Literature DB >> 32328680

Genetic bases for variation in structure and biological activity of trichothecene toxins produced by diverse fungi.

R H Proctor1, S P McCormick2, S Gutiérrez3.   

Abstract

Trichothecenes are sesquiterpene toxins produced by diverse but relatively few fungal species in at least three classes of Ascomycetes: Dothideomycetes, Eurotiomycetes, and Sordariomycetes. Approximately 200 structurally distinct trichothecene analogs have been described, but a given fungal species typically produces only a small subset of analogs. All trichothecenes share a core structure consisting of a four-ring nucleus known as 12,13-epoxytrichothec-9-ene. This structure can be substituted at various positions with hydroxyl, acyl, or keto groups to give rise to the diversity of trichothecene structures that has been described. Over the last 30 years, the genetic and biochemical pathways required for trichothecene biosynthesis in several species of the fungi Fusarium and Trichoderma have been elucidated. In addition, phylogenetic and functional analyses of trichothecene biosynthetic (TRI) genes from fungi in multiple genera have provided insights into how acquisition, loss, and changes in functions of TRI genes have given rise to the diversity of trichothecene structures. These analyses also suggest both divergence and convergence of TRI gene function during the evolutionary history of trichothecene biosynthesis. What has driven trichothecene structural diversification remains an unanswered question. However, insight into the role of trichothecenes in plant pathogenesis of Fusarium species and into plant glucosyltransferases that detoxify the toxins by glycosylating them point to a possible driver. Because the glucosyltransferases can have substrate specificity, changes in trichothecene structures produced by a fungus could allow it to evade detoxification by the plant enzymes. Thus, it is possible that advantages conferred by evading detoxification have contributed to trichothecene structural diversification. KEY POINTS : • TRI genes have evolved by diverse processes: loss, acquisition and changes in function. • Some TRI genes have acquired the same function by convergent evolution. • Some other TRI genes have evolved divergently to have different functions. • Some TRI genes were acquired or resulted from diversification in function of other genes. • Substrate specificity of plant glucosyltransferases could drive trichothecene diversity.

Entities:  

Keywords:  Gene evolution; Phylogenetics; Plant glucosyltransferases; TRI genes; Trichothecene structural diversity

Year:  2020        PMID: 32328680     DOI: 10.1007/s00253-020-10612-0

Source DB:  PubMed          Journal:  Appl Microbiol Biotechnol        ISSN: 0175-7598            Impact factor:   4.813


  7 in total

1.  Identification of polyketide synthase genes required for aspinolide biosynthesis in Trichoderma arundinaceum.

Authors:  Inmaculada Izquierdo-Bueno; Rosa E Cardoza; Susan P McCormick; Natalia Martínez-Reyes; Laura Lindo; Daren W Brown; Isidro G Collado; Robert H Proctor; Santiago Gutiérrez
Journal:  Appl Microbiol Biotechnol       Date:  2022-09-27       Impact factor: 5.560

2.  Distribution, Function, and Evolution of a Gene Essential for Trichothecene Toxin Biosynthesis in Trichoderma.

Authors:  Santiago Gutiérrez; Susan P McCormick; Rosa E Cardoza; Hye-Seon Kim; Laura Lindo Yugueros; Martha Marie Vaughan; Guzmán Carro-Huerga; Mark Busman; Luis E Sáenz de Miera; Walter M Jaklitsch; Wen-Ying Zhuang; Chao Wang; Pedro A Casquero; Robert Henry Proctor
Journal:  Front Microbiol       Date:  2021-12-02       Impact factor: 5.640

3.  Characterisation of two unique sesquiterpenoids from Trichoderma hypoxylon.

Authors:  Jinyu Zhang; Wen-Bing Yin
Journal:  Mycology       Date:  2021-08-12

4.  Molecular Docking and Comparative Inhibitory Efficacy of Naturally Occurring Compounds on Vegetative Growth and Deoxynivalenol Biosynthesis in Fusarium culmorum.

Authors:  Safa Oufensou; Alessandro Dessì; Roberto Dallocchio; Virgilio Balmas; Emanuela Azara; Paola Carta; Quirico Migheli; Giovanna Delogu
Journal:  Toxins (Basel)       Date:  2021-10-26       Impact factor: 4.546

5.  Genome-Wide Characterization Reveals Variation Potentially Involved in Pathogenicity and Mycotoxins Biosynthesis of Fusarium proliferatum Causing Spikelet Rot Disease in Rice.

Authors:  Ling Wang; Shuailing Ge; Wenhao Liang; Weiyang Liao; Wen Li; Gui'ai Jiao; Xiangjin Wei; Gaoneng Shao; Lihong Xie; Zhonghua Sheng; Shikai Hu; Shaoqing Tang; Peisong Hu
Journal:  Toxins (Basel)       Date:  2022-08-19       Impact factor: 5.075

6.  Ecophysiology of Fusarium chaquense a Novel Type A Trichothecene Producer Species Isolated from Natural Grasses.

Authors:  Maria J Nichea; Eugenia Cendoya; Miriam Haidukowski; Adriana M Torres; María L Ramirez
Journal:  Toxins (Basel)       Date:  2021-12-13       Impact factor: 4.546

Review 7.  Diterpenes Specially Produced by Fungi: Structures, Biological Activities, and Biosynthesis (2010-2020).

Authors:  Fa-Lei Zhang; Tao Feng
Journal:  J Fungi (Basel)       Date:  2022-02-28
  7 in total

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