1.Cytotoxic anthrone-cyclopentenone heterodimers from the fungus Penicillium sp. guided by molecular networking.
Ruiyun HUO ; Jiayu DONG ; Gaoran LIU ; Ying SHI ; Ling LIU
Chinese Journal of Natural Medicines (English Ed.) 2025;23(10):1259-1267
(±)-Penicithrones A-D (1a/1b-4a/4b), four novel pairs of anthrone-cyclopentenone heterodimers characterized by a distinctive bridged 6/6/6-5 tetracyclic core skeleton, together with three previously identified compounds (5-7), were isolated from the crude extract of the mangrove-derived fungus Penicillium sp., guided by heteronuclear single quantum correlation (HSQC)-based small molecule accurate recognition technology (SMART 2.0) and liquid chromatography-tandem mass spectrometry (LC-MS/MS)-based molecular networking. The structural elucidation of new compounds was accomplished through comprehensive spectroscopic analysis, and their absolute configurations were determined using DP4+ 13C nuclear magnetic resonance (NMR) calculations and electronic circular dichroism (ECD) calculations. Compounds 1a/1b-4a/4b demonstrated moderate cytotoxicity against three human cancer cell lines HeLa, HCT116 and MCF-7 with half maximal inhibitory concentration (IC50) values ranging from 15.95 ± 1.64 to 28.56 ± 2.59 μmol·L-1.
Humans
;
Penicillium/chemistry*
;
Molecular Structure
;
Cyclopentanes/isolation & purification*
;
Cell Line, Tumor
;
Antineoplastic Agents/pharmacology*
;
Tandem Mass Spectrometry
;
Dimerization
;
HeLa Cells
;
Magnetic Resonance Spectroscopy
2.Regulatory roles of JAZ in the growth and development of horticultural plants.
Xinxin ZHANG ; Tao TAO ; Hangchun LI ; Zhi QIAO ; Qinglin TANG ; Dayong WEI ; Yang YANG ; Zhimin WANG
Chinese Journal of Biotechnology 2025;41(2):530-545
Jasmonic acid (JA) is a common plant hormone with regulatory effects on plant growth and development. The jasmonate ZIM-domain (JAZ) proteins (JAZs), as key regulators in the JA signaling pathway, are involved in multiple biological processes such as anthocyanin accumulation, flowering time modulation, and secondary metabolite synthesis in plants. JAZs are essential components of many regulatory signaling networks. The JAZ genes, members of the plant-specific TIFY family, have been identified in the genomes of a variety of horticultural plants. Here, we summarized the research progress in the roles of JAZs in horticultural plants, aiming to give insights into the further study of the biological functions and regulatory networks of JAZ genes in plants.
Horticulture
;
Repressor Proteins/metabolism*
;
Plant Proteins/metabolism*
;
Cyclopentanes/metabolism*
;
Oxylipins/metabolism*
;
Plants/metabolism*
;
Plant Development
3.Cloning and functional analysis of the phenylalanine ammonia-lyase gene from Anthoceros angustus.
Haina YU ; Jian MO ; Jiayi YANG ; Xiaochun QIN
Chinese Journal of Biotechnology 2025;41(7):2855-2870
Anthoceros angustus Steph. is rich in phenolic acids such as rosmarinic acid (RA). Phenylalanine ammonia-lyase (PAL) is an entry enzyme in the phenylpropanoid pathway of plants, playing an important role in the biosynthesis of RA. To investigate the important role of PAL in rosmarinic acid synthesis, two PAL genes (designated as AanPAL1 and AanPAL2) were cloned from A. angustus, encoding 755 and 753 amino acid residues, respectively. The AanPAL deduced amino acid sequences contain the conserved domains of PAL and the core active amino acid residues Ala-Ser-Gly. The phylogenetic analysis indicated that AanPAL1 and AanPAL2 were clustered with PALs from bryophytes and ferns and had the shortest evolutionary distance with the PALs from Physcomitrella patens. Quantitative real-time PCR results showed that the expression of AanPAL1 and AanPAL2 was induced by exogenous methyl jasmonate (MeJA). HPLC results showed that the MeJA treatment significantly increased the accumulation of RA. AanPAL1 and AanPAL2 were expressed in Escherichia coli and purified by histidine-tag affinity chromatography. The recombinant proteins catalyzed the conversion of L-phenylalanine to generate trans-cinnamic acid with high efficiency, with the best performance at 50 ℃ and pH 8.0. The Km and kcat of AanPAL1 were 0.062 mmol/L and 4.35 s-1, and those of AanPAL2 were 0.198 mmol/L and 14.48 s-1, respectively. The specific activities of AanPAL1 and AanPAL2 were 2.61 U/mg and 8.76 U/mg, respectively. The two enzymes had relatively poor thermostability but good pH stability. The high activity of AanPAL2 was further confirmed via whole-cell catalysis with recombinant E. coli, which could convert 1 g/L L-phenylalanine into trans-cinnamic acid with a yield of 100% within 10 h. These results give insights into the regulatory role of AanPAL in the biosynthesis of RA in A. angustus and provide candidate enzymes for the biosynthesis of cinnamic acid.
Phenylalanine Ammonia-Lyase/metabolism*
;
Cloning, Molecular
;
Cinnamates/metabolism*
;
Recombinant Proteins/metabolism*
;
Rosmarinic Acid
;
Depsides/metabolism*
;
Escherichia coli/metabolism*
;
Amino Acid Sequence
;
Plant Proteins/metabolism*
;
Phylogeny
;
Acetates/pharmacology*
;
Cyclopentanes
;
Oxylipins
4.Map-based cloning and abiotic stress response analysis of rust spotted leaf 1 in rice.
Jun LIU ; Xiaoyan LIU ; Yiyun GE ; Yiting WEI ; Kangjie LING ; Luyao TANG ; Jiangmin XU ; Yuchun RAO
Chinese Journal of Biotechnology 2025;41(7):2871-2884
Rice (Oryza sativa L.) is an important food crop. The appearance of lesion mimics in rice leads to phytohormone disorders, which affects rice adaptation to environmental stresses and ultimately reduces the yield and quality. To explore whether the changes in the adaptability of rice lesion-mimic mutants to stressful environments are caused by the disorder of phytohormone metabolism in plants. In this study, we screened an ethyl methane sulfonate-treated population of the japonica cultivar 'Taipei 309' for a mutant with rust-like spots on leaves at the early tillering stage and brown-red spots at maturity and named it rsl1 (rust spotted leaf 1). Compared with the wild type, rsl1 showed decreases in plant height, panicle length, primary branch number, secondary branch number, filled grains per panicle, seed-setting rate, and 1 000-grain weight, and an increase in number of effective panicles. Genetic analysis indicated that rsl1 was controlled by a single recessive nuclear gene. RSL1 was localized between two molecular markers, B7-7 and B7-9, on rice chromosome 7 by map-based cloning. PCR sequencing of the annotated genes in this interval revealed a mutation of C1683A on the eighth exon of SPL5 (LOC_Os07g10390) in rsl1, which resulted in premature termination of protein translation. Exogenous phytohormone treatments showed that rsl1 was less sensitive to salicylic acid (SA), abscisic acid (ABA), and indo-3-acetic acid (IAA) and more sensitive to methyl jasmonate (MeJA) and gibberellin acid (GA) than the wild type. In addition, the survival rate of rsl1 was lower than that of the wild type under salt, alkali, drought, and high temperature stresses, and it was higher than that of the wild type under cold stress. Quantitative real-time polymerase chain reaction (qRT-PCR) results showed that RSL1 was involved in the regulation of ABA, SA, MeJA, IAA, and GA-related genes under abiotic stresses. The present study showed that the RSL1 mutation led to the appearance of lesion mimics and affected the growth, development, and stress resistance of rsl1 under abiotic stresses. The study of the functional mechanism of this gene can provide theoretical guidance for the research on rice stress resistance.
Oryza/microbiology*
;
Stress, Physiological/genetics*
;
Plant Diseases/genetics*
;
Cloning, Molecular
;
Chromosome Mapping
;
Plant Growth Regulators/metabolism*
;
Plant Proteins/genetics*
;
Mutation
;
Cyclopentanes
;
Genes, Plant
;
Plant Leaves/genetics*
;
Oxylipins
5.The role of jasmonic acid in stress resistance of plants: a review.
Lehuan ZHANG ; Changyu ZOU ; Tianxiang ZHU ; Meixia DU ; Xiuping ZOU ; Yongrui HE ; Shanchun CHEN ; Qin LONG
Chinese Journal of Biotechnology 2024;40(1):15-34
Jasmonic acid (JA), a plant endogenously synthesized lipid hormone, plays an important role in response to stress. This manuscript summarized the biosynthesis and metabolism of JA and its related regulatory mechanisms, as well as the signal transduction of JA. The mechanism and regulatory network of JA in plant response to biotic and abiotic stresses were systematically reviewed, with the latest advances highlighted. In addition, this review summarized the signal crosstalk between JA and other hormones in regulating plant resistance to various stresses. Finally, the problems to be solved in the study of plant stress resistance mediated by JA were discussed, and the application of new molecular biological technologies in regulating JA signaling to enhance crop resistance was prospected, with the aim to facilitate future research and application of plant stress resistance.
Signal Transduction
;
Cyclopentanes
;
Oxylipins
;
Plant Growth Regulators
6.Identification and functional analysis of the transcriptional factor GeERF4B-1 in Gelsemium elegans.
Chuihuai YOU ; Ruiqi CHEN ; Xinlu SUN ; Yingying LI ; Yachun SU
Chinese Journal of Biotechnology 2024;40(11):4198-4210
Gelsemium elegans, a vine plant of Loganiaceae, has both medicinal and forage values. However, it is susceptible to low temperatures during growth. Exploring low temperature response genes is of great significance for cold resistance breeding of G. elegans. Ethylene response factors (ERFs) are the transcription factors of the AP2/ERF superfamily and play a crucial role in plant stress response. In this study, based on the unigene GeERF involved in the response to low temperature stress in the transcriptome of G. elegans, a full-length cDNA sequence of the transcription factor GeERF4B-1 was cloned from the leaves of G. elegans by reverse transcription-polymerase chain reaction (RT-PCR). Bioinformatics analysis showed that GeERF4B-1 had an open reading frame of 759 bp, encoding a protein composed of 252 amino acid residues and with a relative molecular weight of 27 kDa. The deduced protein was predicted to be an unstable, alkaline, and hydrophilic protein. The phylogenetic tree showed that GeERF4B-1 was in the same clade as the B-4 subfamily of the ERF family. The results of the subcellular localization experiment revealed that GeERF4B-1 was located in the nucleus. Real time quantitative PCR (RT-qPCR) analysis indicated that GeERF4B-1 was expressed in the root, stem, and leaf of G. elegans, with the highest expression level in the root. Compared with the control, the treatments with a low temperature (4 ℃), methyl jasmonate (MeJA), and abscisic acid (ABA) up-regulated the expression level of GeERF4B-1, which reached the peak at 24-48 h. This result revealed that GeERF4B-1 actively responded to low temperature, MeJA, and ABA stresses. However, both sodium chloride (NaCl) and drought treatments down-regulated the expression of GeERF4B-1. In addition, a prokaryotic expression vector of GeERF4B-1 was constructed, and a fusion protein of approximately 52 kDa was yielded after induced expression. The results of the plate stress assay showed that compared with the control, the prokaryotic strain expressing GeERF4B-1 demonstrated enhanced tolerance to low temperatures and sensitivity to salt and mannitol stresses. This study provides theoretical references and potential genetic resources for breeding G. elegans varieties with stress resistance.
Transcription Factors/metabolism*
;
Plant Proteins/metabolism*
;
Gelsemium/metabolism*
;
Acetates/pharmacology*
;
Gene Expression Regulation, Plant
;
Phylogeny
;
Cold Temperature
;
Amino Acid Sequence
;
Cyclopentanes/metabolism*
;
Oxylipins/metabolism*
;
Stress, Physiological/genetics*
;
Abscisic Acid/metabolism*
;
Cloning, Molecular
7.Cloning and function analysis of promoter of DcCDPK8 from Dendrobium catenatum.
Yuan WANG ; Yan-Hui GAO ; Yu-Qiu ZHU ; Jin-Ping SI
China Journal of Chinese Materia Medica 2019;44(2):293-297
DcCDPK8 involved in abiotic stress such as low temperature and signal transduction of hormones ABA and MeJA,but the transcriptional regulation is still unclear. In order to study the core promoter region of DcCDPK8 gene in Dendrobium catenatum and explore its transcriptional regulation mechanism,the DcCDPK8 gene promoter sequence was cloned by PCR from D. catenatum. Promoter sequence function was studied by fusion of 5 'terminal deletion and GUS gene. The results showed that the promoter sequence of DcCDPK8 gene has a low-temperature responsive element( LTR) between~(-1) 749 bp and-614 bp,two MeJA responsive elements between~(-1) 749 bp and-230 bp,and one ABA responsive elements between-614 bp and-230 bp. Three 5'-end different deletion fragments were constructed to fuse the eukaryotic expression vectors p BI121 with GUS,which were transformed into tobacco leaves. The GUS activity under cold stress treatment was DcCDPK8-p1>DcCDPK8-p2>DcCDPK8-p3. GUS activity under exogenous ABA induction was DcCDPK8-p1>DcCDPK8-p2>DcCDPK8-p3,and GUS activity under exogenous MeJA induction was DcCDPK8-p1>DcCDPK8-p2>DcCDPK8-p3. It is speculated that the ABA response element( ARE) in the promoter sequences of DcCDPK8 is positive regulatory role in response to exogenous ABA,the MeJA cis-acting element plays a negative role in response to exogenous MeJA.
Abscisic Acid
;
Acetates
;
Cloning, Molecular
;
Cold Temperature
;
Cyclopentanes
;
Dendrobium
;
genetics
;
Gene Expression Regulation, Plant
;
Oxylipins
;
Plant Proteins
;
genetics
;
Plants, Genetically Modified
;
Promoter Regions, Genetic
;
Response Elements
;
Stress, Physiological
;
Tobacco
8.Effects of methyl jasmonate on metabolism of topical alkaloids and expression of relate genes in Atropa belladonna.
Yi YANG ; Cui-Ping ZHANG ; Xing LIU ; Yue WEI ; Neng-Biao WU
China Journal of Chinese Materia Medica 2018;43(20):4044-4049
Hyoscyamine and scopolamine are important secondary metabolites of tropane alkaloid in Atropa belladonna with pharmacological values in many aspects.In this study, the seedlings of A.belladonna were planted by soil culture and treated with different concentrations of methyl jasmonate (MeJA). The contents of hyoscyamine and scopolamine,the upstream products in alkaloid synthesis,and the expression levels of key enzyme genes PMT, TR Ⅰ and H6H in secondary metabolites of A. belladonna seedlings were measured to clarify the mechanism of MeJA regulating alkaloids synthesis.The results showed that MeJA(200 μmol·L⁻¹) treatment was more favorable for the accumulation of alkaloids.The content of putrescine was almost consistent with the change of key enzymes activities in the synthesis of putrescine,the both increased first and then decreased with the increased MeJA concentration and the content of putrescine reached the highest at 200 μmol·L⁻¹ MeJA.Further detection of gene expression of PMT, TR Ⅰ and H6H in TAs synthesis pathway showed that no significant trend in PMT gene expression levels.The expression levels of TR Ⅰ and H6H in leaves and roots under 200 μmol·L⁻¹ MeJA were the highest.It can be speculated that the regulation of the formation of hyoscyamine and scopolamine by MeJA mainly through affecting the expression of key enzyme genes.Appropriate concentration of MeJA increased the gene expression of TR Ⅰ in both leaves and roots as well as H6H in roots,promoting the accumulation of alkaloids and the conversion of hyoscyamine to scopolamine.
Acetates
;
pharmacology
;
Atropa belladonna
;
drug effects
;
genetics
;
metabolism
;
Cyclopentanes
;
pharmacology
;
Gene Expression Regulation, Plant
;
Hyoscyamine
;
metabolism
;
Oxylipins
;
pharmacology
;
Plant Leaves
;
metabolism
;
Plant Roots
;
metabolism
;
Scopolamine
;
metabolism
9.Cloning and functional identification of a new NADPH-cytochrome P450 reductase in Andrographis paniculata.
Meng-Die QI ; Jian WANG ; Xiao-Jing MA ; Quan ZHANG ; Fang-Fang WANG ; Ying KANG ; Hui-Xin LIN ; Yong LIU
China Journal of Chinese Materia Medica 2018;43(2):309-315
Andrographolide is a main active ingredient in traditional Chinese medicine Andrographis paniculata,with a variety of pharmacological activity,widely used in clinical practice. However its biosynthetic pathway has not been resolved. Cytochrome P450 reductase provides electrons for CYP450 and plays an important role in the CYP450 catalytic process. In this study,the coding sequence of A. paniculata CPR was screened and cloned by homologous alignment,named ApCPR4. The ApCPR4 protein was obtained by prokaryotic expression. After isolation and purification,the enzyme activity was identified . The results showed that ApCPR4 could reduce the cytochrome c and ferricyanide in NADPH-dependent manner. In order to verify its function,ApCPR4 and CYP76AH1 were co-transformed into yeast engineering bacteria. The results showed that ApCPR4 could help CYP76AH1 catalyze the formation of rustols in yeast. Real-time quantitative PCR results showed that the expression of ApCPR4 increased gradually in leaves treated with methyl jasmonate (MeJA). The expression pattern was consistent with the trend of induction and accumulation of andrographolide by MeJA,suggesting that ApCPR4 was associated with biosynthesis of andrographolide.
Acetates
;
Andrographis
;
enzymology
;
genetics
;
Biosynthetic Pathways
;
Cloning, Molecular
;
Cyclopentanes
;
Diterpenes
;
metabolism
;
NADPH-Ferrihemoprotein Reductase
;
genetics
;
Oxylipins
;
Plant Leaves
;
enzymology
;
Plant Proteins
;
genetics
10.Role of jasmonic acid in improving tolerance of rapeseed (Brassica napus L.) to Cd toxicity.
Essa ALI ; Nazim HUSSAIN ; Imran Haider SHAMSI ; Zahra JABEEN ; Muzammil Hussain SIDDIQUI ; Li-Xi JIANG
Journal of Zhejiang University. Science. B 2018;19(2):130-146
The well-known detrimental effects of cadmium (Cd) on plants are chloroplast destruction, photosynthetic pigment inhibition, imbalance of essential plant nutrients, and membrane damage. Jasmonic acid (JA) is an alleviator against different stresses such as salinity and drought. However, the functional attributes of JA in plants such as the interactive effects of JA application and Cd on rapeseed in response to heavy metal stress remain unclear. JA at 50 µmol/L was observed in literature to have senescence effects in plants. In the present study, 25 µmol/L JA is observed to be a "stress ameliorating molecule" by improving the tolerance of rapeseed plants to Cd toxicity. JA reduces the Cd uptake in the leaves, thereby reducing membrane damage and malondialdehyde content and increasing the essential nutrient uptake. Furthermore, JA shields the chloroplast against the damaging effects of Cd, thereby increasing gas exchange and photosynthetic pigments. Moreover, JA modulates the antioxidant enzyme activity to strengthen the internal defense system. Our results demonstrate the function of JA in alleviating Cd toxicity and its underlying mechanism. Moreover, JA attenuates the damage of Cd to plants. This study enriches our knowledge regarding the use of and protection provided by JA in Cd stress.
Brassica napus/metabolism*
;
Cadmium/toxicity*
;
Catalase/metabolism*
;
Cyclopentanes/pharmacology*
;
Oxylipins/pharmacology*
;
Photosynthesis
;
Plant Leaves/metabolism*
;
Superoxide Dismutase/metabolism*

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