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Jian, H.

Publications and source records attributed to Jian, H..

2 recordsLinked to original sources

Reconstruction and analysis of thermodynamically-constrained models reveal metabolic responses of a deep-sea bacterium to temperature perturbations

Microbial acclimation to different temperature conditions can involve broad changes in cell composition and metabolic efficiency. A systems-level view of these metabolic responses in non-mesophilic organisms, however, is currently missing. In this study, thermodynamically-constrained genome-scale models were applied to simulate the metabolic responses of a deep-sea psychrophilic bacterium, Shewanella psychrophila WP2, under suboptimal (4{degrees}C), optimal (15{degrees}C), and supraoptimal (20{degrees}C) growth temperatures. The models were calibrated with experimentally determined growth rates of WP2. Gibbs free energy change of reactions ({Delta}rG), metabolic fluxes, and metabolite concentrations were predicted using random simulations to characterize temperature-dependent changes in the metabolism. The modeling revealed the highest metabolic efficiency at the optimal temperature, and it suggested distinct patterns of ATP production and consumption that could lead to the lower metabolic efficiency under suboptimal or supraoptimal temperatures. The modeling also predicted rearrangement of fluxes through multiple metabolic pathways, including the glycolysis pathway, Entner-Doudoroff pathway, tricarboxylic acid (TCA) cycle, and the electron transport system, and these predictions were corroborated through comparisons to WP2 transcriptomes. Furthermore, predictions of metabolite concentrations revealed the potential conservation of reducing equivalents and ATP in the suboptimal temperature, consistent with experimental observations from other psychrophiles. Taken together, the WP2 models provided mechanistic insights into the metabolism of a psychrophile in response to different temperatures. ImportanceMetabolic flexibility is a central component of any organisms ability to survive and adapt to changes in environmental conditions. This study represents the first application of thermodynamically-constrained genome-scale models in simulating the metabolic responses of a deep-sea psychrophilic bacterium to varying temperatures. The models predicted differences in metabolic efficiency that were attributed to changes in metabolic pathway utilization and metabolite concentration during growth under optimal and non-optimal temperatures. Experimental growth measurements were used for model calibration, and temperature-dependent transcriptomic changes corroborated the model-predicted rearrangement of metabolic fluxes. Overall, this study highlights the utility of modeling approaches in studying the temperature-driven metabolic responses of an extremophilic organism.

systems biology↗

A novel inovirus reprograms metabolism and motility of marine Alteromonas

Members from the Inoviridae family with striking features are widespread, highly diverse and ecologically pervasive across multiple hosts and environments; however, very small amount of inoviruses have been isolated and studied. Here, a filamentous phage infecting Alteromonas abrolhosensis, designated {phi}AFP1, was isolated from the South China Sea and represented as a novel genus of Inoviridae. {phi}AFP1 consisted of a single-stranded DNA genome (5986 bp), encoding eight putative ORFs. Comparative analyses revealed {phi}AFP1 could be regarded as genetic mosaics, which especially came from Ralstonia and Stenotrophomonas phages. The temporal transcriptome analysis of A. abrolhosensis to {phi}AFP1 infection reveals that 7.78% of the host genes were differentially expressed. The genes involved in translation processes, ribosome pathways and degradation of multiple amino acid pathways at plateau period were upregulated, while host material catabolic and bacterial motility-related genes were downregulated, indicating that {phi}AFP1 might hijack the energy of the host for the synthesis of phage proteins. {phi}AFP1 exerted the step-by-step control on host genes through the appropriate level of the utilizing host resources, affirming a new non-standard regulatory strategy of viral temperately control over the host transcriptional profile. Our study provides novel information for a better understanding of filamentous phage characteristics and phage-host interactions.

microbiology↗