Plant hormones (Literature sources on phytohormones and plant signalling)
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INDUCER OF CBF EXPRESSION 1 promotes cold-enhanced immunity by directly activating salicylic acid signaling

INDUCER OF CBF EXPRESSION 1 promotes cold-enhanced immunity by directly activating salicylic acid signaling | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Shaoqin Li, Li He, Yongping Yang, Yixin Zhang, Xiao Han, Yanru Hu and Yanjuan Jiang. 

The Plant Cell (2024)

One-sentence summary: The NPR1–TGA3–ICE1 regulatory module represents an important step in salicylic acid signaling during cold-activated resistance of plants to pathogen attack.

Abstract: "Cold stress affects plant immune responses, and this process may involve the salicylic acid (SA) signaling pathway. However, the underlying mechanism by which low-temperature signals coordinate with SA signaling to regulate plant immunity remains unclear. Here, we found that low temperatures enhanced the disease resistance of Arabidopsis thaliana against Pseudomonas syringae pv. tomato DC3000. This process required INDUCER OF CBF EXPRESSION 1 (ICE1), the core transcription factor in cold-signal cascades. ICE1 physically interacted with NONEXPRESSER OF PATHOGENESIS-RELATED GENES 1 (NPR1), the master regulator of the SA signaling pathway. Enrichment of ICE1 on the PATHOGENESIS-RELATED GENE 1 (PR1) promoter and its ability to transcriptionally activate PR1 were enhanced by NPR1. Further analyses revealed that cold stress signals cooperate with SA signals to facilitate plant immunity against pathogen attack in an ICE1-dependent manner. Cold treatment promoted interactions of NPR1 and TGACG-BINDING FACTOR 3 (TGA3) with ICE1 and increased the ability of the ICE1–TGA3 complex to transcriptionally activate PR1. Together, our results characterize a critical role of ICE1 as an indispensable regulatory node linking low-temperature-activated and SA-regulated immunity. Understanding this crucial role of ICE1 in coordinating multiple signals associated with immunity broadens our understanding of plant–pathogen interactions."
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How to use this site to your advantage ... and not get lost

How to use this site to your advantage ... and not get lost | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
How to benefit the most of this site?

Just follow the steps as below: 

 - The first possibility (and a highly recommended one) is just to visit it frequently, in order to stay aware of the newly published articles or sources of information as soon as they are posted. 

 - Further, since the most recently 3,760 postings from the 7,320 originally posted are presently available (as of October 10, 2023) which are arranged as per date of posting, you can do a search according to your specific interests. In doing that, you go to the upper right corner ("Search in topics" depicted with a label), where you can just use the descriptors that are available there; i.e. "Tags" which are ordered alphabetically.). Another possibility is to type there a keyword (or an entire phrase) that can be the name of an author or a word/phrase contained in the title/abstract or anything you deem relevant. 

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 Hoping this will be useful and waiting for feedback to keep improving the site, I wish all the best 

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NOTE: Certainly, given the sheer number of articles being published currently on the relevant issues, no claim for completeness can be provided. Therefore, only samples of papers and/or sources arbitrarily selected by the curator are posted here, intending to show the diversity of phenomena in which plant hormones can be involved.
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B-BOX proteins:Multi-layered roles of molecular cogs in light-mediated growth and development in plants - Review

B-BOX proteins:Multi-layered roles of molecular cogs in light-mediated growth and development in plants - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Zhaoqing Song, Yeting Bian, Yuntao Xiao and Dongqing Xu.

Journal of Plant Physiology (2024)

Abstract: "B-box containing proteins (BBXs) are a class of zinc-ligating transcription factors or regulators that play essential roles in various physiological and developmental processes in plants. They not only directly associate with target genes to regulate their transcription, but also interact with other transcription factors to mediate target genes’ expression, thus forming a complex transcriptional network ensuring plants’ adaptation to dynamically changing light environments. This review summarizes and highlights the molecular and biochemical properties of BBXs, as well as recent advances with a focus on their critical regulatory functions in photomorphogenesis (de-etiolation), shade avoidance, photoperiodic-mediated flowering, and secondary metabolite biosynthesis and accumulation in plants."
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Natural variant of Rht27, a dwarfing gene, enhances yield potential in wheat  

Authors: Xiaolin Liu, Shusong Zheng, Shuiquan Tian, Yaoqi Si, Shengwei Ma, Hong-Qing Ling and Jianqing Niu.


Theoretical and Applied Genetics (2024)


Key message: Discovery of Rht27, a dwarf gene in wheat, showed potential in enhancing grain yield by reducing plant height. 


Abstract: "Plant height plays a crucial role in crop architecture and grain yield, and semi-dwarf Reduced Height (Rht) alleles contribute to lodging resistance and were important in “Green Revolution.” However, the use of these alleles is associated with some negative side effects in some environments, such as reduced coleoptile length, low nitrogen use efficiency, and reduced yield. Therefore, novel dwarf gene resources are needed to pave an alternative route to overcome these side effects. In this study, a super-dwarf mutant rht27 was obtained by the mutagenesis of G1812 (Triticum urartu, the progenitor of the A sub-genome of common wheat). Genetic analysis revealed that the dwarf phenotype was regulated by a single recessive genetic factor. The candidate region for Rht27 was narrowed to a 1.55 Mb region on chromosome 3, within which we found two potential candidate genes that showed polymorphisms between the mutant and non-mutagenized G1812. Furthermore, the natural variants and elite haplotypes of the two candidates were investigated in a natural population of common wheat. The results showed that the natural variants affect grain yield components, and the dwarf haplotypes show the potential in improving agronomic traits and grain yield. Although the mutation in Rht27 results in severe dwarf phenotype in T. urartu, the natural variants in common wheat showed desirable phenotype, which suggests that Rht27 has the potential to improve wheat yield by utilizing its weak allelic mutation or fine-tuning its expression level."

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This relevant article can be accessed by using the following link:


Text of figure above: "rht27 plants are GA sensitive and contain a low level of endogenous GA contents. The phenotype (a) and bar graphs of plant height (b) of G1812 and rht27 under the treatments of GA3 and distilled water in the green house conditions. Bar graphs of bioactive GA contents of GA1 (c), GA3 (d), GA4 (e), and GA7 (f)."
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Enhancing wheat regeneration and genetic transformation through overexpression of TaLAX1

Enhancing wheat regeneration and genetic transformation through overexpression of TaLAX1 | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Yang Yu, Haixia Yu, Jing Peng, Wang Jinsong Yao, Yi Peng Wang, Feng Li Zhang, Shi Rong Wang, Yajie Zhao, Xiang Yu Zhao, Xian Sheng Zhang and Ying Hua Su. 

Plant Communications (2024)

Editor's view: TaLAX1 can promote shoot regeneration, thereby boosting genetic transformation and genome editing in wheat by activating TaGRFs and TaGIF1, cytokinin biosynthesis genes, and auxin-response genes. Homologs of TaLAX1 can also enhance the regeneration capacity of maize and soybean.

Abstract: "In the realm of genetically transformed crops, the process of plant regeneration holds utmost significance. However, the low regeneration efficiency of several wheat varieties currently restricts the use of genetic transformation for gene functional analysis and improved crop production. This research explores overexpression of TaLAX PANICLE1 (TaLAX1), which markedly enhances regeneration efficiency, thereby boosting genetic transformation and genome editing in wheat. Particularly noteworthy is the substantial increase in regeneration efficiency of common wheat varieties previously regarded as recalcitrant to genetic transformation. Our study shows that increased expression of TaGROWTH-REGULATING FACTOR (TaGRF) genes, alongside that of their co-factor, TaGRF-INTERACTING FACTOR 1 (TaGIF1), enhances cytokinin accumulation and auxin response, which may play pivotal roles in the improved regeneration and transformation of TaLAX1-overexpressing wheat plants. Overexpression of TaLAX1 homologs also significantly increases the regeneration efficiency of maize and soybean, suggesting that both monocot and dicot crops can benefit from this enhancement. Our findings shed light on a gene that enhances wheat genetic transformation and elucidate molecular mechanisms that potentially underlie wheat regeneration."
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Interesting paper!
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Functional characterisation of Artemisia annua jasmonic acid carboxyl methyltransferase: a key enzyme enhancing artemisinin biosynthesis

Functional characterisation of Artemisia annua jasmonic acid carboxyl methyltransferase: a key enzyme enhancing artemisinin biosynthesis | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Ishfaq Majid Hurrah, Amit Kumar and Nazia Abbas.


Planta (2024)


Main conclusion: Overexpression of Artemisia annua jasmonic acid carboxyl methyltransferase (AaJMT) leads to enhanced artemisinin content in Artemisia annua. 


Abstract: "Artemisinin-based combination therapies remain the sole deterrent against deadly disease malaria and Artemisia annua remains the only natural producer of artemisinin. In this study, the 1101 bp gene S-adenosyl-l-methionine (SAM): Artemisia annua jasmonic acid carboxyl methyltransferase (AaJMT), was characterised from A. annua, which converts jasmonic acid (JA) to methyl jasmonate (MeJA). From phylogenetic analysis, we confirmed that AaJMT shares a common ancestor with Arabidopsis thaliana, Eutrema japonica and has a close homology with JMT of Camellia sinensis. Further, the Clustal Omega depicted that the conserved motif I, motif III and motif SSSS (serine) required to bind SAM and JA, respectively, are present in AaJMT. The relative expression of AaJMT was induced by wounding, MeJA and salicylic acid (SA) treatments. Additionally, we found that the recombinant AaJMT protein catalyses the synthesis of MeJA from JA with a Km value of 37.16 µM. Moreover, site-directed mutagenesis of serine-151 in motif SSSS to tyrosine, asparagine-10 to threonine and glutamine-25 to histidine abolished the enzyme activity of AaJMT, thus indicating their determining role in JA substrate binding. The GC–MS analysis validated that mutant proteins of AaJMT were unable to convert JA into MeJA. Finally, the artemisinin biosynthetic and trichome developmental genes were upregulated in AaJMT overexpression transgenic lines, which in turn increased the artemisinin content."

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Relevant article!
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The role of CBL–CIPK signaling in plant responses to biotic and abiotic stresses - Review 

The role of CBL–CIPK signaling in plant responses to biotic and abiotic stresses - Review  | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: J. S. Chen, S. T. Wang, Q. Mei, T. Sun, J. T. Hu, G. S. Xiao, H. Chen and Y. H. Xuan.


Plant Molecular Biology (2024)


Abstract: "Plants have a variety of regulatory mechanisms to perceive, transduce, and respond to biotic and abiotic stress. One such mechanism is the calcium-sensing CBL–CIPK system responsible for the sensing of specific stressors, such as drought or pathogens. CBLs perceive and bind Calcium (Ca2+) in response to stress and then interact with CIPKs to form an activated complex. This leads to the phosphorylation of downstream targets, including transporters and ion channels, and modulates transcription factor levels and the consequent levels of stress-associated genes. This review describes the mechanisms underlying the response of the CBL–CIPK pathway to biotic and abiotic stresses, including regulating ion transport channels, coordinating plant hormone signal transduction, and pathways related to ROS signaling. Investigation of the function of the CBL–CIPK pathway is important for understanding plant stress tolerance and provides a promising avenue for molecular breeding."

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The “plant neurobiology” revolution - Review

The “plant neurobiology” revolution - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Author: Peter V. Minorsky. 

Plant Signaling & Behavior (2024)

Abstract: "The 21st-century “plant neurobiology” movement is an amalgam of scholars interested in how “neural processes”, broadly defined, lead to changes in plant behavior. Integral to the movement (now called plant behavioral biology) is a triad of historically marginalized subdisciplines, namely plant ethology, whole plant electrophysiology and plant comparative psychology, that set plant neurobiology apart from the mainstream. A central tenet held by these “triad disciplines” is that plants are exquisitely sensitive to environmental perturbations and that destructive experimental manipulations rapidly and profoundly affect plant function. Since destructive measurements have been the norm in plant physiology, much of our “textbook knowledge” concerning plant physiology is unrelated to normal plant function. As such, scientists in the triad disciplines favor a more natural and holistic approach toward understanding plant function. By examining the history, philosophy, sociology and psychology of the triad disciplines, this paper refutes in eight ways the criticism that plant neurobiology presents nothing new, and that the topics of plant neurobiology fall squarely under the purview of mainstream plant physiology. It is argued that although the triad disciplines and mainstream plant physiology share the common goal of understanding plant function, they are distinct in having their own intellectual histories and epistemologies."
Julio Retamales's insight:
A first-hand, comprehensive account of a disputed topic...

Note: Regarding the author (picture above), according to his Wercy University website: "He is an active member of the "plant neurobiology" movement, a group of renegade plant biologists who are interested in exploring plant behavior, and whether plants are capable of higher cognitive functions such as learning, memory and sentience."   
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DIV1: The Master of Awakening Seeds in Harsh Salinity Stress 

Authors: Baolei Li and Jiaqi Sun.


Plant Physiology (2024)


Excerpt: "The functions of DIVARICATA (DIV) proteins, which belong to the MYB-like TF family, remain elusive (Fang et al., 2018). Six DIV genes have been identified in Arabidopsis based on their structural resemblance to the tomato I-box binding factor SlMYBI (Machemer et al., 2011). Among these, only DIV2 has been characterized as a positive regulator of seed germination in response to ABA and salt stress (Fang et al., 2018). However, the roles of the other DIV genes in the process of seed germination in response to salinity stress remain largely unexplored. In this issue of Plant Physiology, Zhang et al. (2024) provide evidence that DIV1 functions as a crucial integrative regulator that links salinity stress with ABA/GA signaling during seed germination."


"In summary, Zhang et al. (2024) illustrate the significant role of DIV1 as a positive regulator of Arabidopsis seed germination in response to salinity stress. DIV1 exerts a direct influence on ABA/GA signaling by promoting GASA4 expression and suppressing DOGL3 expression. Additionally, it indirectly modulates the expression of a series of germination-associated genes.

Julio Retamales's insight:
Commentary on the relevant article by Zhang et al. ("Transcription factor DIVARICATA1 positively modulates seed germination in response to salinity stress"), which is posted here.

Text of figure above: "Figure 1. Simplified Model of DIV1-Mediated Regulation of Seed Germination. This model illustrates how DIV1 expression is induced by gibberellic acid (GA) and repressed by salinity, osmotic stress, and abscisic acid (ABA). NF-YC9 directly inhibits DIV1 expression. In turn, DIV1 directly influences the expression of DOGL3 and GASA4 and indirectly affects a range of other genes associated with germination in response to salinity stress. Arrows and T-bars represent promoting and inhibitory effects, respectively. Solid lines indicate direct transcriptional regulation, while dotted lines denote indirect transcriptional regulation."
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Physiological and molecular functions of brassinosteroids during fruit development, ripening, and postharvest damage of horticultural products: A review

Physiological and molecular functions of brassinosteroids during fruit development, ripening, and postharvest damage of horticultural products: A review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Diego Alejandro Gutiérrez-Villamil, Stanislav Magnitskiy and Helber Enrique Balaguera-López. 

Postharvest Biology and Technology (2024)

Highlights • BR have a potential signaling function in the regulation of fruit development. • BR are a postharvest technology to regulate the ripening of fruits and vegetables. • BR mitigate chilling injury by increasing antioxidant systems. • BR induce expression genes of defense and immunity against postharvest pathogens. 

Abstract: "Fresh horticultural products satisfy the nutritional, and industrial needs of consumers worldwide. However, the lack of understanding of the fruit development process, the accelerated senescence process and the lack of post-harvest technology in some regions, present a threat to the food and economic security of the food agribusiness. Brassinosteroids (BR) are plant hormones involved in the regulation of various physiological processes and have recently proven to be a viable post-harvest technology alternative to regulate the ripening and senescence of fruits and vegetables. In this review, the current state of BR research on fruit growth and development, physicochemical changes during ripening, and biotic-abiotic stress during the post-harvest life of horticultural products is presented. Furthermore, the review encompasses the effect of the application of exogenous BR and its relationship with molecular signaling on the processes mentioned above, including aspects such as methods, moments and BR analogues at the time of application, and the molecular mechanisms involved. This review proposes a basis for research of the physiological aspects of BR regulation in fruits and vegetables during their development and post-harvest period, and also points to a direction for in-depth investigation of the molecular mechanisms."
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Biostimulants: A Sufficiently Effective Tool for Sustainable Agriculture in the Era of Climate Change? - Review

Biostimulants: A Sufficiently Effective Tool for Sustainable Agriculture in the Era of Climate Change? - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Faisal Zulfiqar, Anam Moosa, Hayssam M. Ali, Núria F. Bermejo and Sergi Munné-Bosch.

Plant Physiology and Biochemistry (2024)

Highlights: • Biostimulants are biobased solutions to tackle modern agriculture problems • For tackling climate change issue, biostimulants are not enough • Stopping wars and conflicts is the main solution to save environment and agriculture 

Abstract: "Climate change is currently one of the main concerns of the agricultural sector, as it limits crop production and quality. Furthermore, the current context of global crisis with international political instability and war conflicts over the world is pushing the agricultural sector even more to urgently boost productivity and yield and doing so in a sustainable way in the current frame of climate change. Biostimulants can be an effective tool in alleviating the negative effects of environmental stresses to which plants are exposed, such as drought, salinity, heavy metals and extreme temperatures. Biostimulants act through multiple mechanisms, modifying gene expression, metabolism and phytohormone production, promoting the accumulation of compatible solutes and antioxidants and mitigating oxidative stress. However, it is important to keep in mind that the use and effect of biostimulants has limitations and must be accompanied by other techniques to ensure crop yield and quality in the current frame of climate change, such as proper crop management and the use of other sustainable resources. Here, we will not only highlight the potential use of biostimulants to face future agricultural challenges, but also take a critical look at their limitations, underlining the importance of a broad vision of sustainable agriculture in the current context of climate change."
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The apple MdGA2ox7 modulates the balance between growth and stress tolerance in an anthocyanin-dependent manner

Authors: Rui Yan, Tianle Zhang, Yuan Wang, Wenxiu Wang, Rahat Sharif, Jiale Liu, Qinglong Dong, Haoan Luan, Xuemei Zhang, Han Li, Suping Guo, Guohui Qi and Peng Jia. 

Plant Physiology and Biochemistry (2024)

Highlights: • Seventeen GA2-oxidase genes identified in apple clustered into four clades. • MdGA2ox7 responded to cold and salt treatments. • MdGA2ox7 was activated during light-induced anthocyanin accumulation. • MdGA2ox7 alleviated cold and salt stress damage. • MdGA2ox7 promoted anthocyanin biosynthesis.

Abstract: "Apple (Malus domestica Borkh.) is a widely cultivated fruit crop worldwide but often suffers from abiotic stresses such as salt and cold. Gibberellic acid (GA) plays a pivotal in controlling plant development, environmental adaptability, and secondary metabolism. The GA2-oxidase (GA2ox) is responsible for the deactivation of bioactive GA. In this study, seventeen GA2-oxidase genes were identified in the apple genome, and these members could be clustered into four clades based on phylogenetic relationships and conserved domain structures. MdGA2ox7 exhibited robust expression across various tissues, responded to cold and salt treatments, and was triggered in apple fruit peels via light-induced anthocyanin accumulation. Subcellular localization prediction and experiments confirmed that MdGA2ox7 was located in the cytoplasm. Overexpression of MdGA2ox7 in Arabidopsis caused a lower level of active GA and led to GA-deficient phenotypes, such as dwarfism and delayed flowering. MdGA2ox7 alleviated cold and salt stress damage in both Arabidopsis and apple in concert with melatonin (MT). Additionally, MdGA2ox7 enhanced anthocyanin biosynthesis in apple calli and activated genes involved in anthocyanin synthesis. These findings provide new insights into the functions of apple GA2ox in regulating development, stress tolerance, and secondary metabolism."

Julio Retamales's insight:
Text of figure above: "Fig. 3. The expression pattern of MdGA2ox7 and the alleviative effect of MT on the injury of apples to cold and salt stress. (A) GUS staining showed the promoter activity of MdGA2ox7 in different Arabidopsis tissues. (B) GUS staining and activity measurement showed the response of MdGA2ox7 promoter activity to cold and salt stress. (C) Phenotypic comparison of apple seedlings with and without MT supplementation under cold and salt stress. (D) – (E) Detection of reactive oxygen species (ROS) under different stress conditions. (D) Nitro Blue Tetrazolium (NBT) staining showed the accumulation of superoxide anion radical in apple leaves under different stress and MT applications. (E) The content of superoxide anion radical in apple leaves. Bar = 1 cm."
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Stacked mutations in wheat homologues of rice SEMI-DWARF1 confer a novel semi-dwarf phenotype 

Stacked mutations in wheat homologues of rice SEMI-DWARF1 confer a novel semi-dwarf phenotype  | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Barbora Ndreca, Alison Huttly, Sajida Bibi, Carlos Bayon, George Lund, Joshua Ham, Rocío Alarcón-Reverte, John Addy, Danuše Tarkowská, Stephen Pearce, Peter Hedden, Stephen G. Thomas and Andrew L. Phillips.


BMC Plant Biology (2024)


Abstract: Background - Semi-dwarfing alleles are used widely in cereals to confer improved lodging resistance and assimilate partitioning. The most widely deployed semi-dwarfing alleles in rice and barley encode the gibberellin (GA)-biosynthetic enzyme GA 20-OXIDASE2 (GA20OX2). The hexaploid wheat genome carries three homoeologous copies of GA20OX2, and because of functional redundancy, loss-of-function alleles of a single homoeologue would not be selected in wheat breeding programmes. Instead, approximately 70% of wheat cultivars carry gain-of-function mutations in REDUCED HEIGHT 1 (RHT1) genes that encode negative growth regulators and are degraded in response to GA. Semi-dwarf Rht-B1b or Rht-D1b alleles encode proteins that are insensitive to GA-mediated degradation. However, because RHT1 is expressed ubiquitously these alleles have pleiotropic effects that confer undesirable traits in some environments. Results - We have applied reverse genetics to combine loss-of-function alleles in all three homoeologues of wheat GA20OX2 and its paralogue GA20OX1 and evaluated their performance in three years of field trials. ga20ox1 mutants exhibited a mild height reduction (approximately 3%) suggesting GA20OX1 plays a minor role in stem elongation in wheat. ga20ox2 mutants have reduced GA1 content and are 12–32% shorter than their wild-type segregants, comparable to the effect of the Rht-D1b ‘Green Revolution’ allele. The ga20ox2 mutants showed no significant negative effects on yield components in the spring wheat variety ‘Cadenza’. Conclusions - Our study demonstrates that chemical mutagenesis can expand genetic variation in polyploid crops to uncover novel alleles despite the difficulty in identifying appropriate mutations for some target genes and the negative effects of background mutations. Field experiments demonstrate that mutations in GA20OX2 reduce height in wheat, but it will be necessary to evaluate the effect of these alleles in different genetic backgrounds and environments to determine their value in wheat breeding as alternative semi-dwarfing alleles.

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Great work!

This relevant article was already posted when published as a preprint.
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DELLA proteins recruit the Mediator complex subunit MED15 to coactivate transcription in land plants

DELLA proteins recruit the Mediator complex subunit MED15 to coactivate transcription in land plants | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Jorge Hernández-García, Antonio Serrano-Mislata, María Lozano-Quiles, Cristina Úrbez, María A. Nohales, Noel Blanco-Touriñán, Huadong Peng, Rodrigo Ledesma-Amaro and Miguel A. Blázquez. 

PNAS (2024)

Significance: DELLA proteins are plant-specific transcriptional hubs integrating environmental signals with endogenous cues. In order to regulate downstream processes, DELLAs modulate the activity of hundreds of transcription factors (TFs) and transcriptional regulators in various ways. Here, we describe the molecular mechanism underlying DELLA coactivator function. We show that DELLAs act as transcriptional activators by interacting with the Mediator complex subunit MED15. This interaction is necessary to regulate a specific subset of DELLA-dependent responses that are mediated by transcriptional coactivation, but not those regulated by TF sequestration. We further show that this mechanism is present in bryophyte DELLAs and thus represents a conserved mechanism of DELLA function in land plants.

Abstract: "DELLA proteins are negative regulators of the gibberellin response pathway in angiosperms, acting as central hubs that interact with hundreds of transcription factors (TFs) and regulators to modulate their activities. While the mechanism of TF sequestration by DELLAs to prevent DNA binding to downstream targets has been extensively documented, the mechanism that allows them to act as coactivators remains to be understood. Here, we demonstrate that DELLAs directly recruit the Mediator complex to specific loci in Arabidopsis, facilitating transcription. This recruitment involves DELLA amino-terminal domain and the conserved MED15 KIX domain. Accordingly, partial loss of MED15 function mainly disrupted processes known to rely on DELLA coactivation capacity, including cytokinin-dependent regulation of meristem function and skotomorphogenic response, gibberellin metabolism feedback, and flavonol production. We have also found that the single DELLA protein in the liverwort Marchantia polymorpha is capable of recruiting MpMED15 subunits, contributing to transcriptional coactivation. The conservation of Mediator-dependent transcriptional coactivation by DELLA between Arabidopsis and Marchantia implies that this mechanism is intrinsic to the emergence of DELLA in the last common ancestor of land plants."
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Major contribution!

This relevant paper was already posted here when published as a preprint.
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Transcription factor ZmEREB97 regulates nitrate uptake in maize (Zea mays) roots 

Transcription factor ZmEREB97 regulates nitrate uptake in maize (Zea mays) roots  | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: s Qi Wu, Jinyan Xu, Yingdi Zhao, Yuancong Wang, Ling Zhou, Lihua Ning, Sergey Shabala and Han Zhao.


Plant Physiology (2024)


One-sentence summary: An ethylene response transcription factor plays an important role in the nitrogen-signaling network and in optimizing nitrate uptake in maize.


Abstract: "Maize (Zea mays L.) has very strong requirements for nitrogen. However, the molecular mechanisms underlying the regulations of nitrogen uptake and translocation in this species are not fully understood. Here, we report that an APETALA2/ETHYLENE RESPONSE FACTOR (AP2/ERF) transcription factor ZmEREB97 functions as an important regulator in the N-signaling network in maize. Predominantly expressed and accumulated in main root and lateral root primordia, ZmEREB97 rapidly responded to nitrate treatment. By overlapping the analyses of differentially expressed genes and conducting a DAP-seq assay, we identified 1446 potential target genes of ZmEREB97. Among these, 764 genes were co-regulated in two lines of zmereb97 mutants. Loss of function of ZmEREB97 substantially weakened plant growth under both hydroponic and soil conditions. Physiological characterization of zmereb97 mutant plants demonstrated that reduced biomass and grain yield were both associated with reduced nitrate influx, decreased nitrate content and less N accumulation. We further demonstrated that ZmEREB97 directly targets and regulates the expression of six ZmNRT genes by binding to the GCC box-related sequences in gene promoters. Collectively, these data suggest that ZmEREB97 is a major positive regulator of the nitrate response and that it plays an important role in optimizing nitrate uptake, offering a target for improvement of nitrogen use efficiency in crops."

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The brassinosteroid receptor gene BRI1 safeguards cell-autonomous brassinosteroid signaling across tissues - Preprint

The brassinosteroid receptor gene BRI1 safeguards cell-autonomous brassinosteroid signaling across tissues - Preprint | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Noel Blanco-Touriñán, Surbhi Rana, Trevor M. Nolan, Kunkun Li, Nemanja Vukašinović, Che-Wei Hsu, Eugenia Russinova and Christian S. Hardtke.


bioRxiv (2024)


Abstract: "Brassinosteroid signaling is essential for plant growth as exemplified by the dwarf phenotype of loss-of-function mutants in BRASSINOSTEROID INSENSITIVE 1 (BRI1), a ubiquitously expressed Arabidopsis brassinosteroid receptor gene. Complementation of brassinosteroid-blind receptor mutants by BRI1 expression with various tissue-specific promoters implied that local brassinosteroid signaling may instruct growth non-cell-autonomously. Here we performed such rescues with a panel of receptor variants and promoters, in combination with tissue-specific transgene knockouts. Our experiments demonstrate that brassinosteroid receptor expression in several tissues is necessary but not sufficient for rescue. Moreover, complementation with tissue-specific promoters requires the genuine BRI1 gene body sequence, which confers ubiquitous expression of trace receptor amounts that are sufficient to promote brassinosteroid-dependent root growth. Our data, therefore, argue for a largely cell-autonomous action of brassinosteroid receptors."

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Spark to blaze the role of ethylene in achenes and the ripple influences on strawberry fruit growth and ripening - Perspective


Authors: Huixin Chen, Dongdong Li and Kunsong Chen.


Fruit Research (2024)


Abstract: "Strawberry, considered to be a model for non-climacteric fruits, has traditionally been viewed as having a less pronounced reliance on ethylene in fruit development. However, the inherent tissue heterogeneity within strawberry fruit, coupled with variable ethylene production levels, suggests a potential role for ethylene in the maturation of the true fruit, the achenes, dispersed on the fleshy receptacle. This intricate process is likely to exert ripple effects on the subsequent growth and ripening of the receptacle. To comprehensively unravel the functions of ethylene in strawberry fruit, there is a need for ethylene detection sensors, ethylene response reporter transgenic plants, and genetically engineered mutants achieved through genome editing, encompassing both biosynthesis and signaling mutants."


Julio Retamales's insight:
Text of figure above (letter f): "(f) A diagram showing hypothesized roles of ethylene in strawberry. Ethylene is largely synthesized in the achene by ACC synthase (ACS) and ACC oxidase (ACO). Ethylene may regulate the development and maturation of achene directly and/or indirectly via actions on auxin and gibberellic acid (GA). The ethylene emitted from the achene may diffuse to the receptacle to regulate the growth and ripening of the receptacle. In addition, ACC, the ethylene biosynthesis precursor, might be transported to the receptacle from achenes via the vascular bundles. Red dashed arrows indicate hypothesized roles of ethylene in strawberry fruit."
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The first intron of ARF7 is required for expression in root tips.

The first intron of ARF7 is required for expression in root tips. | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Jingyi Han (撖静宜), Thomas Welch, Ute Voß, Teva Vernoux, Rahul Bhosale and Anthony Bishopp.

iScience (2024)

Highlights • The first intron of ARF7 is required for expression in the root apical meristem. • It is not required for expression in either lateral roots or the shoot apex. • We find no binding sites in the first intron required for expression in root tips. • We propose that this intron exerts its effects via Intron Mediated Enhancement. 

Abstract: "Auxin regulates plant growth and development through the transcription factors of the AUXIN RESPONSE FACTOR (ARF) gene family. ARF7 is one of five activators that bind DNA and elicit downstream transcriptional responses. In roots, ARF7 regulates growth, gravitropism and redundantly with ARF19, lateral root organogenesis. In this study we analyzed ARF7 cis-regulation, using different non-coding sequences of the ARF7 locus to drive GFP. We show that constructs containing the first intron led to increased signal in the root tip. Although bioinformatics analyses predicted several transcription factor binding sites in the first intron, we were unable to significantly alter expression of GFP in the root by mutating these. We instead observed the intronic sequences needed to be present within the transcribed sequences to drive expression in the root meristem. These data support a mechanism by which Intron Mediated Enhancement regulates the tissue specific expression of ARF7 in the root meristem."
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What Is a Plant Cell Type in the Age of Single-Cell Biology? It's Complicated - Review

Authors: Byron Rusnak, Frances K. Clark, Batthula Vijaya Lakshmi Vadde and Adrienne H.K. Roeder.


Annual Review of Cell and Developmental Biology (2024)


Abstract: "One of the fundamental questions in developmental biology is how a cell is specified to differentiate as a specialized cell type. Traditionally, plant cell types were defined based on their function, location, morphology, and lineage. Currently, in the age of single-cell biology, researchers typically attempt to assign plant cells to cell types by clustering them based on their transcriptomes. However, because cells are dynamic entities that progress through the cell cycle and respond to signals, the transcriptome also reflects the state of the cell at a particular moment in time, raising questions about how to define a cell type. We suggest that these complexities and dynamics of cell states are of interest and further consider the roles signaling, stochasticity, cell cycle, and mechanical forces play in plant cell fate specification. Once established, cell identity must also be maintained. With the wealth of single-cell data coming out, the field is poised to elucidate both the complexity and dynamics of cell states."

Julio Retamales's insight:
Text of figure above: "Cell-cell signaling. (a) Types of signaling molecules and their routes of travel between cells. (b) Cell fate of protoxylem and metaxylem elements in the Arabidopsis root driven by miR165/166 signaling. miR165/166 travels through plasmodesmata from the endodermis to the inner cell files, establishing a gradient of miR165/166 concentration. The transcripts of HD-ZIP class III transcription factors are cleaved by miR165/166. (c) SHR and SCR signaling in the Arabidopsis root. SHR travels one cell layer from the stele into the cortex/endodermis initial, where it induces SCR expression, which in turn results in an asymmetric cell division of the initial to yield an endodermis cell and a cortex cell. Abbreviations: miRNAs, microRNAs; SCR, SCARECROW; SHR, SHORT-ROOT."
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Plant Cell Wall Loosening by Expansins - Review

Plant Cell Wall Loosening by Expansins - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Author: Daniel J. Cosgrove.


Annual Review of Plant Cell and Development (2024)


Abstract: "Expansins comprise an ancient group of cell wall proteins ubiquitous in land plants and their algal ancestors. During cell growth, they facilitate passive yielding of the wall's cellulose networks to turgor-generated tensile stresses, without evidence of enzymatic activity. Expansins are also implicated in fruit softening and other developmental processes and in adaptive responses to environmental stresses and pathogens. The major expansin families in plants include α-expansins (EXPAs), which act on cellulose-cellulose junctions, and β-expansins, which can act on xylans. EXPAs mediate acid growth, which contributes to wall enlargement by auxin and other growth agents. The genomes of diverse microbes, including many plant pathogens, also encode expansins designated expansin-like X. Expansins are proposed to disrupt noncovalent bonding between laterally aligned polysaccharides (notably cellulose), facilitating wall loosening for a variety of biological roles."

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Excellent review by an authority in the field.
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Crosstalk between brassinosteroids and other phytohormones during plant development and stress adaption - Review  

Authors: Feimei Guo, Minghui Lv, Jingjie Zhang and Jia Li.


Plant and Cell Physiology (2024)


Abstract: "Brassinosteroids (BRs) are a group of polyhydroxylated phytosterols that play essential roles in regulating plant growth and development as well as stress adaptation. It is worth noting that BRs do not function alone, but rather they crosstalk with other endogenous signaling molecules, including the phytohormones auxin, cytokinins (CKs), gibberellins (GAs), abscisic acid (ABA), ethylene (ET), jasmonates (JAs), salicylic acid (SA), and strigolactones (SLs), forming elaborate signaling networks to modulate plant growth and development. BRs interact with other phytohormones mainly by regulating each others’ homeostasis, transport, or signaling pathway at the transcriptional and posttranslational levels. In this review, we focus our attention on current research progress in BR signal transduction and the crosstalk between BRs and other phytohormones."

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Relevant review!

Text of figure above: "Fig. 1 A current model of the BR signaling pathway in Arabidopsis. Under a BR deficient condition, BRI1 activity is blocked by its C-terminal region and its interaction with an inhibitory protein, BKI1, at the PM. BIN2 is constitutively active, and phosphorylates BES1/BZR1 in the nucleus. Phosphorylated BES1/BZR1 moves into the cytoplasm via interaction with 14-3-3 proteins, and is eventually degraded. The expression of a series of BR-responsive genes cannot be initiated. In the presence of BL (the final product of the BR biosynthetic pathway and the most active BR), BL binds to the extracellular domains of BRI1 and BAK1, leading to their mutual transphosphorylation. Activated BRI1 phosphorylates and drops BKI1 into the cytoplasm. 14-3-3 proteins subsequently interact with phosphorylated BKI1 and inhibit its function. Activated BRI1 also phosphorylates BSKs and CDG1 to initiate a BR signal transduction cascade, including activation of BSUI by phosphorylation, inactivation of BIN2 by dephosphorylation, translocation of phosphorylated and nonphosphorylated BES1/BZR1 from the cytoplasm into the nucleus with the help of RACK1, and the expression of BR responsive genes mediated by nonphosphorylated BES1/BZR1. BES1/BZR1 binds to an E-box motif, and at the same time interacts with cofactors such as REF6 and IWS1, and transcription factors including PIF4 and BIM1, to activate the expression of BR-induced genes. In addition, BES1/BZR1 binds to a BRRE motif, and interacts with co-repressor TPL, histone deacetylase HDA19, and other transcription factors to inhibit the expression of BR-repressed genes. Abbreviations: BRRE, BR-response element; P, phosphorylation; Ub, ubiquitination.
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Transcription factor DIVARICATA1 positively modulates seed germination in response to salinity stress 

Transcription factor DIVARICATA1 positively modulates seed germination in response to salinity stress  | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Da Zhang, Tan He, Xumin Wang, Chenchen Zhou, Youpeng Chen, Xin Wang, Shixiang Wang, Shuangcheng He, Yuan Guo, Zijin Liu and Mingxun Chen.


Plant Physiology (2024)


One-sentence summary: A MYB-like transcription factor positively modulates seed germination in response to salinity stress by regulating the expression of germination-associated genes.


Abstract: "Seed germination is a critical checkpoint for plant growth under unfavorable environmental conditions. In Arabidopsis (Arabidopsis thaliana), the abscisic acid (ABA) and gibberellic acid (GA) signaling pathways play important roles in modulating seed germination. However, the molecular links between salinity stress and ABA/GA signaling are not well understood. Herein, we showed that the expression of DIVARICATA1 (DIV1), which encodes a MYB-like transcription factor, was induced by GA and repressed by ABA, salinity, and osmotic stress in germinating seeds. DIV1 positively regulated seed germination in response to salinity stress by directly regulating the expression of DELAY OF GERMINATION 1-LIKE 3 (DOGL3) and GA-STIMULATED ARABIDOPSIS 4 (GASA4) and indirectly regulating the expression of several germination-associated genes. Moreover, NUCLEAR FACTOR-YC9 (NF-YC9) directly repressed the expression of DIV1 in germinating seeds in response to salinity stress. These results help reveal the function of the NF-YC9–DIV1 module and provide insights into the regulation of ABA and GA signaling in response to salinity stress during seed germination in Arabidopsis."

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Role of transcriptional regulation in auxin-mediated response to abiotic stresses - Review

Role of transcriptional regulation in auxin-mediated response to abiotic stresses - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Davide Marzi, Patrizia Brunetti, Shashank Sagar Saini, Gitanjali Yadav, Giuseppe Diego Puglia and Raffaele Dello Ioio.


Frontiers in Genetics (2024)


Abstract: "Global climate change (GCC) is posing a serious threat to organisms, particularly plants, which are sessile. Drought, salinity, and the accumulation of heavy metals alter soil composition and have detrimental effects on crops and wild plants. The hormone auxin plays a pivotal role in the response to stress conditions through the fine regulation of plant growth. Hence, rapid, tight, and coordinated regulation of its concentration is achieved by auxin modulation at multiple levels. Beyond the structural enzymes involved in auxin biosynthesis, transport, and signal transduction, transcription factors (TFs) can finely and rapidly drive auxin response in specific tissues. Auxin Response Factors (ARFs) such as the ARF4, 7, 8, 19 and many other TF families, such as WRKY and MADS, have been identified to play a role in modulating various auxin-mediated responses in recent times. Here, we review the most relevant and recent literature on TFs associated with the regulation of the biosynthetic, transport, and signalling auxin pathways and miRNA-related feedback loops in response to major abiotic stresses. Knowledge of the specific role of TFs may be of utmost importance in counteracting the effects of GCC on future agriculture and may pave the way for increased plant resilience."

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Brassinosteroids function as the plant male and female reproductive hormone coordinating gene expression - Preprint

Authors: Kumi Matsuura-Tokita, Takamasa Suzuki, Yusuke Kimata, Yumiko Takebayashi, Minako Ueda, Takeshi Nakano, Hitoshi Sakakibara, Akihiko Nakano, and Tetsuya Higashiyama.

bioRxiv (2024)

Abstract: "Brassinosteroids (BRs) are steroid hormones identified in plants. Besides promoting cell elongation and division, BRs facilitate the development of both male and female reproductive tissues. In animals, reproductive steroid hormones play an essential role in reproductive tissue development by regulating gene expression. Here, we focused on the function of BRs during fertilization. We measured the content of biologically active BRs, brassinolide (BL) and castasterone (CS), in the reproductive tissues of Arabidopsis thaliana. Both BL and CS accumulated abundantly in pollen grains and in larger amounts in pistils than in leaves. To evaluate BL function during fertilization, we used an in vitro guidance assay with exogenously applied BL. Although pollen tubes need to be elongated through the pistils for efficient capacitation, BL treatment promoted pollen tube capacitation and improved attraction to ovules in vitro. Transcriptome analysis demonstrated that BL treatment induced the expression of half of the genes expressed in pollen tubes that elongated through the pistils. These results indicated that BL supplied from pistils is a key factor for pollen tube capacitation. However, using the bri1 mutant for the guidance assay resulted in reduced pollen tube capacitation, suggesting that BRI1-signaling in pistils is also important. Furthermore, BRs act on ovules. Exogenous BL application to ovules maintained guidance capacity by promoting the expression of small secreted proteins involved in pollen tube attraction and gamete fusion. Overall, BRs play a significant role as male and female reproductive hormones throughout the plant fertilization process."
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Relevant study!

Text of figure above: "Figure 4. (A) Scheme of the semi-in vivo guidance assay using mutant styles and/or ovules. (B) Quantification of semi-in vivo guidance rate using bri1-116 styles or ovules (4 replicates, the total number of ovules at each BL concentration were 72, 72, 66, and 48, respectively). (C) Quantification of semi-in vivo guidance rate using cyp90a1-1 styles or ovules (4 replicates, the total numbers of ovules at each BL concentration were 72, 72, 78, and 60, respectively). (D) Quantification of semi-in vivo guidance rate using bil1-1D/bzr1-1D styles or ovules (4 replicates, the total numbers of ovules at each BL concentration were 66, 66, 66, and 66, respectively). (E) Roles of BR during fertilization. The red letters indicate BR functions revealed by physiological assay in this study. The blue letters indicate BR functions revealed by the transcriptome analysis in this study."
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LAFL Factors in Seed Development and Phase Transitions -Review

LAFL Factors in Seed Development and Phase Transitions -Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Sonia Gazzarrini and Liang Song. 

Annual Review of Plant Biology (2024)

Abstract: "Development is a chain reaction in which one event leads to another until the completion of a life cycle. Phase transitions are milestone events in the cycle of life. LEAFY COTYLEDON1 (LEC1), ABA INSENSITIVE3 (ABI3), FUSCA3 (FUS3), and LEC2 proteins, collectively known as LAFL, are master transcription factors (TFs) regulating seed and other developmental processes. Since the initial characterization of the LAFL genes (44, 71, 98–100), more than three decades of active research has generated tremendous amounts of knowledge about these TFs, whose roles in seed development and germination have been comprehensively reviewed (63, 43, 65, 81). Recent advances in cell biology and genetic and genomic tools have allowed the characterization of the LAFL regulatory networks in previously challenging tissues at a higher throughput and resolution in reference species and crops. In this review, we provide a holistic perspective by integrating advances at the epigenetic, transcriptional, posttranscriptional, and protein levels to exemplify the spatiotemporal regulation of the LAFL networks in Arabidopsis seed development and phase transitions, and we briefly discuss the evolution of these TF networks."
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Excellent review!
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Auxin Biosynthesis is Required for Root Thermomorphogenesis  

Auxin Biosynthesis is Required for Root Thermomorphogenesis   | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Wei Liu, Yuyan Cheng and Ziqiang Zhu (2024)


Journal of Plant Growth Regulation (2024)


Abstract: "The role of auxin in plant root thermomorphogenesis is still under debate. Here, we showed that auxin is necessary for root elongation in either seedling roots or detached roots. Our study clarified the uncertainty in the field and shed new light on future research in plant response to high ambient temperature."

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Food for thought......

This article can be accessed by using the following link:

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Leafhopper salivary carboxylesterase suppresses JA-Ile synthesis to facilitate initial arbovirus transmission in rice phloem

Leafhopper salivary carboxylesterase suppresses JA-Ile synthesis to facilitate initial arbovirus transmission in rice phloem | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Yunhua Chi, Hongxiang Zhang, Siyu Chen, Yu Cheng, Xiaofeng Zhang, Dongsheng Jia, Qian Chen, Hongyan Chen and Taiyun Wei. 

Plant Communications (2024)

Abstract: "Plant jasmonoyl-L-isoleucine (JA-Ile) is a major defense signal against insect feeding, but whether or how insect salivary effectors suppress JA-Ile synthesis and thus facilitate viral transmission in plant phloem remains elusive. Insect carboxylesterases (CarEs) are the third major family of detoxification enzymes. Here, we identify a new leafhopper CarE10 that specifically expressed in salivary glands and is secreted into rice phloem as the saliva component. Leafhopper CarE10 directly binds and promotes rice Jasmonate resistant 1 (JAR1) degradation by the proteasome system. Moreover, the direct association of CarE10 with JAR1 obviously impairs JAR1 enzyme activity for JA conversion to JA-Ile in in-vitro JA-Ile synthesis system. A devastating rice reovirus activates and promotes co-secretion of virions and CarE10 by virus-induced vesicles into saliva-stored salivary cavities of leafhopper vectors and ultimately into rice phloem to establish initial infection. Furthermore, virus-mediated increase of CarE10 secretion or overexpression of CarE10 in transgenic rice plants causes the reduced levels of JAR1 and thus suppresses JA-Ile synthesis, thereby promoting host attractiveness to insect vectors and facilitating initial viral transmission. Our findings provide insights into how insect salivary protein CarE10 suppresses host JA-Ile synthesis to benefit initial virus transmission in rice phloem."
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Interesting article!
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