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1.
J Microbiol Biotechnol ; 32(8): 1054-1063, 2022 Aug 28.
Artigo em Inglês | MEDLINE | ID: mdl-35791071

RESUMO

Trehalose is a non-conventional sugar with potent applications in the food, healthcare and biopharma industries. In this study, trehalose was synthesized from maltose using whole-cell Pseudomonas monteilii TBRC 1196 producing trehalose synthase (TreS) as the biocatalyst. The reaction condition was optimized using 1% Triton X-100 permeabilized cells. According to our central composite design (CCD) experiment, the optimal process was achieved at 35°C and pH 8.0 for 24 h, resulting in the maximum trehalose yield of 51.60 g/g after 12 h using an initial cell loading of 94 g/l. Scale-up production in a lab-scale bioreactor led to the final trehalose concentration of 51.91 g/l with a yield of 51.60 g/g and productivity of 4.37 g/l/h together with 8.24 g/l glucose as a byproduct. A one-pot process integrating trehalose production and byproduct bioremoval showed 53.35% trehalose yield from 107.4 g/l after 15 h by permeabilized P. moteilii cells. The residual maltose and glucose were subsequently removed by Saccharomyces cerevisiae TBRC 12153, resulting in trehalose recovery of 99.23% with 24.85 g/l ethanol obtained as a co-product. The present work provides an integrated alternative process for trehalose production from maltose syrup in bio-industry.


Assuntos
Biocatálise , Maltose , Trealose , Glucosiltransferases , Maltose/metabolismo , Engenharia Metabólica/métodos , Pseudomonas , Trealose/biossíntese
2.
Biomolecules ; 11(12)2021 11 24.
Artigo em Inglês | MEDLINE | ID: mdl-34944401

RESUMO

Cell walls of bacteria of the genera Mycobacterium and Corynebacterium contain high levels of (coryno)mycolic acids. These very long chain fatty acids are synthesized on the cytoplasmic leaflet of the inner membrane (IM) prior to conjugation to the disaccharide, trehalose, and transport to the periplasm. Recent studies on Corynebacterium glutamicum have shown that acetylation of trehalose monohydroxycorynomycolate (hTMCM) promotes its transport across the inner membrane. Acetylation is mediated by the membrane acetyltransferase, TmaT, and is dependent on the presence of a putative methyltransferase, MtrP. Here, we identify a third protein that is required for the acetylation and membrane transport of hTMCM. Deletion of the C. glutamicum gene NCgl2761 (Rv0226c in Mycobacterium tuberculosis) abolished synthesis of acetylated hTMCM (AcTMCM), resulting in an accumulation of hTMCM in the inner membrane and reduced synthesis of trehalose dihydroxycorynomycolate (h2TDCM), a major outer membrane glycolipid. Complementation with the NCgl2761 gene, designated here as mmpA, restored the hTMCM:h2TDCM ratio. Comprehensive lipidomic analysis of the ΔtmaT, ΔmtrP and ΔmmpA mutants revealed strikingly similar global changes in overall membrane lipid composition. Our findings suggest that the acetylation and membrane transport of hTMCM is regulated by multiple proteins: MmpA, MtrP and TmaT, and that defects in this process lead to global, potentially compensatory changes in the composition of inner and outer membranes.


Assuntos
Corynebacterium glutamicum/metabolismo , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo , Trealose/biossíntese , Acetilação , Acetiltransferases/metabolismo , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Parede Celular/química , Citoplasma/metabolismo , Deleção de Genes , Lipidômica , Metiltransferases/metabolismo , Trealose/química
3.
Microbiol Spectr ; 9(3): e0133321, 2021 12 22.
Artigo em Inglês | MEDLINE | ID: mdl-34817221

RESUMO

A novel putative trehalose synthase gene (treM) was identified from an extreme temperature thermal spring. The gene was expressed in Escherichia coli followed by purification of the protein (TreM). TreM exhibited the pH optima of 7.0 for trehalose and trehalulose production, although it was functional and stable in the pH range of 5.0 to 8.0. Temperature activity profiling revealed that TreM can catalyze trehalose biosynthesis in a wide range of temperatures, from 5°C to 80°C. The optimum activity for trehalose and trehalulose biosynthesis was observed at 45°C and 50°C, respectively. A catalytic reaction performed at the low temperature of 5°C yielded trehalose with significantly reduced by-product (glucose) production in the reaction. TreM displayed remarkable thermal stability at optimum temperatures, with only about 20% loss in the activity after heat (50°C) exposure for 24 h. The maximum bioconversion yield of 74% trehalose (at 5°C) and 90% trehalulose (at 50°C) was obtained from 100 mM maltose and 70 mM sucrose, respectively. TreM was demonstrated to catalyze trehalulose biosynthesis utilizing the low-cost feedstock jaggery, cane molasses, muscovado, and table sugar. IMPORTANCE Trehalose is a rare sugar of high importance in biological research, with its property to stabilize cell membrane and proteins and protect the organism from drought. It is instrumental in the cryopreservation of human cells, e.g., sperm and blood stem cells. It is also very useful in the food industry, especially in the preparation of frozen food products. Trehalose synthase is a glycosyl hydrolase 13 (GH13) family enzyme that has been reported from about 22 bacterial species so far. Of these enzymes, to date, only two have been demonstrated to catalyze the biosynthesis of both trehalose and trehalulose. We have investigated the metagenomic data of an extreme temperature thermal spring to discover a novel gene that encodes a trehalose synthase (TreM) with higher stability and dual transglycosylation activities of trehalose and trehalulose biosynthesis. This enzyme is capable of catalyzing the transformation of maltose to trehalose and sucrose to trehalulose in a wide pH and temperature range. The present investigation endorses the thermal aquatic habitat as a promising genetic resource for the biocatalysts with high potential in producing high-value rare sugars.


Assuntos
Dissacarídeos/biossíntese , Glucosiltransferases/genética , Glucosiltransferases/metabolismo , Nocardioides/metabolismo , Thermus/metabolismo , Trealose/biossíntese , Escherichia coli/genética , Escherichia coli/metabolismo , Fontes Termais/microbiologia , Humanos , Metagenoma/genética , Nocardioides/enzimologia , Nocardioides/genética , Thermomonospora/enzimologia , Thermomonospora/genética , Thermomonospora/metabolismo , Thermus/enzimologia , Thermus/genética
4.
J Microbiol Biotechnol ; 31(10): 1455-1464, 2021 Oct 28.
Artigo em Inglês | MEDLINE | ID: mdl-34409951

RESUMO

Trehalose is a non-reducing disaccharide in increasing demand for applications in food, nutraceutical, and pharmaceutical industries. Single-step trehalose production by trehalose synthase (TreS) using maltose as a starting material is a promising alternative process for industrial application due to its simplicity and cost advantage. Pseudomonas monteilii TBRC 1196 was identified using the developed screening method as a potent strain for TreS production. The TreS gene from P. monteilii TBRC 1196 was first cloned and expressed in Escherichia coli. Purified recombinant trehalose synthase (PmTreS) had a molecular weight of 76 kDa and showed optimal pH and temperature at 9.0 and 40°C, respectively. The enzyme exhibited >90% residual activity under mesophilic condition under a broad pH range of 7-10 for 6 h. Maximum trehalose yield by PmTreS was 68.1% with low yield of glucose (4%) as a byproduct under optimal conditions, equivalent to productivity of 4.5 g/l/h using enzyme loading of 2 mg/g substrate and high concentration maltose solution (100 g/l) in a lab-scale bioreactor. The enzyme represents a potent biocatalyst for energy-saving trehalose production with potential for inhibiting microbial contamination by alkaline condition.


Assuntos
Glucosiltransferases/metabolismo , Pseudomonas/enzimologia , Trealose/biossíntese , Sequência de Aminoácidos , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Clonagem Molecular , Estabilidade Enzimática , Glucose/metabolismo , Glucosiltransferases/genética , Maltose/metabolismo , Proteínas Recombinantes/metabolismo
5.
Open Biol ; 11(7): 200413, 2021 07.
Artigo em Inglês | MEDLINE | ID: mdl-34255978

RESUMO

Trehalose is a versatile non-reducing sugar. In some animal groups possessing its intrinsic production machinery, it is used as a potent protectant against environmental stresses, as well as blood sugar. However, the trehalose biosynthesis genes remain unidentified in the large majority of metazoan phyla, including vertebrates. To uncover the evolutionary history of trehalose production machinery in metazoans, we scrutinized the available genome resources and identified bifunctional trehalose-6-phosphate synthase-trehalose-6-phosphate phosphatase (TPS-TPP) genes in various taxa. The scan included our newly sequenced genome assembly of a desiccation-tolerant tardigrade Paramacrobiotus sp. TYO, revealing that this species retains TPS-TPP genes activated upon desiccation. Phylogenetic analyses identified a monophyletic group of the many of the metazoan TPS-TPP genes, namely 'pan-metazoan' genes, that were acquired in the early ancestors of metazoans. Furthermore, coordination of our results with the previous horizontal gene transfer studies illuminated that the two tardigrade lineages, nematodes and bdelloid rotifers, all of which include desiccation-tolerant species, independently acquired the TPS-TPP homologues via horizontal transfer accompanied with loss of the 'pan-metazoan' genes. Our results indicate that the parallel evolution of trehalose synthesis via recurrent loss and horizontal transfer of the biosynthesis genes resulted in the acquisition and/or augmentation of anhydrobiotic lives in animals.


Assuntos
Evolução Biológica , Transferência Genética Horizontal , Trealose/biossíntese , Animais , Evolução Molecular , Perfilação da Expressão Gênica , Glucosiltransferases/genética , Glucosiltransferases/metabolismo , Monoéster Fosfórico Hidrolases/genética , Monoéster Fosfórico Hidrolases/metabolismo , Filogenia , Sequenciamento Completo do Genoma
6.
Biochim Biophys Acta Proteins Proteom ; 1869(2): 140564, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33171283

RESUMO

The trehalose biosynthesis pathway has recently received attention for therapeutic intervention combating infectious diseases caused by bacteria, helminths or fungi. Trehalose-6-phosphate phosphatase (TPP) is a key enzyme of the most common trehalose biosynthesis pathway and a particularly attractive target owing to the toxicity of accumulated trehalose-6-phosphate in pathogens. Here, we characterised TPP-like proteins from bacterial pathogens implicated in nosocomial infections in terms of their steady-state kinetics as well as pH- and metal-dependency of their enzymatic activity. Analysis of the steady-state kinetics of recombinantly expressed enzymes from Acinetobacter baumannii, Corynebacterium diphtheriae and Pseudomonas stutzeri yielded similar kinetic parameters as those of other reported bacterial TPPs. In contrast to nematode TPPs, the divalent metal ion appears to be bound only weakly in the active site of bacterial TPPs, allowing the exchange of the resident magnesium ion with other metal ions. Enzymatic activity comparable to the wild-type enzyme was observed for the TPP from P. stutzeri with manganese, cobalt and nickel. Analysis of the enzymatic activity of S. maltophilia TPP active site mutants provides evidence for the involvement of four canonical aspartate residues as well as a strictly conserved histidine residue of TPP-like proteins from bacteria in the enzyme mechanism. That histidine residue is a member of an interconnected network of five conserved residues in the active site of bacterial TPPs which likely constitute one or more functional units, directly or indirectly cooperating to enhance different aspects of the catalytic activity.


Assuntos
Infecções Bacterianas/enzimologia , Infecções Bacterianas/microbiologia , Glucosiltransferases/genética , Trealose/biossíntese , Acinetobacter baumannii/enzimologia , Acinetobacter baumannii/patogenicidade , Infecções Bacterianas/genética , Domínio Catalítico/genética , Corynebacterium diphtheriae/enzimologia , Corynebacterium diphtheriae/patogenicidade , Glucosiltransferases/química , Humanos , Pseudomonas stutzeri/enzimologia , Pseudomonas stutzeri/patogenicidade , Fosfatos Açúcares/genética , Fosfatos Açúcares/metabolismo , Trealose/análogos & derivados , Trealose/genética , Trealose/metabolismo
7.
Microb Cell Fact ; 19(1): 196, 2020 Oct 19.
Artigo em Inglês | MEDLINE | ID: mdl-33076920

RESUMO

BACKGROUND: In Saccharomyces cerevisiae, alpha-glucosidase (maltase) is a key enzyme in maltose metabolism. In addition, the overexpression of the alpha-glucosidase-encoding gene MAL62 has been shown to increase the freezing tolerance of yeast in lean dough. However, its cryoprotection mechanism is still not clear. RESULTS: RNA sequencing (RNA-seq) revealed that MAL62 overexpression increased uridine diphosphoglucose (UDPG)-dependent trehalose synthesis. The changes in transcript abundance were confirmed by quantitative reverse transcription-polymerase chain reaction (qRT-PCR) and enzyme activity assays. When the UDPG-dependent trehalose synthase activity was abolished, MAL62 overexpression failed to promote the synthesis of intracellular trehalose. Moreover, in strains lacking trehalose synthesis, the cell viability in the late phase of prefermentation freezing coupled with MAL62 overexpression was slightly reduced, which can be explained by the increase in the intracellular glycerol concentration. This result was consistent with the elevated transcription of glycerol synthesis pathway members. CONCLUSIONS: The increased freezing tolerance by MAL62 overexpression is mainly achieved by the increased trehalose content via the UDPG-dependent pathway, and glycerol also plays an important role. These findings shed new light on the mechanism of yeast response to freezing in lean bread dough and can help to improve industrial yeast strains.


Assuntos
Farinha/microbiologia , Glicerol/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Trealose/biossíntese , Uridina Difosfato Glucose/metabolismo , alfa-Glucosidases/genética , Vias Biossintéticas , Pão , Fermentação , Deleção de Genes , Saccharomyces cerevisiae/genética , Temperatura de Transição , alfa-Glucosidases/metabolismo
8.
Biomolecules ; 10(10)2020 09 23.
Artigo em Inglês | MEDLINE | ID: mdl-32977584

RESUMO

Trehalose and its key synthase (trehalose-6-phosphate synthase, TPS) can improve the drought tolerance of plants. However, little is known about the roles of trehalose and the TPS family in Prunus mume response to drought. In our study, we discovered that the trehalose content in leaf, root, and stem tissues significantly increased in P. mume in response to drought. Therefore, the characteristics and functions of the TPS family are worth investigating in P. mume. We identified nine TPS family members in P. mume, which were divided into two sub-families and characterized by gene structure, promoter elements, protein conserved domains, and protein motifs. We found that the Hydrolase_3 domain and several motifs were highly conserved in Group II instead of Group I. The distinctions between the two groups may result from selective constraints, which we estimated by the dN/dS (ω) ratio. The ω values of all the PmTPS family gene pairs were evaluated as less than 1, indicating that purity selection facilitated their divergence. A phylogenetic tree was constructed using 92 TPSs from 10 Rosaceae species, which were further divided into five clusters. Based on evolutionary analyses, the five clusters of TPS family proteins mainly underwent varied purity selection. The expression patterns of PmTPSs under drought suggested that the TPS family played an important role in the drought tolerance of P. mume. Combining the expression patterns of PmTPSs and the trehalose content changes in leaf, stem, and root tissues under normal conditions and drought stress, we found that the PmTPS2 and PmTPS6 mainly function in the trehalose biosynthesis in P. mume. Our findings not only provide valuable information about the functions of trehalose and TPSs in the drought response of P. mume, but they also contribute to the future drought breeding of P. mume.


Assuntos
Glucosiltransferases/genética , Prunus/enzimologia , Estresse Fisiológico/genética , Trealose/biossíntese , Secas , Regulação Enzimológica da Expressão Gênica/genética , Família Multigênica/genética , Prunus/fisiologia , Trealose/genética
9.
Chem Commun (Camb) ; 56(78): 11528-11547, 2020 Oct 01.
Artigo em Inglês | MEDLINE | ID: mdl-32914793

RESUMO

Trehalose, a disaccharide of glucose, is increasingly recognized as an important contributor to virulence in major bacterial pathogens, such as Mycobacterium tuberculosis, Clostridioides difficile, and Burkholderia pseudomallei. Accordingly, bacterial trehalose metabolic pathways that are not present in humans have gained traction as targets for antibiotic and diagnostic development. Toward this goal, trehalose can be modified through a combination of rational design and synthesis to produce functionalized trehalose analogues, which can be deployed to probe or inhibit bacterial trehalose metabolism. However, the unique α,α-1,1-glycosidic bond and C2 symmetry of trehalose make analogue synthesis via traditional chemical methods very challenging. We and others have turned to the creation of chemoenzymatic synthesis methods, which in principle allow the use of nature's trehalose-synthesizing enzymes to stereo- and regioselectively couple simple, unprotected substrates to efficiently and conveniently generate trehalose analogues. Here, we provide a contextual account of our team's development of a trehalose analogue synthesis method that employs a highly substrate-tolerant, thermostable trehalose synthase enzyme, TreT from Thermoproteus tenax. Then, in three vignettes, we highlight how chemoenzymatic synthesis has accelerated the development of trehalose-based imaging probes and inhibitors that target trehalose-utilizing bacterial pathogens. We describe the role of TreT catalysis and related methods in the development of (i) tools for in vitro and in vivo imaging of mycobacteria, (ii) anti-biofilm compounds that sensitize drug-tolerant mycobacteria to clinical anti-tubercular compounds, and (iii) degradation-resistant trehalose analogues that block trehalose metabolism in C. difficile and potentially other trehalose-utilizing bacteria. We conclude by recapping progress and discussing priorities for future research in this area, including improving the scope and scale of chemoenzymatic synthesis methods to support translational research and expanding the functionality and applicability of trehalose analogues to study and target diverse bacterial pathogens.


Assuntos
Burkholderia pseudomallei/efeitos dos fármacos , Clostridioides difficile/efeitos dos fármacos , Glucosiltransferases/metabolismo , Mycobacterium tuberculosis/efeitos dos fármacos , Trealose/farmacologia , Biocatálise , Biofilmes/efeitos dos fármacos , Burkholderia pseudomallei/patogenicidade , Clostridioides difficile/patogenicidade , Clostridioides difficile/fisiologia , Farmacorresistência Bacteriana/efeitos dos fármacos , Fluoresceína/química , Mycobacterium tuberculosis/patogenicidade , Thermoproteus/enzimologia , Trealose/análogos & derivados , Trealose/biossíntese , Virulência/efeitos dos fármacos
10.
PLoS One ; 15(5): e0233779, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32470059

RESUMO

Trehalose metabolism in yeast has been linked to a variety of phenotypes, including heat resistance, desiccation tolerance, carbon-source utilization, and sporulation. The relationships among the several phenotypes of mutants unable to synthesize trehalose are not understood, even though the pathway is highly conserved. One of these phenotypes is that tps1Δ strains cannot reportedly grow on media containing glucose or fructose, even when another carbon source they can use (e.g. galactose) is present. Here we corroborate the recent observation that a small fraction of yeast tps1Δ cells do grow on glucose, unlike the majority of the population. This is not due to a genetic alteration, but instead resembles the persister phenotype documented in many microorganisms and cancer cells undergoing lethal stress. We extend these observations to show that this phenomenon is glucose-specific, as it does not occur on another highly fermented carbon source, fructose. We further demonstrate that this phenomenon appears to be related to mitochondrial complex III function, but unrelated to inorganic phosphate levels in the cell, as had previously been suggested. Finally, we found that this phenomenon is specific to S288C-derived strains, and is the consequence of a variant in the MKT1 gene.


Assuntos
Glucose/metabolismo , Proteínas de Saccharomyces cerevisiae/fisiologia , Saccharomyces cerevisiae/crescimento & desenvolvimento , Saccharomyces cerevisiae/metabolismo , Complexo III da Cadeia de Transporte de Elétrons/metabolismo , Fermentação , Frutose/metabolismo , Glucosiltransferases/genética , Mutação com Perda de Função , Trealose/biossíntese
11.
Enzyme Microb Technol ; 136: 109516, 2020 May.
Artigo em Inglês | MEDLINE | ID: mdl-32331720

RESUMO

Trehalose diesters are Gemini-type surfactants that might have better surface activity than conventional surfactants. A one-step method for the preparation of trehalose unsaturated fatty acid diesters has been successfully developed. The yield of trehalose diester of different unsaturated fatty acids was between 78 % and 88 % under optimal conditions: 25 mmol/L trehalose, 100 mmol/L unsaturated fatty acid, 60 g/L 3 Šmolecular sieves and 20 g/L lipase at 150 rpm and 50 °C for 42 h in 15 mL of acetone. Additionally, trehalose diester was the sole product obtained with Novozym 435 in acetone. The chemical structures of 6,6'-di-O-oleoyltrehalose, 6,6'-di-O-linoleoyltrehalose, 6,6'-di-O-eicosenoyltrehalose and 6,6'-di-O-erucoyltrehalose were confirmed by FTIR, MS and NMR. Moreover, the hydrophile-lipophile balance (HLB) values, foaming properties and emulsifying properties of trehalose diesters were assessed, showing the potentials of these diesters as naturally derived surfactants for the food industry.


Assuntos
Emulsificantes/química , Ésteres/química , Ácidos Graxos Insaturados/biossíntese , Ácidos Graxos Insaturados/química , Trealose/biossíntese , Biocatálise , Esterificação , Estrutura Molecular , Tensoativos/química , Trealose/química
12.
Carbohydr Res ; 488: 107902, 2020 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-31911362

RESUMO

Trehalose 6-phosphate (Tre6P) is an important intermediate for trehalose biosynthesis. Recent researches have revealed that Tre6P is an endogenous signaling molecule that regulates plant development and stress responses. The necessity of Tre6P in physiological studies is expected to be increasing. To achieve the cost-effective production of Tre6P, a novel approach is required. In this study, we utilized trehalose 6-phosphate phosphorylase (TrePP) from Lactococcus lactis to produce Tre6P. In the reverse phosphorolysis by the TrePP, 91.9 mM Tre6P was produced from 100 mM ß-glucose 1-phosphate (ß-Glc1P) and 100 mM glucose 6-phosphate (Glc6P). The one-pot reaction of TrePP and maltose phosphorylase (MP) enabled production of 65 mM Tre6P from 100 mM maltose, 100 mM Glc6P, and 20 mM inorganic phosphate. Addition of ß-phosphoglucomutase to this reaction produced Glc6P from ß-Glc1P and thus reduced requirement of Glc6P as a starting material. Within the range of 20-469 mM inorganic phosphate tested, the 54 mM concentration yielded the highest amount of Tre6P (33 mM). Addition of yeast increased the yield because of its glucose consumption. Finally, from 100 mmol maltose and 60 mmol inorganic phosphate, we successfully achieved production of 37.5 mmol Tre6P in a one-pot reaction (100 mL), and 9.4 g Tre6P dipotassium salt was obtained.


Assuntos
Glucosiltransferases/metabolismo , Lactococcus lactis/enzimologia , Fosfatos Açúcares/biossíntese , Trealose/análogos & derivados , Leveduras/crescimento & desenvolvimento , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Metabolismo dos Carboidratos , Clonagem Molecular , Glucose-6-Fosfatase/metabolismo , Glucofosfatos/metabolismo , Glucosiltransferases/genética , Lactococcus lactis/genética , Fosfatos/metabolismo , Trealose/biossíntese , Leveduras/genética
13.
Bioprocess Biosyst Eng ; 43(5): 895-908, 2020 May.
Artigo em Inglês | MEDLINE | ID: mdl-31993798

RESUMO

Ethanol-tolerant Arthrobacter simplex is desirable since ethanol facilitates hydrophobic substrates dissolution on an industrial scale. Herein, alterations in compatible solutes were investigated under ethanol stress. The results showed that the amount of trehalose and glycerol increased while that of glutamate and proline decreased. The trehalose protectant role was verified and its concentration was positively related to the degree of cell tolerance. otsA, otsB and treS, three trehalose biosynthesis genes in A. simplex, also enhanced Escherichia coli stress tolerance, but the increased tolerance was dependent on the type and level of the stress. A. simplex strains accumulating trehalose showed a higher productivity in systems containing more ethanol and substrate because of better viability. The underlying mechanisms of trehalose were involved in better cell integrity, higher membrane stability, stronger reactive oxygen species scavenging capacity and higher energy level. Therefore, trehalose was a general protectant and the upregulation of its biosynthesis by genetic modification enhanced cell stress tolerance, consequently promoted productivity.


Assuntos
Actinobacteria/crescimento & desenvolvimento , Proteínas de Bactérias/biossíntese , Etanol/farmacologia , Regulação Bacteriana da Expressão Gênica/efeitos dos fármacos , Estresse Fisiológico/efeitos dos fármacos , Trealose/biossíntese , Actinobacteria/genética , Proteínas de Bactérias/genética , Trealose/genética
14.
Curr Genet ; 66(2): 313-318, 2020 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-31559453

RESUMO

Desiccation is a common stress that bacteria face in the natural environment, and thus, they have developed a variety of protective mechanisms to mitigate the damage caused by water loss. The formation of biofilms and the accumulation of trehalose and sporulation are well-known strategies used by bacteria to survive desiccation. Other mechanisms, including intrinsically disordered proteins and the anti-glycation defence, have been mainly studied in eukaryotic cells, and their role in bacteria remains unclear. We have recently shown that the impairment of trehalose synthesis results in higher glucose availability, leading to the accumulation of acetyl phosphate and enhanced protein acetylation, which in turn stimulates protein aggregation. In the absence of trehalose synthesis, excess glucose may stimulate non-enzymatic glycosylation and the formation of advanced glycation end products (AGEs) bound to proteins. Therefore, we propose that trehalose may prevent protein damage, not only as a chemical chaperone but also as a metabolite that indirectly counteracts detrimental protein acetylation and glycation.


Assuntos
Bactérias/metabolismo , Dessecação , Trealose/metabolismo , Fenômenos Fisiológicos Bacterianos , Glucose/metabolismo , Produtos Finais de Glicação Avançada , Proteínas Intrinsicamente Desordenadas , Agregados Proteicos , Trealose/biossíntese
15.
J Exp Bot ; 71(2): 653-668, 2020 01 07.
Artigo em Inglês | MEDLINE | ID: mdl-31626290

RESUMO

Edaphic factors such as salinity, sodicity, and drought adversely affect crop productivity, either alone or in combination. Despite soil sodicity being reported as an increasing problem worldwide, limited efforts have been made to address this issue. In the present study, we aimed to generate rice with tolerance to sodicity in conjunction with tolerance to salinity and drought. Using a fusion gene from E. coli coding for trehalose-6-phosphate synthase/phosphatase (TPSP) under the control of an ABA-inducible promoter, we generated marker-free, high-yielding transgenic rice (in the IR64 background) that can tolerate high pH (~9.9), high EC (~10.0 dS m-1), and severe drought (30-35% soil moisture content). The transgenic plants retained higher relative water content (RWC), chlorophyll content, K+/Na+ ratio, stomatal conductance, and photosynthetic efficiency compared to the wild-type under these stresses. Positive correlations between trehalose overproduction and high-yield parameters were observed under drought, saline, and sodic conditions. Metabolic profiling using GC-MS indicated that overproduction of trehalose in leaves differently modulated other metabolic switches, leading to significant changes in the levels of sugars, amino acids, and organic acids in transgenic plants under control and stress conditions. Our findings reveal a novel potential technological solution to tackle multiple stresses under changing climatic conditions.


Assuntos
Secas , Oryza/fisiologia , Salinidade , Solo/química , Trealose/biossíntese , Concentração de Íons de Hidrogênio , Oryza/genética , Oryza/crescimento & desenvolvimento , Plantas Geneticamente Modificadas/genética , Plantas Geneticamente Modificadas/crescimento & desenvolvimento , Plantas Geneticamente Modificadas/fisiologia
16.
Environ Microbiol ; 22(2): 646-659, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31797523

RESUMO

Rice false smut has emerged as a serious grain disease in rice production worldwide. The disease is characterized by the transformation of individual rice florets into false smut balls, which is caused by the fungal pathogen Ustilaginoidea virens. To date, little is known about the host factors required for false smut ball formation by U. virens. In this study, we identified histological determinants for the formation of false smut balls by inoculating U. virens into rice floral mutants defective with respect to individual floral parts. The results showed that U. virens could form mature false smut balls in rice floral mutants with defective pistils, but failed to develop false smut balls in the superwoman mutant lacking stamens, identifying that U. virens requires rice stamens to complete its infection cycle. Comparative transcriptome analysis indicated a list of candidate host genes that may facilitate nutrient acquisition by U. virens from the rice stamens, such as SWEET11, SWEET14 and SUT5, and genes involved in the biosynthesis of trehalose and raffinose family sugars. These data pinpoint rice stamens as the key target organ of U. virens infection and provide a valuable starting point for dissecting the molecular mechanism of false smut ball formation.


Assuntos
Flores/microbiologia , Hypocreales/crescimento & desenvolvimento , Oryza/microbiologia , Hypocreales/genética , Hypocreales/metabolismo , Proteínas de Membrana Transportadoras/genética , Doenças das Plantas/microbiologia , Rafinose/biossíntese , Transcriptoma/genética , Trealose/biossíntese
17.
Mol Plant Microbe Interact ; 33(3): 462-473, 2020 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-31765286

RESUMO

The xylem-dwelling plant pathogen Ralstonia solanacearum changes the chemical composition of host xylem sap during bacterial wilt disease. The disaccharide trehalose, implicated in stress tolerance across all kingdoms of life, is enriched in sap from R. solanacearum-infected tomato plants. Trehalose in xylem sap could be synthesized by the bacterium, the plant, or both. To investigate the source and role of trehalose metabolism during wilt disease, we evaluated the effects of deleting the three trehalose synthesis pathways in the pathogen: TreYZ, TreS, and OtsAB, as well as its sole trehalase, TreA. A quadruple treY/treS/otsA/treA mutant produced 30-fold less intracellular trehalose than the wild-type strain missing the trehalase enzyme. This trehalose-nonproducing mutant had reduced tolerance to osmotic stress, which the bacterium likely experiences in plant xylem vessels. Following naturalistic soil-soak inoculation of tomato plants, this triple mutant did not cause disease as well as wild-type R. solanacearum. Further, the wild-type strain out-competed the trehalose-nonproducing mutant by over 600-fold when tomato plants were coinoculated with both strains, showing that trehalose biosynthesis helps R. solanacearum overcome environmental stresses during infection. An otsA (trehalose-6-phosphate synthase) single mutant behaved similarly to ΔtreY/treS/otsA in all experimental settings, suggesting that the OtsAB pathway is the dominant trehalose synthesis pathway in R. solanacearum.


Assuntos
Pressão Osmótica , Doenças das Plantas/microbiologia , Ralstonia solanacearum/patogenicidade , Solanum lycopersicum/fisiologia , Trealose/biossíntese , Deleção de Genes , Genes Bacterianos , Solanum lycopersicum/microbiologia , Ralstonia solanacearum/genética , Estresse Fisiológico , Virulência , Fatores de Virulência , Xilema/microbiologia
18.
J Med Microbiol ; 68(10): 1479-1488, 2019 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-31380734

RESUMO

Purpose. Fungal infections have increased in recent decades, with Candida albicans being the fourth most common aetiological agent of nosocomial infections. Disaccharide trehalose has been proposed as a target for the development of new antifungals. In C. albicans we have examined the susceptibility shown by two mutants deficient in trehalose biosynthesis, namely tps1Δ and tps2Δ, to amphotericin B (AmB) and micafungin (MF).Methodology. Minimum inhibitory concentrations (MICs) were calculated according to the Clinical and Laboratory Standards Institute (CLSI) criteria. Cell viability was assessed by cell counting. Intracellular reactive oxygen species (ROS) and the mitochondrial membrane potential were measured by flow cytometry, while the trehalose content and biofilm formation were determined by enzymatic assays.Results. While the tps1Δ mutant was highly sensitive to AmB exposure, its resistance to MF was similar to that of the wild-type. Notably, the opposite phenotype was recorded in the tps2Δ mutant. In turn, MF induced a significant level of endogenous ROS production in the parental SC5314 and tps2Δ cells, whereas the ROS formation in tps1Δ cells was virtually undetectable. The level of endogenous ROS correlated positively with the rise in mitochondrial activity. Only AmB was able to promote intracellular synthesis of trehalose in the parental strain; it was absent from tps1Δ cells and showed low levels in tps2Δ, confirming the unspecific dephosphorylation of trehalose-6P in C. albicans. Furthermore, the capacity of both tps1Δ and tps2Δ mutants to form biofilms was drastically reduced after AmB exposure, whereas it increased in tps1Δ cells treated with MF.Conclusion. Our data lend weight to the idea of using trehalose biosynthesis as a potential target for antifungal therapy.


Assuntos
Anfotericina B/farmacologia , Antifúngicos/farmacologia , Candida albicans/efeitos dos fármacos , Candida albicans/enzimologia , Proteínas Fúngicas/genética , Glucosiltransferases/genética , Micafungina/farmacologia , Trealose/biossíntese , Biofilmes/efeitos dos fármacos , Candida albicans/genética , Candida albicans/fisiologia , Candidíase/microbiologia , Proteínas Fúngicas/metabolismo , Glucosiltransferases/metabolismo , Humanos , Testes de Sensibilidade Microbiana , Espécies Reativas de Oxigênio/metabolismo , Deleção de Sequência
19.
BMC Plant Biol ; 19(1): 325, 2019 Jul 19.
Artigo em Inglês | MEDLINE | ID: mdl-31324146

RESUMO

BACKGROUND: The heteroside floridoside is a primary photosynthetic product that is known to contribute to osmotic acclimation in almost all orders of Rhodophyta. However, the encoding genes and enzymes responsible for the synthesis of floridoside and its isomeric form, L- or D-isofloridoside, are poorly studied. RESULTS: Here, four putative trehalose-6-phosphate synthase (TPS) genes, designated as PhTPS1, PhTPS2, PhTPS3, and PhTPS4, were cloned and characterized from the red alga Pyropia haitanensis (Bangiophyceae). The deduced amino acid sequence is similar to the annotated TPS proteins of other organisms, especially the UDP-galactose substrate binding sites of PhTPS1, 2, which are highly conserved. Of these, PhTPS1, 4 are involved in the biosynthesis of floridoside and isofloridoside, with isofloridoside being the main product. PhTPS3 is an isofloridoside phosphate synthase, while PhTPS2 exhibits no activity. When challenged by desiccation, high temperature, and salt stress, PhTPS members were expressed to different degrees, but the responses to thermal stress and desiccation were stronger. CONCLUSIONS: Thus, in P. haitanensis, PhTPSs encode the enzymatical activity of floridoside and isofloridoside phosphate synthase and are crucial for the abiotic stress defense response.


Assuntos
Proteínas de Algas/metabolismo , Glucosiltransferases/metabolismo , Glicerol/análogos & derivados , Rodófitas/fisiologia , Trealose/biossíntese , Proteínas de Algas/genética , Proteínas de Algas/fisiologia , Glucosiltransferases/genética , Glicerol/metabolismo , Filogenia , Rodófitas/enzimologia , Rodófitas/genética , Rodófitas/metabolismo , Alinhamento de Sequência , Estresse Fisiológico
20.
J Agric Food Chem ; 67(33): 9314-9324, 2019 Aug 21.
Artigo em Inglês | MEDLINE | ID: mdl-31352776

RESUMO

Trehalose, a stable nonreducing disaccharide, protects biomolecules against environmental stress. However, trehalose production using secretory trehalose synthase (TreS) by Bacillus subtilis has not been well studied. In this study, a mutant TreS was successfully secreted and expressed in B. subtilis WB800N. The extracellular enzyme activity of TreS regulated by the P43 promoter and SPPhoD signal peptide in recombinant B. subtilis WB800N reached 23080.6 ± 1119.4 U/L in a 5-L fermenter after optimizing the culture medium, while xpF, skfA, lytC, and sdpC were knocked out. To reduce maltose consumption, malP and amyE corresponding to maltose transporters were further deleted. To simplify the trehalose production process, we invented a fermentation-coupling biocatalysis process involving recombinant bacteria fermentation to secrete TreS and simultaneous conversion of maltose to trehalose by TreS and found that the conversion rate of maltose to trehalose reached 75.5%, suggesting that this is an efficient strategy for large-scale trehalose production using recombinant B. subtilis.


Assuntos
Bacillus subtilis/metabolismo , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Glucosiltransferases/genética , Glucosiltransferases/metabolismo , Trealose/biossíntese , Bacillus subtilis/enzimologia , Bacillus subtilis/genética , Biocatálise , Fermentação , Maltose/metabolismo , Engenharia Metabólica
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