2-methyl-1-propanol

2-methyl-1-propanol is a lipid of Fatty Acyls (FA) class. 2-methyl-1-propanol is associated with abnormalities such as FRIEDREICH ATAXIA 1, Amelia, Tuberculosis, purging and Tuberculosis, Pulmonary. The involved functions are known as Regulation, Oxidation-Reduction, Fermentation, Biochemical Pathway and Glycolysis. 2-methyl-1-propanol often locates in Protoplasm, Chromosomes, Human, Pair 7, BL21, Chromosomes and Cell metabolite. The associated genes with 2-methyl-1-propanol are ADH1B gene, LDHA gene, Operon, AAAS gene and SLC7A3 gene. The related lipids are Butanols, Fatty Alcohols, 1-Butanol, Fatty Acids and cyclopropane fatty acids. The related experimental models are Knock-out.

Cross Reference

Introduction

To understand associated biological information of 2-methyl-1-propanol, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with 2-methyl-1-propanol?

2-methyl-1-propanol is suspected in Tuberculosis, PARKINSON DISEASE, LATE-ONSET, Dehydration, Erythromelalgia, FRIEDREICH ATAXIA 1, Amelia and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

Disease Cross reference Weighted score Related literature
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Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with 2-methyl-1-propanol

MeSH term MeSH ID Detail
Diabetes Mellitus, Type 1 D003922 56 associated lipids
Diabetes Mellitus D003920 90 associated lipids
Body Weight D001835 333 associated lipids
Angina Pectoris D000787 27 associated lipids
Total 4

PubChem Associated disorders and diseases

What pathways are associated with 2-methyl-1-propanol

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with 2-methyl-1-propanol?

Related references are published most in these journals:

Location Cross reference Weighted score Related literatures
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What functions are associated with 2-methyl-1-propanol?


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Function Cross reference Weighted score Related literatures

What lipids are associated with 2-methyl-1-propanol?

Related references are published most in these journals:

Lipid concept Cross reference Weighted score Related literatures
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What genes are associated with 2-methyl-1-propanol?

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Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with 2-methyl-1-propanol?

Knock-out

Knock-out are used in the study 'Redesigning Escherichia coli metabolism for anaerobic production of isobutanol.' (Trinh CT et al., 2011) and Knock-out are used in the study 'Metabolic engineering of microorganisms for the production of higher alcohols.' (Choi YJ et al., 2014).

Related references are published most in these journals:

Model Cross reference Weighted score Related literatures
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NCBI Entrez Crosslinks

All references with 2-methyl-1-propanol

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Authors Title Published Journal PubMed Link
Tsuji A et al. Saturable uptake of cefixime, a new oral cephalosporin without an alpha-amino group, by the rat intestine. 1987 J. Pharm. Pharmacol. pmid:2884290
Wang J et al. Global metabolomic and network analysis of Escherichia coli responses to exogenous biofuels. 2013 J. Proteome Res. pmid:24016299
Sato K and Saito H [Utilization of butanols by disease-associated Mycobacterium avium and Mycobacterium intracellulare classified by DNA probe test and relationship with their ability to grow at 45 degrees C]. 1990 Kekkaku pmid:2376935
Leonin TA Clinical experience with isobutol: a new molecular combination of ethambutol-INH. 1981 Kekkaku pmid:7265605
Yavo B et al. Selective activity of butyrylcholinesterase in serum by a chemiluminescent assay. 2001 Sep-Oct Luminescence pmid:11590700
Grant AK et al. Perfusion imaging with a freely diffusible hyperpolarized contrast agent. 2011 Magn Reson Med pmid:21432901
Minic Z and Thongbam PD The biological deep sea hydrothermal vent as a model to study carbon dioxide capturing enzymes. 2011 Mar Drugs pmid:21673885
Potts BC and Lam KS Generating a generation of proteasome inhibitors: from microbial fermentation to total synthesis of salinosporamide a (marizomib) and other salinosporamides. 2010 Mar Drugs pmid:20479958
Zingaro KA and Papoutsakis ET Toward a semisynthetic stress response system to engineer microbial solvent tolerance. 2012 MBio pmid:23033472
Choi YJ et al. Metabolic engineering of microorganisms for the production of higher alcohols. 2014 MBio pmid:25182323
Benito MJ et al. Effect of the fungal protease EPg222 on the sensory characteristics of dry fermented sausage "salchichón" ripened with commercial starter cultures. 2004 Meat Sci. pmid:22061525
Gazzaniga G et al. [Automatic gas chromatography analysis of solvents in work environment]. 1978 May-Jun Med Lav pmid:45739
Cruz Lopez L et al. Brindley's gland exocrine products of Triatoma infestans. 1995 Med. Vet. Entomol. pmid:8541592
Fundamensky VS et al. Reconstitution of the zone-block model of biomembranes. 3. Synthesis and investigation of the structure of phosphatidylcholine analog isobutyl-2-(trimethylammonia)ethyl phosphate in its monohydrate crystals and monohydrate complexes with isobutanol. 1997 Membr Cell Biol pmid:9257289
Smith KM and Liao JC An evolutionary strategy for isobutanol production strain development in Escherichia coli. 2011 Metab. Eng. pmid:21911074
Bastian S et al. Engineered ketol-acid reductoisomerase and alcohol dehydrogenase enable anaerobic 2-methylpropan-1-ol production at theoretical yield in Escherichia coli. 2011 Metab. Eng. pmid:21515217
Shi A et al. Activating transhydrogenase and NAD kinase in combination for improving isobutanol production. 2013 Metab. Eng. pmid:23246519
Minty JJ et al. Evolution combined with genomic study elucidates genetic bases of isobutanol tolerance in Escherichia coli. 2011 Microb. Cell Fact. pmid:21435272
Gómez-Pastor R et al. Reduction of oxidative cellular damage by overexpression of the thioredoxin TRX2 gene improves yield and quality of wine yeast dry active biomass. 2010 Microb. Cell Fact. pmid:20152017
Li S et al. Rational improvement of the engineered isobutanol-producing Bacillus subtilis by elementary mode analysis. 2012 Microb. Cell Fact. pmid:22862776
Matsuda F et al. Increased isobutanol production in Saccharomyces cerevisiae by eliminating competing pathways and resolving cofactor imbalance. 2013 Microb. Cell Fact. pmid:24305546
Rodriguez GM and Atsumi S Isobutyraldehyde production from Escherichia coli by removing aldehyde reductase activity. 2012 Microb. Cell Fact. pmid:22731523
Adamo GM et al. Laboratory evolution of copper tolerant yeast strains. 2012 Microb. Cell Fact. pmid:22214286
Rhee SJ et al. Importance of lactic acid bacteria in Asian fermented foods. 2011 Microb. Cell Fact. pmid:21995342
Lang K et al. Metabolic engineering of Pseudomonas sp. strain VLB120 as platform biocatalyst for the production of isobutyric acid and other secondary metabolites. 2014 Microb. Cell Fact. pmid:24397404
Matsuda F et al. Engineering strategy of yeast metabolism for higher alcohol production. 2011 Microb. Cell Fact. pmid:21902829
Makino T et al. Strain engineering for improved expression of recombinant proteins in bacteria. 2011 Microb. Cell Fact. pmid:21569582
Kumar R and Shimizu K Transcriptional regulation of main metabolic pathways of cyoA, cydB, fnr, and fur gene knockout Escherichia coli in C-limited and N-limited aerobic continuous cultures. 2011 Microb. Cell Fact. pmid:21272324
Dellomonaco C et al. The path to next generation biofuels: successes and challenges in the era of synthetic biology. 2010 Microb. Cell Fact. pmid:20089184
de Vos WM Systems solutions by lactic acid bacteria: from paradigms to practice. 2011 Microb. Cell Fact. pmid:21995776
Ida K et al. Eliminating the isoleucine biosynthetic pathway to reduce competitive carbon outflow during isobutanol production by Saccharomyces cerevisiae. 2015 Microb. Cell Fact. pmid:25925006
Desai SH et al. Isobutanol production from cellobionic acid in Escherichia coli. 2015 Microb. Cell Fact. pmid:25889729
Su H et al. Engineering Corynebacterium crenatum to produce higher alcohols for biofuel using hydrolysates of duckweed (Landoltia punctata) as feedstock. 2015 Microb. Cell Fact. pmid:25889648
Erdrich P et al. Cyanobacterial biofuels: new insights and strain design strategies revealed by computational modeling. 2014 Microb. Cell Fact. pmid:25323065
Salvadores MP et al. [Autochthonous yeasts isolated in Tenerife wines and their influence on ethyl acetate and higher alcohol concentrations analyzed by gas chromatography]. 1993 Microbiologia pmid:8172687
Hao T et al. In silico metabolic engineering of Bacillus subtilis for improved production of riboflavin, Egl-237, (R,R)-2,3-butanediol and isobutanol. 2013 Mol Biosyst pmid:23666098
Shen Y et al. Role for phospholipase D in receptor-mediated endocytosis. 2001 Mol. Cell. Biol. pmid:11134345
Nakayashiki T and Inokuchi H Effects of starvation for heme on the synthesis of porphyrins in Escherichia coli. 1997 Mol. Gen. Genet. pmid:9267433
Atsumi S et al. Evolution, genomic analysis, and reconstruction of isobutanol tolerance in Escherichia coli. 2010 Mol. Syst. Biol. pmid:21179021
Brynildsen MP and Liao JC An integrated network approach identifies the isobutanol response network of Escherichia coli. 2009 Mol. Syst. Biol. pmid:19536200
Conrad TM et al. Microbial laboratory evolution in the era of genome-scale science. 2011 Mol. Syst. Biol. pmid:21734648
Goranov N [Effect of aromatic substances on the quality of wines and spirits]. 1983 Nahrung pmid:6888527
Edelényi M et al. [Gas chromatographic study of odor and flavor components of dry wine]. 1976 Nahrung pmid:950986
Guan B et al. Highly ordered periodic mesoporous organosilica nanoparticles with controllable pore structures. 2012 Nanoscale pmid:22976432
Radakovits R et al. Draft genome sequence and genetic transformation of the oleaginous alga Nannochloropis gaditana. 2012 Nat Commun pmid:22353717
Tashiro Y et al. Two-dimensional isobutyl acetate production pathways to improve carbon yield. 2015 Nat Commun pmid:26108471
Huo YX et al. Conversion of proteins into biofuels by engineering nitrogen flux. 2011 Nat. Biotechnol. pmid:21378968
Avalos JL et al. Compartmentalization of metabolic pathways in yeast mitochondria improves the production of branched-chain alcohols. 2013 Nat. Biotechnol. pmid:23417095
Rodriguez GM et al. Expanding ester biosynthesis in Escherichia coli. 2014 Nat. Chem. Biol. pmid:24609358
Savage N Fuel options: The ideal biofuel. 2011 Nature pmid:21697843