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TaSED interacts with TaSPA synergistically regulating SDS-sedimentation volume in bread wheat
Shanshan Zhai, Runqi Zhang, Xinhao Meng, Guoyu Liu, Jiazheng Yu, Huanwen Xu, Hongyao Lou, Shidian Wen, Mingshan You, Chaojie Xie, Jie Liu, Zhongfu Ni, Qixin Sun, Baoyun Li
J Integr Plant Biol 2025, 67 (8): 2100-2117.
doi:
10.1111/jipb.13935
Abstract
(Browse
297
) |
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The SDS-sedimentation volume (SSV) is a critical indicator for assessing wheat gluten quality and is widely used when evaluating wheat processing quality. However, the molecular mechanisms regulating SSV remain poorly understood. In this study, we performed an analysis of quantitative trait loci (QTLs) for SSV using a recombinant inbred line (RIL) population derived from a cross between TAA10 and XX329, and identified four environmentally stable QTLs located on chromosomes 1D, 2D, 4D, and 6D. Among them, the effects of
Qssv.cau-1D
and
Qssv.cau-6D
were likely to be explained by genome variations at the
Glu-D1
and
Gli-D2
loci. We fine mapped
Qssv.cau-2D
to the candidate causal gene
TaSED
, encoding a nucleolar protein. Gene-edited
TaSED
knockout mutants (
tased
) had a lower SSV, while
TaSED
overexpression lines showed a higher SSV. We demonstrated that TaSED interacted with the transcription factor TaSPA to enhance its transcriptional activation activity of glutenin and gliadin, whose expression was downregulated in
tased
and upregulated in
TaSED
-OE plants, with corresponding differences in glutenin and gliadin content compared with the wild-type. A molecular marker
sedTX
was further developed based on a nonsynonymous mutation of the parents in
TaSED
that could be used to identify haplotypes with high SSV effectively. Our findings elucidate a molecular mechanism governing SSV and reveal valuable variants with promising applications for improving wheat quality.
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Wheat TaSED is a positive regulator of SDS-sedimentation volume, an indicator of gluten strength and thus baking properties. TaSED interacts with the transcription factor TaSPA regulating wheat storage protein gene expression, altering protein composition and affecting SDS-sedimentation volume, providing a valuable genetic resource for improving wheat quality.
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A SlMYB78-regulated bifunctional gene cluster for phenolamide and salicylic acid biosynthesis during tomato domestication, reducing disease resistance
Peng Cao, Linghao Xia, Xianggui Li, Meng Deng, Zhonghui Zhang, Xiangyu Lin, Zeyong Wu, Yingchen Hao, Penghui Liu, Chao Wang, Chun Li, Jie Yang, Jun Lai, Jun Yang, Shouchuang Wang
J Integr Plant Biol 2025, 67 (7): 1947-1964.
doi:
10.1111/jipb.13899
Abstract
(Browse
327
) |
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Plants have evolved a sophisticated chemical defense network to counteract pathogens, with phenolamides and salicylic acid (SA) playing pivotal roles in the immune response. However, the synergistic regulatory mechanisms of their biosynthesis remain to be explored. Here, we identified a biosynthetic gene cluster on chromosome 2 (BGC2) associated with the biosynthesis of phenolamide and SA, wherein the key component
SlEPS1
exhibits dual catalytic functions for the synthesis of phenolamides and SA. Overexpression of the key component
SlEPS1
of BGC2 in tomato enhanced resistance to the bacterial pathogen
Pst DC3000
, whereas knockout plants were more susceptible. Exogenous applications of SA and phenolamides revealed that these two compounds act synergistically to enhance plant resistance. Notably, during tomato domestication, a disease-resistant allele of
SlEPS1
,
SlEPS1
HapB
, was subject to negative selection, leading to a reduction in phenolamide and SA levels and compromised disease resistance in modern varieties. Moreover, the
SlMYB78
directly regulates the BGC2 gene cluster to enhance phenolamide and SA biosynthesis, modulating resistance to
Pst DC3000
. Our study employed multi-omics approaches to describe the synergistic regulation of phenolamide and SA biosynthesis, offering new insights into the complexity of plant immune-related metabolism.
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The tomato transcription factor SlMYB78 controls a key metabolic gene cluster including
ENHANCED PSEUDOMONAS SUSCEPTIBILTY 1
, encoding a key enzyme that produces disease-fighting compounds (phenolamides) and immune signals (salicylic acid). During domestication, tomatoes lost a superior variant (
SlEPS1
HapB
), weakening disease resistance; restoring this variant could reduce pesticide use in agriculture.
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Natural allelic variation of
NAC transcription factor 22
regulates starch biosynthesis and properties in sweetpotato
Yue Fan, Luyao Xue, Meiqi Shang, Shaopei Gao, Ning Zhao, Hong Zhai, Shaozhen He, Huan Zhang, Qingchang Liu
J Integr Plant Biol 2025, 67 (7): 1879-1894.
DOI:
10.1111/jipb.13916
Abstract
(Browse
470
) |
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Sweetpotato (
Ipomoea batatas
) starch is in high demand globally as a food and industrial product. However, the regulatory mechanisms governing starch biosynthesis and starch properties in this important crop remain largely unknown. Here we identified a natural allelic variant in the promoter of
IbNAC22
, encoding a NAC (NAM, ATAF1/2, and CUC2) transcription factor, which is closely linked to starch content in sweetpotato. In high-starch sweetpotato varieties, the T/C haplotype and a 13-bp deletion in the
IbNAC22
promoter resulted in higher transcriptional activity. The high-starch
IbNAC22
haplotype is more prevalent in regions of China where the sweetpotato starch industry is well developed, indicating that this advantageous allele type has been utilized in breeding starchy sweetpotato varieties in China.
IbNAC22
is highly expressed in storage roots and starch-rich sweetpotato accessions. Overexpression of
IbNAC22
significantly improved starch and amylose contents, as well as granule size and gelatinization temperature, and decreased starch crystallinity, whereas
IbNAC22
knockdown had the opposite effects. IbNAC22 directly activates the expression of
IbGBSSI
, a key gene for amylose biosynthesis, but suppresses the expression of
IbSBEI
, a key gene for amylopectin biosynthesis. IbNAC22 directly interacts with IbNF-YA10. Overexpressing of
IbNF-YA10
significantly improved starch and amylose contents, and starch gelatinization temperature, but decreased granule size, crystallinity, and amylopectin chain length distribution. IbNF-YA10 directly activates
IbAGPL
and
IbGBSSI
, which are key genes involved in starch and amylose biosynthesis. IbNAC22–IbNF-YA10 heterodimers further enhance the IbNF-YA10-induced activation of
IbAGPL
and
IbGBSSI
. These findings increase our understanding of starch biosynthesis and starch properties and provide strategies and candidate genes for the improvement of starchy root and tuber crops.
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The IbNAC22-IbNF-YA10 heterodimer plays a pivotal role in synergistically improving starch content, amylose proportion, and starch properties, offering valuable candidate genes and a theoretical foundation for the improvement of starchy sweetpotato.
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Optimizing carbon and nitrogen metabolism in plants: From fundamental principles to practical applications
Hui Liu, Xiuhua Gao, Weishu Fan, Xiangdong Fu
J Integr Plant Biol 2025, 67 (6): 1447-1466.
doi:
10.1111/jipb.13919
Abstract
(Browse
685
) |
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Carbon (C) and nitrogen (N) are fundamental elements essential for plant growth and development, serving as the structural and functional backbone of organic compounds and driving essential biological processes such as photosynthesis, carbohydrate metabolism, and N assimilation. The metabolism and transport of C involve the movement of sugars between shoots and roots through xylem and phloem transport systems, regulated by a sugar-signaling hub. Nitrogen uptake, transport, and metabolism are equally critical, with plants assimilating nitrate and ammonium through specialized transporters and enzymes in response to varying N levels to optimize growth and development. The coordination of C and N metabolism is key to plant productivity and the maintaining of agroecosystem stability. However, inefficient utilization of N fertilizers results in substantial environmental and economic challenges, emphasizing the urgent need to improve N use efficiency (NUE) in crops. Integrating efficient photosynthesis with N uptake offers opportunities for sustainable agricultural practices. This review discusses recent advances in understanding C and N transport, metabolism, and signaling in plants, with a particular emphasis on NUE-related genes in rice, and explores breeding strategies to enhance crop efficiency and agricultural sustainability.
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This review discusses recent advances in understanding carbon and nitrogen transport, metabolism, and signaling in plants, with a particular emphasis on nitrogen use efficiency–related genes in rice, and explores breeding strategies to enhance crop efficiency and agricultural sustainability.
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Regulatory and retrograde signaling networks in the chlorophyll biosynthetic pathway
Yuhong Li, Tianjun Cao, Yunling Guo, Bernhard Grimm, Xiaobo Li, Deqiang Duanmu, Rongcheng Lin
J Integr Plant Biol 2025, 67 (4): 887-911.
doi:
10.1111/jipb.13837
Abstract
(Browse
433
) |
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Plants, algae and photosynthetic bacteria convert light into chemical energy by means of photosynthesis, thus providing food and energy for most organisms on Earth. Photosynthetic pigments, including chlorophylls (Chls) and carotenoids, are essential components that absorb the light energy necessary to drive electron transport in photosynthesis. The biosynthesis of Chl shares several steps in common with the biosynthesis of other tetrapyrroles, including siroheme, heme and phycobilins. Given that many tetrapyrrole precursors possess photo-oxidative properties that are deleterious to macromolecules and can lead to cell death, tetrapyrrole biosynthesis (TBS) requires stringent regulation under various developmental and environmental conditions. Thanks to decades of research on model plants and algae, we now have a deeper understanding of the regulatory mechanisms that underlie Chl synthesis, including (i) the many factors that control the activity and stability of TBS enzymes, (ii) the transcriptional and post-translational regulation of the TBS pathway, and (iii) the complex roles of tetrapyrrole-mediated retrograde signaling from chloroplasts to the cytoplasm and the nucleus. Based on these new findings, Chls and their derivatives will find broad applications in synthetic biology and agriculture in the future.
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This review summarizes the regulatory mechanisms that underlie chlorophyll synthesis, including (1) factors that control the activity and stability of tetrapyrrole biosynthesis enzymes, (2) transcriptional and post-translational regulation of the tetrapyrrole biosynthesis pathway, and (3) the complex roles of tetrapyrrole-mediated retrograde signaling from chloroplasts to the cytoplasm and the nucleus.
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VvHY5 and VvBEE1 antagonistically control resveratrol biosynthesis to mitigate high light-induced damage in grapevine
Zain Ali, Yanzhao Sun, Zhaodong Ma, Yanyan Zheng, Yang Liu
J Integr Plant Biol 2025, 67 (4): 993-1008.
DOI:
10.1111/jipb.13895
Abstract
(Browse
358
) |
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Excessive exposure to high light can lead to photoinhibition, which impairs photosynthetic efficiency and causes oxidative damage in plants, such as sunburn in grapevines. This study investigates the role of resveratrol (Res), a stilbenoid with antioxidant properties, in protecting plants from high light damage. We found that exposure to high light increased reactive oxygen species (ROS) accumulation and induced photoinhibition in grapevine leaves. In response, Res biosynthesis was upregulated, along with an increase in stilbene synthase (
VvSTS
) expression. Application of exogenous Res alleviated ROS accumulation and improved photosynthetic efficiency. Further analysis revealed that the VvHY5-VvBEE1 regulatory module plays a pivotal role in regulating
VvSTS
expression under high light conditions. Specifically, VvHY5 activated
VvSTS
expression, while VvBEE1 repressed it. Transgenic analysis showed that overexpression of
VvHY5
enhanced Res production and photoprotection, whereas overexpression of
VvBEE1
reduced Res levels and exacerbated light-induced damage. VvHY5 and VvBEE1 competed for binding to the
VvSTS
promoter, with brassinosteroids (BRs) modulating their interaction. Our findings reveal the interplay between light signaling and brassinosteroid pathways in regulating Res biosynthesis, providing insights for protecting grapevines from sunburn.
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Excessive high-intensity light causes photoinhibition and oxidative damage in grapevines. The antioxidant resveratrol can protect grapevine cells. The bZIP protein VvHY5 and the brassinosteroid signaling component VvBEE1 regulate resveratrol synthesis, and brassinosteroids modulate their interaction, revealing potential ways to prevent grapevine from high-light stress.
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TaDL interacts with TaB3 and TaNF‐YB1 to synergistically regulate the starch synthesis and grain quality in bread wheat
Guoyu Liu, Runqi Zhang, Ziyan Wu, Jiazheng Yu, Hongyao Lou, Jun Zhu, Jie Liu, Jinying Gou, Zhongfu Ni, Qixin Sun, Rongqi Liang
J Integr Plant Biol 2025, 67 (2): 355-374.
doi:
10.1111/jipb.13815
Abstract
(Browse
315
) |
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Starch biosynthesis is a critical factor in wheat (
Triticum aestivum
L.) quality and yield. However, the full scope of its regulation is not fully understood. Here we report that TaDL interacts with TaB3 and TaNF-YB1 to synergistically regulate starch biosynthesis and quality in wheat. Genome-edited
tadl
mutant lines had smaller and lighter grains with lower total starch and amylose contents compared to wild type (WT). Correspondingly, the transcript levels of starch biosynthesis-related genes, including
TaSUS1
,
TaSUS2
,
TaAGPL2
,
TaSBEIIa
,
TaGBSSII
, and
TaSWEET2a
, were markedly lower at 15 d after flowering (DAF) in
tadl
mutants. TaDL physically interacted with TaB3 and TaNF-YB1 and activated the transcription of
TaSUS2
and
TaAGPL2
through direct binding to their promoter regions. A null mutant of
TaB3
also affected grain filling, with phenotypes similar to those of
tadl
mutants, whereas overexpression of
TaNF-YB1
promoted grain filling. Our study demonstrated that
TaDL
plays an essential role in starch biosynthesis and identified an elite allele (
TaDL-BI
) associated with starch content, providing insights into the underlying molecular mechanism of wheat grain filling, which may be useful in breeding of high-yielding wheat and quality improvement.
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In wheat, TaDL physically interacts with TaB3 and TaNF-YB1 to synergistically improve grain quality by promoting starch synthesis through direct binding to the promoter region of genes involving starch biosynthesis.
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Sulfur metabolism under stress: Oxidized glutathione inhibits methionine biosynthesis by destabilizing the enzyme cystathionine
γ
-synthase
Yael Hacham, Alex Kaplan, Elad Cohen, Maayan Gal, Rachel Amir
J Integr Plant Biol 2025, 67 (1): 87-100.
DOI:
10.1111/jipb.13799
Abstract
(Browse
437
) |
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Cysteine is the precursor for the biosynthesis of glutathione, a key stress-protective metabolite, and methionine, which is imperative for cell growth and protein synthesis. The exact mechanism that governs the routing of cysteine toward glutathione or methionine during stresses remains unclear. Our study reveals that under oxidative stress, methionine and glutathione compete for cysteine and that the increased oxidized glutathione (GSSG) levels under stress hinder methionine biosynthesis. Moreover, we find that inhibition occurs as GSSG binds to and accelerates the degradation of cystathionine γ-synthase, a key enzyme in the methionine synthesis pathway. Consequently, this leads to a reduction in the flux toward methionine-derived metabolites and redirects cysteine utilization toward glutathione, thereby enhancing plant protection. Our study suggests a novel regulatory feedback loop involving glutathione, methionine, and cysteine, shedding light on the plant stress response and the adaptive rerouting of cysteine. These findings offer new insights into the intricate balance of growth and protection in plants and its impact on their nutritional value due to low methionine levels under stress.
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Methionine and glutathione synthesis compete for cysteine. Under oxidative stress, when more glutathione is required to protect the plants, its oxidized form binds the key enzyme of methionine biosynthesis, leading to its degradation. This mechanism helps protect plants but reduces their nutritional value due to lower methionine levels.
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The ABC transporter SmABCG1 mediates tanshinones export from the peridermic cells of
Salvia miltiorrhiza
root
Yajing Li, Junfeng Chen, Jingyu Zhi, Doudou Huang, Yuchen Zhang, Lei Zhang, Xinyi Duan, Pan Zhang, Shi Qiu, Jiaran Geng, Jingxian Feng, Ke Zhang, Xu Yang, Shouhong Gao, Wenwen Xia, Zheng Zhou, Yuqi Qiao, Bo Li, Qing Li, Tingzhao Li, Wansheng Chen, Ying Xiao
J Integr Plant Biol 2025, 67 (1): 135-149.
DOI:
10.1111/jipb.13806
Abstract
(Browse
394
) |
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Plants have mechanisms to transport secondary metabolites from where they are biosynthesized to the sites where they function, or to sites such as the vacuole for detoxification. However, current research has mainly focused on metabolite biosynthesis and regulation, and little is known about their transport. Tanshinone, a class diterpenoid with medicinal properties, is biosynthesized in the periderm of
Salvia miltiorrhiza
roots. Here, we discovered that tanshinone can be transported out of peridermal cells and secreted into the soil environment and that the ABC transporter SmABCG1 is involved in the efflux of tanshinone ⅡA and tanshinone Ⅰ. The
SmABCG1
gene is adjacent to the diterpene biosynthesis gene cluster in the
S. miltiorrhiza
genome. The temporal–spatial expression pattern of
SmABCG1
is consistent with tanshinone accumulation profiles. SmABCG1 is located on the plasma membrane and preferentially accumulates in the peridermal cells of
S. miltiorrhiza
roots. Heterologous expression in
Xenopus laevis
oocytes demonstrated that SmABCG1 can export tanshinone ⅡA and tanshinone Ⅰ. CRISPR/Cas9-mediated mutagenesis of
SmABCG1
in
S. miltiorrhiza
hairy roots resulted in a significant decrease in tanshinone contents in both hairy roots and the culture medium, whereas overexpression of this gene resulted in increased tanshinone contents.
CYP76AH3
transcript levels increased in hairy roots overexpressing
SmABCG1
and decreased in knockout lines, suggesting that SmABCG1 may affect the expression of
CYP76AH3
, indirectly regulating tanshinone biosynthesis. Finally, tanshinone ⅡA showed cytotoxicity to
Arabidopsis
roots. These findings offer new perspectives on plant diterpenoid transport and provide a new genetic tool for metabolic engineering and synthetic biology research.
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In the medicinal plant
Salvia miltiorrhiza
, the ABC transporter SmABCG1 mediates export of tanshinones, diterpenoid compounds with medicinal properties, from root peridermic cells, likely prompted by their potential cytotoxicity.
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Nullification of GFTs fortifies bioactive folates in foxtail millet
Jianzhou Pang, Wei Zhang, Yanyan Zhang, Shihui Zhang, Yannan Wang, Hui Zhi, Chunyi Zhang, Qiuju Liang, Xianmin Diao
J Integr Plant Biol 2024, 66 (8): 1540-1543.
doi:
10.1111/jipb.13665
Abstract
(Browse
307
) |
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In foxtail millet (
Setaria italica
), knockout of the glutamate formiminotransferases SiGFT1 and 2 increased the accumulation of bioactive folates to approximately four times the level of wild-type plants and decreased levels of the bioinactive oxidation product MeFox by 95%, thus providing a promising route for folate biofortification in cereal crops.
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Identification of the cytochrome P450s responsible for the biosynthesis of two types of aporphine alkaloids and their
de novo
biosynthesis in yeast
Qishuang Li, Xiang Jiao, Xinyi Li, Wenlong Shi, Ying Ma, Xiangmei Tan, Jingyi Gan, Jimei Liu, Jian Yang, Jian Wang, Baolong Jin, Tong Chen, Ping Su, Yujun Zhao, Yifeng Zhang, Jinfu Tang, Guanghong Cui, Yun Chen, Juan Guo, Luqi Huang
J Integr Plant Biol 2024, 66 (8): 1703-1717.
DOI:
10.1111/jipb.13724
Abstract
(Browse
429
) |
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Aporphine alkaloids have diverse pharmacological activities; however, our understanding of their biosynthesis is relatively limited. Previous studies have classified aporphine alkaloids into two categories based on the configuration and number of substituents of the D-ring and have proposed preliminary biosynthetic pathways for each category. In this study, we identified two specific cytochrome P450 enzymes (CYP80G6 and CYP80Q5) with distinct activities toward (
S
)-configured and (
R
)-configured substrates from the herbaceous perennial vine
Stephania tetrandra
, shedding light on the biosynthetic mechanisms and stereochemical features of these two aporphine alkaloid categories. Additionally, we characterized two CYP719C enzymes (CYP719C3 and CYP719C4) that catalyzed the formation of the methylenedioxy bridge, an essential pharmacophoric group, on the A- and D-rings, respectively, of aporphine alkaloids. Leveraging the functional characterization of these crucial cytochrome P450 enzymes, we reconstructed the biosynthetic pathways for the two types of aporphine alkaloids in budding yeast (
Saccharomyces cerevisiae
) for the
de novo
production of compounds such as (
R
)-glaziovine, (
S
)-glaziovine, and magnoflorine. This study provides key insight into the biosynthesis of aporphine alkaloids and lays a foundation for producing these valuable compounds through synthetic biology.
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CYP80G6 and CYP80Q5 catalyze the formation of type I and type II aporphine skeletons, respectively. Pathway reconstruction achieved the
de novo
synthesis of two types of aporphines in yeast. The newly identified CYP719C3 and CYP719C4 are responsible for catalyzing the formation of two methylenedioxy bridges in aporphines.
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Chemoproteomics reveals the epoxidase enzyme for the biosynthesis of camptothecin in
Ophiorrhiza pumila
Tong Zhang, Yan Wang, Shiwen Wu, Ernuo Tian, Chengshuai Yang, Zhihua Zhou, Xing Yan and Pingping Wang
J Integr Plant Biol 2024, 66 (6): 1044-1047.
doi:
10.1111/jipb.13594
Abstract
(Browse
416
) |
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The downstream biosynthetic route of camptothecin has remained unclear for more than half a century. Here, we discovered a P450 enzyme involved in camptothecin biosynthesis from plant by chemoproteomics, which lays the foundation for synthesis of camptothecin and highlights the effectiveness of chemoproteomic profiling for discovering unknown enzymes.
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Identification and characterization of camptothecin tailoring enzymes in
Nothapodytes tomentosa
Yin Chen, Jian-Ping Huang, Yong-Jiang Wang, Meng-Ling Tu, Junheng Li, Bingyan Xu, Guoqing Peng, Jing Yang and Sheng-Xiong Huang
J Integr Plant Biol 2024, 66 (6): 1158-1169.
DOI:
10.1111/jipb.13649
Abstract
(Browse
375
) |
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Camptothecin is a complex monoterpenoid indole alkaloid with remarkable antitumor activity. Given that two C-10 modified camptothecin derivatives, topotecan and irinotecan, have been approved as potent anticancer agents, there is a critical need for methods to access other aromatic ring-functionalized congeners (e.g., C-9, C-10, etc.). However, contemporary methods for chemical oxidation are generally harsh and low-yielding when applied to the camptothecin scaffold, thereby limiting the development of modified derivatives. Reported herein, we have identified four tailoring enzymes responsible for C-9 modifications of camptothecin from Nothapodytes tomentosa, via metabolomic and transcriptomic analysis. These consist of a cytochrome P450 (
Nt
CPT9H) which catalyzes the regioselective oxidation of camptothecin to 9-hydroxycamptothecin, as well as two methyltransferases (
Nt
OMT1/2, converting 9-hydroxycamptothecin to 9-methoxycamptothecin), and a uridine diphosphate-glycosyltransferase (
Nt
UGT5, decorating 9-hydroxycamptothecin to 9-β-D-glucosyloxycamptothecin). Importantly, the critical residues that contribute to the specific catalytic activity of
Nt
CPT9H have been elucidated through molecular docking and mutagenesis experiments. This work provides a genetic basis for producing camptothecin derivatives through metabolic engineering. This will hasten the discovery of novel C-9 modified camptothecin derivatives, with profound implications for pharmaceutical manufacture.
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Camptothecin is a structurally unique monoterpenoid indole alkaloid with remarkable antitumor activity. Metabolite and transcriptome analysis discovered four camptothecin tailoring enzymes responsible for C-9 modifications in
Nothapodytes tomentosa
, thus providing a foundation for discovering novel C-9 modified camptothecin derivatives, with profound implications for pharmaceutical manufacture.
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A transcriptional cascade mediated by two APETALA2 family members orchestrates carotenoid biosynthesis in tomato
Xiaoqing He, Kaidong Liu, Yi Wu, Weijie Xu, Ruochen Wang, Julien Pirrello, Mondher Bouzayen, Mengbo Wu and Mingchun Liu
J Integr Plant Biol 2024, 66 (6): 1227-1241.
DOI:
10.1111/jipb.13650
Abstract
(Browse
440
) |
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Carotenoids are important nutrients for human health that must be obtained from plants since they cannot be biosynthesized by the human body. Dissecting the regulatory mechanism of carotenoid metabolism in plants represents the first step toward manipulating carotenoid contents in plants by molecular design breeding. In this study, we determined that SlAP2c, an APETALA2 (AP2) family member, acts as a transcriptional repressor to regulate carotenoid biosynthesis in tomato (Solanum lycopersicum). Knockout of
SlAP2c
in both the “MicroTom” and “Ailsa Craig” backgrounds resulted in greater lycopene accumulation, whereas overexpression of this gene led to orange-ripe fruit with significantly lower lycopene contents than the wild type. We established that SlAP2c represses the expression of genes involved in lycopene biosynthesis by directly binding to the cis-elements in their promoters. Moreover, SlAP2c relies on its EAR motif to recruit the co-repressors TOPLESS (TPL)2/4 and forms a complex with histone deacetylase (had)1/3, thereby reducing the histone acetylation levels of lycopene biosynthesis genes. Furthermore, SlAP2a, a homolog of SlAP2c, acts upstream of
SlAP2c
and alleviates the SlAP2c-induced repression of lycopene biosynthesis genes by inhibiting
SlAP2c
transcription during fruit ripening. Therefore, we identified a transcriptional cascade mediated by AP2 family members that regulates lycopene biosynthesis during fruit ripening in tomato, laying the foundation for the manipulation of carotenoid metabolism in plants.
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The tomato AP2-type transcription factor SlAP2c represses lycopene accumulation by recruiting TOPLESS and histone deacetylase complexes to decrease the histone acetylation levels of lycopene biosynthesis genes in their promoter regions; SlAP2a acts upstream of
SlAP2c
to alleviate the repressive effect of SlAP2c during fruit ripening.
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A widely targeted metabolite modificomics strategy for modified metabolites identification in tomato
Jun Yang, Ridong Chen, Chao Wang, Chun Li, Weizhen Ye, Zhonghui Zhang and Shouchuang Wang
J Integr Plant Biol 2024, 66 (4): 810-823.
DOI:
10.1111/jipb.13629
Abstract
(Browse
472
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The structural and functional diversity of plant metabolites is largely created via chemical modification of a basic backbone. However, metabolite modifications in plants have still not been thoroughly investigated by metabolomics approaches. In this study, a widely targeted metabolite modificomics (WTMM) strategy was developed based on ultra-high performance liquid chromatography-quadrupole-linear ion trap (UHPLC-Q-Trap) and UHPLC-Q-Exactive-Orbitrap (UHPLC-QE-Orbitrap), which greatly improved the detection sensitivity and the efficiency of identification of modified metabolites. A metabolite modificomics study was carried out using tomato as a model, and over 34,000 signals with MS2 information were obtained from approximately 232 neutral loss transitions. Unbiased metabolite profiling was also performed by utilizing high-resolution mass spectrometry data to annotate a total of 2,118 metabolites with 125 modification types; of these, 165 modified metabolites were identified in this study. Next, the WTMM database was used to assess diseased tomato tissues and 29 biomarkers were analyzed. In summary, the WTMM strategy is not only capable of large-scale detection and quantitative analysis of plant-modified metabolites in plants, but also can be used for plant biomarker development.
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A widely-targeted metabolite modificomics strategy enables researchers to detect and discover various potentially modified metabolites in plants.
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Molecular regulation of the key specialized metabolism pathways in medicinal plants
Min Shi, Siwei Zhang, Zizhen Zheng, Itay Maoz, Lei Zhang and Guoyin Kai
J Integr Plant Biol 2024, 66 (3): 510-531.
doi:
10.1111/jipb.13634
Abstract
(Browse
396
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The basis of modern pharmacology is the human ability to exploit the production of specialized metabolites from medical plants, for example, terpenoids, alkaloids, and phenolic acids. However, in most cases, the availability of these valuable compounds is limited by cellular or organelle barriers or spatio-temporal accumulation patterns within different plant tissues. Transcription factors (TFs) regulate biosynthesis of these specialized metabolites by tightly controlling the expression of biosynthetic genes. Cutting-edge technologies and/or combining multiple strategies and approaches have been applied to elucidate the role of TFs. In this review, we focus on recent progress in the transcription regulation mechanism of representative high-value products and describe the transcriptional regulatory network, and future perspectives are discussed, which will help develop high-yield plant resources.
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This review examines the transcriptional regulatory networks regulating the biosynthesis of specialized metabolites including terpenoids, alkaloids, and phenolic acids in different medical plants.
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Carotenoid isomerase regulates rice tillering and grain productivity by its biosynthesis pathway
Chaoqing Ding, Zhengji Shao, Yuping Yan, Guangheng Zhang, Dali Zeng, Li Zhu, Jiang Hu, Zhenyu Gao, Guojun Dong, Qian Qian and Deyong Ren
J Integr Plant Biol 2024, 66 (2): 172-175.
doi:
10.1111/jipb.13617
Abstract
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Carotenoid isomerase activity and carotenoid content maintain the appropriate tiller number, photosynthesis, and grain yield. Interactions between the strigolactone and abscisic acid pathways regulates tiller formation.
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Knockout of a rice
K5.2
gene increases Ca accumulation in the grain
Peitong Wang, Naoki Yamaji, Namiki Mitani‐Ueno, Jun Ge and Jian Feng Ma
J Integr Plant Biol 2024, 66 (2): 252-264.
DOI:
10.1111/jipb.13587
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Rice is a staple food for half of the world's population, but it is a poor dietary source of calcium (Ca) due to the low concentration. It is an important issue to boost Ca concentration in this grain to improve Ca deficiency risk, but the mechanisms underlying Ca accumulation are poorly understood. Here, we obtained a rice (
Oryza sativa
) mutant with high shoot Ca accumulation. The mutant exhibited 26%–53% higher Ca in shoots than did wild-type rice (WT) at different Ca supplies. Ca concentration in the xylem sap was 36% higher in the mutant than in the WT. There was no difference in agronomic traits between the WT and mutant, but the mutant showed 25% higher Ca in the polished grain compared with the WT. Map-based cloning combined with a complementation test revealed that the mutant phenotype was caused by an 18-bp deletion of a gene,
OsK5.2
, belonging to the Shaker-like K
+
channel family.
OsK5.2
was highly expressed in the mature region of the roots and its expression in the roots was not affected by Ca levels, but upregulated by low K. Immunostaining showed that OsK5.2 was mainly expressed in the pericycle of the roots. Taken together, our results revealed a novel role for OsK5.2 in Ca translocation in rice, and will be a good target for Ca biofortification in rice.
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Deletion of the Shaker-like K
+
channel family gene
OsK5.2
enhances calcium accumulation in rice shoot and polished rice grain, thus providing a breeding target for calcium biofortification of rice grain.
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Online ISSN: 1744-7909 Print ISSN: 1672-9072 CN: 11-5067/Q
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