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1.
Appl Environ Microbiol ; 89(2): e0200722, 2023 02 28.
Artigo em Inglês | MEDLINE | ID: mdl-36719244

RESUMO

Cupriavidus necator has the unique metabolic capability to grow under heterotrophic, autotrophic, and mixotrophic conditions. In the current work, we examined the effect of growth conditions on the metabolic responses of C. necator. In our lab-scale experiments, autotrophic growth was rapid, with a short lag phase as the exponential growth stage was initiated in 6 to 12 h. The lag phase extended significantly (>22 h) at elevated O2 and CO2 partial pressures, while the duration of the lag phase was independent of the H2 or N2 partial pressure. Under heterotrophic conditions with acetate as the organic substrate, the lag phase length was short (<12 h), but it increased with increasing acetate concentrations. When glucose and glycerol were provided as the organic substrate, the lag phase was consistently long (>12 h) regardless of the examined substrate concentrations (up to 10.0 g/L). In the transition experiments, C. necator cells showed rapid transitions from autotrophic to heterotrophic growth in less than 12 h and vice versa. Our experimental results indicate that C. necator can rapidly grow with both autotrophic and heterotrophic substrates, while the lag time substantially increases with nonacetate organic substrates (e.g., glucose or glycerol), high acetate concentrations, and high O2 and CO2 partial pressures. IMPORTANCE The current work investigated the inhibition of organic and gaseous substrates on the microbial adaption of Cupriavidus necator under several metabolic conditions commonly employed for commercial polyhydroxyalkanoate production. We also proposed a two-stage cultivation system to minimize the lag time required to change over between the heterotrophic, autotrophic, and mixotrophic pathways.


Assuntos
Cupriavidus necator , Processos Heterotróficos , Cupriavidus necator/metabolismo , Dióxido de Carbono/metabolismo , Glicerol/metabolismo , Processos Autotróficos/fisiologia , Acetatos/metabolismo
2.
Glob Chang Biol ; 29(1): 231-242, 2023 01.
Artigo em Inglês | MEDLINE | ID: mdl-36226978

RESUMO

Microbial communities play critical roles in fixing carbon from the atmosphere and fixing it in the soils. However, the large-scale variations and drivers of these microbial communities remain poorly understood. Here, we conducted a large-scale survey across China and found that soil autotrophic organisms are critical for explaining CO2 fluxes from the atmosphere to soils. In particular, we showed that large-scale variations in CO2 fixation rates are highly correlated to those in autotrophic bacteria and phototrophic protists. Paddy soils, supporting a larger proportion of obligate bacterial and protist autotrophs, display four-fold of CO2 fixation rates over upland and forest soils. Precipitation and pH, together with key ecological clusters of autotrophic microbes, also played important roles in controlling CO2 fixation. Our work provides a novel quantification on the contribution of terrestrial autotrophic microbes to soil CO2 fixation processes at a large scale, with implications for global carbon regulation under climate change.


Assuntos
Dióxido de Carbono , Solo , Solo/química , Microbiologia do Solo , Processos Autotróficos/fisiologia , Carbono , Bactérias
3.
Nat Commun ; 13(1): 277, 2022 01 12.
Artigo em Inglês | MEDLINE | ID: mdl-35022409

RESUMO

Nucleosomal acetyltransferase of H4 (NuA4) is an essential transcriptional coactivator in eukaryotes, but remains poorly characterized in plants. Here, we describe Arabidopsis homologs of the NuA4 scaffold proteins Enhancer of Polycomb-Like 1 (AtEPL1) and Esa1-Associated Factor 1 (AtEAF1). Loss of AtEAF1 results in inhibition of growth and chloroplast development. These effects are stronger in the Atepl1 mutant and are further enhanced by loss of Golden2-Like (GLK) transcription factors, suggesting that NuA4 activates nuclear plastid genes alongside GLK. We demonstrate that AtEPL1 is necessary for nucleosomal acetylation of histones H4 and H2A.Z by NuA4 in vitro. These chromatin marks are diminished genome-wide in Atepl1, while another active chromatin mark, H3K9 acetylation (H3K9ac), is locally enhanced. Expression of many chloroplast-related genes depends on NuA4, as they are downregulated with loss of H4ac and H2A.Zac. Finally, we demonstrate that NuA4 promotes H2A.Z deposition and by doing so prevents spurious activation of stress response genes.


Assuntos
Proteínas de Arabidopsis/metabolismo , Arabidopsis/fisiologia , Processos Autotróficos/fisiologia , Histonas/metabolismo , Complexo de Proteínas Formadoras de Poros Nucleares/metabolismo , Acetiltransferases , Arabidopsis/genética , Proteínas de Arabidopsis/genética , Processos Autotróficos/genética , Núcleo Celular/metabolismo , Cloroplastos , Cromatina/metabolismo , Efrina-A1 , Regulação da Expressão Gênica de Plantas , Histonas/genética , Complexo de Proteínas Formadoras de Poros Nucleares/genética , Nucleossomos/metabolismo , Estresse Fisiológico , Fatores de Transcrição/metabolismo
4.
Proc Natl Acad Sci U S A ; 119(2)2022 01 11.
Artigo em Inglês | MEDLINE | ID: mdl-34983874

RESUMO

Prochlorococcus is both the smallest and numerically most abundant photosynthesizing organism on the planet. While thriving in the warm oligotrophic gyres, Prochlorococcus concentrations drop rapidly in higher-latitude regions. Transect data from the North Pacific show the collapse occurring at a wide range of temperatures and latitudes (temperature is often hypothesized to cause this shift), suggesting an ecological mechanism may be at play. An often used size-based theory of phytoplankton community structure that has been incorporated into computational models correctly predicts the dominance of Prochlorococcus in the gyres, and the relative dominance of larger cells at high latitudes. However, both theory and computational models fail to explain the poleward collapse. When heterotrophic bacteria and predators that prey nonspecifically on both Prochlorococcus and bacteria are included in the theoretical framework, the collapse of Prochlorococcus occurs with increasing nutrient supplies. The poleward collapse of Prochlorococcus populations then naturally emerges when this mechanism of "shared predation" is implemented in a complex global ecosystem model. Additionally, the theory correctly predicts trends in both the abundance and mean size of the heterotrophic bacteria. These results suggest that ecological controls need to be considered to understand the biogeography of Prochlorococcus and predict its changes under future ocean conditions. Indirect interactions within a microbial network can be essential in setting community structure.


Assuntos
Bactérias/metabolismo , Processos Heterotróficos/fisiologia , Prochlorococcus/metabolismo , Animais , Processos Autotróficos/fisiologia , Ecossistema , Modelos Biológicos , Fotossíntese , Fitoplâncton , Água do Mar/microbiologia , Temperatura , Zooplâncton
5.
Biotechnol Bioeng ; 119(1): 257-267, 2022 01.
Artigo em Inglês | MEDLINE | ID: mdl-34693996

RESUMO

Nitrous oxide (N2 O) was previously deemed as a potent greenhouse gas but is actually an untapped energy source, which can accumulate during the microbial denitrification of nitric oxide (NO). Compared with the organic electron donor required in heterotrophic denitrification, elemental sulfur (S0 ) is a promising electron donor alternative due to its cheap cost and low biomass yield in sulfur-driven autotrophic denitrification. However, no effort has been made to test N2 O recovery from sulfur-driven denitrification of NO so far. Therefore, in this study, batch and continuous experiments were carried out to investigate the NO removal performance and N2 O recovery potential via sulfur-driven NO-based denitrification under various Fe(II)EDTA-NO concentrations. Efficient energy recovery was achieved, as up to 35.5%-40.9% of NO was converted to N2 O under various NO concentrations. N2 O recovery from Fe(II)EDTA-NO could be enhanced by the low bioavailability of sulfur and the acid environment caused by sulfur oxidation. The NO reductase (NOR) and N2 O reductase (N2 OR) were inhibited distinctively at relatively low NO levels, leading to efficient N2 O accumulation, but were suppressed irreversibly at NO level beyond 15 mM in continuous experiments. Such results indicated that the regulation of NO at a relatively low level would benefit the system stability and NO removal capacity during long-term system operation. The continuous operation of the sulfur-driven Fe(II)EDTA-NO-based denitrification reduced the overall microbial diversity but enriched several key microbial community. Thauera, Thermomonas, and Arenimonas that are able to carry out sulfur-driven autotrophic denitrification became the dominant organisms with their relative abundance increased from 25.8% to 68.3%, collectively.


Assuntos
Desnitrificação/fisiologia , Microbiota , Óxido Nítrico , Óxido Nitroso , Enxofre/metabolismo , Processos Autotróficos/fisiologia , Microbiota/genética , Microbiota/fisiologia , Óxido Nítrico/química , Óxido Nítrico/metabolismo , Óxido Nitroso/análise , Óxido Nitroso/metabolismo
6.
J Bacteriol ; 203(23): e0037721, 2021 11 05.
Artigo em Inglês | MEDLINE | ID: mdl-34543103

RESUMO

In nature, concentrations of dissolved inorganic carbon (DIC; CO2 + HCO3- + CO32-) can be low, and autotrophic organisms adapt with a variety of mechanisms to elevate intracellular DIC concentrations to enhance CO2 fixation. Such mechanisms have been well studied in Cyanobacteria, but much remains to be learned about their activity in other phyla. Novel multisubunit membrane-spanning complexes capable of elevating intracellular DIC were recently described in three species of bacteria. Homologs of these complexes are distributed among 17 phyla in Bacteria and Archaea and are predicted to consist of one, two, or three subunits. To determine whether DIC accumulation is a shared feature of these diverse complexes, seven of them, representative of organisms from four phyla, from a variety of habitats, and with three different subunit configurations, were chosen for study. A high-CO2-requiring, carbonic anhydrase-deficient (ΔyadF ΔcynT) strain of Escherichia coli Lemo21(DE3), which could be rescued via elevated intracellular DIC concentrations, was created for heterologous expression and characterization of the complexes. Expression of all seven complexes rescued the ability of E. coli Lemo21(DE3) ΔyadF ΔcynT to grow under low-CO2 conditions, and six of the seven generated measurably elevated intracellular DIC concentrations when their expression was induced. For complexes consisting of two or three subunits, all subunits were necessary for DIC accumulation. Isotopic disequilibrium experiments clarified that CO2 was the substrate for these complexes. In addition, the presence of an ionophore prevented the accumulation of intracellular DIC, suggesting that these complexes may couple proton potential to DIC accumulation. IMPORTANCE To facilitate the synthesis of biomass from CO2, autotrophic organisms use a variety of mechanisms to increase intracellular DIC concentrations. A novel type of multisubunit complex has recently been described, which has been shown to generate measurably elevated intracellular DIC concentrations in three species of bacteria, raising the question of whether these complexes share this capability across the 17 phyla of Bacteria and Archaea where they are found. This study shows that DIC accumulation is a trait shared by complexes with various subunit structures, from organisms with diverse physiologies and taxonomies, suggesting that this trait is universal among them. Successful expression in E. coli suggests the possibility of their expression in engineered organisms synthesizing compounds of industrial importance from CO2.


Assuntos
Processos Autotróficos/fisiologia , Bactérias/classificação , Bactérias/metabolismo , Carbono/metabolismo , Bactérias/genética , Proteínas de Bactérias , Dióxido de Carbono/metabolismo , Cromatografia Líquida , Regulação Bacteriana da Expressão Gênica , Genoma Bacteriano , Concentração de Íons de Hidrogênio , Espectrometria de Massas em Tandem
7.
Biotechnol Lett ; 43(3): 729-743, 2021 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-33459952

RESUMO

OBJECTIVE: Changes in the partitioning of dissolved inorganic (DIC) and glucose were elucidated by utilising 13C labelled DIC or glucose, and quantifying the biochemical profile of mixotrophic, heterotrophic and photoautotrophic cultures of the microalga Tetraselmis suecica. RESULTS: Mixotrophic cultivation increases microalgal productivity and changes their biochemical profile, due to an alteration in the partitioning of carbon within the cell. When cultured mixotrophically and heterotrophically, there is enhanced incorporation of carbon into shorter chain saturated fatty acids and non-lipid biomass, compared to photoautotrophic cultivation. Autotrophic culture results in increased total fatty acid content of cultures (4.19% dry weight compared to 2.13%) and shifts the fatty acid profile in favour of long-chain unsaturated fatty acids, such as 18:2 n-(9,12), compared to mixotrophic culture. Quantifying the changes in partitioning between DIC and glucose facilitates tailoring of the biochemical profile to develop "designer" algae. CONCLUSIONS: There is a condition specific shift in carbon partitioning into different fatty acid and biochemical fractions in T. suecica, with more inorganic carbon partitioned into 18:2 n-(9,12) in photoautotrophic rather than mixotrophic cultures.


Assuntos
Processos Autotróficos/fisiologia , Carbono/metabolismo , Clorófitas , Glucose/metabolismo , Processos Heterotróficos/fisiologia , Biomassa , Clorófitas/metabolismo , Clorófitas/fisiologia , Ácidos Graxos/metabolismo
8.
Sci Rep ; 10(1): 19988, 2020 11 17.
Artigo em Inglês | MEDLINE | ID: mdl-33203892

RESUMO

Reef-building corals rely on both heterotrophy and endosymbiotic dinoflagellate autotrophy to meet their metabolic needs. Those looking to culture these organisms for scientific or industrial purposes must therefore consider both feeding regimes and the light environment. Herein the effects of three photosynthetically active radiation (PAR) levels were assessed in fed and unfed specimens of the model coral Pocillopora acuta that were cultured in a recirculating aquaculture system (RAS). Half of the corals were fed Artemia sp. brine shrimp in a separate feeding tank to prevent biofouling, and fragments were exposed to PAR levels of 105, 157, or 250 µmol quanta m-2 s-1 over a 12-h period each day. All cultured corals survived the 140-day treatment, and the physiological response variables assessed-buoyant weight, specific growth rate, linear extension, color, and Fv/Fm-were significantly influenced by feeding, and, to a lesser extent, light. Specifically, fed corals grew faster and larger, and presented darker pigmentation; corals fed at the highest light levels grew at the fastest rate (6 cm year-1 or 175 mg g-1 week-1). Given the high physiological performance observed, we advocate the active feeding of brine shrimp in RAS by those looking to cultivate P. acuta, and likely other corals, over long-term timescales.


Assuntos
Antozoários/fisiologia , Comportamento Alimentar/fisiologia , Animais , Aquicultura/métodos , Artemia/fisiologia , Processos Autotróficos/fisiologia , Recifes de Corais , Escuridão , Dinoflagellida/fisiologia , Processos Heterotróficos/fisiologia , Luz , Fotossíntese/fisiologia , Pigmentação/fisiologia , Simbiose/fisiologia
9.
Am Nat ; 195(4): E100-E111, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-32216662

RESUMO

Trophic strategy determines stoichiometry of plankton. In general, heterotrophic zooplankton have lower and more stable C∶N and C∶P ratios than photoautotrophic phytoplankton, whereas mixotrophic protists, which consume prey and photosynthesize, have stoichiometry between zooplankton and phytoplankton. As trophic strategies change with cell size, body size may be a key trait influencing eukaryotic plankton stoichiometry. However, the relationship between body size and stoichiometry remains unclear. Here we measured plankton size-fractionated C∶N ratios under different intensities of light and nutrient supply in subtropical freshwater and marine systems. We found a unimodal body size-C∶N ratio pattern, with a maximum C∶N ratio at ∼50 µm diameter in marine and freshwater systems. Moreover, the variation in C∶N ratios is explained mainly by body size, followed by light intensity and nutrient concentration. To investigate the mechanisms behind this unimodal pattern, we constructed a size-based plankton food web model in which the trophic strategy and C∶N ratio are an emerging result. Our model simulations reproduce the unimodal pattern with a C∶N ratio of photoautotrophs ≤50 µm increasing with body size due to increase of photosynthetic carbon, whereas C∶N ratios of organisms >50 µm decrease with size due to decreasing photoautotrophic but increasing heterotrophic uptake. Based on our field observations and simulation, we extend the classic "light-nutrient" theory that determines plankton C∶N ratio to include body size and trophic strategy dependency. We conclude that body size and size-dependent uptake of resources (light, nutrients, and prey) determine plankton stoichiometry at various light and nutrient supplies.


Assuntos
Tamanho Corporal , Cadeia Alimentar , Plâncton/metabolismo , Luz Solar , Animais , Organismos Aquáticos/fisiologia , Processos Autotróficos/fisiologia , Ciclo do Carbono , Processos Heterotróficos/fisiologia , Ciclo do Nitrogênio , Nutrientes , Fotossíntese , Fitoplâncton , Plâncton/crescimento & desenvolvimento , Plâncton/efeitos da radiação , Zooplâncton
10.
Proc Natl Acad Sci U S A ; 117(13): 7516-7523, 2020 03 31.
Artigo em Inglês | MEDLINE | ID: mdl-32170009

RESUMO

Among CO2-fixing metabolic pathways in nature, the linear Wood-Ljungdahl pathway (WLP) in phylogenetically diverse acetate-forming acetogens comprises the most energetically efficient pathway, requires the least number of reactions, and converts CO2 to formate and then into acetyl-CoA. Despite two genes encoding glycine synthase being well-conserved in WLP gene clusters, the functional role of glycine synthase under autotrophic growth conditions has remained uncertain. Here, using the reconstructed genome-scale metabolic model iSL771 based on the completed genome sequence, transcriptomics, 13C isotope-based metabolite-tracing experiments, biochemical assays, and heterologous expression of the pathway in another acetogen, we discovered that the WLP and the glycine synthase pathway are functionally interconnected to fix CO2, subsequently converting CO2 into acetyl-CoA, acetyl-phosphate, and serine. Moreover, the functional cooperation of the pathways enhances CO2 consumption and cellular growth rates via bypassing reducing power required reactions for cellular metabolism during autotrophic growth of acetogens.


Assuntos
Aminoácido Oxirredutases/metabolismo , Aminometiltransferase/metabolismo , Processos Autotróficos/fisiologia , Complexos Multienzimáticos/metabolismo , Acetilcoenzima A/metabolismo , Aminoácido Oxirredutases/genética , Aminometiltransferase/genética , Proteínas de Bactérias/metabolismo , Ciclo do Carbono , Dióxido de Carbono/metabolismo , Monóxido de Carbono/metabolismo , Clostridium/metabolismo , Redes e Vias Metabólicas , Complexos Multienzimáticos/genética , Família Multigênica , Óxido Nítrico Sintase/genética , Óxido Nítrico Sintase/metabolismo
11.
Nat Biotechnol ; 38(2): 210-216, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31844294

RESUMO

The methylotrophic yeast Pichia pastoris is widely used in the manufacture of industrial enzymes and pharmaceuticals. Like most biotechnological production hosts, P. pastoris is heterotrophic and grows on organic feedstocks that have competing uses in the production of food and animal feed. In a step toward more sustainable industrial processes, we describe the conversion of P. pastoris into an autotroph that grows on CO2. By addition of eight heterologous genes and deletion of three native genes, we engineer the peroxisomal methanol-assimilation pathway of P. pastoris into a CO2-fixation pathway resembling the Calvin-Benson-Bassham cycle, the predominant natural CO2-fixation pathway. The resulting strain can grow continuously with CO2 as a sole carbon source at a µmax of 0.008 h-1. The specific growth rate was further improved to 0.018 h-1 by adaptive laboratory evolution. This engineered P. pastoris strain may promote sustainability by sequestering the greenhouse gas CO2, and by avoiding consumption of an organic feedstock with alternative uses in food production.


Assuntos
Processos Autotróficos/fisiologia , Dióxido de Carbono/farmacologia , Processos Heterotróficos/fisiologia , Pichia/crescimento & desenvolvimento , Processos Autotróficos/efeitos dos fármacos , Reatores Biológicos , Isótopos de Carbono , Processos Heterotróficos/efeitos dos fármacos , Engenharia Metabólica , Peroxissomos/efeitos dos fármacos , Peroxissomos/metabolismo , Fotossíntese/efeitos dos fármacos , Pichia/efeitos dos fármacos , Ribulose-Bifosfato Carboxilase/metabolismo , Xilulose/metabolismo
12.
Plant Physiol ; 182(2): 819-839, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31740503

RESUMO

The marine microalgae Nannochloropsis oceanica (CCMP1779) is a prolific producer of oil and is considered a viable and sustainable resource for biofuel feedstocks. Nitrogen (N) availability has a strong impact on the physiological status and metabolism of microalgal cells, but the exact nature of this response is poorly understood. To fill this gap we performed transcriptomic profiling combined with cellular and molecular analyses of N. oceanica CCMP1779 during the transition from quiescence to autotrophy. N deprivation-induced quiescence was accompanied by a strong reorganization of the photosynthetic apparatus and changes in the lipid homeostasis, leading to accumulation of triacylglycerol. Cell cycle activation and re-establishment of photosynthetic activity observed in response to resupply of the growth medium with N were accompanied by a rapid degradation of triacylglycerol stored in lipid droplets (LDs). Besides observing LD translocation into vacuoles, we also provide evidence for direct interaction between the LD surface protein (NoLDSP) and AUTOPHAGY-RELATED8 (NoATG8) protein and show a role of microlipophagy in LD turnover in N. oceanica CCMP1779. This knowledge is crucial not only for understanding the fundamental mechanisms controlling the cellular energy homeostasis in microalgal cells but also for development of efficient strategies to achieve higher algal biomass and better microalgal lipid productivity.


Assuntos
Processos Autotróficos/genética , Microalgas/metabolismo , Nitrogênio/metabolismo , Nutrigenômica , Fotossíntese/genética , Estramenópilas/metabolismo , Triglicerídeos/metabolismo , Autofagia/genética , Autofagia/fisiologia , Família da Proteína 8 Relacionada à Autofagia/metabolismo , Processos Autotróficos/fisiologia , Ciclo Celular/genética , Ciclo Celular/fisiologia , Análise por Conglomerados , Ácidos Graxos/biossíntese , Ácidos Graxos/metabolismo , Perfilação da Expressão Gênica , Regulação da Expressão Gênica/genética , Regulação da Expressão Gênica/fisiologia , Ontologia Genética , Homeostase/genética , Homeostase/fisiologia , Gotículas Lipídicas/metabolismo , Gotículas Lipídicas/ultraestrutura , Metabolismo dos Lipídeos/genética , Metabolismo dos Lipídeos/fisiologia , Microalgas/genética , Microscopia Eletrônica de Transmissão , Família Multigênica , Fotossíntese/fisiologia , Estramenópilas/genética , Vacúolos/metabolismo , Vacúolos/ultraestrutura
13.
Cell ; 179(6): 1244-1245, 2019 Nov 27.
Artigo em Inglês | MEDLINE | ID: mdl-31778649

RESUMO

It is challenging to convert a heterotrophic organism that loves sugars and other multicarbon compounds as energy and carbon sources into an autotroph that builds all biomass from carbon dioxide. In this issue, Gleizer et al. demonstrate how this can be achieved.


Assuntos
Processos Autotróficos/fisiologia , Escherichia coli/fisiologia , Biomassa , Dióxido de Carbono/metabolismo , Ribulose-Bifosfato Carboxilase/metabolismo
14.
Cell ; 179(6): 1255-1263.e12, 2019 Nov 27.
Artigo em Inglês | MEDLINE | ID: mdl-31778652

RESUMO

The living world is largely divided into autotrophs that convert CO2 into biomass and heterotrophs that consume organic compounds. In spite of widespread interest in renewable energy storage and more sustainable food production, the engineering of industrially relevant heterotrophic model organisms to use CO2 as their sole carbon source has so far remained an outstanding challenge. Here, we report the achievement of this transformation on laboratory timescales. We constructed and evolved Escherichia coli to produce all its biomass carbon from CO2. Reducing power and energy, but not carbon, are supplied via the one-carbon molecule formate, which can be produced electrochemically. Rubisco and phosphoribulokinase were co-expressed with formate dehydrogenase to enable CO2 fixation and reduction via the Calvin-Benson-Bassham cycle. Autotrophic growth was achieved following several months of continuous laboratory evolution in a chemostat under intensifying organic carbon limitation and confirmed via isotopic labeling.


Assuntos
Biomassa , Dióxido de Carbono/metabolismo , Carbono/metabolismo , Escherichia coli/metabolismo , Adaptação Fisiológica/genética , Aminoácidos/metabolismo , Processos Autotróficos/fisiologia , Isótopos de Carbono , Evolução Molecular Direcionada , Escherichia coli/genética , Marcação por Isótopo , Engenharia Metabólica , Análise do Fluxo Metabólico , Mutação/genética
15.
Sci Rep ; 9(1): 17819, 2019 11 28.
Artigo em Inglês | MEDLINE | ID: mdl-31780787

RESUMO

Soft corals often constitute one of the major benthic groups of coral reefs. Although they have been documented to outcompete reef-building corals following environmental disturbances, their physiological performance and thus their functional importance in reefs are still poorly understood. In particular, the acclimatization to depth of soft corals harboring dinoflagellate symbionts and the metabolic interactions between these two partners have received little attention. We performed stable isotope tracer experiments on two soft coral species (Litophyton sp. and Rhytisma fulvum fulvum) from shallow and upper mesophotic Red Sea coral reefs to quantify the acquisition and allocation of autotrophic carbon within the symbiotic association. Carbon acquisition and respiration measurements distinguish Litophyton sp. as mainly autotrophic and Rhytisma fulvum fulvum as rather heterotrophic species. In both species, carbon acquisition was constant at the two investigated depths. This is a major difference from scleractinian corals, whose carbon acquisition decreases with depth. In addition, carbon acquisition and photosynthate translocation to the host decreased with an increase in symbiont density, suggesting that nutrient provision to octocoral symbionts can quickly become a limiting factor of their productivity. These findings improve our understanding of the biology of soft corals at the organism-scale and further highlight the need to investigate how their nutrition will be affected under changing environmental conditions.


Assuntos
Antozoários/metabolismo , Ciclo do Carbono/fisiologia , Carbono/metabolismo , Dinoflagellida/metabolismo , Simbiose/fisiologia , Aclimatação , Animais , Antozoários/classificação , Processos Autotróficos/fisiologia , Recifes de Corais , Processos Heterotróficos , Oceano Índico , Marcação por Isótopo
16.
Arch Microbiol ; 201(9): 1307-1312, 2019 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-31273403

RESUMO

Inorganic polyphosphate is involved in metal homeostasis in microorganisms. The aim of the study was to reveal differences in polyphosphate metabolism of Rhodospirillum rubrum under autotrophic and heterotrophic cultivation in the presence of Fe (2.3 mg Fe3+ L-1) and without Fe (traces). Heterotrophic conditions without Fe resulted in cell lysis and low biomass yield. High polyphosphate content and low exopolyphosphatase activity were observed in the cells cultivated autotrophically in the presence of Fe. The cells grown heterotrophically in the presence of Fe contained more phosphate and low-molecular polyphosphate; on the contrary, the content of the high molecular polyphosphate decreased in parallel with the increase in exopolyphosphatase activity. The possible involvement of Pi and polyphosphate to the formation of Fe-containing inclusions is discussed.


Assuntos
Processos Autotróficos/fisiologia , Processos Heterotróficos/fisiologia , Ferro/metabolismo , Polifosfatos/metabolismo , Rhodospirillum rubrum/metabolismo , Hidrolases Anidrido Ácido , Corpos de Inclusão/metabolismo
17.
PLoS One ; 14(5): e0216336, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31071110

RESUMO

A genome-scale metabolic network reconstruction of Salinibacter ruber DSM13855 is presented here. To our knowledge, this is the first metabolic model of an organism in the phylum Rhodothermaeota. This model, which will be called iMB631, was reconstructed based on genomic and biochemical data available on the strain Salinibacter ruber DSM13855. This network consists of 1459 reactions, 1363 metabolites and 631 genes. Model evaluation was performed based on existing biochemical data in the literature and also by performing laboratory experiments. For growth on different carbon sources, we show that iMB631 is able to correctly predict the growth in 91% of cases where growth has been observed experimentally and 83% of conditions in which S. ruber did not grow. The F-score was 93%, demonstrating a generally acceptable performance of the model. Based on the predicted flux distributions, we found that under certain autotrophic condition, a reductive tricarboxylic acid cycle (rTCA) has fluxes in all necessary reactions to support autotrophic growth. To include special metabolites of the bacterium, salinixanthin biosynthesis pathway was modeled based on the pathway proposed recently. For years, main glucose consumption pathway has been under debates in S. ruber. Using flux balance analysis, iMB631 predicts pentose phosphate pathway, rather than glycolysis, as the active glucose consumption method in the S. ruber.


Assuntos
Processos Autotróficos/fisiologia , Bacteroidetes , Redes Reguladoras de Genes/fisiologia , Genoma Bacteriano/fisiologia , Redes e Vias Metabólicas/fisiologia , Modelos Biológicos , Bacteroidetes/genética , Bacteroidetes/metabolismo
18.
Lipids Health Dis ; 18(1): 56, 2019 Mar 04.
Artigo em Inglês | MEDLINE | ID: mdl-30832728

RESUMO

BACKGROUND: ω-3 polyunsaturated fatty acids (PUFAs) are synthesized from α-Linolenic acid (ALA, C18:3ω3) and play important roles in anti-inflammatory and antioxidant responses in mammal cells. ALA is an essential fatty acid which cannot be produced within the human body and must be acquired through diet. The purpose of this study was to evaluate the potential of a novel microalgal strain (HDMA-20) as a source of ω-3 PUFAs including ALA and eicosatetraenoic acid (ETA, C20:4ω3). METHOD: Phylogenetic Neighbor-Joining analysis based on 18S ribosomal DNA sequence was used to identify the microalga strain HDMA-20. Autotrophic condition was chosen to cultivate HDMA-20 to reduce the cultivation cost. GC-MS was used to determine the fatty acid composition of HDMA-20 lipid. RESULTS: A microalgal strain (HDMA-20) from Lake Chengfeng (Daqing, Heilongjiang province, China) was found to accumulate high content of ω-3 PUFAs (63.4% of total lipid), with ALA and eicosatetraenoic acid (ETA, C20:4ω3) accounting for 35.4 and 9.6% of total lipid, respectively. Phylogenetic analysis based on 18S ribosomal DNA sequences suggested that the HDMA-20 belonged to genus Monoraphidium (Selenastraceae, Sphaeropleales) and its 18S rDNA sequence information turned out to be new molecular record of Monoraphidium species. The biomass productivity and lipid content of HDMA-20 were also investigated under autotrophic condition. The biomass productivity of HDMA-20 reached 36.3 mg L- 1 day- 1, and the lipid contents was 22.6% of dry weight. CONCLUSION: HDMA-20 not only represent an additional source of ALA, but also a totally new source of ETA. The high content of ω-3 PUFAs, especially ALA, of HDMA-20, makes it suitable as a source of nutrition supplements for human health. In addition, HDMA-20 exhibited good properties in growth and lipid accumulation, implying its potential for cost-effective ω-3 PUFAs production in future.


Assuntos
Ácidos Araquidônicos/isolamento & purificação , Clorofíceas/metabolismo , Suplementos Nutricionais/análise , Microalgas/metabolismo , Ácido alfa-Linolênico/isolamento & purificação , Ácidos Araquidônicos/biossíntese , Processos Autotróficos/fisiologia , Biomassa , China , Clorofíceas/classificação , Clorofíceas/genética , Clorofíceas/crescimento & desenvolvimento , Suplementos Nutricionais/provisão & distribuição , Cromatografia Gasosa-Espectrometria de Massas , Humanos , Lagos , Metaboloma/fisiologia , Microalgas/classificação , Microalgas/genética , Microalgas/crescimento & desenvolvimento , Filogenia , RNA Ribossômico 18S/genética , Ácido alfa-Linolênico/biossíntese
19.
J Ind Microbiol Biotechnol ; 46(6): 783-790, 2019 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-30810844

RESUMO

Massive emission of CO2 into atmosphere from consumption of carbon deposit is causing climate change. Researchers have applied metabolic engineering and synthetic biology techniques for improving CO2 fixation efficiency in many species. One solution might be the utilization of autotrophic bacteria, which have great potential to be engineered into microbial cell factories for CO2 fixation and the production of chemicals, independent of fossil resources. In this work, several pathways of Ralstonia eutropha H16 were modulated by manipulation of heterologous and endogenous genes related to fatty acid synthesis. The resulting strain B2(pCT, pFP) was able to produce 124.48 mg/g (cell dry weight) free fatty acids with fructose as carbon source, a fourfold increase over the parent strain H16. To develop a truly autotrophic fermentation technique with H2, CO2 and O2 as substrates, we assembled a relatively safe, continuous, lab-scale gas fermentation system using micro-fermentation tanks, H2 supplied by a hydrogen generator, and keeping the H2 to O2 ratio at 7:1. The system was equipped with a H2 gas alarm, rid of heat sources and placed into a fume hood to further improve the safety. With this system, the best strain B2(pCT, pFP) produced 60.64 mg free fatty acids per g biomass within 48 h, growing in minimal medium supplemented with 9 × 103 mL/L/h hydrogen gas. Thus, an autotrophic fermentation technique to produce fatty acids was successfully established, which might inspire further research on autotrophic gas fermentation with a safe, lab-scale setup, and provides an alternative solution for environmental and energy problems.


Assuntos
Processos Autotróficos/fisiologia , Técnicas Bacteriológicas/métodos , Cupriavidus necator/metabolismo , Ácidos Graxos/biossíntese , Fermentação/fisiologia , Engenharia Metabólica/métodos , Gases/metabolismo , Hidrogênio/metabolismo
20.
Appl Microbiol Biotechnol ; 103(5): 2113-2120, 2019 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-30666363

RESUMO

With global CO2 emissions at their highest in several years, mitigation and possibly reduction of greenhouse gas buildup and concomitant production of renewable fuel molecules for growing transportation fuel needs are urgent challenges for renewable energy scientists and engineers. Knallgas bacteria provide a biocatalyst platform for utilization of CO2 and production of diverse and some high-energy density biofuel molecules, requisite for drop-in transportation fuels. The most well-studied Knallgas bacterium, Ralstonia eutropha, has been engineered to produce n-butanol, isobutanol, and terpene molecules under chemolithoautotrophic conditions. There are other representatives of this group of bacteria that potentially have the capabilities for CO2-based fuel molecule synthesis. In principle, fermentative production of biofuel from CO2 could rival the "power-to-gas" (non-biological production of fuels using CO2 and H2) production methods. However, challenges remain for both methods in order to compete with currently priced petroleum-based fuels. With continued streamlining of processes and attention to Industrial Ecology principles, biofuel synthesis by Knallgas bacteria could represent a viable part of a nation's energy portfolio.


Assuntos
Processos Autotróficos/fisiologia , Biocombustíveis/microbiologia , Biotransformação/fisiologia , Dióxido de Carbono/metabolismo , Cupriavidus necator/metabolismo , Hidrogênio/metabolismo , 1-Butanol/metabolismo , Processos Autotróficos/genética , Butanóis/metabolismo , Cupriavidus necator/genética , Gases de Efeito Estufa/metabolismo , Engenharia Metabólica/métodos , Terpenos/metabolismo
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