Sort   by:  
 Page size 
Kieran Smallbone & Pedro Mendes. Large-Scale Metabolic Models: From Reconstruction to Differential Equations. Industrial Biotechnology 9, 4 (2013). Genome-scale kinetic models of metabolism are important for rational design of the metabolic engineering required for industrial biotechnology applicat...
2024-09-02 | BIOMD0000000471 | BioModels
Kieran Smallbone & Pedro Mendes. Large-Scale Metabolic Models: From Reconstruction to Differential Equations. Industrial Biotechnology 9, 4 (2013). Genome-scale kinetic models of metabolism are important for rational design of the metabolic engineering required for industrial biotechnology applicat...
2024-09-02 | BIOMD0000000472 | BioModels
Kieran Smallbone & Pedro Mendes. Large-Scale Metabolic Models: From Reconstruction to Differential Equations. Industrial Biotechnology 9, 4 (2013). Genome-scale kinetic models of metabolism are important for rational design of the metabolic engineering required for industrial biotechnology applicat...
2024-09-02 | BIOMD0000000473 | BioModels
Kieran Smallbone & Pedro Mendes. Large-Scale Metabolic Models: From Reconstruction to Differential Equations. Industrial Biotechnology 9, 4 (2013). Genome-scale kinetic models of metabolism are important for rational design of the metabolic engineering required for industrial biotechnology applicat...
2024-09-02 | BIOMD0000000469 | BioModels
Kieran Smallbone & Pedro Mendes. Large-Scale Metabolic Models: From Reconstruction to Differential Equations. Industrial Biotechnology 9, 4 (2013). Genome-scale kinetic models of metabolism are important for rational design of the metabolic engineering required for industrial biotechnology applicat...
2024-09-02 | BIOMD0000000470 | BioModels
Identifying all essential genomic components is critical for the assembly of minimal artificial life. In the genome-reduced bacterium Mycoplasma pneumoniae, we found, that small ORFs (smORFs; <100 residues), accounting for 10% of all ORFs, are the most frequently essential genomic components (53%)....
ORGANISM(S): Mycoplasma pneumoniae M29 
2015-03-03 | PXD001611 | Pride
GEP class prediction in association with CI-FISH (42 candidate genes) and patient MRD stratification Combined Interphase FISH (CI-FISH) for 42 candidate genes and Single Nucleotide Polymorphism (SNP) arrays were applied in a series of 51 T-ALL patients enrolled in Italy into the AIEOP-BFM ALL2000 pr...
ORGANISM(S): Homo sapiens 
An eight chip study using total RNA recovered from separate wild-type cultures of Thermotoga maritima at mid-log with 3 different minimal sugar media. A eight-chip study using total RNA recovered from separate wild-type cultures of Thermotoga maritima at mid-log with 3 different minimal sugar media....
ORGANISM(S): Thermotoga maritima MSB8 
This study describes surface protein hexosylation in Mycoplasma genitalium, a human urogenital pathogen with a 580-kbp genome; the ruminant pathogen Mycoplasma mycoides subsp. capri; and JCVI-syn3A, a bacterium with a synthetic minimal M. mycoides 543-kbp gene set for growth under axenic conditions....
ORGANISM(S): Mycoplasma mycoides subsp. capri str. GM12 Mycoplasmoides genitalium G37 synthetic bacterium JCVI-Syn3A 
2025-08-01 | PXD057584 | Pride
Sort   by:  
 Page size