Plant hormones (Literature sources on phytohormones and plant signalling)
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Exogenous gibberellin delays maturation in persimmon fruit through transcriptional activators and repressors

Exogenous gibberellin delays maturation in persimmon fruit through transcriptional activators and repressors | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Wei Wu, Ning-jing Sun, Yang Xu, Yu-tong Chen, Xiao-fen Liu, Li-yu Shi, Wei Chen, Qing-gang Zhu, Bang-chu Gong, Xue-ren Yin and Zhen-feng Yang. 

Plant Physiology (2023)

Abstract: "As the harvest season of most fruit is concentrated, fruit maturation manipulation is essential for the fresh fruit industry to prolong sales time. Gibberellin (GA), an important phytohormone necessary for plant growth and development, has also shown a substantial regulatory effect on fruit maturation; however, its regulatory mechanisms remain inconclusive. In this research, preharvest GA3 treatment effectively delayed fruit maturation in several persimmon (Diospyros kaki) cultivars. Among the proteins encoded by differentially expressed genes, two transcriptional activators (NAC TRANSCRIPTION FACTOR DkNAC24 and ETHYLENE RESPONSIVE FACTOR DkERF38) and a repressor (MYB-LIKE TRANSCRIPTION FACTOR DkMYB22) were direct regulators of GERANYLGERANYL DIPHOSPHATE SYNTHASE DkGGPS1, LYSINE HISTIDINE TRANSPORTER DkLHT1, and FRUCTOSE-BISPHOSPHATE ALDOLASE DkFBA1 respectively, resulting in the inhibition of carotenoid synthesis, outward transport of an ethylene precursor, and consumption of fructose and glucose. Thus, the present study not only provides a practical method to prolong the persimmon fruit maturation period in various cultivars, but also provides insights into the regulatory mechanisms of GA on multiple aspects of fruit quality formation at the transcriptional regulation level."
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Scooped by Julio Retamales
April 28, 2023 11:58 PM
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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 recent 4,520 postings from the total of 8,080 originally posted are presently available (as of May 19, 2024) and 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 topic" 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. That way you will be shown a reduced number of sources being more relevant to your specific interest(s).

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

 Julio Retamales (the curator)

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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Scooped by Julio Retamales
June 24, 1:05 PM
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HSP90 provides plasticity to plant development by gradually stabilizing plasma membrane presence of ABCB-type auxin transporters - Preprint 

Authors: Tashi Tsering, Martin Di Donato, Despina Samakovli Agricultural University of Athens Dimitra Milioni, Elisa Azarello, Stefano Mancuso, Vendula Pukyšová, Marta Zwiewka, Tomasz Nodzynski, Michael Stumpe, Jutta Ludwig-Müller, Aurelien Bailly, Polydefkis Hatzopoulos and Markus Geisler.


Research Square (2024)


One-sentence summary: HSP90 acts as a positive regulator of auxin transport by providing steady state levels of ABCB transport capacity in an action that is orchestrated by its co-chaperone, FKBP42/TWISTED DWARF1.


Abstract: "Closely related FKBP orthologs, FKBP42/TWISTED DWARF1 (TWD1) and FKBP38, have been shown to control the biogenesis of plant and mammalian ATP-binding cassette (ABC) transporters, respectively. However, the mechanistic role of described FKBP-ABCB interaction is widely unknown. Here, we verify cytosolic HEAT-SHOCK PROTEIN90 (HSP90) isoforms as valid interactors of TWD1 and map HSP90 binding to an amphiphilic alpha-helix preceding its TPR domain. We provide pharmacological and genetic evidence that a subset of TWD1-interacting ABCBs, in contrast to mammalian ABCBs, are constitutive HSP90 clients in plants. This effect and its specificity are presumably provided by TWD1. Our data strongly correlate the effect of HSP90 inhibition on ABCB-mediated development and ABCB plasma membrane stability on the one hand and ABCB cycling rate on the other Our results uncover a dynamic mechanism of HSP90 for gradual stabilization of the plasma membrane ABCB isoforms to regulate polar auxin transport and to confer developmental plasticity."

Julio Retamales's insight:
Excellent paper!

Text of figure above: "Supplementary Figure 4: HSP90 acts as positive regulators of root ABCB-mediated polar auxin transport (a-d) Root IAA transport is likewise reduced by ABCB mutation as well as by NPA and Geldanamycin treatment (GDA; each 5 μM) measured by using an IAA-specific microelectrode. Influx profiles (a-c) and heat map presentation (d). (e) Benzoic acid (BA) control of root PAT in the presence and absence of GDA and Radicicol (each 5 uM) of Fig. 3b. (f) Benzoic acid (BA) control of root shootward (basipetal) PAT of Fig. 3c. (g) Benzoic acid (BA) control of leaf mesophyll protoplast IAA transport of Fig. 3d. (h) Shoot auxin levels are not affected by hsp90 mutation."
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Scooped by Julio Retamales
June 23, 11:51 PM
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A CUC1/auxin genetic module links cell polarity to patterned tissue growth and leaf shape diversity in crucifer plants

A CUC1/auxin genetic module links cell polarity to patterned tissue growth and leaf shape diversity in crucifer plants | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Zi-Liang Hu, David Wilson-Sánchez, Neha Bhatia, Madlen I. Rast-Somssich, Anhui Wu, Daniela Vlad, Liam McGuire , Lachezar A. Nikolov, Patrick Laufs, Xiangchao Gan, Stefan Laurent, Adam Runions and Miltos Tsiantis. 

PNAS (2024)

Significance: How spatially distributed gene activities are translated into the patterns of cell polarity and growth that generate the diverse forms of multicellular eukaryotes remains poorly understood. Here, we show that species-specific expression of the transcription factor CUP-SHAPED COTYLEDON1 (CUC1) is a key determinant of leaf-shape differences between two related plant species. By combining time-lapse imaging, genetics, and modeling, we found that CUC1 acts as a polarity switch. This switch regulates leaf shape through transcriptional activation of kinases that influence the polarity of auxin transporters, which pattern leaf growth through feedback with the hormone auxin. Thus, we have uncovered a mechanism that bridges biological scales by linking species-specific transcription factor expression to cell-level polarity and growth, to shape diverse leaf forms. 

Abstract: "How tissue-level information encoded by fields of regulatory gene activity is translated into the patterns of cell polarity and growth that generate the diverse shapes of different species remains poorly understood. Here, we investigate this problem in the case of leaf shape differences between Arabidopsis thaliana, which has simple leaves, and its relative Cardamine hirsuta that has complex leaves divided into leaflets. We show that patterned expression of the transcription factor CUP-SHAPED COTYLEDON1 in C. hirsuta (ChCUC1) is a key determinant of leaf shape differences between the two species. Through inducible genetic perturbations, time-lapse imaging of growth, and computational modeling, we find that ChCUC1 provides instructive input into auxin-based leaf margin patterning. This input arises via transcriptional regulation of multiple auxin homeostasis components, including direct activation of WAG kinases that are known to regulate the polarity of PIN-FORMED auxin transporters. Thus, we have uncovered a mechanism that bridges biological scales by linking spatially distributed and species-specific transcription factor expression to cell-level polarity and growth, to shape diverse leaf forms."
Julio Retamales's insight:
Relevant article!
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Scooped by Julio Retamales
June 23, 6:17 PM
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A dual function of the IDA peptide in regulating cell separation and modulating plant immunity at the molecular level

A dual function of the IDA peptide in regulating cell separation and modulating plant immunity at the molecular level | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Vilde Olsson Lalun, Maike Breiden, Sergio Galindo-Trigo, Elwira Smakowska-Luzan, Rüdiger G.W. Simon and Melinka A Butenko.


eLife (2024)


One-sentence summary: A molecular investigation on the role of the peptide ligand inflorescence deficient in abscission (IDA) in regulating immunity and development during cell separation in Arabidopsis thaliana.


Abstract: "The abscission of floral organs and emergence of lateral roots in Arabidopsis is regulated by the peptide ligand inflorescence deficient in abscission (IDA) and the receptor protein kinases HAESA (HAE) and HAESA-like 2 (HSL2). During these cell separation processes, the plant induces defense-associated genes to protect against pathogen invasion. However, the molecular coordination between abscission and immunity has not been thoroughly explored. Here, we show that IDA induces a release of cytosolic calcium ions (Ca2+) and apoplastic production of reactive oxygen species, which are signatures of early defense responses. In addition, we find that IDA promotes late defense responses by the transcriptional upregulation of genes known to be involved in immunity. When comparing the IDA induced early immune responses to known immune responses, such as those elicited by flagellin22 treatment, we observe both similarities and differences. We propose a molecular mechanism by which IDA promotes signatures of an immune response in cells destined for separation to guard them from pathogen attack."

Julio Retamales's insight:
This relevant article was already posted here when published as a preprint.
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Scooped by Julio Retamales
June 23, 3:29 PM
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Herbivory by Leaf-Cutting Ants: Exploring the Jasmonate Response in Host and Non-Host Plants  

Herbivory by Leaf-Cutting Ants: Exploring the Jasmonate Response in Host and Non-Host Plants   | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Andrea Teresa Müller, Kilian Lucas Ossetek and Axel Mithöfer.


Journal of Chemical Ecology (2024)


Abstract: "Leaf-cutting ants (Formicidae; Atta spp., Acromyrmex spp.) cut off pieces of leaves and other plant tissue and feed it to their symbiotic fungi. As this foraging behavior poses an imminent threat to agriculture, leaf-cutting ants are considered as pests of huge ecologically and economically importance. Consequently, research on leaf-cutting ants focused on their foraging decisions and interactions with their cultivated symbiotic fungi, whereas their effect on the attacked plants, apart from the loss of plant tissue, remains largely unknown. In this study, we investigated the consequences of an attack by leaf-cutting ants and analyzed the plants’ defense responses in comparison to chewing caterpillars and mechanical damage. We found that an attack by leaf-cutting ants induces the production of jasmonates in several host and non-host plant species (Arabidopsis thaliana, Vicia faba, Phaseolus lunatus, Tococa quadrialata). Additionally, we showed in the natural host plant lima bean (P. lunatus) that leaf-cutting ant damage immediately leads to the emission of typical herbivory-induced plant volatiles, including green leaf volatiles and terpenoids. Further data exploration revealed clear differences in the defense-related phytohormone profile in plant species of Neotropical and Eurasian origin. Taken together, we show that leaf-cutting ant infestation and their way of clipping the plants’ tissues induce jasmonate and jasmonates-mediated responses and do not differ from those to mechanical injury or larval feeding."

Julio Retamales's insight:
Interesting results that could seem obvious in retrospect, but for which no relevant data was available.
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Scooped by Julio Retamales
June 23, 2:32 PM
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The role and possible mechanism of gibberellin (GA) in the chilling-mediated blueberry dormancy release and germination

Authors: Suilin Zhang, Xinliang Wu, Xin Feng, Yan Wu, Xiaohan Zhang, Huiling Wu, Bingjie Zhou, Yaqian Zhang, Man Cao, Jingpu Song and Zhixia Hou. 

Scientia Horticulturae (2024)

Highlights: • The chilling-mediated germination of blueberry flower buds was mainly enriched in plant hormone signal transduction pathway. • Gibberellin (GA) played a promoting role in the germination process of flower buds after dormancy release mediated by low temperature. • The possible mechanism how GA regulates the release of dormancy and germination in blueberry flower buds has been proposed. 

Abstract: "Like many fruit trees, highbush blueberry requires sufficient winter chilling requirements for normal flowering in the following growing season. To understand the mechanisms of chilling-mediated dormancy release and flowering, we investigated the transcriptional differences in flower buds that met and did not meet the chilling requirements during the germination after dormancy release. Different expression genes of blueberry flower buds were mainly enriched in plant hormone signal transduction. Besides, the changing trend of gibberellin was the most significant. Further research on the effects of exogenous GA4+7 promoted the endodormancy release and germination of flower buds was carried out. The chilling condition and exogenous GA4+7 upregulated the expression of VcGA20ox, VcGA2ox, VcAUX1/LAX, VcCO, VcGI, and VcFT, while downregulated the expression of VcDELLA, VcGID1b/c, VcGID2, VcSnRK2, VcPP2C, and VcPYL. Furthermore, exogenous GA4+7 promoted the dormancy release and germination of flower buds in blueberry plants, while paclobutrazol (PAC) had inhibitory effects. Overall, we proposed a possible mechanism, VcDELLA affected the germination of blueberry flower buds through the crosstalk with VcPYL/SnRK2/PP2C, VcAUX1/LAX, and VcCO/GI. This study will provide new insights into regulating the dormancy release of flower buds to improve the yield and economic efficiency of perennial woody plants including blueberry, under the background of global warming."
Julio Retamales's insight:
Note of the curator: The use of "germination of flower buds" sounds awkward in this context, while "sprouting" or "budburst"would appear more appropriate...

Full text of figure above: "Fig. 8. Possible regulatory model of GA on releasing dormancy and germination of blueberry flower buds with sufficient chilling requirements. Note: The solid arrow and T-shaped represented the determined regulatory relationship of promotion and inhibition, respectively. The dashed arrow and T-shape represented uncertain regulatory relationships of promotion and inhibition, respectively. The ellipses in pink, light green, blue, light blue, orange, and dark green represented GA, ABA, IAA, thermosensory pathway, photoperiod pathway genes, and flowering integration factor FT, respectively. The pink, light green, and orange boxes represented GA, ABA, and photoperiod pathways, respectively."
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June 22, 9:58 PM
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DNA methylation controlling abscisic acid catabolism responds to light to mediate strawberry fruit ripening

Authors: Yunfan Sun, Xiaofang Yang, Rongrong Wu, Shouzheng Lv, Yunduan Li, Haoran Jia, Yuying Yang, Baijun Li, Wenbo Chen, Andrew C. Allan, Guihua Jiang, Yan-Na Shi and Kunsong Chen. 

Journal of Integrative Plant Biology (2024)

Abstract: "Phytohormones, epigenetic regulation and environmental factors regulate fruit ripening but their interplay during strawberry fruit ripening remains to be determined. In this study, bagged strawberry fruit exhibited delayed ripening compared with fruit grown in normal light, correlating with reduced abscisic acid (ABA) accumulation. Transcription of the key ABA catabolism gene, ABA 8′-hydroxylase FaCYP707A4, was induced in bagged fruit. With light exclusion whole genome DNA methylation levels were up-regulated, corresponding to a delayed ripening process, while DNA methylation levels in the promoter of FaCYP707A4 were suppressed, correlating with increases in transcript and decreased ABA content. Experiments indicated FaCRY1, a blue light receptor repressed in bagged fruit and FaAGO4, a key protein involved in RNA-directed DNA methylation, could bind to the promoter of FaCYP707A4. The interaction between FaCRY1 and FaAGO4, and an increased enrichment of FaAGO4 directed to the FaCYP707A4 promoter in fruit grown under light suggests FaCRY1 may influence FaAGO4 to modulate the DNA methylation status of the FaCYP707A4 promoter. Furthermore, transient overexpression of FaCRY1, or an increase in FaCRY1 transcription by blue light treatment, increases the methylation level of the FaCYP707A4 promoter, while transient RNA interference of FaCRY1 displayed opposite phenotypes. These findings reveal a mechanism by which DNA methylation influences ABA catabolism, and participates in light-mediated strawberry ripening."
Julio Retamales's insight:
An important paper!

Text of Figure 8 above: "A proposed regulatory model of light-mediated strawberry ripening Under light conditions, FaCRY1 is induced, which can affect FaAGO4 binding to the promoter of FaCYP707A4 and increase its methylation levels. This promotes abscisic acid (ABA) accumulation and fruit ripening, while fruit growing under dark conditions ripening is delayed by reduction of methylation, increased FaCYP707A4 expression, and lowered ABA levels. The methylation modification is indicated using an “m” in the promoter region."
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June 22, 6:59 PM
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Movement of ACC oxidase 3 mRNA from seeds to flesh promotes fruit ripening in apple

Authors: Ting Wang, Yi Zheng, Chen Xu, Yulin Deng, Xinyi Hao, Zicheng Chu, Ji Tian, Yi Wang, Xinzhong Zhang, Zhenhai Han and Ting Wu. 

Molecular Plant (2024)

Abstract: "Xenia, the phenomenon in which the pollen genotype directly affects the phenotypic characteristics of the maternal tissues (i.e., fruit ripening), has applications in crop production and breeding. However, the underlying molecular mechanism has yet to be elucidated. Here, we investigated whether mobile mRNAs from the pollen affect the ripening and quality-related characteristics of the fruit using cross-pollination between distinct Malus domestica (apple) cultivars. We demonstrated that hundreds of mobile mRNAs originating from the seeds are delivered to the fruit. We also found that the movement of one of these mRNAs, ACC oxidase 3 (MdACO3), is coordinated with fruit ripening. Salicylic acid treatment, which can cause plasmodesmal closure, blocks MdACO3 movement, indicating that MdACO3 transcripts may move through plasmodesmata. To assess the role of mobile MdACO3 transcripts in apple fruit, we created MdACO3-GFP-expressing apple seeds using MdACO3-GFP-overexpressing pollen for pollination and showed that MdACO3 transcripts in the transgenic seeds move to the flesh where they regulate fruit ripening. Furthermore, we demonstrated that MdACO3 can be transported from the seeds to fruit in the fleshy-fruited species tomato and strawberry. These results underscore the potential of mobile mRNAs from seeds to influence fruit characteristics, providing an explanation for the xenia phenomenon. Notably, our findings highlight the feasibility of leveraging diverse pollen genomic resources, without resorting to genome editing, to improve fruit quality."
Julio Retamales's insight:
Relevant findings and nice paper!

Text of figure above: "Figure 7. Model of how mobile mRNAs originating from seeds are delivered to the flesh. MdACO3 mRNAs in apple seed are delivered through the phloem into the flesh to regulate fruit ripening. During early development stages (unripe stages), seed-derived signals are blocked from being transmitted through the vascular system, and the fruit does not ripen or ripening is delayed. At the ripening stage, seed-derived signals are transmitted to the flesh through the well-developed vascular system, Moreover, hormone signaling works together with mRNA signaling to regulate fruit development and ripening. The parental genotypes: MdACO3A and MdACO3G."
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June 22, 4:38 PM
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Overexpression of SlWRKY6 enhances drought tolerance by strengthening antioxidant defense and stomatal closure via ABA signaling in Solanum lycopersicum L.

Authors: Haoting Chen, Yu Shi, Lu An, Xiaohui Yang, Jie Liu, Zemin Dai, Yi Zhang, Tianlai Li and Golam Jalal Ahammed. 

Plant Physiology and Biochemistry (2024)

Highlights: • SlWRKY6, a member of the WRKYII-b group, plays a crucial role in drought resistance. • Overexpression of SlWRKY6 enhances antioxidant capacity in transgenic tomato plants. • Increased ABA content and gene expression suggest ABA pathway involvement. 

Abstract: "Drought is a major handicap for plant growth and development. WRKY proteins comprise one of the largest families of plant transcription factors, playing important roles in plant growth and stress tolerance. In tomato (Solanum lycopersicum L.), different WRKY transcription factors differentially (positively or negatively) regulate drought tolerance, however, the role of SlWRKY6 in drought response and the associated molecular mechanisms of stress tolerance remain unclear. Here we report that SlWRKY6, a member of the WRKYII-b group, is involved in the functional aspects of drought resistance in tomato. Transcriptional activation assays show that SlWRKY6 is transcriptionally active in yeast cells, while the subcellular localization assay indicates that SlWRKY6 is localized in the nucleus. Overexpression of SlWRKY6 in tomato plants resulted in stronger antioxidant capacity and drought resistance as manifested by increased photosynthetic capacity and decreased reactive oxygen species accumulation, malondialdehyde content and relative electrolyte leakage in transgenic tomato plants compared with wild-type under drought stress. Moreover, increased abscisic acid (ABA) content and transcript abundance of ABA synthesis and signaling genes (NCED1, NCED4, PYL4, AREB1 and SnRK2.6) in the transgenic tomato plants indicated potential involvement of the ABA pathway in SlWRKY6-induced drought resistance in tomato plants. Inspection of 2-kb sequences upstream of the predicted binding sites in the promoter of SlNCED1/4 identified two copies of the core W-box (TTGACC/T) sequence in the promoter of SlNCED1/4, which correlates well with the expression of these genes in response to drought, further suggesting the involvement of ABA-dependent pathway in SlWRKY6-induced drought resistance. The study unveils a critical role of SlWRKY6, which can be useful to further reveal the drought tolerance mechanism and breeding of drought-resistant tomato varieties for sustainable vegetable production in the era of climate change."
Julio Retamales's insight:
Text of figures above: "Fig. 2. SlWRKY6 overexpression enhances drought tolerance in tomato. (A) Phenotypes of WT and transgenic tomato plants under drought conditions. (B) Relative water content (RWC). (C) Relative electrolyte leakage in leaves (REL). (D-E) Malondialdehyde (MDA) contents in the leaves and roots of wild-type and transgenic plants at various time points (0, 2, 4 and 6 d)."

"Fig. 8. Proposed model showing the mechanisms by which SlWRKY6 improves drought tolerance in tomato plants. Arrows indicate activation and T-bars indicate inhibition."
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June 21, 9:52 PM
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Abscisic Acid Induces DNA Methylation Alteration in Genes Related to Berry Ripening and Stress Response in Grape (Vitis vinifera L.)

Authors: You-Mei Li, Hong-Xing Zhang, Xuan-Si Tang, Yue Wang, Zhong-Hui Cai, Bo Li and Zhao-Sen Xie. 

Journal of Agricultural and Food Chemistry (2024)

Abstract; "Abscisic acid (ABA) is a major regulator of nonclimacteric fruit ripening, with its processes involving epigenetic mechanisms. It remains unclear whether DNA methylation is associated with ABA-regulated ripening. In this study, we investigated the patterns of DNA methylation and gene expression following ABA treatment in grape berries by using whole-genome bisulfite sequencing and RNA-sequencing. ABA application changed global DNA methylation in grapes. The hyper-/hypo-differently methylated regions were enriched in defense-related metabolism, degreening processes, or ripening-related metabolic pathways. Many differentially expressed genes showed an alteration in DNA methylation after ABA treatment. Specifically, ten downregulated genes with hypermethylation in promoters were involved in the ripening process, ABA homeostasis/signaling, and stress response. Nine upregulated genes exhibiting hypo-methylation in promoters were related to the ripening process and stress response. These findings demonstrated ABA-induced DNA alteration of ripening related and stress-responsive genes during grape ripening, which provides new insights of the epigenetic regulation of ABA on fruit ripening."
Julio Retamales's insight:
Text of figure above: "Figure 1. Exogenous ABA application induced changes of both ripening- and stress-response-indexes during grape berry ripening. (A) Photos of grape clusters 0, 10, 20, and 30 days after ABA treatment. (B) Changes of flesh firmness and TSS and TA content of grape berries and anthocyanin content of grape skin 0, 10, 20, and 30 days after ABA treatment. (C) Changes of MDA content, H2O2 level, and CAT activity in grape berries 0, 10, 20, and 30 days following ABA treatment. Bars stand for the standard deviation (n = 3). Different lowercase indicated a significant difference at the 0.05 levels."
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June 21, 1:05 PM
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Overexpression of Abscisic Acid Biosynthesis Gene OsNCED3 Enhances Survival Rate and Tolerance to Alkaline Stress in Rice Seedlings

Overexpression of Abscisic Acid Biosynthesis Gene OsNCED3 Enhances Survival Rate and Tolerance to Alkaline Stress in Rice Seedlings | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Zhonghui Feng, Yang Xu, Zhiming Xie, Yaqiong Yang, Guanru Lu, Yangyang Jin, Mingming Wang, Miao Liu, Haoyu Yang, Weiqiang Li and Zhengwei Liang.


Plants (2024)


Abstract: "Alkaline stress with high pH levels could significantly influence plant growth and survival. The enzyme 9-cis-epoxycarotenoid dioxygenase (NCED) serves as a critical bottleneck in the biosynthesis of abscisic acid (ABA), making it essential for regulating stress tolerance. Here, we show that OsNCED3-overexpressing rice lines have increased ABA content by up to 50.90% and improved transcription levels of numerous genes involved in stress responses that significantly enhance seedling survival rates. Overexpression of OsNCED3 increased the dry weight contents of the total chlorophyll, proline, soluble sugar, starch, and the activities of antioxidant enzymes of rice seedlings, while reducing the contents of O2·−, H2O2, and malondialdehyde under hydroponic alkaline stress conditions simulated by 10, 15, and 20 mmol L−1 of Na2CO3. Additionally, the OsNCED3-overexpressing rice lines exhibited a notable increase in the expression of OsNCED3; ABA response-related genes OsSalT and OsWsi18; ion homeostasis-related genes OsAKT1, OsHKT1;5, OsSOS1, and OsNHX5; and ROS scavenging-related genes OsCu/Zn-SOD, OsFe-SOD, OsPOX1, OsCATA, OsCATB, and OsAPX1 in rice seedling leaves. The results of these findings suggest that overexpression of OsNCED3 upregulates endogenous ABA levels and the expression of stress response genes, which represents an innovative molecular approach for enhancing the alkaline tolerance of rice seedlings."

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June 20, 10:40 PM
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Hierarchical global and local auxin signals coordinate cellular interdigitation in Arabidopsis - Preprint

Hierarchical global and local auxin signals coordinate cellular interdigitation in Arabidopsis - Preprint | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Patricio Pérez-Henríquez, Hongjiang Li, Xiang Zhou, Xue Pan, Wenwei Lin, Wenxin Tang, Shingo Nagawa, Deshu Lin, Tongda Xu, Marta Michniewicz, Michael J. Prigge, Lucia C. Strader, Mark Estelle, Ken-ichiro Hayashi, Jiří Friml, Linlin Qi, Zhongchi Liu,, Jaimie Van Norman and Zhenbiao Yang.


bioRxiv (2024)


Abstract: "The development of multicellular tissues requires both local and global coordination of cell polarization, however, the mechanisms underlying their interplay are poorly understood. In Arabidopsis, leaf epidermal pavement cells (PC) develop a puzzle-piece shape locally coordinated through apoplastic auxin signaling. Here we show auxin also globally coordinates interdigitation by activating the TIR1/AFB-dependent nuclear signaling pathway. This pathway promotes a transient maximum of auxin at the cotyledon tip, which then moves across the leaf activating local PC polarization, as demonstrated by locally uncaged auxin globally rescuing defects in tir1;afb1;afb2;afb4;afb5 mutant but not in tmk1;tmk2;tmk3;tmk4 mutants. Our findings show that hierarchically integrated global and local auxin signaling systems, which respectively depend on TIR1/AFB-dependent gene transcription in the nucleus and TMK-mediated rapid activation of ROP GTPases at the cell surface, control PC interdigitation patterns in Arabidopsis cotyledons, revealing a mechanism for coordinating a local cellular process with the development of whole tissues."

Julio Retamales's insight:
Relevant article!
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June 20, 10:40 AM
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Hydrogen peroxide positively regulates ABA signaling via oxidative modification of the C2H2-type zinc finger protein ZFP36 in rice

Authors: E. Ji, Shubao Hu, Qiuping Lu, Mengyao Zhang and Mingyi Jiang. 

Plant Physiology and Biochemistry (2024)

Highlights: • ABA-induced hydrogen peroxide directly oxidizes ZFP36. • Oxidative modification of ZFP36 increases its binding capacity of target genes and promotes its transcriptional activation for target genes. • OsTrxh1 acts as the reducing agent for oxidative ZFP36. • Oxidative modification of ZFP36 enhances drought, salt stress, and oxidative stress in rice, whereas OsTrxh1 negative regulates these stresses in rice. 

Abstract: "The rice zinc finger protein ZFP36 serves as a pivotal regulator of the hydrogen peroxide (H2O2) signaling pathway in response to abscisic acid (ABA). Its role is crucial for integrating H2O2 signals with the plant defense mechanisms against water deficit and oxidative stress. However, it remains unclear whether ZFP36 directly modulates ABA-induced H2O2 signaling. This study explored the effects of oxidative post-translational modifications (OxiPTMs) on ZFP36 in rice, with an emphasis on the H2O2-induced oxidation through its cysteine (Cys) residues. We found that ZFP36 undergoes oxidative modification as a target of H2O2 in the presence of ABA, specifically at Cys32. Employing quantitative detection and fluorescence assays, we observed that ZFP36 oxidation enhances the expression and activity of genes encoding protective antioxidant enzymes. Moreover, our investigation into the thioredoxin (Trx) and glutaredoxin (Grx) families revealed that OsTrxh1 facilitates the reduction of oxidized ZFP36. Genetic evidence indicates that ZFP36 positively influences rice resilience to oxidative and water stress, while OsTrxh1 exerts an opposing effect. These insights reveal a distinctive pathway for plant cells to perceive ABA-induced H2O2 signaling, advance our comprehension of H2O2 signaling dynamics, and ABA-related plant responses, and lay a vital groundwork for enhancing crop stress tolerance."
Julio Retamales's insight:
Text of figure above: "Fig. 8. A model for the regulatory network integrating ABA and H2O2 signals in water and oxidative stress. The generation of ABA-induced H2O2 was reliant on OsRBOHB/E. H2O2 brought about oxidative modification of ZFP36 at the Cys-32 site. ZFP36 in its oxidized form was restored to the reduced state when connected with OsTrxh1. This oxidative modification of ZFP36 had a positive effect on the tolerance of rice to drought, salt stress and oxidative stress. In contrast, OsTrxh1 negatively regulated the rice tolerance to these stresses."
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June 24, 11:01 PM
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Tomato Mutants Reveal Root and Shoot Strigolactone Involvement in Branching and Broomrape Resistance

Tomato Mutants Reveal Root and Shoot Strigolactone Involvement in Branching and Broomrape Resistance | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it

Authors: Uri Karniel, Amit Koch, Nurit Bar Nun, Dani Zamir and Joseph Hirschberg.


Plants (2024)


Abstract: "The phytohormones strigolactones (SLs) control root and shoot branching and are exuded from roots into the rhizosphere to stimulate interaction with mycorrhizal fungi. The exuded SLs serve as signaling molecules for the germination of parasitic plants. The broomrape Phelipanche aegyptiaca is a widespread noxious weed in various crop plants, including tomato (Solanum lycopersicum). We have isolated three mutants that impair SL functioning in the tomato variety M82: SHOOT BRANCHING 1 (sb1) and SHOOT BRANCHING 2 (sb2), which abolish SL biosynthesis, and SHOOT BRANCHING 3 (sb3), which impairs SL perception. The over-branching phenotype of the sb mutants resulted in a severe yield loss. The isogenic property of the mutations in a determinate growth variety enabled the quantitative evaluation of the contribution of SL to yield under field conditions. As expected, the mutants sb1 and sb2 were completely resistant to infection by P. aegyptiaca due to the lack of SL in the roots. In contrast, sb3 was more susceptible to P. aegyptiaca than the wild-type M82. The SL concentration in roots of the sb3 was two-fold higher than in the wild type due to the upregulation of the transcription of SL biosynthesis genes. This phenomenon suggests that the steady-state level of root SLs is regulated by a feedback mechanism that involves the SL signaling pathway. Surprisingly, grafting wild-type varieties on sb1 and sb2 rootstocks eliminated the branching phenotype and yield loss, indicating that SL synthesized in the shoots is sufficient to control shoot branching. Moreover, commercial tomato varieties grafted on sb1 were protected from P. aegyptiaca infection without significant yield loss, offering a practical solution to the broomrape crisis."

Julio Retamales's insight:
This relevant article was already posted here when published as a preprint.
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June 24, 12:17 PM
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Mixing and matching SMXL proteins to fine-tune strigolactone responses

Authors: Jenna E. Hountalas and Shelley Lumba.

Molecular Plant (2024)

Excerpts: "Perception of SL begins with its receptor DWARF14 (D14), a conserved α/β hydrolase receptor present in angiosperm species. D14 activation promotes its binding to MORE AXILLARY BRANCHES 2 (MAX2), a F-box protein, and forms a Skp1-Cullin-F-box (SCF) E3 ligase complex (Soundappan et al., 2015, Wang et al., 2015, Yao et al., 2016). This promotes ubiquitination of a group of Arabidopsis thaliana SMXLs, which is degraded by the 26S proteasome (Figure 1A) (Wang et al., 2015)."

"Therefore, this evidence supports the model that SMXL5 directly binds to D14 and SMXL7 to protect SMXL7 from SL-dependent degradation (Figure 1B). However, whether SMXL5 attenuates SL signalling primarily through binding of D14 or SMXL7 is not fully resolved."

"Taken together, one can imagine a matrix of SMXL5-SMXL7 combinations in different proportions leading to a gradient rather than a binary output (on or off) of SL responses (Figure 1C). This proposed working model could represent a natural example of negative transdominance. In this scenario, a trans-acting protein like SMXL5 alters regulation of a SMXL7 complex by slowing its rate of degradation. This model posits the importance of mixing and matching SMXL5-SMXL7, and potentially other SMXLs, to generate a range of tunable SL responses."
Julio Retamales's insight:
Commentary on the relevant article by Li et al. ("SMXL5 attenuates strigolactone signaling in Arabidopsis thaliana by inhibiting SMXL7 degradation"), which was already posted here and can be found at:


Text of figure above: "Figure 1. SMXL5 attenuates strigolactone (SL) signalling through the binding of D14 and SMXL7. (A) Overview of SMXL protein family function and direct processes they regulate. SL degrades SMXL6/7/8 through MAX2. SMXL3/4/5, which lack an RGKT are not degraded in a MAX2-dependent pathway. (B) Pathway representation of how SMXL5 attenuates SL signalling through binding of D14 and SMXL7 and increases SMXL7 accumulation. (C) Proposed working model in which the ratio of SMXL proteins in a potential hexameric complex could affect the rate of degradation. Homomeric complexes of SMXL7 are predicted to degrade more rapidly. Depending on the composition of the hexameric complex, degradation rates could be dynamic."
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June 23, 11:02 PM
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Views and perspectives on the indoleamines serotonin and melatonin in plants: past, present and future - Review

Author: Lauren A.E. Erland.

Plant Signaling & Behavior (2024)

Abstract: "In the decades since their discovery in plants in the mid-to-late 1900s, melatonin (N-acetyl-5-methoxytryptamine) and serotonin (5-methoxytryptamine) have been established as their own class of phytohormone and have become popular targets for examination and study as stress ameliorating compounds. The indoleamines play roles across the plant life cycle from reproduction to morphogenesis and plant environmental perception. There is growing interest in harnessing the power of these plant neurotransmitters in applied and agricultural settings, particularly as we face increasingly volatile climates for food production; however, there is still a lot to learn about the mechanisms of indoleamine action in plants. A recent explosion of interest in these compounds has led to exponential growth in the field of melatonin research in particular. This concept paper aims to summarize the current status of indoleamine research and highlight some emerging trends."
Julio Retamales's insight:
Good analysis!

Text of figure above: "Figure 1. Overview of the indoleamine biosynthetic pathway in plants as compared to animals. The primary biosynthetic pathway in animals is represented by dashed purple arrows, the primary biosynthetic pathway in plants in solid pink arrows and alternate pathways described to date in plants in solid black arrows. Enzyme names are colored to match the associated arrows. AADAC, aromatic amino acid deacetylase; AANAT, aromatic amino acid N-acetyltransferase, ASDAC, acetylserotonin-deacetylase ASMT, acetylserotonin-O-methyltransferase; COMT, caffeic acid-O-methyltransferase; HIOMT, hydroxyindole-O-methyltransferase; SNAT, serotonin-N-acetyltransferase; T-5-H, tryptamine-5-hydroxlyase; TDC, tryptophan decarboxylase; TPH, tryptophan hydroxylase."
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June 23, 4:13 PM
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Apple SINA11-JAZ2 module is involved in jasmonate signaling response

Authors: Di Ai, Lei Zhao, Chun-Xiang You, Yuepeng Han and Jian-Ping An. 

Journal of Integrative Plant Biology (2024)

Excerpt: "In summary, we discovered a new ubiquitination pathway in JA signal transduction. A proposed model can describe the role of the MdSINA11–MdJAZ2 module in regulating the JA signaling response and JA-triggered anthocyanin biosynthesis in apple (Figure 1J). MdSINA11 promotes the ubiquitination and degradation of MdJAZ2 through the 26S proteasome pathway in response to JA signaling, thereby releasing MdMYC2, an important regulator of anthocyanin biosynthesis. MdMYC2 promotes anthocyanin biosynthesis by activating the expression of genes associated with anthocyanin biosynthesis. The ubiquitin regulation of MdSINA11 on MdJAZ2 is an important discovery in JA signal transduction research, which will provide a reference for the post-translational regulatory mechanism of the JA signaling pathway."
Julio Retamales's insight:
Text of the excerpt of Figure 1 shown above: "(I) Evaluation of the relationship between MdJAZ2 and MdSINA11 in regulating anthocyanin biosynthesis via transient expression in apple fruits. pIR+TRV, IL60-1 + IL60-2 + TRV1 + TRV2; MdSINA11-pIR, IL60-1 + MdSINA11-IL60-2; MdJAZ2-TRV, TRV1 + MdJAZ2-TRV2; MdSINA11-pIR+MdJAZ2-TRV, IL60-1 + MdSINA11-IL60-2 + TRV1 + MdJAZ2-TRV2. The value of pIR+TRV was set to 1. Each treatment was performed in triplicate and each replicate contained 8–10 fruits. Representative photographs are shown here. Error bars denote standard deviations. Different lowercase letters indicate a significant difference at P < 0.05 based on one-way ANOVA. (J) Model of the MdSINA11–MdJAZ2 module regulating JA-mediated anthocyanin biosynthesis in apple."
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June 23, 2:53 PM
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Interaction of the Transcription Factors BES1/BZR1 in Plant Growth and Stress Response - Review

Interaction of the Transcription Factors BES1/BZR1 in Plant Growth and Stress Response - Review | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Xuehua Cao, Yanni Wei, Biaodi Shen, Linchuan Liu, and Juan Mao.

International Journal of Molecular Sciences (2024)

Abstract: "Bri1-EMS Suppressor 1 (BES1) and Brassinazole Resistant 1 (BZR1) are two key transcription factors in the brassinosteroid (BR) signaling pathway, serving as crucial integrators that connect various signaling pathways in plants. Extensive genetic and biochemical studies have revealed that BES1 and BZR1, along with other protein factors, form a complex interaction network that governs plant growth, development, and stress tolerance. Among the interactome of BES1 and BZR1, several proteins involved in posttranslational modifications play a key role in modifying the stability, abundance, and transcriptional activity of BES1 and BZR1. This review specifically focuses on the functions and regulatory mechanisms of BES1 and BZR1 protein interactors that are not involved in the posttranslational modifications but are crucial in specific growth and development stages and stress responses. By highlighting the significance of the BZR1 and BES1 interactome, this review sheds light on how it optimizes plant growth, development, and stress responses.
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June 23, 12:43 PM
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Identification of PP2Cs in six rosaceae species highlights RcPP2C24 as a negative regulator in rose drought tolerance

Identification of PP2Cs in six rosaceae species highlights RcPP2C24 as a negative regulator in rose drought tolerance | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Yuxiao Shen, Jinyu Zou, Qian Zhang, Ping Luo, Wenqian Shang, Tianxiao Sun, Liyun Shi, Zheng Wang and Yonghua Li. 

Plant Physiology and Biochemistry (2024)

Highlights: • A total of 412 PP2Cs were identified in six Rosaceae species. • Clade A PP2Cs exhibit a strong response to drought stress in rose. • RcPP2C24 reduces transgenic tobacco and rose petals' drought tolerance. • RcPP2C24 negatively regulates drought response by inhibiting stomatal closure. 

Abstract: "Drought is a major environmental stress that limits plant growth, so it's important to identify drought-responsive genes to understand the mechanism of drought response and breed drought-tolerant roses. Protein phosphatase 2C (PP2C) plays a crucial role in plant abiotic stress response. In this study, we identified 412 putative PP2Cs from six Rosaceae species. These genes were divided into twelve clades, with clade A containing the largest number of PP2Cs (14.1%). Clade A PP2Cs are known for their important role in ABA-mediated drought stress response; therefore, the analysis focused on these specific genes. Conserved motif analysis revealed that clade A PP2Cs in these six Rosaceae species shared conserved C-terminal catalytic domains. Collinearity analysis indicated that segmental duplication events played a significant role in the evolution of clade A PP2Cs in Rosaceae. Analysis of the expression of 11 clade A RcPP2Cs showed that approximately 60% of these genes responded to drought, high temperature, and salt stress. Among them, RcPP2C24 exhibited the highest responsiveness to both drought and ABA. Furthermore, overexpression of RcPP2C24 significantly reduced drought tolerance in transgenic tobacco by increasing stomatal aperture after exposure to drought stress. The transient overexpression of RcPP2C24 weakened the dehydration tolerance of rose petal discs, while its silencing increased their dehydration tolerance. In summary, our study identified PP2Cs in six Rosaceae species and highlighted the negative role of RcPP2C24 on rose's drought tolerance by inhibiting stomatal closure. Our findings provide valuable insights into understanding the mechanism behind rose's response to drought."
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June 22, 8:48 PM
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Stabilization or degradation? Post-translational modifications of JAZ proteins in plants

Authors: Xiaoyan Xu, Jianping Hu and Zheng Yuan. 

Molecular Plant (2024)

Excerpts: "Although JA-induced ubiquitination and subsequent proteasome-dependent degradation of JAZ proteins are known to initiate JA signaling, the regulatory roles of other PTMs on JAZ protein dynamics remain largely unknown. A recent study demonstrated that the tomato U-box type E3 ubiquitin ligase PUB22 is distinctly upregulated upon herbivory attack, which leads to the ubiquitination of non- COI1-targeted JAZ proteins and their degradation and therefore positively regulates defense and JA signal transduction (Wu et al., 2024)."

"In response to JA and multiple environmental signals, Fragaria vesca (strawberry) MITOGEN PROTEIN KINASE 6 (FvMPK6) phosphorylates FvJAZ12, which leads to the reduction of FvJAZ12 nuclear accumulation rather than inducing COI1-mediated FvJAZ12 degradation, and promotes fruit development (Wang et al., 2024) (Figure. 1)."

"A recent study in rice elucidated a link between arginine methylation and JA signaling via regulation of the JAZ proteins to ensure normal spikelet development (Dong et al., 2024"
Julio Retamales's insight:
Commentary on the relevant articles by Wu et al. ("The MYC2–PUB22–JAZ4 module plays a crucial role in jasmonate signaling in tomato"), Wang et al. ("A signaling cascade mediating fruit trait development via phosphorylation‐modulated nuclear accumulation of JAZ repressor") and Dong et al. ("OsPRMT6a-mediated arginine methylation of OsJAZ1 regulates jasmonate signaling and spikelet development in rice"). These articles were already posted here and are to be found , respectively, at:




Text of figure above:"In the classical JA signaling pathway, high concentrations of active JAs promote the formation of the JA-COI1-JAZ complex, resulting in the ubiquitination and degradation of JAZ. PRMT6a catalyzes the methylation of JAZ on arginine residues, enhancing the affinity between JAZ and COI1 to further promote COI1-dependent JA degradation. Additionally, biotrophic infection upregulates the expression of the SUMO protease OTS1, which rapidly deSUMOylates JAZ to facilitate JAZ interaction with COI1 and subsequent degradation of JAZ. In COI1-independent pathways, herbivory induces PUB22 expression, leading to JAZ ubiquitination and degradation. During late stages of seed development, SKIP31 is activated by ABI5 and ubiquitinates JAZ for degradation. Furthermore, multiple environmental signals activate FvMPK6, which phosphorylates FvJAZ to reduce its nuclear localization, thereby releasing the inhibition of nuclear transcription factors and promoting JA signal output."
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June 22, 5:33 PM
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Systemic strategies for cytokinin biosynthesis and catabolism in Arabidopsis roots and leaves under prolonged ammonium nutrition

Authors: Kacper Dziewit, Petra Amakorová, Ondřej Novák, Bożena Szal and Anna Podgórska. 

Plant Physiology and Biochemistry (2024)

Highlights: • In the leaves of ammonium-grown plants, high cytokinin biosynthesis and rapid catabolism indicate rapid hormone turnover rates, which prevents the formation of a high steady-state active cytokinin pool. • In the roots of ammonium-grown plants, there is low cytokinin biosynthetic activity and additionally induction of cytokinin conjugation do not allow for active cytokinins to build up. • Low trans-zeatin levels in total root tissues correlate with a wide root system development under ammonium nutrition. • High cytokinin contents were localized specifically in apical root tips and may limit root system elongation in ammonium-fed plants. 

Abstract: "Cytokinins are growth-regulating plant hormones that are considered to adjust plant development under environmental stresses. During sole ammonium nutrition, a condition known to induce growth retardation of plants, altered cytokinin content can contribute to the characteristic ammonium toxicity syndrome. To understand the metabolic changes in cytokinin pools, cytokinin biosynthesis and degradation were analyzed in the leaves and roots of mature Arabidopsis plants. We found that in leaves of ammonium-grown plants, despite induction of biosynthesis on the expression level, there was no active cytokinin build-up because they were effectively routed toward their downstream catabolites. In roots, cytokinin conjugation was also induced, together with low expression of major synthetic enzymes, resulting in a decreased content of the trans-zeatin form under ammonium conditions. Based on these results, we hypothesized that in leaves and roots, cytokinin turnover is the major regulator of the cytokinin pool and does not allow active cytokinins to accumulate. A potent negative-regulator of root development is trans-zeatin, therefore its low level in mature root tissues of ammonium-grown plants may be responsible for occurrence of a wide root system. Additionally, specific cytokinin enhancement in apical root tips may evoke a short root phenotype in plants under ammonium conditions. The ability to flexibly regulate cytokinin metabolism and distribution in root and shoot tissues can contribute to adjusting plant development in response to ammonium stress."
Julio Retamales's insight:
Interesting paper!

Text of figures above: "Fig. 1. Phenotype of eight-week-old Arabidopsis thaliana plants cultivated on 5 mM NO3− (control) or NH4+ as the only nitrogen source. Plants were transferred from the hydroponic growth system into petri dishes to spread out their roots. Pictures are in the same scale. A scheme of roots indicates typical changes in morphology of mature root systems during long-term culture on different nitrogen sources."

"Fig. 8. Cytokinin response in apical root tips. Confocal images of eight-week-old TCSn::GFP Arabidopsis lines grown on NO3− or NH4+ as the sole nitrogen source (A). Scale bars represent 50 μM. The representative image is shown out of 4-7 roots obtained from four independent plates. Relative fluorescence intensity of images (B)."
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June 22, 11:30 AM
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A novel plant growth regulator B2 mediates drought resistance by regulating reactive oxygen species, phytohormone signaling, phenylpropanoid biosynthesis, and starch metabolism pathways in Carex br...

A novel plant growth regulator B2 mediates drought resistance by regulating reactive oxygen species, phytohormone signaling, phenylpropanoid biosynthesis, and starch metabolism pathways in Carex br... | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Jiannan Shi, Ye Wang, Xifeng Fan, Runzhi Li, Chunxin Yu, Zhen Peng, Yuerong Gao, Ziyan Liu and Liusheng Duan. 

Plant Physiology and Biochemistry (2024)

Highlights • B2 pretreatment alleviates drought-induced damage in Carex breviculmis. • B2 mitigates oxidative stress by detoxifying ROS and reducing oxidative damage. • The crosstalk between B2 and plant hormones in augmenting drought tolerance. • B2 enhances drought resistance by promoting starch accumulation. 

Abstract: "Drought is one of the most common environmental stressors that severely threatens plant growth, development, and productivity. B2 (2,4-dichloroformamide cyclopropane acid), a novel plant growth regulator, plays an essential role in drought adaptation, significantly enhancing the tolerance of Carex breviculmis seedlings. Its beneficial effects include improved ornamental value, sustained chlorophyll content, increased leaf dry weight, elevated relative water content, and enhanced root activity under drought conditions. B2 also directly scavenges hydrogen peroxide and superoxide anion contents while indirectly enhancing the activities of antioxidant enzymes (superoxide dismutase, peroxidase, catalase, and ascorbate peroxidase) to detoxify reactive oxygen species (ROS) oxidative damage. Transcriptome analysis demonstrated that B2 activates drought-responsive transcription factors (AP2/ERF-ERF, WRKY, and mTERF), leading to significant upregulation of genes associated with phenylpropanoid biosynthesis (HCT, POD, and COMT). Additionally, these transcription factors were found to suppress the degradation of starch. B2 regulates phytohormone signaling related-genes, leading to an increase in abscisic acid contents in drought-stressed plants. Collectively, these findings offer new insights into the intricate mechanisms underlying C. breviculmis' resistance to drought damage, highlighting the potential application of B2 for future turfgrass establishment and management with enhanced drought tolerance."
Julio Retamales's insight:
Full title of this article is. "A novel plant growth regulator B2 mediates drought resistance by regulating reactive oxygen species, phytohormone signaling, phenylpropanoid biosynthesis, and starch metabolism pathways in Carex breviculmis"
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June 21, 3:42 PM
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Autophagy-regulated ethylene synthesis mediates fruit ripening by affecting the accumulation of lycopene, sugars and organic acids in tomato

Authors: Xuelian Zheng, Hongfei Yang, Zhichao Li, Canyu Zhou, Xinlin Chen, Kaixin Wang, Ping Yang, Guanghui Wang and Jie Zhou. 

Horticultural Plant Journal (2024)

Abstract: "Autophagy is a universal cellular process in eukaryotes that plays a critical role in plant growth and stress response. However, the role of autophagy in fruit ripening is largely unknown. Here, we demonstrated that most autophagy-related genes (ATGs) were up-regulated during tomato (Solanum lycopersicum L.) fruit ripening. By using mutants of different autophagy pathway genes (ATG6, ATG10, ATG18a), we revealed that the deficiency of autophagy delayed the ripening of fruit. Compared with wild-type (WT), the production of ethylene was significantly reduced and the accumulation of lycopene was delayed in atg mutants during fruit ripening. We also observed the contents of glucose and fructose were both significantly decreased in atg mutants compared with WT, while the content of organic acids showed the opposite trend. Additionally, the negative regulator of ethylene production, APETALA2a (AP2a), interacted with ATG8 through a specific ATG8-interacting motif (AIM) and could be degraded through the autophagy pathway. These results demonstrate that autophagy plays a critical role in fruit ripening by regulating ethylene production and the accumulation of pigments, sugars and organic acids in tomato."
Julio Retamales's insight:
Text of Figure 7 above: "Fig. 7 The model of autophagy promoting tomato fruit ripening.  Three ATG proteins (ATG6, ATG10, ATG18a) involved in different stages of autophagy are crucial to the formation of autophagosome. Autophagy may promote the transformation of fruit chloroplasts into chromoplasts by degrading chloroplast-related proteins. Additionally, autophagy can promote the production of ethylene by degrading AP2a in the ethylene synthesis pathway, thereby accelerating the fruit ripening process."
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June 21, 12:38 PM
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Vascular cambium stem cells: past, present and future - Review

Authors: Brecht Wybouw, Xixi Zhang and Ari Pekka Mähönen.

New Phytologist (2024)

Abstract: "Secondary xylem and phloem originate from a lateral meristem called the vascular cambium that consists of one to several layers of meristematic cells. Recent lineage tracing studies have shown that only one of the cambial cells in each radial cell file functions as the stem cell, capable of producing both secondary xylem and phloem. Here, we first review how phytohormones and signalling peptides regulate vascular cambium formation and activity. We then propose how the stem cell concept, familiar from apical meristems, could be applied to cambium studies. Finally, we discuss how this concept could set the basis for future research."
Julio Retamales's insight:
Good review!

Text of figure above: "Phytohormones and peptide regulatory network underlying the root/hypocotyl vascular cambium dynamics in Arabidopsis. The triangles indicate the graded expression of auxin signalling and PXY. The polygon shows TDIF peptide gradient with a sharp drop in the cambial stem cells because of the sequestration by PXY protein. The solid lines indicate the transcriptional regulation, physical interaction, or proteolytic processing. The dotted lines illustrate the movement of the TDIF peptide. The grey text indicates inhibited state. The unknown parts of this signalling network are indicated by ‘?’.
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June 20, 9:45 PM
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Auxin-mediated stress relaxation in pericycle and endoderm remodelling drive lateral root initiation

Auxin-mediated stress relaxation in pericycle and endoderm remodelling drive lateral root initiation | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: João R.D. Ramos, Blanca Jazmin Reyes-Hernández, Karen Alim and Alexis Maizel.

Biophysical Journal (2024)

Abstract: "Plant development relies on the precise coordination of cell growth, which is influenced by the mechanical constraints imposed by rigid cell walls. The hormone auxin plays a crucial role in regulating this growth by altering the mechanical properties of cell walls. During the post-embryonic formation of lateral roots, pericycle cells deep within the main root are triggered by auxin to resume growth and divide to form a new root. This growth involves a complex interplay between auxin, growth, and the resolution of mechanical conflicts with the overlying endodermis. However, the exact mechanisms by which this coordination is achieved are still unknown. Here, we propose a model that integrates tissue mechanics and auxin transport, revealing a connection between the auxin-induced relaxation of mechanical stress in the pericycle and auxin signalling in the endodermis. We show that the endodermis initially limits the growth of pericycle cells, resulting in a modest initial expansion. However, the associated stress relaxation is sufficient to redirect auxin to the overlying endodermis, which then actively accommodates the growth, allowing for the subsequent development of the lateral root. Our model uncovers that increased pericycle turgor and decreased endodermal resistance licence expansion of the pericycle and how the topology of the endodermis influences the formation of the new root. These findings highlight the interconnected relationship between mechanics and auxin flow during lateral root initiation, emphasizing the vital role of the endodermis in shaping root development through mechanotransduction and auxin signalling."
Julio Retamales's insight:
This relevant article was already posted here when published as a preprint ("Mechanotransduction in Lateral Root Initiation: A Model Integrating Growth Mechanics and Auxin Signaling2)
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June 19, 11:56 PM
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Deciphering the auxin-ethylene crosstalk in petal abscission through auxin influx carrier IpAUX1 of Itoh peony 'Bartzella'

Deciphering the auxin-ethylene crosstalk in petal abscission through auxin influx carrier IpAUX1 of Itoh peony 'Bartzella' | Plant hormones (Literature sources on phytohormones and plant signalling) | Scoop.it
Authors: Linting Fan, Wenbin Zhou, Shenshen Shang, Shuang Zhou, Shuangcheng Gao, Muhammad Shaaban, Zhanying Wang and Guoan Shi.

Postharvest Biology and Technology (2024)

Highlights • Auxin gradient modulates petal ethylene sensitivity. • The auxin influx carrier IpAUX1 is a positive regulatory factor. • The auxin influx carrier IpAUX1 acts upstream of ethylene. • Silencing and overexpression of IpAUX1 affects ethylene synthesis and signalling. • Silencing and overexpression of IpAUX1 affects cell wall hydrolysis. 

Abstract: "Auxin gradient on either side of the abscission zone play a crucial role in regulating organ abscission during plant senescence. Yet, the impact of auxin on the opening and senescence of cut peony flowers, specifically Itoh peony 'Bartzella', remains elusive. We employed the frozen section method to investigate the cell morphology within the petal abscission zone. Additionally, we quantified auxin levels via enzyme immunoassay and assessed the expression of genes related to indole-3-acetic acid (IAA) levels. Through our analyses, we pinpointed the critical gene, IpAUX1. Further investigation of IpAUX1 involved virus-induced gene silencing (VIGS) and transient overexpression techniques, allowing us to assess its role both in vitro flowers, through vacuum application, and in vivo flowers, via injection. Significant alterations were observed in the structure and cell morphology of the abscission zone correlating with the process of petal abscission, alongside noticeable auxin gradient. Silencing IpAUX1 led to a noticeable delay in petal abscission for both in vitro flowers and vivo flowers, while its transient overexpression hastened this process. This silencing effect was accompanied by a reduction in IAA levels around the abscission zone and a subsequent delay in the erasure of the auxin gradient. It also resulted in the downregulation of several genes: the auxin response factor IpARF1, ethylene synthesis-related genes IpACS1 and IpACO1, and cell wall hydrolysis-related genes IpPME1 and IpPG1. Conversely, the expression of genes involved in auxin synthesis gene IpYUCCA10, auxin efflux carrier IpPIN1, and the ethylene receptor IpETR1 saw significant upregulation. This study concludes that the auxin influx carrier IpAUX1 enhances the abscission zone cells' responsiveness to ethylene by modulating the auxin gradient. This action promotes cell hydrolysis within the abscission zone, thereby encouraging petal abscission. Our findings underscore the pivotal role of IpAUX1 as a positive regulator during the process of petal abscission."
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