1.Multi-gene molecular identification and pathogenicity analysis of pathogens causing root rot of Atractylodes lancea in Hubei province.
Tie-Lin WANG ; Yang XU ; Xiu-Fu WAN ; Zhao-Geng LYU ; Bin-Bin YAN ; Yong-Xi DU ; Chuan-Zhi KANG ; Lan-Ping GUO
China Journal of Chinese Materia Medica 2025;50(7):1721-1726
To clarify the species, pathogenicity, and distribution of the pathogens causing the root rot of Atractylodes lancea in Hubei province, the tissue separation method was used to isolate the pathogens from root rot samples in the main planting areas of A. lancea in Hubei. Based on the preliminary identification of the Fusarium genus by the internal transcribed spacer(ITS) sequence, three housekeeping genes, EF1/EF2, Btu-F-FO1/Btu-F-RO1, and FF1/FR1, were amplified and sequenced. Subsequently, a phylogenetic tree was constructed based on these TEF gene sequences to classify the pathogens. The pathogenicity of these strains was determined using the root irrigation method. A total of 194 pathogen strains were isolated using the tissue separation method. Molecular identification using the three housekeeping genes identified the pathogens as F. solani, F. oxysporum, F. commune, F. equiseti, F. tricinctum, F. redolens, F. fujikuroi, F. avenaceum, F. acuminatum, and F. incarnatum. Among them, F. solani and F. oxysporum were the dominant strains, widely distributed in multiple regions, with F. solani accounting for approximately 54% of the total isolated strains and F. oxysporum accounting for approximately 34%. Other strains accounted for a relatively small proportion, totaling approximately 12%. The results of pathogenicity determination showed that there were certain differences in pathogenicity among strains. The analysis of the pathogenicity differentiation of the widely distributed F. solani and F. oxysporum strains revealed that these dominant strains in Hubei were mainly highly pathogenic. This study determined the species, pathogenicity, and distribution of the pathogens causing the root rot of A. lancea in Hubei province. The results provide a scientific basis for further understanding the root rot of A. lancea and its epidemic occurrence and scientifically preventing and controlling this disease.
Plant Diseases/microbiology*
;
Atractylodes/microbiology*
;
Phylogeny
;
Plant Roots/microbiology*
;
Fusarium/classification*
;
China
;
Virulence
;
Fungal Proteins/genetics*
2.Improvement of catalytic activity and thermostability of glucose oxidase from Aspergillus heteromorphus.
Shanglin YU ; Qiao ZHOU ; Honghai ZHANG ; Yingguo BAI ; Huiying LUO ; Xiaojun YANG ; Bin YAO
Chinese Journal of Biotechnology 2025;41(1):296-307
Glucose oxidase (GOD) is an oxygen-consuming dehydrogenase that can catalyze the production of gluconic acid hydrogen peroxide from glucose, and its specific mechanism of action makes it promising for applications, while the low catalytic activity and poor thermostability have become the main factors limiting the industrial application of this enzyme. In this study, we used the glucose oxidase AtGOD reported with the best thermostability as the source sequence for phylogenetic analysis to obtain the GOD with excellent performance. Six genes were screened and successfully synthesized for functional validation. Among them, the glucose oxidase AhGODB derived from Aspergillus heteromorphus was expressed in Pichia pastoris and showed better thermostability and catalytic activity, with an optimal temperature of 40 ℃, a specific activity of 112.2 U/mg, and a relative activity of 47% after 5 min of treatment at 70 ℃. To improve its activity and thermal stability, we constructed several mutants by directed evolution combined with rational design. Compared with the original enzyme, the mutant T72R/A153P showcased the optimum temperature increasing from 40 to 50 ℃, the specific activity increasing from 112.2 U/mg to 166.1 U/mg, and the relative activity after treatment at 70 ℃ for 30 min increasing from 0% to 33%. In conclusion, the glucose oxidase mutants obtained in this study have improved catalytic activity and thermostability, and have potential for application.
Glucose Oxidase/chemistry*
;
Enzyme Stability
;
Aspergillus/genetics*
;
Pichia/metabolism*
;
Temperature
;
Catalysis
;
Fungal Proteins/metabolism*
;
Hot Temperature
3.Establishment and application of a genetic operating system in Wickerhamomyces ciferrii for the synthesis of tetraacetyl phytosphingosine.
Liu LIU ; Zheng'an YIN ; Li PAN
Chinese Journal of Biotechnology 2025;41(1):397-415
Wickerhamomyces ciferrii (W.c), an unconventional heterothallic yeast species, is renowned for its high production of tetraacetyl phytosphingosine (TAPS). Due to its excellent performance in TAPS production, this study aimed to construct a genetic operating system of W.c to enhance the production of TAPS and to screen high-yielding strains by mutagenesis and genetic engineering, thus laying the foundation for further development of industrial production of sphingolipid metabolites. In this study, we selected two autonomous replication elements (CEN, 2μ) and mined 11 endogenous promoter elements to establish a genetic operating system in W. ciferrii. The overexpression of Syr2 and Lcb2 in the sphingolipid metabolism pathway significantly increased the production of TAPS. Meanwhile, we established a method for the identification of haploid mating types of W. ciferrii by combining RT-PCR and flow cytometry. Five strains of W. ciferrii with different mating types constructed from the standard diploid W. ciferrii ATCC 14091 were screened out. A-type haploid W.c 140 showcased the highest production of TAPS with a yield of 4.74 mg/g and a titer of 32.61 mg/L. Mutant strains W.c 140-A9 and W.c 140-A11 were induced by atmospheric pressure room temperature plasma mutagenesis. The recombinant strains W.c 140 OELcb2 and W.c 140 OESyr2 with overexpression were constructed with the genetic operating system established in this study. The TAPS yields of the mutant strains increased by 61.39% and 67.09%, respectively, compared with that of starting strain W.c 140. The recombinant strains cultured in the LCBNB medium achieved yields of 10.60 mg/g and 12.14 mg/g, respectively, representing 2.24 and 2.56 times of that in strain W.c 140. Moreover, the yields of the two recombinant strains were significantly higher than that of the diploid strain ATCC 14091. The genetic operating system and the haploid strain W.c 140 established in this study provide a basis for the subsequent establishment of genetic engineering tools for W. ciferrii.
Sphingosine/genetics*
;
Saccharomycetales/metabolism*
;
Genetic Engineering/methods*
;
Promoter Regions, Genetic
;
Metabolic Engineering/methods*
;
Fungal Proteins/genetics*
4.Construction and fermentation regulation of strains with high yields of echinocandin B.
Kun NIU ; Hongwei CAI ; Yixin YE ; Jinyue XU ; Zhiqiang LIU ; Yuguo ZHENG
Chinese Journal of Biotechnology 2025;41(4):1455-1466
Echinocandin B (ECB) is a key precursor of the antifungal drug anidulafungin. It is a secondary metabolite of Aspergillus nidulans, and its titer in fermentation is significantly affected by the ECB synthesis pathway and cell morphology. In this study, the key genes related to the transcription activation, hydroxylation, and cell morphology during ECB biosynthesis were investigated to increase the fermentation titer of ECB and to change the cell morphology of Aspergillus nidulans to reduce the viscosity of the fermentation broth. The results indicated that after overexpression of ecdB and ecdK, the ECB titer increased by 25.8% and 23.7%, respectively, compared with that of the wild-type strain, reaching (2 030.5±99.2) mg/L and (1 996.4±151.4) mg/L. However, the deletion of fksA associated with cell wall synthesis resulted in damage to the cell wall, affecting strain growth and product synthesis. The engineered strain overexpressing ecdB was fermented in a 50-L bioreactor, in which the ECB titer reached 2 234.5 mg/L. The findings laid a research foundation for the subsequent metabolic engineering of this strain.
Fermentation
;
Aspergillus nidulans/genetics*
;
Echinocandins/genetics*
;
Bioreactors/microbiology*
;
Fungal Proteins/biosynthesis*
;
Metabolic Engineering
5.Signature motif identification and enzymatic characterization of a protein tyrosine phosphatase in Metarhizium anisopliae.
Ze TAN ; Pei ZHU ; Zhenlun LI ; Shuiying YANG
Chinese Journal of Biotechnology 2025;41(9):3579-3588
Protein tyrosine phosphatases (PTPs, EC 3.1.3.48) are key regulators of cellular processes, with the catalytic activity attributed to the conserved motif (H/V)CX5R(S/T), where cysteine and arginine residues are critical. Previous studies revealed that alternative splicing of extracellular phosphatase mRNA precursors in Metarhizium anisopliae generated two distinct transcripts, with the longer sequence containing a novel HCPTPMLS motif resembling PTP signatures but lacking the arginine residue. To identify the novel signature motif and characterize its enzymatic properties, we heterologously expressed and purified both proteins in Pichia pastoris and comprehensively characterized their enzymatic properties. The protein containing the HCPTPMLS motif (designated as L-protein) exhibited the highest activity at pH 5.5 and a strong preference for pTyr substrates. Its phosphatase activity was inhibited by Ag+, Zn2+, Cu2+, molybdate, and tungstate, but enhanced by Ca2+ and EDTA. AcP101 (lacking HCPTPMLS) showed the maximal activity at pH 6.5 and a strong preference toward pNPP (P < 0.05), with the activity inhibited by NaF and tartrate, but enhanced by Mg2+ and Mn2+. Functional analysis confirmed that the L-protein retained the PTP activity despite the absence of arginine in its signature motif, while AcP101 functioned as an acid phosphatase. This study provides the first functional validation of an arginine-deficient PTP motif, expanding the definition of PTP signature motifs and offering new insights for phosphatase classification.
Metarhizium/genetics*
;
Protein Tyrosine Phosphatases/chemistry*
;
Amino Acid Motifs
;
Recombinant Proteins/biosynthesis*
;
Amino Acid Sequence
;
Pichia/metabolism*
;
Fungal Proteins/chemistry*
;
Substrate Specificity
;
Saccharomycetales
6.Microbe-induced gene silencing targeting VdEno of Verticillium dahliae for the control of cotton Verticillium wilt.
Wen TIAN ; Qianye GUO ; Qing SHUAI ; Qingyan LIU ; Huishan GUO ; Jianhua ZHAO
Chinese Journal of Biotechnology 2025;41(10):3790-3800
Small RNAs (sRNAs), the key components of RNA interference (RNAi) or RNA silencing, can mediate cell-autonomous gene silencing and function as signaling molecules across species. Microbe-induced gene silencing (MIGS), which is based on interspecies RNAi, is an effective approach for controlling fungal diseases in crops. The enolase gene VdEno is essential for the growth and development of the fungal pathogen Verticillium dahliae, which causes cotton Verticillium wilt. In this study, we engineered Trichoderma harzianum (Th) to express the double-stranded RNA (dsRNA) targeting VdEno. The engineered strain Th-VdEnoi successfully generated VdEno-specific small interfering RNA (siVdEno). We further confirmed that Th-VdEnoi effectively induced VdEno silencing at the translational level. The results of crop protection assays revealed that the cotton plants co-inoculated with V. dahliae (strain V592) and Th-VdEnoi presented significantly reduced disease severity and lower fungal biomass in their roots than the control plants inoculated with V. dahliae alone or with V. dahliae and Th-GFPi (a control strain expressing GFP-targeting dsRNA). Collectively, our findings demonstrate that VdEno is an effective target for controlling cotton Verticillium wilt and confirm that MIGS is a promising strategy for managing soil-borne fungal pathogens in crops. MIGS provides strong technical support for reducing the application of conventional chemical pesticides, developing eco-friendly biopesticides, and facilitating the sustainable development of agriculture.
Gossypium/microbiology*
;
Plant Diseases/prevention & control*
;
Gene Silencing
;
Ascomycota/genetics*
;
RNA Interference
;
RNA, Double-Stranded/genetics*
;
Hypocreales/genetics*
;
RNA, Small Interfering/genetics*
;
Verticillium/genetics*
;
Fungal Proteins/genetics*
7.Identification of banana ADA1 gene family members and their expression profiles under biotic and abiotic stresses.
Qiqi ZHAO ; Wenhui REN ; Huifei ZHU ; Qiuzhen WU ; Chunyu ZHANG ; Xiaoqiong XU ; Binbin LUO ; Yuji HUANG ; Yukun CHEN ; Yuling LIN ; Zhongxiong LAI
Chinese Journal of Biotechnology 2024;40(1):190-210
The Spt-Ada-Gcn5-acetyltransferase (SAGA) is an ancillary transcription initiation complex which is highly conserved. The ADA1 (alteration/deficiency in activation 1, also called histone H2A functional interactor 1, HFI1) is a subunit in the core module of the SAGA protein complex. ADA1 plays an important role in plant growth and development as well as stress resistance. In this paper, we performed genome-wide identification of banana ADA1 gene family members based on banana genomic data, and analyzed the basic physicochemical properties, evolutionary relationships, selection pressure, promoter cis-acting elements, and its expression profiles under biotic and abiotic stresses. The results showed that there were 10, 6, and 7 family members in Musa acuminata, Musa balbisiana and Musa itinerans. The members were all unstable and hydrophilic proteins, and only contained the conservative SAGA-Tad1 domain. Both MaADA1 and MbADA1 have interactive relationship with Sgf11 (SAGA-associated factor 11) of core module in SAGA. Phylogenetic analysis revealed that banana ADA1 gene family members could be divided into 3 classes. The evolution of ADA1 gene family members was mostly influenced by purifying selection. There were large differences among the gene structure of banana ADA1 gene family members. ADA1 gene family members contained plenty of hormonal elements. MaADA1-1 may play a prominent role in the resistance of banana to cold stress, while MaADA1 may respond to the Panama disease of banana. In conclusion, this study suggested ADA1 gene family members are highly conserved in banana, and may respond to biotic and abiotic stress.
Musa/genetics*
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Phylogeny
;
Fungal Proteins
;
Cell Nucleus
;
Histones
;
Stress, Physiological/genetics*
8.Two natural molecules preferentially inhibit azole-resistant Candida albicans with MDR1 hyperactivation.
Hong-Zhuo SHI ; Wen-Qiang CHANG ; Ming ZHANG ; Hong-Xiang LOU
Chinese Journal of Natural Medicines (English Ed.) 2019;17(3):209-217
Antifungal drug resistance is a significant clinical problem, and antifungal agents that can evade resistance are urgently needed. In infective niches, resistant organisms often co-existed with sensitive ones, or a subpopulation of antibiotic-susceptible organisms may evolve into resistant ones during antibiotic treatment and eventually dominate the whole population. In this study, we established a co-culture assay in which an azole-resistant Candida albicans strain was mixed with a susceptible strain labeled with green fluorescent protein to mimic in vivo conditions and screen for antifungal drugs. Fluconazole was used as a positive control to verify the validity of this co-culture assay. Five natural molecules exhibited antifungal activity against both susceptible and resistant C. albicans. Two of these compounds, retigeric acid B (RAB) and riccardin D (RD), preferentially inhibited C. albicans strains in which the efflux pump MDR1 was activated. This selectivity was attributed to greater intracellular accumulation of the drugs in the resistant strains. Changes in sterol and lipid compositions were observed in the resistant strains compared to the susceptible strain, and might increase cell permeability to RAB and RD. In addition, RAB and RD interfered with the sterol pathway, further aggregating the decrease in ergosterol in the sterol synthesis pathway in the MDR1-activated strains. Our findings here provide an alternative for combating resistant pathogenic fungi.
ATP-Binding Cassette Transporters
;
genetics
;
metabolism
;
Antifungal Agents
;
chemistry
;
metabolism
;
pharmacology
;
Azoles
;
pharmacology
;
Biosynthetic Pathways
;
drug effects
;
genetics
;
Candida albicans
;
chemistry
;
drug effects
;
metabolism
;
Cell Membrane
;
chemistry
;
metabolism
;
Coculture Techniques
;
Drug Resistance, Fungal
;
drug effects
;
Ergosterol
;
metabolism
;
Fungal Proteins
;
genetics
;
metabolism
;
Lipids
;
chemistry
;
Molecular Structure
;
Permeability
;
Phenyl Ethers
;
chemistry
;
metabolism
;
pharmacology
;
Sterols
;
chemistry
;
metabolism
;
Stilbenes
;
chemistry
;
metabolism
;
pharmacology
;
Triterpenes
;
chemistry
;
metabolism
;
pharmacology
9.Inhibitory effect of extract of Coptidis Rhizoma on invasion of Candida albicans hyphae in vitro.
Hui-Xia NIU ; Qiang-Jun DUAN ; Gao-Xiang SHI ; Da-Qiang WU ; Jing SHAO ; Tian-Ming WANG ; Chang-Zhong WANG
China Journal of Chinese Materia Medica 2019;44(1):125-130
The aim of this paper was to investigate the inhibitory effect of extract of Coptidis Rhizoma(ECR) on invasion of Candida albicans hyphae in vitro.XTT reduction method was used to evaluate the metabolic activity of C.albicans.The colony edge growth of C.albicans was observed by solid medium.The growth of C.albicans hyphae was determined on semi-solid medium.The morphology and viability changes of C.albicans hyphae were assessed by scanning electron microscope and fluorescence microscope.qRT-PCR method was used to detect the ALS3 and SSA1 expression of C.albicans invasin genes.The results showed that the metabolic viability by XTT method detected that the activity of C.albicans was gradually decreased under the intervention of 64,128 and 256 mg·L-1 of ECR respectively.128,256 mg·L-1 of ECR significantly inhibited colony folds and wrinkles on solid medium and the hyphal invasion in semi-solid medium.Scanning electron microscopy and fluorescence microscopy showed that 128,256 mg·L-1 of ECR could inhibit the formation of C.albicans hyphae.qRT-PCR results showed that the expression of invasin gene ALS3 and SSA1 was down-regulated,and especially 256 mg·L-1 of ECR could down-regulate the two genes expression by 4.8,1.68 times respectively.This study showed that ECR can affect the invasiveness of C.albicans by inhibiting the growth of hyphae and the expression of invasin.
Adenosine Triphosphatases
;
genetics
;
Candida albicans
;
drug effects
;
Drugs, Chinese Herbal
;
pharmacology
;
Fungal Proteins
;
genetics
;
Gene Expression Regulation, Fungal
;
HSP70 Heat-Shock Proteins
;
genetics
;
Hyphae
;
drug effects
;
ultrastructure
;
Microscopy, Electron, Scanning
10.Protective Effects of cis-2-Dodecenoic Acid in an Experimental Mouse Model of Vaginal Candidiasis.
Dong Liang YANG ; Yu Qian ZHANG ; Yan Ling HU ; Li Xing WENG ; Gui Sheng ZENG ; Lian Hui WANG
Biomedical and Environmental Sciences 2018;31(11):816-828
OBJECTIVE:
To evaluate the efficacy of cis-2-dodecenoic acid (BDSF) in the treatment and prevention of vaginal candidiasis in vivo.
METHODS:
The activities of different concentrations of BDSF against the virulence factors of Candida albicans (C. albicans) were determined in vitro. An experimental mouse model of Candida vaginitis was treated with 250 μmol/L BDSF. Treatment efficiency was evaluated in accordance with vaginal fungal burden and inflammation symptoms.
RESULTS:
In vitro experiments indicated that BDSF attenuated the adhesion and damage of C. albicans to epithelial cells by decreasing phospholipase secretion and blocking filament formation. Treatment with 30 μmol/L BDSF reduced the adhesion and damage of C. albicans to epithelial cells by 36.9% and 42.3%, respectively. Treatment with 200 μmol/L BDSF completely inhibited phospholipase activity. In vivo mouse experiments demonstrated that BDSF could effectively eliminate vaginal infection and relieve inflammatory symptoms. Four days of treatment with 250 μmol/L BDSF reduced vaginal fungal loads by 6-fold and depressed inflammation. Moreover, BDSF treatment decreased the expression levels of the inflammatory chemokine-associated genes MCP-1 and IGFBP3 by 2.5- and 2-fold, respectively.
CONCLUSION
BDSF is a novel alternative drug that can efficiently control vaginal candidiasis by inhibiting the virulence factors of C. albicans.
Animals
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Candida albicans
;
drug effects
;
metabolism
;
pathogenicity
;
physiology
;
Candidiasis, Vulvovaginal
;
drug therapy
;
genetics
;
immunology
;
microbiology
;
Chemokine CCL2
;
genetics
;
immunology
;
Disease Models, Animal
;
Fatty Acids, Monounsaturated
;
administration & dosage
;
Female
;
Fungal Proteins
;
genetics
;
metabolism
;
Humans
;
Insulin-Like Growth Factor Binding Protein 3
;
genetics
;
immunology
;
Mice
;
Virulence
;
drug effects
;
Virulence Factors
;
genetics
;
metabolism

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