Fusarium graminearum Effector FgNls1 Targets Plant Nuclei to Induce Wheat Head Blight

Author:

Hao Guixia1ORCID,Naumann Todd A.1,Chen Hui2ORCID,Bai Guihua23,McCormick Susan1,Kim Hye-Seon1,Tian Bin4ORCID,Trick Harold N.4,Naldrett Michael J.5,Proctor Robert1

Affiliation:

1. USDA, Agricultural Research Service, National Center for Agricultural Utilization Research, Mycotoxin Prevention and Applied Microbiology Research Unit, 1815 N. University, Peoria, IL 61604, U.S.A.

2. Department of Agronomy, Kansas State University, Manhattan, KS 66506, U.S.A.

3. USDA-ARS, Hard Winter Wheat Genetics Research Unit, Manhattan, KS 66506, U.S.A.

4. Department of Plant Pathology, Kansas State University, Manhattan, KS 66506, U.S.A.

5. Nebraska Center for Biotechnology, Beadle Center, University of Nebraska-Lincoln, Lincoln, NE 68588, U.S.A.

Abstract

Fusarium head blight (FHB) caused by Fusarium graminearum is one of the most devastating diseases of wheat and barley worldwide. Effectors suppress host immunity and promote disease development. The genome of F. graminearum contains hundreds of effectors with unknown function. Therefore, investigations of the functions of these effectors will facilitate developing novel strategies to enhance wheat resistance to FHB. We characterized a F. graminearum effector, FgNls1, containing a signal peptide and multiple eukaryotic nuclear localization signals. A fusion protein of green fluorescent protein and FgNls1 accumulated in plant cell nuclei when transiently expressed in Nicotiana benthamiana. FgNls1 suppressed Bax-induced cell death when co-expressed in N. benthamiana. We revealed that the expression of FgNLS1 was induced in wheat spikes infected with F. graminearum. The Fgnls1 mutants significantly reduced initial infection and FHB spread within a spike. The function of FgNLS1 was restored in the Fgnls1-complemented strains. Wheat histone 2B was identified as an interacting protein by FgNls1-affinity chromatography. Furthermore, transgenic wheat plants that silence FgNLS1 expression had significantly lower FHB severity than control plants. This study demonstrates a critical role of FgNls1 in F. graminearum pathogenesis and indicates that host-induced gene silencing targeting F. graminearum effectors is a promising approach to enhance FHB resistance. [Formula: see text] Copyright © 2023 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license .

Funder

U.S. Department of Agriculture (USDA)-U.S. Wheat and Barley Scab Initiative

USDA Agricultural Research Service SCINet project and the AI Center of Excellence

Publisher

Scientific Societies

Subject

Agronomy and Crop Science,General Medicine,Physiology

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