Literature DB >> 31935344

Phylogenetic Diversity and Effect of Temperature on Pathogenicity of Colletotrichum lupini.

Guillaume Dubrulle1, Flora Pensec1, Adeline Picot1, Karim Rigalma1, Audrey Pawtowski1, Sophie Nicolleau2, Nathalie Harzic3, Patrice Nodet1, Riccardo Baroncelli1,4, Gaétan Le Floch1.   

Abstract

Although lupin anthracnose caused by Colletotrichum lupini is a significant threat for spring and winter lupin crops, it has been poorly studied so far. This study aimed at characterizing the (i) phylogenetic, (ii) morphological, and (iii) physiological diversity of collected isolates from anthracnose-affected lupins. The genetic identification of representative isolates (n = 71) revealed that they were all C. lupini species, further confirming that lupin anthracnose is caused by this species. However, multilocus sequencing on these isolates and 16 additional reference strains of C. lupini revealed a separation into two distinct genetic groups, both of them characterized by a very low genetic diversity. The diversity of morphological characteristics of a selected subset of C. lupini isolates was further evaluated. To the best of our knowledge, microsclerotia production observed for some isolates has never been reported so far within the Colletotrichum acutatum species complex. Finally, the modeling of growth responses of a subset of C. lupini strains revealed the capacity of some strains to grow in vitro at 5°C. This ability was also evidenced in planta, because C. lupini DNA was detectable in plants from 14 days postinoculation at 5°C onward, whereas symptoms began to appear a week later, although at a very low level. Since lupin crops are planted during winter or early spring, growth studies in vitro and in planta demonstrated the capability of the species to grow at temperatures ranging from 5 to 30°C, with an optimum close to 25°C. In this study, C. lupini-specific primers were also designed for real-time quantitative PCR on fungal DNA and allowed the detection of C. lupini in asymptomatic field samples. These results open perspectives to detect earlier and limit the development of this pathogen in lupin crops.

Entities:  

Keywords:  Colletotrichum acutatum species complex; DNA quantification; Lupin anthracnose; aggressiveness; microsclerotia

Mesh:

Year:  2020        PMID: 31935344     DOI: 10.1094/PDIS-02-19-0273-RE

Source DB:  PubMed          Journal:  Plant Dis        ISSN: 0191-2917            Impact factor:   4.438


  6 in total

1.  Fungal Planet description sheets: 1182-1283.

Authors:  P W Crous; D A Cowan; G Maggs-Kölling; N Yilmaz; R Thangavel; M J Wingfield; M E Noordeloos; B Dima; T E Brandrud; G M Jansen; O V Morozova; J Vila; R G Shivas; Y P Tan; S Bishop-Hurley; E Lacey; T S Marney; E Larsson; G Le Floch; L Lombard; P Nodet; V Hubka; P Alvarado; A Berraf-Tebbal; J D Reyes; G Delgado; A Eichmeier; J B Jordal; A V Kachalkin; A Kubátová; J G Maciá-Vicente; E F Malysheva; V Papp; K C Rajeshkumar; A Sharma; M Spetik; D Szabóová; M A Tomashevskaya; J A Abad; Z G Abad; A V Alexandrova; G Anand; F Arenas; N Ashtekar; S Balashov; Á Bañares; R Baroncelli; I Bera; A Yu Biketova; C L Blomquist; T Boekhout; D Boertmann; T M Bulyonkova; T I Burgess; A J Carnegie; J F Cobo-Diaz; G Corriol; J H Cunnington; M O da Cruz; U Damm; N Davoodian; A L C M de A Santiago; J Dearnaley; L W S de Freitas; K Dhileepan; R Dimitrov; S Di Piazza; S Fatima; F Fuljer; H Galera; A Ghosh; A Giraldo; A M Glushakova; M Gorczak; D E Gouliamova; D Gramaje; M Groenewald; C K Gunsch; A Gutiérrez; D Holdom; J Houbraken; A B Ismailov; Ł Istel; T Iturriaga; M Jeppson; Ž Jurjević; L B Kalinina; V I Kapitonov; I Kautmanová; A N Khalid; M Kiran; L Kiss; Á Kovács; D Kurose; I Kušan; S Lad; T Læssøe; H B Lee; J J Luangsa-Ard; M Lynch; A E Mahamedi; V F Malysheva; A Mateos; N Matočec; A Mešić; A N Miller; S Mongkolsamrit; G Moreno; A Morte; R Mostowfizadeh-Ghalamfarsa; A Naseer; A Navarro-Ródenas; T T T Nguyen; W Noisripoom; J E Ntandu; J Nuytinck; V Ostrý; T A Pankratov; J Pawłowska; J Pecenka; T H G Pham; A Polhorský; A Pošta; D B Raudabaugh; K Reschke; A Rodríguez; M Romero; S Rooney-Latham; J Roux; M Sandoval-Denis; M Th Smith; T V Steinrucken; T Y Svetasheva; Z Tkalčec; E J van der Linde; M V D Vegte; J Vauras; A Verbeken; C M Visagie; J S Vitelli; S V Volobuev; A Weill; M Wrzosek; I V Zmitrovich; E A Zvyagina; J Z Groenewald
Journal:  Persoonia       Date:  2021-07-13       Impact factor: 11.658

2.  Genome-wide association study reveals white lupin candidate gene involved in anthracnose resistance.

Authors:  Joris A Alkemade; Nelson Nazzicari; Monika M Messmer; Paolo Annicchiarico; Barbara Ferrari; Ralf T Voegele; Maria R Finckh; Christine Arncken; Pierre Hohmann
Journal:  Theor Appl Genet       Date:  2022-01-05       Impact factor: 5.574

3.  A successful defense of the narrow-leafed lupin against anthracnose involves quick and orchestrated reprogramming of oxidation-reduction, photosynthesis and pathogenesis-related genes.

Authors:  Michał Książkiewicz; Sandra Rychel-Bielska; Piotr Plewiński; Wojciech Bielski; Maria Nuc; Bartosz Kozak; Paweł Krajewski; Małgorzata Jędryczka
Journal:  Sci Rep       Date:  2022-05-17       Impact factor: 4.379

4.  Temperature requirements of Colletotrichum spp. belonging to different clades.

Authors:  Irene Salotti; Tao Ji; Vittorio Rossi
Journal:  Front Plant Sci       Date:  2022-07-22       Impact factor: 6.627

5.  Development of PCR-based markers and whole-genome selection model for anthracnose resistance in white lupin (Lupinus albus L.).

Authors:  Sandra Rychel-Bielska; Nelson Nazzicari; Piotr Plewiński; Wojciech Bielski; Paolo Annicchiarico; Michał Książkiewicz
Journal:  J Appl Genet       Date:  2020-09-23       Impact factor: 3.240

6.  Genetic diversity of Colletotrichum lupini and its virulence on white and Andean lupin.

Authors:  J A Alkemade; M M Messmer; R T Voegele; M R Finckh; P Hohmann
Journal:  Sci Rep       Date:  2021-06-29       Impact factor: 4.379

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.