Literature DB >> 32161129

Natural diversity in the predatory behavior facilitates the establishment of a robust model strain for nematode-trapping fungi.

Ching-Ting Yang1, Guillermo Vidal-Diez de Ulzurrun1, A Pedro Gonçalves1, Hung-Che Lin1,2, Ching-Wen Chang1,3, Tsung-Yu Huang1, Sheng-An Chen1, Cheng-Kuo Lai4, Isheng J Tsai4, Frank C Schroeder5,6, Jason E Stajich7, Yen-Ping Hsueh8,2,3.   

Abstract

Nematode-trapping fungi (NTF) are a group of specialized microbial predators that consume nematodes when food sources are limited. Predation is initiated when conserved nematode ascaroside pheromones are sensed, followed by the development of complex trapping devices. To gain insights into the coevolution of this interkingdom predator-prey relationship, we investigated natural populations of nematodes and NTF that we found to be ubiquitous in soils. Arthrobotrys species were sympatric with various nematode species and behaved as generalist predators. The ability to sense prey among wild isolates of Arthrobotrys oligospora varied greatly, as determined by the number of traps after exposure to Caenorhabditis elegans While some strains were highly sensitive to C. elegans and the nematode pheromone ascarosides, others responded only weakly. Furthermore, strains that were highly sensitive to the nematode prey also developed traps faster. The polymorphic nature of trap formation correlated with competency in prey killing, as well as with the phylogeny of A. oligospora natural strains, calculated after assembly and annotation of the genomes of 20 isolates. A chromosome-level genome assembly and annotation were established for one of the most sensitive wild isolates, and deletion of the only G-protein β-subunit-encoding gene of A. oligospora nearly abolished trap formation. In summary, our study establishes a highly responsive A. oligospora wild isolate as a model strain for the study of fungus-nematode interactions and demonstrates that trap formation is a fitness character in generalist predators of the nematode-trapping fungus family.

Entities:  

Keywords:  G-protein signaling; natural population; nematode-trapping fungi; predator–prey interaction; trap morphogenesis

Mesh:

Substances:

Year:  2020        PMID: 32161129      PMCID: PMC7104180          DOI: 10.1073/pnas.1919726117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  57 in total

1.  MAP kinase Slt2 orthologs play similar roles in conidiation, trap formation, and pathogenicity in two nematode-trapping fungi.

Authors:  Zhengyi Zhen; Xinjing Xing; Meihua Xie; Le Yang; Xuewei Yang; Yaqing Zheng; Yuanli Chen; Ni Ma; Qing Li; Ke-Qin Zhang; Jinkui Yang
Journal:  Fungal Genet Biol       Date:  2018-04-24       Impact factor: 3.495

2.  Soil nematode abundance and functional group composition at a global scale.

Authors:  Johan van den Hoogen; Stefan Geisen; Devin Routh; Howard Ferris; Walter Traunspurger; David A Wardle; Ron G M de Goede; Byron J Adams; Wasim Ahmad; Walter S Andriuzzi; Richard D Bardgett; Michael Bonkowski; Raquel Campos-Herrera; Juvenil E Cares; Tancredi Caruso; Larissa de Brito Caixeta; Xiaoyun Chen; Sofia R Costa; Rachel Creamer; José Mauro da Cunha Castro; Marie Dam; Djibril Djigal; Miguel Escuer; Bryan S Griffiths; Carmen Gutiérrez; Karin Hohberg; Daria Kalinkina; Paul Kardol; Alan Kergunteuil; Gerard Korthals; Valentyna Krashevska; Alexey A Kudrin; Qi Li; Wenju Liang; Matthew Magilton; Mariette Marais; José Antonio Rodríguez Martín; Elizaveta Matveeva; El Hassan Mayad; Christian Mulder; Peter Mullin; Roy Neilson; T A Duong Nguyen; Uffe N Nielsen; Hiroaki Okada; Juan Emilio Palomares Rius; Kaiwen Pan; Vlada Peneva; Loïc Pellissier; Julio Carlos Pereira da Silva; Camille Pitteloud; Thomas O Powers; Kirsten Powers; Casper W Quist; Sergio Rasmann; Sara Sánchez Moreno; Stefan Scheu; Heikki Setälä; Anna Sushchuk; Alexei V Tiunov; Jean Trap; Wim van der Putten; Mette Vestergård; Cecile Villenave; Lieven Waeyenberge; Diana H Wall; Rutger Wilschut; Daniel G Wright; Jiue-In Yang; Thomas Ward Crowther
Journal:  Nature       Date:  2019-07-24       Impact factor: 49.962

Review 3.  Predator-prey interactions of nematode-trapping fungi and nematodes: both sides of the coin.

Authors:  Guillermo Vidal-Diez de Ulzurrun; Yen-Ping Hsueh
Journal:  Appl Microbiol Biotechnol       Date:  2018-03-09       Impact factor: 4.813

4.  MITOS: improved de novo metazoan mitochondrial genome annotation.

Authors:  Matthias Bernt; Alexander Donath; Frank Jühling; Fabian Externbrink; Catherine Florentz; Guido Fritzsch; Joern Pütz; Martin Middendorf; Peter F Stadler
Journal:  Mol Phylogenet Evol       Date:  2012-09-07       Impact factor: 4.286

5.  Divergence and dispersal of the nematode-trapping fungus Arthrobotrys oligospora from China.

Authors:  Ying Zhang; Ze-Fen Yu; Jianping Xu; Ke-Qin Zhang
Journal:  Environ Microbiol Rep       Date:  2011-10-31       Impact factor: 3.541

6.  The NADPH oxidase AoNoxA in Arthrobotrys oligospora functions as an initial factor in the infection of Caenorhabditis elegans.

Authors:  Xin Li; Ying-Qian Kang; Yan-Lu Luo; Ke-Qin Zhang; Cheng-Gang Zou; Lian-Ming Liang
Journal:  J Microbiol       Date:  2017-10-27       Impact factor: 3.422

7.  Genomic and proteomic analyses of the fungus Arthrobotrys oligospora provide insights into nematode-trap formation.

Authors:  Jinkui Yang; Lei Wang; Xinglai Ji; Yun Feng; Xiaomin Li; Chenggang Zou; Jianping Xu; Yan Ren; Qili Mi; Junli Wu; Shuqun Liu; Yu Liu; Xiaowei Huang; Haiyan Wang; Xuemei Niu; Juan Li; Lianming Liang; Yanlu Luo; Kaifang Ji; Wei Zhou; Zefen Yu; Guohong Li; Yajun Liu; Lei Li; Min Qiao; Lu Feng; Ke-Qin Zhang
Journal:  PLoS Pathog       Date:  2011-09-01       Impact factor: 6.823

8.  Parallel evolution of domesticated Caenorhabditis species targets pheromone receptor genes.

Authors:  Patrick T McGrath; Yifan Xu; Michael Ailion; Jennifer L Garrison; Rebecca A Butcher; Cornelia I Bargmann
Journal:  Nature       Date:  2011-08-17       Impact factor: 49.962

9.  The mitochondrial genome of Endoconidiophora resinifera is intron rich.

Authors:  Abdullah Zubaer; Alvan Wai; Georg Hausner
Journal:  Sci Rep       Date:  2018-12-04       Impact factor: 4.379

10.  Plant metabolism of nematode pheromones mediates plant-nematode interactions.

Authors:  Murli Manohar; Francisco Tenjo-Castano; Shiyan Chen; Ying K Zhang; Anshu Kumari; Valerie M Williamson; Xiaohong Wang; Daniel F Klessig; Frank C Schroeder
Journal:  Nat Commun       Date:  2020-01-10       Impact factor: 14.919

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  18 in total

1.  Prey sensing and response in a nematode-trapping fungus is governed by the MAPK pheromone response pathway.

Authors:  Sheng-An Chen; Hung-Che Lin; Frank C Schroeder; Yen-Ping Hsueh
Journal:  Genetics       Date:  2021-02-09       Impact factor: 4.562

2.  Social and sexual behaviors in C. elegans: the first fifty years.

Authors:  Douglas S Portman
Journal:  J Neurogenet       Date:  2020-11-04       Impact factor: 1.250

3.  A Nematode Crude Extract Acts as an Elicitor of the Nematocidal Activity of Nematophagous Fungi Liquid Culture Filtrates Against Haemonchus contortus (Nematoda: Trichostrongylidae).

Authors:  Pedro Mendoza-de Gives; Marilem Rodríguez-Labastida; Agustín Olmedo-Juárez; María Marcela Gamboa-Angulo; Manuela Reyes-Estebanez
Journal:  Acta Parasitol       Date:  2022-01-11       Impact factor: 1.440

4.  AoATG5 plays pleiotropic roles in vegetative growth, cell nucleus development, conidiation, and virulence in the nematode-trapping fungus Arthrobotrys oligospora.

Authors:  Duanxu Zhou; Yingmei Zhu; Na Bai; Le Yang; Meihua Xie; Jiangliu Yang; Meichen Zhu; Ke-Qin Zhang; Jinkui Yang
Journal:  Sci China Life Sci       Date:  2021-05-17       Impact factor: 6.038

Review 5.  Genetic Variation in Caenorhabditis elegans Responses to Pathogenic Microbiota.

Authors:  Yuqing Huang; Jan E Kammenga
Journal:  Microorganisms       Date:  2020-04-24

6.  Morphological, morphometrical, and molecular characterization of Metarhabditis amsactae (Ali, Pervez, Andrabi, Sharma and Verma, 2011) Sudhaus, 2011 (Rhabditida, Rhabditidae) from India and proposal of Metarhabditis longicaudata as a junior synonym of M. amsactae.

Authors:  Aashaq Hussain Bhat; Shreyansh Srivastava; Aasha Rana; Ashok Kumar Chaubey; Ricardo A R Machado; Joaquín Abolafia
Journal:  J Nematol       Date:  2020-12-14       Impact factor: 1.402

7.  Forward genetic screens identified mutants with defects in trap morphogenesis in the nematode-trapping fungus Arthrobotrys oligospora.

Authors:  Tsung-Yu Huang; Yi-Yun Lee; Guillermo Vidal-Diez de Ulzurrun; Yen-Ping Hsueh
Journal:  G3 (Bethesda)       Date:  2021-02-09       Impact factor: 3.154

8.  Community composition of arctic root-associated fungi mirrors host plant phylogeny.

Authors:  S S Botnen; E Thoen; P B Eidesen; A K Krabberød; H Kauserud
Journal:  FEMS Microbiol Ecol       Date:  2020-10-29       Impact factor: 4.194

9.  High Predatory Capacity of a Novel Arthrobotrys oligospora Variety on the Ovine Gastrointestinal Nematode Haemonchus contortus (Rhabditomorpha: Trichostrongylidae).

Authors:  Fabián Arroyo-Balán; Fidel Landeros-Jaime; Roberto González-Garduño; Cristiana Cazapal-Monteiro; Maria Sol Arias-Vázquez; Gabriela Aguilar-Tipacamú; Edgardo Ulises Esquivel-Naranjo; Juan Mosqueda
Journal:  Pathogens       Date:  2021-06-29

10.  Functional analysis of seven regulators of G protein signaling (RGSs) in the nematode-trapping fungus Arthrobotrys oligospora.

Authors:  Ni Ma; Yining Zhao; Yunchuan Wang; Le Yang; Dongni Li; Jiangliu Yang; Kexin Jiang; Ke-Qin Zhang; Jinkui Yang
Journal:  Virulence       Date:  2021-12       Impact factor: 5.882

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