New Detection Methods for Cryphonectria Hypovirus 1 (CHV1) through SYBR Green-Based Real-Time PCR and Loop-Mediated Isothermal Amplification (LAMP)

Author:

Çelik Ali1,Çakar Deniz2,Derviş Sibel34ORCID,Morca Ali Ferhan5ORCID,Akıllı Şimşek Seçil6,Romon-Ochoa Pedro7ORCID,Özer Göksel1ORCID

Affiliation:

1. Department of Plant Protection, Faculty of Agriculture, Bolu Abant İzzet Baysal University, Bolu 14030, Türkiye

2. Central Research Laboratory Application and Research Center, Çankırı Karatekin University, Çankırı 18100, Türkiye

3. Department of Plant Protection, Faculty of Kızıltepe Agricultural Sciences and Technologies, Mardin Artuklu University, Mardin 47000, Türkiye

4. Department of Plant and Animal Production, Vocational School of Kızıltepe, Mardin Artuklu University, Mardin 47000, Türkiye

5. Directorate of Plant Protection Central Research Institute, Gayret Mah. Fatih Sultan Mehmet Bulv., Yenimahalle, Ankara 06172, Türkiye

6. Department of Biology, Faculty of Sciences, Çankırı Karatekin University, Çankırı 18100, Türkiye

7. Forest Research, Plant Pathology Department, Alice Holt Research Station, Farnham GU10 4LH, UK

Abstract

Some mycoviruses can be considered as effective biocontrol agents, mitigating the impact of phytopathogenic fungi and consequently reducing disease outbreaks while promoting plant health. Cryphonectria parasitica, the causal agent of chestnut blight and a highly destructive pathogen, experienced a notable decrease in its virulence with the identification of cryphonectria hypovirus 1 (CHV1), a naturally occurring biocontrol agent. In this study, two innovative diagnostic protocols designed for the accurate and efficient detection of CHV1 are introduced. The ORF A and ORF B regions of CHV1 are targeted by these techniques, which employ colorimetric loop-mediated isothermal amplification (LAMP) with 2 Colorimetric LAMP Master Mix and real-time quantitative PCR (qPCR) with SYBR Green chemistry, respectively. The LAMP assay presents a discernible color transition, changing from pink to yellow after a 35 min incubation period. Comparative analysis, when assessed against two established reverse transcription-PCR (RT-PCR) techniques, reveals a significant enhancement in sensitivity for both the LAMP approach, which offers a tenfold increase, and the qPCR method, which showcases a remarkable 100-fold sensitivity improvement. Throughout the comparison phase, it was evident that the RT-PCR, LAMP, and qPCR procedures displayed superior performance compared to the Bavendamm test, relying on phenol oxidase activity, effectively distinguishing hypovirulent strains. Consequently, this study introduces two pioneer diagnostic assays for highly sensitive CHV1 detection, representing a substantial advancement in the realm of CHV1 surveillance techniques. These methodologies hold significant promise for enhancing research endeavors in the domain of the biological control of C. parasitica.

Funder

TURKISH project

British Department of Environment, Food and Rural Affairs

DEFRA-funded

Publisher

MDPI AG

Reference64 articles.

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3. Hypovirulence-associated suppression of host functions in Cryphonectria parasitica can be partially relieved by high light intensity;Hillman;Phytopathology,1990

4. A novel RNA mycovirus in a hypovirulent isolate of the plant pathogen Diaporthe ambigua;Preisig;J. Gen. Virol.,2000

5. Double-stranded RNA mycovirus from Fusarium graminearum;Chu;Appl. Environ. Microbiol.,2002

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