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1.
Int J Mol Sci ; 25(2)2024 Jan 13.
Artigo em Inglês | MEDLINE | ID: mdl-38256097

RESUMO

Plant pathogenic infections causing substantial global food losses are a persistent challenge. This study investigates a potential biocontrol strategy against the necrotrophic fungus Botrytis cinerea using the endophytic fungus Sordaria tomento-alba isolated from Gliricidia sepium in Colombia. Today, synthetic fungicides dominate B. cinerea control, raising environmental and health concerns. S. tomento-alba exhibits notable in vitro effects, inhibiting B. cinerea growth by approximately 60% during co-culture and 50% in double disc co-culture. Additionally, it suppresses botryanes production and produces the compound heptacyclosordariolone, which has proven effective in inhibiting B. cinerea mycelial growth and spore germination in vitro. This biocontrol agent could be a potential eco-friendly alternative to replace synthetic fungicides. Our study provides insights into the chemical and biological mechanisms underpinning the antagonistic activity of S. tomento-alba, emphasizing the need for further research to understand its biosynthesis pathways and optimize its biocontrol potential. It also contributes molecular evidence of fungal interactions with implications for advanced forums in molecular studies in biology and chemistry, particularly in addressing plant pathogenic infections and promoting sustainable agriculture.


Assuntos
Fungicidas Industriais , Sordariales , Endófitos , Fungicidas Industriais/farmacologia , Agricultura , Botrytis
2.
Appl Microbiol Biotechnol ; 106(21): 7153-7171, 2022 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-36166052

RESUMO

The fungus Trichoderma arundinaceum exhibits biological control activity against crop diseases caused by other fungi. Two mechanisms that likely contribute to this activity are upregulation of plant defenses and production of two types of antifungal secondary metabolites: the sesquiterpenoid harzianum A (HA) and the polyketide-derived aspinolides. The goal of the current study was to identify aspinolide biosynthetic genes as part of an effort to understand how these metabolites contribute to the biological control activity of T. arundinaceum. Comparative genomics identified two polyketide synthase genes (asp1 and asp2) that occur in T. arundinaceum and Aspergillus ochraceus, which also produces aspinolides. Gene deletion and biochemical analyses in T. arundinaceum indicated that both genes are required for aspinolide production: asp2 for formation of a 10-member lactone ring and asp1 for formation of a butenoyl subsituent at position 8 of the lactone ring. Gene expression and comparative genomics analyses indicated that asp1 and asp2 are located within a gene cluster that occurs in both T. arundinaceum and A. ochraceus. A survey of genome sequences representing 35 phylogenetically diverse Trichoderma species revealed that intact homologs of the cluster occurred in only two other species, which also produced aspinolides. An asp2 mutant inhibited fungal growth more than the wild type, but an asp1 mutant did not, and the greater inhibition by the asp2 mutant coincided with increased HA production. These findings indicate that asp1 and asp2 are aspinolide biosynthetic genes and that loss of either aspinolide or HA production in T. arundinaceum can be accompanied by increased production of the other metabolite(s). KEY POINTS: • Two polyketide synthase genes are required for aspinolide biosynthesis. • Blocking aspinolide production increases production of the terpenoid harzianum A. • Aspinolides and harzianum A act redundantly in antibiosis of T. arundinaceum.


Assuntos
Policetídeos , Sesquiterpenos , Trichoderma , Policetídeo Sintases/genética , Policetídeo Sintases/metabolismo , Regulação Fúngica da Expressão Gênica , Antifúngicos/metabolismo , Trichoderma/metabolismo , Terpenos/metabolismo , Sesquiterpenos/metabolismo , Lactonas/metabolismo , Policetídeos/metabolismo
3.
Environ Microbiol ; 20(7): 2469-2482, 2018 07.
Artigo em Inglês | MEDLINE | ID: mdl-29708647

RESUMO

While abscisic acid (ABA) is known as a hormone produced by plants through the carotenoid pathway, a small number of phytopathogenic fungi are also able to produce this sesquiterpene but they use a distinct pathway that starts with the cyclization of farnesyl diphosphate (FPP) into 2Z,4E-α-ionylideneethane which is then subjected to several oxidation steps. To identify the sesquiterpene cyclase (STC) responsible for the biosynthesis of ABA in fungi, we conducted a genomic approach in Botrytis cinerea. The genome of the ABA-overproducing strain ATCC58025 was fully sequenced and five STC-coding genes were identified. Among them, Bcstc5 exhibits an expression profile concomitant with ABA production. Gene inactivation, complementation and chemical analysis demonstrated that BcStc5/BcAba5 is the key enzyme responsible for the key step of ABA biosynthesis in fungi. Unlike what is observed for most of the fungal secondary metabolism genes, the key enzyme-coding gene Bcstc5/Bcaba5 is not clustered with the other biosynthetic genes, i.e., Bcaba1 to Bcaba4 that are responsible for the oxidative transformation of 2Z,4E-α-ionylideneethane. Finally, our study revealed that the presence of the Bcaba genes among Botrytis species is rare and that the majority of them do not possess the ability to produce ABA.


Assuntos
Ácido Abscísico/biossíntese , Botrytis/metabolismo , Carbono-Carbono Liases/metabolismo , Ácido Abscísico/análogos & derivados , Sequência de Bases , Botrytis/enzimologia , Botrytis/genética , Carotenoides/metabolismo , Genes Fúngicos , Oxirredução , Fosfatos de Poli-Isoprenil/metabolismo , Sesquiterpenos/metabolismo
4.
Org Biomol Chem ; 16(16): 2955-2965, 2018 04 25.
Artigo em Inglês | MEDLINE | ID: mdl-29623313

RESUMO

The fungus Trichoderma arundinaceum (Ta37) has a significant biocontrol application which has been related to the production of the trichothecene, harzianum A (2). Previous studies with a strain of T. arundinaceum which was blocked for the production of 2, revealed the existence of a chemical cross-regulation between the biocontrol fungus and its target organism. A study of the secondary metabolome of a single culture of a mutant of T. arundinaceum TaΔTri4 which produces trichothecene biosynthetic intermediates, has now been carried out. The production of secondary metabolites in a co-culture with the phytopathogen, Botrytis cinerea, was then analyzed. The mutant produced a larger quantity of the aspinolides B (6) and C (7) and other derivatives when compared to the wild type Ta37. Ten new metabolites were isolated: three aspinolides 12-14, the γ-lactones 15 and 16, two hemi-ketals 17 and 18 and three aspinolide degradation products, 19, 21 and 22. In the confrontation cultures involving the TaΔTri4 and the B. cinerea B05.10 strains, there was a higher production of the aspinolides B and C by the TaΔTri4 mutant while the production of the botryanes and botcinins by B. cinerea was reduced in the area of interaction between the cultures. These results shed light on the chemical cross-talk and ecological interactions between these fungi.


Assuntos
Trichoderma/genética , Trichoderma/metabolismo , Tricotecenos/metabolismo , Botrytis/metabolismo , Técnicas de Cocultura , Genes Fúngicos , Metaboloma , Metabolismo Secundário , Deleção de Sequência
5.
Environ Microbiol ; 18(11): 3991-4004, 2016 11.
Artigo em Inglês | MEDLINE | ID: mdl-27312485

RESUMO

Trichoderma arundinaceum (Ta37) and Botrytis cinerea (B05.10) produce the sesquiterpenoids harzianum A (HA) and botrydial (BOT), respectively. TaΔTri5, an HA non-producer mutant, produces high levels of the polyketide compounds aspinolides (Asp) B and C. We analyzed the role of HA and Asp in the B. cinerea-T. arundinaceum interaction, including changes in BOT production as well as transcriptomic changes of BcBOT genes involved in BOT biosynthesis, and also of genes associated with virulence and ergosterol biosynthesis. We found that exogenously added HA up-regulated the expression of the BcBOT and all the virulence genes analyzed when B. cinerea was grown alone. However, a decrease in the amount of BOT and a down-regulation of BcBOT gene expression was observed in the interaction zone of B05.10-Ta37 dual cultures, compared to TaΔTri5. Thus, the confrontation with T. arundinaceum results in an up-regulation of most of the B. cinerea genes involved in virulence yet the presence of T. arundinaceum secondary metabolites, HA and AspC, act separately and together to down-regulate the B. cinerea genes analyzed. The present work emphasizes the existence of a chemical cross-regulation between B. cinerea and T. arundinaceum and contributes to understanding how a biocontrol fungus and its prey interact with each other.


Assuntos
Aldeídos/metabolismo , Botrytis/crescimento & desenvolvimento , Botrytis/genética , Compostos Bicíclicos com Pontes/metabolismo , Proteínas Fúngicas/genética , Doenças das Plantas/microbiologia , Trichoderma/metabolismo , Tricotecenos/metabolismo , Botrytis/metabolismo , Botrytis/patogenicidade , Proteínas Fúngicas/metabolismo , Regulação Fúngica da Expressão Gênica , Trichoderma/química , Trichoderma/genética , Virulência
6.
Environ Microbiol ; 17(4): 1103-18, 2015 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-24889745

RESUMO

Harzianum A (HA), a trichothecene produced by Trichoderma arundinaceum, has recently been described to have antagonistic activity against fungal plant pathogens and to induce plant defence genes. In the present work, we have shown that a tri5 gene-disrupted mutant that lacks HA production overproduces two polyketides, aspinolides B and C, which were not detected in the wild-type strain. Furthermore, four new aspinolides (D-G) were characterized. These compounds confirm that a terpene-polyketide cross-pathway exists in T. arundinaceum, and they may be responsible for the antifungal activity and the plant sensitization effect observed with the tri5-disrupted mutant. In addition, the molecular changes involving virulence factors in the phytopathogenic fungus Botrytis cinerea 98 (Bc98) during interaction with T. arundinaceum were investigated. The expression of genes involved in the production of botrydial by Bc98 was relatively repressed by HA, whereas other virulence genes of this pathogen were induced by the presence of T. arundinaceum, for example atrB and pg1 which encode for an ABC transporter and endopolygalacturonase 1 respectively. In addition, the interaction with Bc98 significantly repressed the production of HA by T. arundinaceum, indicating that a bidirectional transcriptional regulation is established between these two antagonistic fungi.


Assuntos
Antibiose/fisiologia , Botrytis/metabolismo , Lactonas/metabolismo , Plantas/microbiologia , Trichoderma/metabolismo , Tricotecenos/metabolismo , Transportadores de Cassetes de Ligação de ATP/genética , Aldeídos/metabolismo , Antibiose/genética , Antifúngicos/metabolismo , Botrytis/genética , Botrytis/patogenicidade , Compostos Bicíclicos com Pontes/metabolismo , Doenças das Plantas/microbiologia , Plantas/genética , Poligalacturonase/genética , Trichoderma/genética , Trichoderma/patogenicidade , Tricotecenos/biossíntese
7.
ACS Chem Biol ; 11(10): 2838-2846, 2016 10 21.
Artigo em Inglês | MEDLINE | ID: mdl-27529428

RESUMO

Over two hundred species of plants can be infected by the phytopathogenic fungus Botrytis cinerea under a range of different environmental conditions. In response to these, the fungus produces unique terpenoid and polyketide metabolites. Parts of the plants may be killed by the phytotoxin botrydial, enabling the fungus to feed on the dead cells. In this paper, we describe the genetic and molecular basis of botrydial biosynthesis and the function of the five genes of the genome of B. cinerea that together constitute the botrydial biosynthetic gene cluster. Genes BcBOT3 and BcBOT4, encoding two cytochrome P450 monooxygenases, were inactivated by homologous recombination and were shown to catalyze regio- and stereospecific hydroxylations at the carbons C-10 and C-4, respectively, of the presilphiperfolan-8ß-ol skeleton. The null mutants, bcbot3Δ and bcbot4Δ, accumulated key intermediates in the botrydial biosynthesis enabling the complete genetic and molecular basis of the botrydial biosynthetic pathway to be established. Furthermore, the bcbot4Δ mutant overproduced a significant number of polyketides, which included, in addition to known botcinins, botrylactones and cinbotolide A, two new botrylactones and two new cinbotolides, cinbotolides B and C.


Assuntos
Aldeídos/metabolismo , Botrytis/genética , Compostos Bicíclicos com Pontes/metabolismo , Sistema Enzimático do Citocromo P-450/genética , Espectroscopia de Ressonância Magnética Nuclear de Carbono-13 , Cromatografia Gasosa-Espectrometria de Massas , Genes Fúngicos , Policetídeos/metabolismo , Espectroscopia de Prótons por Ressonância Magnética
8.
Mol Plant Pathol ; 17(7): 1017-31, 2016 09.
Artigo em Inglês | MEDLINE | ID: mdl-26575202

RESUMO

Trichoderma arundinaceum IBT 40837 (Ta37) and Botrytis cinerea produce the sesquiterpenes harzianum A (HA) and botrydial (BOT), respectively, and also the polyketides aspinolides and botcinins (Botcs), respectively. We analysed the role of BOT and Botcs in the Ta37-B. cinerea interaction, including the transcriptomic changes in the genes involved in HA (tri) and ergosterol biosynthesis, as well as changes in the level of HA and squalene-ergosterol. We found that, when confronted with B. cinerea, the tri biosynthetic genes were up-regulated in all dual cultures analysed, but at higher levels when Ta37 was confronted with the BOT non-producer mutant bcbot2Δ. The production of HA was also higher in the interaction area with this mutant. In Ta37-bcbot2Δ confrontation experiments, the expression of the hmgR gene, encoding the 3-hydroxy-3-methylglutaryl coenzyme A reductase, which is the first enzyme of the terpene biosynthetic pathway, was also up-regulated, resulting in an increase in squalene production compared with the confrontation with B. cinerea B05.10. Botcs had an up-regulatory effect on the tri biosynthetic genes, with BotcA having a stronger effect than BotcB. The results indicate that the interaction between Ta37 and B. cinerea exerts a stimulatory effect on the expression of the tri biosynthetic genes, which, in the interaction zone, can be attenuated by BOT produced by B. cinerea B05.10. The present work provides evidence for a metabolic dialogue between T. arundinaceum and B. cinerea that is mediated by sesquiterpenes and polyketides, and that affects the outcome of the interaction of these fungi with each other and their environment.


Assuntos
Aldeídos/farmacologia , Vias Biossintéticas/genética , Botrytis/química , Compostos Bicíclicos com Pontes/farmacologia , Regulação Fúngica da Expressão Gênica/efeitos dos fármacos , Genes Fúngicos , Pironas/farmacologia , Trichoderma/genética , Tricotecenos/biossíntese , Aldeídos/química , Vias Biossintéticas/efeitos dos fármacos , Compostos Bicíclicos com Pontes/química , Ergosterol/biossíntese , Mutação/genética , Pironas/química , Esqualeno/metabolismo , Terpenos/metabolismo , Trichoderma/efeitos dos fármacos , Trichoderma/crescimento & desenvolvimento , Tricotecenos/química
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