“Rpp2 Encodes a TIR-NBS-WH-LRR Protein that Confers Resistance to Phakopsora pachyrhizi in Soybean,” by Katerina L. Holan et al. Learn more: https://doi.org/10.1094/MPMI-02-26-0013-R #soybean #soybeanrust #Phakopsora #diseaseresistance
Molecular Plant-Microbe Interactions® (MPMI)
@mpmijournal.bsky.social
MPMI, a gold open access journal published by The American Phytopathological Society, features research on plant interactions with microbes, insects, nematodes, and parasitic plants.
Asher I. Hudson, Maggie R. Wagner, and Peter J. Balint-Kurti investigated the production of reactive oxygen species following treatment with microbial elicitors in maize hybrids and their inbred parents: https://doi.org/10.1094/MPMI-08-25-0100-SC
Huan Zhang et al. identified an Fov4-specific nonribosomal peptide synthetase gene, FNP1, and uncovered a previously unknown role in controlling fusaric acid production, environmental stress adaptation, and virulence in Fov4: https://doi.org/10.1094/MPMI-01-26-0004-R
Anastasios Samaras et al. characterized the functional role of a novel effector—Mo2928Fm—in the infection biology of a highly virulent #Magnaporthe oryzae strain isolated from finger millet in Uganda. Learn more: https://doi.org/10.1094/MPMI-02-26-0019-SC
Interactions Review: "Current Understanding of the Genetic and Molecular Interactions Between the Tar Spot Pathogen Phyllachora maydis and Maize," by Abigail Rogers et al. Learn more: https://doi.org/10.1094/MPMI-01-26-0009-IRW
Editor’s Pick: “Transcriptional Regulation of Protein Trafficking Machinery in the Legume–Rhizobia Symbiosis,” by Christina Stonoha-Arther, Julie Sun, and Dong Wang. Learn more: https://doi.org/10.1094/MPMI-07-25-0092-R
Editor’s Pick: Yi Zhang et al. demonstrate that the #Arabidopsis ubiquitin ligase (E3) XBAT35.2 positively regulates FLS2-mediated PTI by modulating FLS2 protein stability. Learn more: https://doi.org/10.1094/MPMI-02-26-0015-R
Ludivine Guigard et al. evaluated the rice transcriptional response to a diversity of bacteria spanning from root pathogens to plant growth-promoting rhizobacteria in hydroponic conditions. Learn more: https://doi.org/10.1094/MPMI-09-25-0129-FI
Parijat S. Juvale et al. report that a novel #Arabidopsis thaliana kinase cascade shows telltale similarities to the kinase cascades of oxidative stress response kinases from humans and animals. Learn more: https://doi.org/10.1094/MPMI-11-25-0159-FI
Hiroshi Yoshida et al. established a copper-inducible gene expression system for tomato hairy roots that enables precise, on-demand activation of immune signaling in the root tissue: https://doi.org/10.1094/MPMI-11-25-0160-FI
Kipa Tamrakar et al. elucidated the role of #rhizosphere microbial composition and activity, both in the presence and absence of #Fusarium virguliforme, across two commercial soybean cultivars with differing susceptibility to SDS: https://doi.org/10.1094/MPMI-09-25-0121-FI
Esmaeil Miraeiz, Lucas Borges dos Santos, and Matthew E. Hudson highlight how integrative functional genomics is reshaping the discovery of resistance genes, clarifying soybean cyst nematode virulence strategies, & guiding the development of more durable management approaches: https://bit.ly/4u9fiVb
#Agroathelia rolfsii causes stem rot in multiple crops. Naveen Arakkal Thaiparambil et al. demonstrated the multifaceted potential of #Trichoderma virens DM5 as an effective and sustainable agent for managing tomato southern blight caused by A. rolfsii. https://doi.org/10.1094/MPMI-07-25-0075-FI
Review: "Unseen Struggles: How Plant-Parasitic Nematodes Manipulate ROS Signaling in Host Plants," by Anil Kumar, Chunoti Changwal, and Thomas J. Baum: https://doi.org/10.1094/MPMI-11-25-0161-FI
Findings from Komal Pervaiz et al. provide new molecular insights into how #Magnaporthe oryzae responds to antagonistic barley-associated bacteria under in vitro conditions: https://doi.org/10.1094/MPMI-11-25-0158-FI
Csaba Gellért et al. highlight how legumes employ elements of their immune system for the negative selection of rhizobia via processes resembling the gene-for-gene model of effector-triggered immunity in plant–pathogen interactions. Read the Interactions Review to learn more: https://bit.ly/49LmYo9
Pei-Cheng Huang et al. identified a novel rhizobacterium with a broad host range that promotes growth and systemic resistance across multiple plant species in a jasmonic acid-dependent, ketol-driven manner. Learn more: https://doi.org/10.1094/MPMI-10-25-0142-FI
The root-lesion nematode #Pratylenchus vulnus parasitizes a wide range of hosts, including woody perennials such as walnut and grapevine, significantly damaging roots and reducing yields. Dadong Dai et al. present a high-quality, chromosome-level genome assembly of P. vulnus: https://bit.ly/4u48AiZ
Interactions between plant-parasitic nematodes (PPNs) and other phytopathogens can lead to disease complexes. Alison Blundell et al. discuss specific aspects of PPN life cycles that may facilitate disease complex formation: https://doi.org/10.1094/MPMI-10-25-0154-FI
Using whole-genome resequencing data from 1,110 soybean accessions, Sushil Satish Chhapekar et al. identified novel allelic variation and unique haplotypes in diverse soybean germplasm that contribute to resistance against soybean cyst nematode: https://bit.ly/4eEqF2q
📢 The next @mpmijournal.bsky.social Focus Issue is now open for submissions: "Plant Immune Receptors in the Spotlight" 🌱🔬 Edited by @dinglab.bsky.social @clemmar.bsky.social @marischuster.bsky.social Rich Wilson and myself! Submit your best work by 31/10/26! 👇 apsjournals.apsnet.org/mpmireceptors
Plant Immune Receptors in the Spotlight
apsjournals.apsnet.org
NEW: Explore the latest MPMI focus issue, "Symbiotic and Pathogenic Interactions in the Rhizosphere": https://apsjournals.apsnet.org/toc/mpmi/39/2 #rhizosphere
Plant resistance (R) and pathogen avirulence (Avr) gene interaction are central to pathogen recognition and disease resistance. Eric C. Pereira et al. identified an Avr candidate, AvrPstB48, that triggered defense responses in 16 out of 24 cultivars tested: https://bit.ly/4bu7o0u
#Elsinoë arachidis is a major foliar pathogen responsible for peanut scab. Jingwen Hao et al. provided insights into the molecular mechanism that governs ESCB3-mediated virulence and elsinochrome production in E. arachidis and offers potential targets for control strategies: https://bit.ly/4sjCPll
Elizabeth Deyett et al. demonstrated that pretreatment with two bacterial isolates from the grapevine endosphere, Pseudomonas viridiflava and Achromobacter vitis, reduced symptoms of Pierce’s disease and Xylella fastidosa titer comparable to a known biocontrol agent: https://bit.ly/4lzLqxH
Previous studies have provided a broader view of #Bacillus cereus AR156 control of tomato bacterial wilt. Zi-Jie Li et al. explored key WRKY transcription factors from transcriptional regulation perspective and provide a theoretical foundation for the biocontrol of diseases: https://bit.ly/47Rzbqq
A recent study by Durga Bhavani KB et al. identified key players in diffusible signal factor (DSF)-mediated immune response and elaborated on the downstream events of DSF recognition as a pathogen-associated molecular patterns: https://bit.ly/4bgxzJd
Darcy A. B. Jones and Sylvain Raffaele identified 215 effector-like proteins and refined our understating of effector diversity and organization in#Sclerotinia sclerotiorum. Read the article to learn more: https://doi.org/10.1094/MPMI-08-25-0101-R
Harringtonia lauricola causes a lethal disease called laurel wilt and threatens both native ecosystems and avocado production. Joshua L. Konkol, Qiang Wang, and Jeffrey A. Rollins identified key compatibility traits that enable H. lauricola to lethally colonize its tree hosts: https://bit.ly/3Nu5tRw
Editor’s Pick: “A Novel Chitinase-Like Family of Candidate Effectors Unique to Aphids,” by Rosa Lopez-Cobollo et al. Learn more: https://doi.org/10.1094/MPMI-08-25-0098-R Read the Commentary by Sandra V. Gomez-Gutierrez and Unnati Sonawala: https://doi.org/10.1094/MPMI-01-26-0010-CM