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Updates from the group of Sophien Kamoun at The Sainsbury Lab
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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
February 20, 2024 11:46 AM
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bioRxiv: The nucleotide binding domain of NRC-dependent disease resistance proteins is sufficient to activate downstream helper NLR oligomerization and immune signaling (2023)

bioRxiv: The nucleotide binding domain of NRC-dependent disease resistance proteins is sufficient to activate downstream helper NLR oligomerization and immune signaling (2023) | Publications | Scoop.it

Nucleotide-binding domain and leucine-rich repeat (NLR) proteins with pathogen sensor activities have evolved to initiate immune signaling by activating helper NLRs. However, the mechanisms underpinning helper NLR activation by sensor NLRs remain poorly understood. Although coiled-coil (CC) type sensor NLRs such as the Potato virus X disease resistance protein Rx have been shown to activate the oligomerization of their downstream helpers NRC2 and NRC4, the domains involved in sensor-helper signaling are not known. Here, we show that the nucleotide binding (NB) domain within the NB-ARC of the Potato virus X disease resistance protein Rx is necessary and sufficient for oligomerization and immune signaling of downstream helper NLRs. In addition, the NB domains of the disease resistance proteins Gpa2 (cyst nematode resistance), Rpi-amr1, Rpi-amr3 (oomycete resistance) and Sw-5b (virus resistance) are also sufficient to activate their respective downstream NRC helpers. Moreover, the NB domain of Rx and its helper NRC2 form a minimal functional unit that can be transferred from solanaceous plants (lamiids) to the Campanulid species lettuce (Lactuca sativa). Our results challenge the prevailing paradigm that NLR proteins exclusively signal via their N-terminal domains and reveal a signaling activity for the NB domain of NRC-dependent sensor NLRs. We propose a model in which helper NLRs monitor the status of the NB domain of their upstream sensors.


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February 20, 2024 5:35 AM
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Medium: Fascists want us to live in space and other little pieces (2023)

Medium: Fascists want us to live in space and other little pieces (2023) | Publications | Scoop.it

This week, my mind is racing, and I can’t find the zen mood to craft a reflective blog post. Instead, here’s a medley of what’s come across my path.

 

Clickbait silliness

In my regular browsing of the Biology topic on AppleNews, I stumbled upon an attention-grabbing headline in BBC Science Focus Magazine — the kind that makes you wonder if you’re about to delve into clickbait silliness.

 

Initially, the article navigates the familiar terrain of speculating how human evolution might unfold should we venture into space. It’s an intriguing notion, albeit based on the somewhat obvious idea that we won’t survive unless we recreate an Earth-like environment (duh!). But then the piece takes a rather bizarre turn, straying into a realm where human biological evolution intersects with speculative notions about societal shifts:

 

“Surrounded by danger and acutely dependent on technology, we might develop much more authoritarian societies where each person must perform their allocated role without question and be ready to sacrifice themselves for the benefit of the species. This would be too important to leave to the unpredictability of democratic, free-market capitalism, so perhaps a rigid hierarchy, akin to the regimes aboard 19th century sailing ships would emerge.”

 

Now, that’s quite the vision. Count me out of that particular interstellar voyage. Yet, sadly aspects of this scenario are unfolding right here on Earth as current events indicate.

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February 20, 2024 5:30 AM
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Medium: 5 tips on how to navigate the onsite interview for an academic position (2023)

Medium: 5 tips on how to navigate the onsite interview for an academic position (2023) | Publications | Scoop.it

Congratulations! You’ve been selected for an in-person interview for a faculty position. Here is 5 tips to help you make a lasting impression during your interview.

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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
December 6, 2023 1:42 PM
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bioRxiv: Zinc-finger (ZiF) fold secreted effectors form a functionally diverse family across lineages of the blast fungus Magnaporthe oryzae.

bioRxiv: Zinc-finger (ZiF) fold secreted effectors form a functionally diverse family across lineages of the blast fungus Magnaporthe oryzae. | Publications | Scoop.it

Filamentous plant pathogens deliver effector proteins into host cells to suppress host defence responses and manipulate metabolic processes to support colonization. Understanding the evolution and molecular function of these effectors provides knowledge about pathogenesis and can suggest novel strategies to reduce damage caused by pathogens. However, effector proteins are highly variable, share weak sequence similarity and, although they can be grouped according to their structure, only a few structurally conserved effector families have been functionally characterized to date. Here, we demonstrate that Zinc-finger fold (ZiF) secreted proteins form a functionally diverse effector family in the blast fungus Magnaporthe oryzae. This family relies on the Zinc-finger motif for protein stability and is ubiquitously present, forming different effector tribes in blast fungus lineages infecting 13 different host species. Homologs of the canonical ZiF effector, AVR-Pii from rice infecting isolates, are present in multiple M. oryzae lineages, and the wheat infecting strains of the fungus, for example, possess an allele that also binds host Exo70 proteins and activates the immune receptor Pii. Furthermore, ZiF tribes vary in the host Exo70 proteins they bind, indicating functional diversification and an intricate effector/host interactome. Altogether, we uncovered a new effector family with a common protein fold that has functionally diversified in lineages of M. oryzae. This work expands our understanding of the diversity of M. oryzae effectors, the molecular basis of plant pathogenesis and may ultimately facilitate the development of new sources for pathogen resistance.


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October 20, 2023 11:05 AM
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Medium: People, not papers? A good mentor guides students to publish their work (2023)

Medium: People, not papers? A good mentor guides students to publish their work (2023) | Publications | Scoop.it

A nurturing academic mentor prioritizes the growth and development of students, but that shouldn’t come at the expense of publishing. And by publishing, I mean all forms of publications.

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October 20, 2023 10:30 AM
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Current Opinion Plant Biology: EVO-MPMI: From fundamental science to practical applications (2023)

Current Opinion Plant Biology: EVO-MPMI: From fundamental science to practical applications (2023) | Publications | Scoop.it

In the unending coevolutionary dance between plants and microbes, each player impacts the evolution of the other. Here, we provide an overview of the burgeoning field of evolutionary molecular plant–microbe interactions (EVO-MPMI)—the study of mechanisms of plant–microbe interactions in the context of their evolutionary history—tracing its progression from foundational science to practical implementation. We present a snapshot of current research and delve into central concepts, such as conserved features and convergent evolution, as well as methodologies such as ancestral reconstruction. Moreover, we shed light on the practical applications of EVO-MPMI, particularly within the realm of disease control. Looking ahead, we discuss potential future trajectories for EVO-MPMI research, spotlighting the innovative tools and technologies propelling the discipline forward.


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September 1, 2023 10:20 AM
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Science: Functional diversification of a wild potato immune receptor at its center of origin (2023)

Science: Functional diversification of a wild potato immune receptor at its center of origin (2023) | Publications | Scoop.it
Plant cell surface pattern recognition receptors (PRRs) and intracellular immune receptors cooperate to provide immunity to microbial infection. Both receptor families have coevolved at an accelerated rate, but the evolution and diversification of PRRs is poorly understood. We have isolated potato surface receptor Pep-13 receptor unit (PERU) that senses Pep-13, a conserved immunogenic peptide pattern from plant pathogenic Phytophthora species. PERU, a leucine-rich repeat receptor kinase, is a bona fide PRR that binds Pep-13 and enhances immunity to Phytophthora infestans infection. Diversification in ligand binding specificities of PERU can be traced to sympatric wild tuber-bearing Solanum populations in the Central Andes. Our study reveals the evolution of cell surface immune receptor alleles in wild potato populations that recognize ligand variants not recognized by others.

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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
September 1, 2023 10:19 AM
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New Phytologist: Interplay between cell-surface receptor and intracellular NLR-mediated immune responses (2023)

New Phytologist: Interplay between cell-surface receptor and intracellular NLR-mediated immune responses (2023) | Publications | Scoop.it

The functional link between cell-surface receptors and intracellular NLR immune receptors is a critical aspect of plant immunity. To establish disease, successful pathogens have evolved mechanisms to suppress cell-surface immune signalling. In response, plants have adapted by evolving NLRs that recognize pathogen effectors involved in this suppression, thereby counteracting their immune-suppressing function. This ongoing co-evolutionary struggle has seemingly resulted in intertwined signalling pathways in some plant species, where NLRs form a separate signalling branch downstream of activated cell-surface receptor complexes essential for full immunity. Understanding these interconnected receptor networks could lead to novel strategies for developing durable disease resistance.


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July 26, 2023 2:57 PM
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Plant Cell: Allelic compatibility in plant immune receptors facilitates engineering of new effector recognition specificities (2023)

Plant Cell: Allelic compatibility in plant immune receptors facilitates engineering of new effector recognition specificities (2023) | Publications | Scoop.it

Engineering the plant immune system offers genetic solutions to mitigate crop diseases caused by diverse agriculturally significant pathogens and pests. Modification of intracellular plant immune receptors of the nucleotide-binding leucine rich repeat (NLR) superfamily for expanded recognition of pathogen virulence proteins (effectors) is a promising approach for engineering disease resistance. However, engineering can cause NLR autoactivation, resulting in constitutive defence responses that are deleterious to the plant. This may be due to plant NLRs associating in highly complex signalling networks that co-evolve together, and changes through breeding or genetic modification can generate incompatible combinations, resulting in autoimmune phenotypes. The sensor and helper NLRs of the rice (Oryza sativa) NLR pair Pik have co-evolved, and mismatching between non-co-evolved alleles triggers constitutive activation and cell death. This limits the extent to which protein modifications can be used to engineer pathogen recognition and enhance disease resistance mediated by these NLRs. Here, we dissected incompatibility determinants in the Pik pair in Nicotiana benthamiana and found that heavy metal-associated (HMA) domains integrated in Pik-1 not only evolved to bind pathogen effectors but also likely co-evolved with other NLR domains to maintain immune homeostasis. This explains why changes in integrated domains can lead to autoactivation. We then used this knowledge to facilitate engineering of new effector recognition specificities, overcoming initial autoimmune penalties. We show that by mismatching alleles of the rice sensor and helper NLRs Pik-1 and Pik-2, we can enable the integration of synthetic domains with novel and enhanced recognition specificities. Taken together, our results reveal a strategy for engineering NLRs, which has the potential to allow an expanded set of integrations and therefore new disease resistance specificities in plants.


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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
July 26, 2023 2:32 PM
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eLife: Effector target-guided engineering of an integrated domain expands the disease resistance profile of a rice NLR immune receptor (2023)

eLife: Effector target-guided engineering of an integrated domain expands the disease resistance profile of a rice NLR immune receptor (2023) | Publications | Scoop.it

A subset of plant intracellular NLR immune receptors detect effector proteins, secreted by phytopathogens to promote infection, through unconventional integrated domains which resemble the effector’s host targets. Direct binding of effectors to these integrated domains activates plant defenses. The rice NLR receptor Pik-1 binds the Magnaporthe oryzae effector AVR-Pik through an integrated heavy metal-associated (HMA) domain. However, the stealthy alleles AVR-PikC and AVR-PikF avoid interaction with Pik-HMA and evade host defenses. Here, we exploited knowledge of the biochemical interactions between AVR-Pik and its host target, OsHIPP19, to engineer novel Pik-1 variants that respond to AVR-PikC/F. First, we exchanged the HMA domain of Pikp-1 for OsHIPP19-HMA, demonstrating that effector targets can be incorporated into NLR receptors to provide novel recognition profiles. Second, we used the structure of OsHIPP19-HMA to guide the mutagenesis of Pikp-HMA to expand its recognition profile. We demonstrate that the extended recognition profiles of engineered Pikp-1 variants correlate with effector binding in planta and in vitro, and with the gain of new contacts across the effector/HMA interface. Crucially, transgenic rice producing the engineered Pikp-1 variants was resistant to blast fungus isolates carrying AVR-PikC or AVR-PikF. These results demonstrate that effector target-guided engineering of NLR receptors can provide new-to-nature disease resistance in crops.


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July 26, 2023 2:21 PM
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PLOS Genetics: An atypical NLR protein modulates the NRC immune receptor network in Nicotiana benthamiana (2023)

PLOS Genetics: An atypical NLR protein modulates the NRC immune receptor network in Nicotiana benthamiana (2023) | Publications | Scoop.it

The NRC immune receptor network has evolved in asterid plants from a pair of linked genes into a genetically dispersed and phylogenetically structured network of sensor and helper NLR (nucleotide-binding domain and leucine-rich repeat-containing) proteins. In some species, such as the model plant Nicotiana benthamiana and other Solanaceae, the NRC (NLR-REQUIRED FOR CELL DEATH) network forms up to half of the NLRome, and NRCs are scattered throughout the genome in gene clusters of varying complexities. Here, we describe NRCX, an atypical member of the NRC family that lacks canonical features of these NLR helper proteins, such as a functional N-terminal MADA motif and the capacity to trigger autoimmunity. In contrast to other NRCs, systemic gene silencing of NRCX in N. benthamiana markedly impairs plant growth resulting in a dwarf phenotype. Remarkably, dwarfism of NRCX silenced plants is partially dependent on NRCX paralogs NRC2 and NRC3, but not NRC4. Despite its negative impact on plant growth when silenced systemically, spot gene silencing of NRCX in mature N. benthamiana leaves doesn't result in visible cell death phenotypes. However, alteration of NRCX expression modulates the hypersensitive response mediated by NRC2 and NRC3 in a manner consistent with a negative role for NRCX in the NRC network. We conclude that NRCX is an atypical member of the NRC network that has evolved to contribute to the homeostasis of this genetically unlinked NLR network.


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July 26, 2023 2:19 PM
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EMBO J: Effector-dependent activation and oligomerization of plant NRC class helper NLRs by sensor NLR immune receptors Rpi-amr3 and Rpi-amr1 (2023)

EMBO J: Effector-dependent activation and oligomerization of plant NRC class helper NLRs by sensor NLR immune receptors Rpi-amr3 and Rpi-amr1 (2023) | Publications | Scoop.it

Plant pathogens compromise crop yields. Plants have evolved robust innate immunity that depends in part on intracellular Nucleotide-binding, Leucine rich-Repeat (NLR) immune receptors that activate defense responses upon detection of pathogen-derived effectors. Most “sensor” NLRs that detect effectors require the activity of “helper” NLRs, but how helper NLRs support sensor NLR function is poorly understood. Many Solanaceae NLRs require NRC (NLR-Required for Cell death) class of helper NLRs. We show here that Rpi-amr3, a sensor NLR from Solanum americanum, detects AVRamr3 from the potato late blight pathogen, Phytophthora infestans, and activates oligomerization of helper NLRs NRC2 and NRC4 into high-molecular-weight resistosomes. In contrast, recognition of P. infestans effector AVRamr1 by another sensor NLR Rpi-amr1 induces formation of only the NRC2 resistosome. The activated NRC2 oligomer becomes enriched in membrane fractions. ATP-binding motifs of both Rpi-amr3 and NRC2 are required for NRC2 resistosome formation, but not for the interaction of Rpi-amr3 with its cognate effector. NRC2 resistosome can be activated by Rpi-amr3 upon detection of AVRamr3 homologs from other Phytophthora species. Mechanistic understanding of NRC resistosome formation will underpin engineering crops with durable disease resistance.


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July 26, 2023 2:15 PM
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Science: NLR immune receptor–nanobody fusions confer plant disease resistance (2023)

Science: NLR immune receptor–nanobody fusions confer plant disease resistance (2023) | Publications | Scoop.it

Plant pathogens cause recurrent epidemics, threatening crop yield and global food security. Efforts to retool the plant immune system have been limited to modifying natural components and can be nullified by the emergence of new pathogen strains. Made-to-order synthetic plant immune receptors provide an opportunity to tailor resistance to pathogen genotypes present in the field. In this work, we show that plant nucleotide-binding, leucine-rich repeat immune receptors (NLRs) can be used as scaffolds for nanobody (single-domain antibody fragment) fusions that bind fluorescent proteins (FPs). These fusions trigger immune responses in the presence of the corresponding FP and confer resistance against plant viruses expressing FPs. Because nanobodies can be raised against most molecules, immune receptor-nanobody fusions have the potential to generate resistance against plant pathogens and pests delivering effectors inside host cells.


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February 20, 2024 5:38 AM
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Medium: Luck is overrated (2023)

Medium: Luck is overrated (2023) | Publications | Scoop.it

In the world of science and discovery, luck of course can play a role but it often takes a back seat to dedication, perseverance, and rigorous research.

 

How big is the role of luck in career success? This question has lingered in my mind for decades. I’ve repeatedly been told that I’m lucky — lucky to reside in a Western country, to have secured a job, grants, had a paper accepted, to have exceptional people in my team, to be a good writer and communicator etc. The list goes on, prompting me to reflect — if I tally all these blessings, it seems I must have been touched by a higher power on the day of my birth.

 

The Economist asked the exact same question in a recent column. The article makes a case that career success is significantly influenced by luck, quoting American business magnate and investor Warren Buffett as “winning the ovarian lottery by being born in America”, and “being wired in a way that pays off in a market economy.”

 

Fortunately, the columnists came to their senses and concluded the piece with a more reasonable take:


“If luck can mean a bad decision has a good result, or vice versa, managers should learn to assess the success of an initiative on the basis of process as well as outcome. And if the difference between skill and luck becomes discernible over time, then reward people on consistency of performance, not one-off highs. Mr Buffett might have had a slice of luck at the outset, but a lifetime of investing success suggests he has maximised it.”

 

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February 20, 2024 5:32 AM
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Medium: The ancient guardian: ZAR1 evolutionary journey and adaptations (2023)

Medium: The ancient guardian: ZAR1 evolutionary journey and adaptations (2023) | Publications | Scoop.it

Imagine a plant immune system that has been protecting plants since the time of dinosaurs. Sounds fascinating, right? Well, that’s exactly what we discovered about a plant immune receptor called ZAR1. In our recent study, we delved into the evolutionary history of ZAR1 and uncovered some intriguing findings.

 

ZAR1 is a special type of immune receptor known as an NLR, which helps plants defend against pathogens. What’s remarkable is that while most NLRs evolve rapidly, even within the same species, ZAR1 has been remarkably conserved for millions of years. It traces its origins back to the Jurassic period, around 220 to 150 million years ago, when flowering plants were just starting to emerge.

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December 6, 2023 1:44 PM
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Proc Natl Acad Sci USA: Bimodular architecture of bacterial effector SAP05 that drives ubiquitin-independent targeted protein degradation (2023)

Proc Natl Acad Sci USA: Bimodular architecture of bacterial effector SAP05 that drives ubiquitin-independent targeted protein degradation (2023) | Publications | Scoop.it

In eukaryotes, targeted protein degradation (TPD) typically depends on a series of interactions among ubiquitin ligases that transfer ubiquitin molecules to substrates leading to degradation by the 26S proteasome. We previously identified that the bacterial effector protein SAP05 mediates ubiquitin-independent TPD. SAP05 forms a ternary complex via interactions with the von Willebrand Factor Type A (vWA) domain of the proteasomal ubiquitin receptor Rpn10 and the zinc-finger (ZnF) domains of the SQUAMOSA-PROMOTER BINDING PROTEIN-LIKE (SPL) and GATA BINDING FACTOR (GATA) transcription factors (TFs). This leads to direct TPD of the TFs by the 26S proteasome. Here, we report the crystal structures of the SAP05–Rpn10vWA complex at 2.17 Å resolution and of the SAP05–SPL5ZnF complex at 2.20 Å resolution. Structural analyses revealed that SAP05 displays a remarkable bimodular architecture with two distinct nonoverlapping surfaces, a “loop surface” with three protruding loops that form electrostatic interactions with ZnF, and a “sheet surface” featuring two β-sheets, loops, and α-helices that establish polar interactions with vWA. SAP05 binding to ZnF TFs involves single amino acids responsible for multiple contacts, while SAP05 binding to vWA is more stable due to the necessity of multiple mutations to break the interaction. In addition, positioning of the SAP05 complex on the 26S proteasome points to a mechanism of protein degradation. Collectively, our findings demonstrate how a small bacterial bimodular protein can bypass the canonical ubiquitin–proteasome proteolysis pathway, enabling ubiquitin-independent TPD in eukaryotic cells. This knowledge holds significant potential for the creation of TPD technologies.


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December 6, 2023 1:41 PM
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bioRxiv: The NRC0 gene cluster of sensor and helper NLR immune receptors is functionally conserved across asterid plants (2023)

bioRxiv: The NRC0 gene cluster of sensor and helper NLR immune receptors is functionally conserved across asterid plants (2023) | Publications | Scoop.it

NLR (nucleotide-binding domain and leucine-rich repeat-containing) proteins can form complex receptor networks to confer innate immunity. NRCs are phylogenetically related nodes that function downstream of a massively expanded network of disease resistance proteins that protect against multiple plant pathogens. Here, we used phylogenomic methods to reconstruct the macroevolution of the NRC family. One of the NRCs, we termed NRC0, is the only family member shared across asterid plants, leading us to investigate its evolutionary history and genetic organization. In several asterid species, NRC0 is genetically clustered to other NLRs that are phylogenetically related to NRC-dependent disease resistance genes. This prompted us to hypothesize that the ancestral state of the NRC network is an NLR helper-sensor gene cluster that was present early during asterid evolution. We validated this hypothesis by demonstrating that NRC0 is essential for the hypersensitive cell death induced by its genetically linked sensor NLR partners in four divergent asterid species: tomato, wild sweet potato, coffee and carrot. In addition, activation of a sensor NLR leads to high-order complex formation of its genetically linked NRC0 similar to other NRCs. Our findings map out contrasting evolutionary dynamics in the macroevolution of the NRC network over the last 125 million years from a functionally conserved NLR gene cluster to a massive genetically dispersed network.


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October 20, 2023 11:03 AM
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Medium: Wild potatoes have a novel way of resisting late blight disease (2023)

Medium: Wild potatoes have a novel way of resisting late blight disease (2023) | Publications | Scoop.it

Researchers from Wageningen, Tübingen and Norwich have shed new light on the evolutionary mechanisms that equip wild potato with broad disease resistance against the notorious late blight pathogen (Phytophthora infestans).

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October 20, 2023 10:29 AM
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New Phytologist: Interplay between cell-surface receptor and intracellular NLR-mediated immune responses (2023)

New Phytologist: Interplay between cell-surface receptor and intracellular NLR-mediated immune responses (2023) | Publications | Scoop.it

The functional link between cell-surface receptors and intracellular NLR immune receptors is a critical aspect of plant immunity. To establish disease, successful pathogens have evolved mechanisms to suppress cell-surface immune signalling. In response, plants have adapted by evolving NLRs that recognize pathogen effectors involved in this suppression, thereby counteracting their immune-suppressing function. This ongoing co-evolutionary struggle has seemingly resulted in intertwined signalling pathways in some plant species, where NLRs form a separate signalling branch downstream of activated cell-surface receptor complexes essential for full immunity. Understanding these interconnected receptor networks could lead to novel strategies for developing durable disease resistance.


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September 1, 2023 10:19 AM
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EMBO Reports: NLR receptors in plant immunity: making sense of the alphabet soup (2023)

EMBO Reports: NLR receptors in plant immunity: making sense of the alphabet soup (2023) | Publications | Scoop.it

Plants coordinately use cell-surface and intracellular immune receptors to perceive pathogens and mount an immune response. Intracellular events of pathogen recognition are largely mediated by immune receptors of the nucleotide binding and leucine rich-repeat (NLR) classes. Upon pathogen perception, NLRs trigger a potent broad-spectrum immune reaction, usually accompanied by a form of programmed cell death termed the hypersensitive response. Some plant NLRs act as multifunctional singleton receptors which combine pathogen detection and immune signaling. However, NLRs can also function in higher order pairs and networks of functionally specialized interconnected receptors. In this article, we cover the basic aspects of plant NLR biology with an emphasis on NLR networks. We highlight some of the recent advances in NLR structure, function, and activation and discuss emerging topics such as modulator NLRs, pathogen suppression of NLRs, and NLR bioengineering. Multi-disciplinary approaches are required to disentangle how these NLR immune receptor pairs and networks function and evolve. Answering these questions holds the potential to deepen our understanding of the plant immune system and unlock a new era of disease resistance breeding.


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Biochemical Society Transactions: NLR immune receptors: structure and function in plant disease resistance (2023)

Biochemical Society Transactions: NLR immune receptors: structure and function in plant disease resistance (2023) | Publications | Scoop.it
Nucleotide-binding and leucine-rich repeat receptors (NLRs) are a diverse family of intracellular immune receptors that play crucial roles in recognizing and responding to pathogen invasion in plants. This review discusses the overall model of NLR activation and provides an in-depth analysis of the different NLR domains, including N-terminal executioner domains, the nucleotide-binding oligomerization domain (NOD) module, and the leucine-rich repeat (LRR) domain. Understanding the structure-function relationship of these domains is essential for developing effective strategies to improve plant disease resistance and agricultural productivity.

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Plant Cell: Jurassic NLR: Conserved and dynamic evolutionary features of the atypically ancient immune receptor ZAR1 (2023)

Plant Cell: Jurassic NLR: Conserved and dynamic evolutionary features of the atypically ancient immune receptor ZAR1 (2023) | Publications | Scoop.it

Plant nucleotide-binding leucine-rich repeat (NLR) immune receptors generally exhibit hallmarks of rapid evolution, even at the intraspecific level. We used iterative sequence similarity searches coupled with phylogenetic analyses to reconstruct the evolutionary history of HOPZ-ACTIVATED RESISTANCE1 (ZAR1), an atypically conserved NLR that traces its origin to early flowering plant lineages ∼220 to 150 million yrs ago (Jurassic period). We discovered 120 ZAR1 orthologs in 88 species, including the monocot Colocasia esculenta, the magnoliid Cinnamomum micranthum, and most eudicots, notably the Ranunculales species Aquilegia coerulea, which is outside the core eudicots. Ortholog sequence analyses revealed highly conserved features of ZAR1, including regions for pathogen effector recognition and cell death activation. We functionally reconstructed the cell death activity of ZAR1 and its partner receptor-like cytoplasmic kinase (RLCK) from distantly related plant species, experimentally validating the hypothesis that ZAR1 evolved to partner with RLCKs early in its evolution. In addition, ZAR1 acquired novel molecular features. In cassava (Manihot esculenta) and cotton (Gossypium spp.), ZAR1 carries a C-terminal thioredoxin-like domain, and in several taxa, ZAR1 duplicated into 2 paralog families, which underwent distinct evolutionary paths. ZAR1 stands out among angiosperm NLR genes for having experienced relatively limited duplication and expansion throughout its deep evolutionary history. Nonetheless, ZAR1 also gave rise to noncanonical NLRs with integrated domains and degenerated molecular features.


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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
July 26, 2023 2:23 PM
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Plant Biotechnol Journal: Nucleotide-binding leucine-rich repeat network underlies nonhost resistance of pepper against the Irish potato famine pathogen Phytophthora infestans (2023)

Plant Biotechnol Journal: Nucleotide-binding leucine-rich repeat network underlies nonhost resistance of pepper against the Irish potato famine pathogen Phytophthora infestans (2023) | Publications | Scoop.it

Nonhost resistance (NHR) is a robust plant immune response against non-adapted pathogens. A number of nucleotide-binding leucine-rich repeat (NLR) proteins that recognize non-adapted pathogens have been identified, although the underlying molecular mechanisms driving robustness of NHR are still unknown. Here, we screened 57 effectors of the potato late blight pathogen Phytophthora infestans in nonhost pepper (Capsicum annuum) to identify avirulence effector candidates. Selected effectors were tested against 436 genome-wide cloned pepper NLRs, and we identified multiple functional NLRs that recognize P. infestans effectors and confer disease resistance in the Nicotiana benthamiana as a surrogate system. The identified NLRs were homologous to known NLRs derived from wild potatoes that recognize P. infestans effectors such as Avr2, Avrblb1, Avrblb2, and Avrvnt1. The identified CaRpi-blb2 is a homologue of Rpi-blb2, recognizes Avrblb2 family effectors, exhibits feature of lineage-specifically evolved gene in microsynteny and phylogenetic analyses, and requires pepper-specific NRC (NLR required for cell death)-type helper NLR for proper function. Moreover, CaRpi-blb2–mediated hypersensitive response and blight resistance were more tolerant to suppression by the PITG_15 278 than those mediated by Rpi-blb2. Combined results indicate that pepper has stacked multiple NLRs recognizing effectors of non-adapted P. infestans, and these NLRs could be more tolerant to pathogen-mediated immune suppression than NLRs derived from the host plants. Our study suggests that NLRs derived from nonhost plants have potential as untapped resources to develop crops with durable resistance against fast-evolving pathogens by stacking the network of nonhost NLRs into susceptible host plants.


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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
July 26, 2023 2:21 PM
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PLOS Biology: Disentangling the complex gene interaction networks between rice and the blast fungus identifies a new pathogen effector (2023)

PLOS Biology: Disentangling the complex gene interaction networks between rice and the blast fungus identifies a new pathogen effector (2023) | Publications | Scoop.it

Studies focused solely on single organisms can fail to identify the networks underlying host–pathogen gene-for-gene interactions. Here, we integrate genetic analyses of rice (Oryza sativa, host) and rice blast fungus (Magnaporthe oryzae, pathogen) and uncover a new pathogen recognition specificity of the rice nucleotide-binding domain and leucine-rich repeat protein (NLR) immune receptor Pik, which mediates resistance to Moryzae expressing the avirulence effector gene AVR-Pik. Rice Piks-1, encoded by an allele of Pik-1, recognizes a previously unidentified effector encoded by the Moryzae avirulence gene AVR-Mgk1, which is found on a mini-chromosome. AVR-Mgk1 has no sequence similarity to known AVR-Pik effectors and is prone to deletion from the mini-chromosome mediated by repeated Inago2 retrotransposon sequences. AVR-Mgk1 is detected by Piks-1 and by other Pik-1 alleles known to recognize AVR-Pik effectors; recognition is mediated by AVR-Mgk1 binding to the integrated heavy metal-associated (HMA) domain of Piks-1 and other Pik-1 alleles. Our findings highlight how complex gene-for-gene interaction networks can be disentangled by applying forward genetics approaches simultaneously to the host and pathogen. We demonstrate dynamic coevolution between an NLR integrated domain and multiple families of effector proteins.


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Rescooped by Kamoun Lab @ TSL from Publications from The Sainsbury Laboratory
July 26, 2023 2:19 PM
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EMBO J: Sensor NLR immune proteins activate oligomerization of their NRC helpers in response to plant pathogens (2023)

EMBO J: Sensor NLR immune proteins activate oligomerization of their NRC helpers in response to plant pathogens (2023) | Publications | Scoop.it

Nucleotide-binding domain leucine-rich repeat (NLR) immune receptors are important components of plant and metazoan innate immunity that can function as individual units or as pairs or networks. Upon activation, NLRs form multiprotein complexes termed resistosomes or inflammasomes. Although metazoan paired NLRs, such as NAIP/NLRC4, form hetero-complexes upon activation, the molecular mechanisms underpinning activation of plant paired NLRs, especially whether they associate in resistosome hetero-complexes, is unknown. In asterid plant species, the NLR required for cell death (NRC) immune receptor network is composed of multiple resistance protein sensors and downstream helpers that confer immunity against diverse plant pathogens. Here, we show that pathogen effector-activation of the NLR proteins Rx (confers virus resistance), and Bs2 (confers bacterial resistance) leads to oligomerization of their helper NLR, NRC2. Activated Rx does not oligomerize or enter into a stable complex with the NRC2 oligomer and remains cytoplasmic. In contrast, activated NRC2 oligomers accumulate in membrane-associated puncta. We propose an activation-and-release model for NLRs in the NRC immune receptor network. This points to a distinct activation model compared with mammalian paired NLRs.


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