation of inert and organic carriers for Verticillium lecanii spore production in solid-state fermentation
    Xiangqun Xu
    Yunfeng Yu
    Yujie Shi
    Biotechnology Letters, 2011, 33 : 763 - 768
  • [30] Optimization of Chitosanase Production by Trichoderma koningii sp. Under Solid-State Fermentation
    Luis C. A. da Silva
    Talita L. Honorato
    Telma T. Franco
    Sueli Rodrigues
    Food and Bioprocess Technology, 2012, 5 : 1564 - 1572