Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Background: Powdery mildew, caused by Blumeria graminis f. sp. tritici (Bgt), is one of the most destructive wheat diseases worldwide. Durum wheat (Triticum turgidum L. var. durum Desf.) is a crucial gene donor for improving common wheat.

Results: In this study, we investigated a durum wheat accession, DR88, which exhibits broad and high levels of resistance to powdery mildew. Using bulked segregant RNA-Seq (BSR-Seq), we identified a dominant gene, tentatively designated PmDR88, and localized it to 743-776 Mb interval on chromosome arm 2AL according to the reference genome of durum wheat cv. Svevo. Subsequently, PmDR88 was mapped in a genetic region of 3.9 cM flanked by the markers WGRE77410 and WGRC872 at genetic distances of 1.6 and 2.3 cM, respectively; it also co-segregated with JS717×JS718, the diagnostic marker for the Pm4 locus. Genotyping of a large population comprising 5,174 F families using JS717×JS718 confirmed that PmDR88 is located at the Pm4 locus on 2AL. Sequence alignment revealed that PmDR88 shares identical amino acid sequences with Pm4d, while qRT-PCR analysis suggested distinct expression patterns for PmDR88 compared with previously reported Pm4 alleles. Two complementary DNA markers, including the dominant co-segregating marker JS717×JS718 and a newly developed closely-linked co-dominant marker WGRE77410, were confirmed to be available for efficiently transferring PmDR88 into the tested wheat backgrounds by marker-assisted selection (MAS) strategy.

Conclusions: PmDR88 was mapped in the Pm4 locus. Despite sharing identical amino acid sequences with Pm4d, PmDR88 exhibits distinct expression patterns. Moreover, DR88 shows broad and high levels of resistance to powdery mildew. Two complementary DNA markers were identified for MAS breeding. The molecular identification of PmDR88 will facilitate transfer of this Pm4 allele into susceptible cultivars for resistance improvement or into resistant cultivars for resistance-enhanced pyramiding breeding.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11622551PMC
http://dx.doi.org/10.1186/s12870-024-05884-xDOI Listing

Publication Analysis

Top Keywords

powdery mildew
16
durum wheat
16
pm4 locus
12
pmdr88
9
molecular identification
8
pm4 allele
8
broad high
8
high levels
8
levels resistance
8
resistance powdery
8

Similar Publications

Diverse Functions of Plant MLO Proteins: From Mystery to Elucidation.

Annu Rev Phytopathol

September 2025

Institute for Bioscience and Biotechnology Research, University of Maryland, Rockville, Maryland, USA;

Recessive mutations in the mildew locus O () gene were first identified as key factors conferring broad-spectrum resistance to powdery mildew in barley. This discovery inspired extensive research on MLOs and novel breeding strategies for powdery mildew resistance by targeting genes in various crops. Over the past two decades, studies have revealed broader roles for MLOs beyond powdery mildew susceptibility, including regulating interactions with diverse pathogens and symbionts, root thigmomorphogenesis, and reproductive development.

View Article and Find Full Text PDF

Introduction: Grapevine is highly susceptible to fungal diseases such as downy mildew and powdery mildew, which are traditionally managed through the intensive use of chemical fungicides. However, in the context of increasingly sustainable viticulture, biofungicides derived from plant and yeast extracts are gaining attention. Despite this, their impact on the grapevine leaf microbiome, crucial for plant health and disease resilience, remains underexplored.

View Article and Find Full Text PDF

To successfully colonize the living tissue of its host, the fungal wheat powdery mildew pathogen produces diverse effector proteins that are suggested to reprogram host defense responses and physiology. When recognized by host immune receptors, these proteins become avirulence (AVR) effectors. Several sequence-diverse AVRPM3 effectors and the suppressor of AVRPM3-PM3 recognition (SVRPM3) are involved in triggering allele-specific, -mediated resistance, but the molecular mechanisms controlling their function in the host cell remain unknown.

View Article and Find Full Text PDF

Genetic mapping of Ascochyta blight resistance in an ILL6002 × Indianhead lentil mapping population.

Plant Genome

September 2025

Centre for Crop and Disease Management, School of Molecular and Life Sciences, Curtin University, Bentley, Western Australia, Australia.

Ascochyta blight of lentil (Lens culinaris Medik.) is a fungal disease caused by Ascochyta lentis. This study was carried out to identify the location of quantitative trait loci (QTL) associated with resistance from the accession Indianhead, and how these vary between the recently identified pathotypes of A.

View Article and Find Full Text PDF

The interaction between McMLO7b and McCASPL22 regulating the susceptibility to powdery mildews in balsam pear.

Plant Physiol Biochem

August 2025

Jiangsu Key Laboratory for Horticultural Crop Genetic Improvement, Institute of Vegetable Crops, Jiangsu Academy of Agricultural Sciences, Nanjing, 210014, China. Electronic address:

Powdery mildew (PM) is one of the most serious diseases in balsam pear. MLO (Mildew Resistance Locus O) is a key factor in the response of plants to PM infection, but its regulation mechanism remains poorly understood. In this study, overexpression of McMLO7b (MLO7b in Momordica charantia L) was found to potentially enhance Arabidopsis susceptibility to PM, confirming that McMLO7b acts as a susceptibility factor during PM infection.

View Article and Find Full Text PDF