Record Information
Version1.0
Creation Date2009-03-06 18:58:00 UTC
Update Date2026-03-31 19:21:06 UTC
Accession NumberCHEM000054
Identification
Common Namem-Xylene
ClassSmall Molecule
DescriptionM-xylene is an aromatic hydrocarbon, based on benzene with two methyl substituents. It is an isomer of xylene. Xylene occurs naturally in petroleum and coal tar, and is major component of gasoline and fuel oil. Xylene is used mainly as a solvent and in the printing, rubber, and leather industries. The major chemical use of metaxylene is in the manufacture of isophthalic acid, which is used as a copolymer to alter the properties of Polyethylene terephthalate (PET) making PET more suitable for the manufacture of soft drinks bottles (7, 9, 5). It can cause irritation eyes, skin, nose, throat; dizziness, excitement, drowsiness, incoordination, staggering gait; corneal vacuolization; anorexia, nausea, vomiting, abdominal pain; dermatitis. The targets of this compound are eyes, skin, respiratory system, central nervous system, gastrointestinal tract, blood, liver, kidneys.
Contaminant Sources
  • Clean Air Act Chemicals
  • FooDB Chemicals
  • HMDB Contaminants - Feces
  • HPV EPA Chemicals
  • IARC Carcinogens Group 3
  • OECD HPV Chemicals
  • STOFF IDENT Compounds
  • Sludge Chemicals
  • T3DB toxins
  • ToxCast & Tox21 Chemicals
Contaminant Type
  • Aromatic Hydrocarbon
  • Food Toxin
  • Industrial/Workplace Toxin
  • Lachrymator
  • Metabolite
  • Natural Compound
  • Organic Compound
  • Pollutant
  • Solvent
Chemical Structure
Thumb
Synonyms
ValueSource
1,3-DimethylbenzeneChEBI
1,3-DimethylbenzolChEBI
1,3-XyleneChEBI
3-XyleneChEBI
m-DimethylbenzeneChEBI
m-MethyltolueneChEBI
m-XylolChEBI
Meta-xyleneChEBI
Chemical FormulaC8H10
Average Molecular Mass106.165 g/mol
Monoisotopic Mass106.078 g/mol
CAS Registry Number108-38-3
IUPAC Name1,3-xylene
Traditional NameM-xylene
SMILESCC1=CC(C)=CC=C1
InChI IdentifierInChI=1S/C8H10/c1-7-4-3-5-8(2)6-7/h3-6H,1-2H3
InChI KeyIVSZLXZYQVIEFR-UHFFFAOYSA-N
Chemical Taxonomy
Description belongs to the class of organic compounds known as m-xylenes. These are aromatic compounds that contain a m-xylene moiety, which is a monocyclic benzene carrying exactly two methyl groups at the 1- and 3-positions.
KingdomOrganic compounds
Super ClassBenzenoids
ClassBenzene and substituted derivatives
Sub ClassXylenes
Direct Parentm-Xylenes
Alternative Parents
Substituents
  • M-xylene
  • Aromatic hydrocarbon
  • Unsaturated hydrocarbon
  • Hydrocarbon
  • Aromatic homomonocyclic compound
Molecular FrameworkAromatic homomonocyclic compounds
External Descriptors
Biological Properties
StatusDetected and Not Quantified
OriginExogenous
Cellular Locations
  • Membrane
Biofluid LocationsNot Available
Tissue LocationsNot Available
PathwaysNot Available
ApplicationsNot Available
Biological RolesNot Available
Chemical RolesNot Available
Physical Properties
StateLiquid
AppearanceColorless liquid.
Experimental Properties
PropertyValue
Melting Point-47.8 °C
Boiling Point138.5 °C
Solubility0.106 mg/mL at 25 °C [YALKOWSKY,SH & DANNENFELSER,RM (1992)]; 0.161 mg/mL at 25°C [SANEMASA,I et al. (1982)]
Predicted Properties
PropertyValueSource
Water Solubility0.2 g/LALOGPS
logP3.15ALOGPS
logP3ChemAxon
logS-2.7ALOGPS
Physiological Charge0ChemAxon
Hydrogen Acceptor Count0ChemAxon
Hydrogen Donor Count0ChemAxon
Polar Surface Area0 ŲChemAxon
Rotatable Bond Count0ChemAxon
Refractivity36.14 m³·mol⁻¹ChemAxon
Polarizability13.09 ųChemAxon
Number of Rings1ChemAxon
Bioavailability1ChemAxon
Rule of FiveYesChemAxon
Ghose FilterNoChemAxon
Veber's RuleYesChemAxon
MDDR-like RuleNoChemAxon
Spectra
Spectra
Spectrum TypeDescriptionSplash KeyView
GC-MSGC-MS Spectrum - EI-B (Non-derivatized)splash10-052f-9400000000-2f01cb2d1d9a3cb2c00aSpectrum
GC-MSGC-MS Spectrum - EI-B (Non-derivatized)splash10-052f-9400000000-df0f65246037f2bfb507Spectrum
GC-MSGC-MS Spectrum - CI-B (Non-derivatized)splash10-0a4i-0900000000-2370bbe07a9d5e20584fSpectrum
GC-MSGC-MS Spectrum - EI-B (Non-derivatized)splash10-052f-9400000000-2f01cb2d1d9a3cb2c00aSpectrum
GC-MSGC-MS Spectrum - EI-B (Non-derivatized)splash10-052f-9400000000-df0f65246037f2bfb507Spectrum
GC-MSGC-MS Spectrum - CI-B (Non-derivatized)splash10-0a4i-0900000000-2370bbe07a9d5e20584fSpectrum
Predicted GC-MSPredicted GC-MS Spectrum - GC-MS (Non-derivatized) - 70eV, Positivesplash10-0a4i-5900000000-8bb4470d1d34c4bdbba9Spectrum
Predicted GC-MSPredicted GC-MS Spectrum - GC-MS (Non-derivatized) - 70eV, PositiveNot AvailableSpectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Positivesplash10-0a4i-0900000000-1408ea7794c1dd42097eSpectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Positivesplash10-0a4i-0900000000-a18170561f3e5d8b9f5bSpectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Positivesplash10-0aor-9500000000-7f307619895b31097120Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Negativesplash10-0a4i-0900000000-51ad3e28bd0c6572b441Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Negativesplash10-0a4i-0900000000-51ad3e28bd0c6572b441Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Negativesplash10-0a4i-4900000000-1f1973b947c3c42a28b6Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Positivesplash10-0a4i-2900000000-b1f1a68d446da42d7ad6Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Positivesplash10-004l-9100000000-fc29268619d061ae3611Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Positivesplash10-014i-9000000000-da7286fba0f1ecc72e96Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Negativesplash10-0a4i-0900000000-861947f0491f909a2588Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Negativesplash10-0a4i-0900000000-861947f0491f909a2588Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Negativesplash10-0a4i-1900000000-d421ee990836412c0901Spectrum
MSMass Spectrum (Electron Ionization)splash10-052f-9300000000-1d9e623f1ed39f29c5b6Spectrum
1D NMR1H NMR SpectrumNot AvailableSpectrum
1D NMR13C NMR SpectrumNot AvailableSpectrum
1D NMR1H NMR SpectrumNot AvailableSpectrum
1D NMR13C NMR SpectrumNot AvailableSpectrum
Toxicity Profile
Route of ExposureOral (5) ; inhalation (5) ; dermal (5)
Mechanism of Toxicitym-Xylene is a cholinesterase or acetylcholinesterase (AChE) inhibitor. A cholinesterase inhibitor (or 'anticholinesterase') suppresses the action of acetylcholinesterase. Because of its essential function, chemicals that interfere with the action of acetylcholinesterase are potent neurotoxins, causing excessive salivation and eye-watering in low doses, followed by muscle spasms and ultimately death. Nerve gases and many substances used in insecticides have been shown to act by binding a serine in the active site of acetylcholine esterase, inhibiting the enzyme completely. Acetylcholine esterase breaks down the neurotransmitter acetylcholine, which is released at nerve and muscle junctions, in order to allow the muscle or organ to relax. The result of acetylcholine esterase inhibition is that acetylcholine builds up and continues to act so that any nerve impulses are continually transmitted and muscle contractions do not stop. Among the most common acetylcholinesterase inhibitors are phosphorus-based compounds, which are designed to bind to the active site of the enzyme. The structural requirements are a phosphorus atom bearing two lipophilic groups, a leaving group (such as a halide or thiocyanate), and a terminal oxygen.
MetabolismXylenes are well absorbed by the inhalation and oral routes. Approximately 60% of inspired xylene is retained and approximately 90% of ingested xylene is absorbed. Absorption also occurs by the dermal route, but to a much lesser extent than by the inhalation and oral routes. Following absorption, xylene is rapidly distributed throughout the body by way of the systemic circulation. In the blood, it is primarily bound to serum proteins and accumulates primarily in adipose tissue. Xylene is primarily metabolized by oxidation of a methyl group and conjugation with glycine to yield the methylhippuric acid, whicih is the primary metabolite excreted in urine. Aromatic hydroxylation of xylene to xylenol occurs to only a limited extent in humans. Less than 2% of an absorbed dose is excreted in the urine as xylenol. Other minor metabolites found in urine include methylbenzyl alcohol and glucuronic acid conjugates of the oxidized xylene. In humans, hepatic microsomal CYP2E1 is the primary enzyme involved with the metabolism of xylene to methylbenzylalcohol, the dominant pathway leading to the formation of methylhippuric acid isomers. Unmetabolized xylene can be exhalated or also excreted in urine. (5)
Toxicity ValuesLD50: 1590 mg/kg (Oral, Rat) (10) LC50: 6350 ppm over 4 hours (Inhalation, Rat) (11) LD50: 1548 mg/kg (Intraperitoneal, Mouse) (12) LD50: 1700 mg/kg (Subcutaneous, Rat) (12) LD50: 6661 mg/kg/day (Oral, Rat) (5) LD50: 3228 mg/kg/day (Dermal, Rabbit) (5)
Lethal Dose50 and 500 mg/kg for an adult human. (13)
Carcinogenicity (IARC Classification)3, not classifiable as to its carcinogenicity to humans. (4)
Uses/SourcesXylene is used as a solvent and in the printing, rubber, and leather industries. It is also used as a cleaning agent, a thinner for paint, and in paints and varnishes. It is found in small amounts in airplane fuel and gasoline. Exposure to xylene may occur from breathing it in contaminated air, drinking or eating xylene-contaminated water or food, and through dermal and eye contact with xylene containing products. (5, 5)
Minimum Risk LevelAcute Inhalation: 2 ppm (3) Intermediate Inhalation: 0.6 ppm (3) Chronic Inhalation: 0.05 ppm (3) Acute Oral: 1 mg/kg/day (3) Intermediate Oral: 0.4 mg/kg/day (3) Chronic Oral: 0.2 mg/kg/day (3)
Health EffectsAcute exposure to cholinesterase inhibitors can cause a cholinergic crisis characterized by severe nausea/vomiting, salivation, sweating, bradycardia, hypotension, collapse, and convulsions. Increasing muscle weakness is a possibility and may result in death if respiratory muscles are involved. Accumulation of ACh at motor nerves causes overstimulation of nicotinic expression at the neuromuscular junction. When this occurs symptoms such as muscle weakness, fatigue, muscle cramps, fasciculation, and paralysis can be seen. When there is an accumulation of ACh at autonomic ganglia this causes overstimulation of nicotinic expression in the sympathetic system. Symptoms associated with this are hypertension, and hypoglycemia. Overstimulation of nicotinic acetylcholine receptors in the central nervous system, due to accumulation of ACh, results in anxiety, headache, convulsions, ataxia, depression of respiration and circulation, tremor, general weakness, and potentially coma. When there is expression of muscarinic overstimulation due to excess acetylcholine at muscarinic acetylcholine receptors symptoms of visual disturbances, tightness in chest, wheezing due to bronchoconstriction, increased bronchial secretions, increased salivation, lacrimation, sweating, peristalsis, and urination can occur. Certain reproductive effects in fertility, growth, and development for males and females have been linked specifically to organophosphate pesticide exposure. Most of the research on reproductive effects has been conducted on farmers working with pesticides and insecticdes in rural areas. In females menstrual cycle disturbances, longer pregnancies, spontaneous abortions, stillbirths, and some developmental effects in offspring have been linked to organophosphate pesticide exposure. Prenatal exposure has been linked to impaired fetal growth and development. Neurotoxic effects have also been linked to poisoning with OP pesticides causing four neurotoxic effects in humans: cholinergic syndrome, intermediate syndrome, organophosphate-induced delayed polyneuropathy (OPIDP), and chronic organophosphate-induced neuropsychiatric disorder (COPIND). These syndromes result after acute and chronic exposure to OP pesticides.
SymptomsDizziness, drowsiness, headache, and nausea can follow ihnalation and ingestion exposure. Burning sensations and abdominal pain can also result from ingestion. Dry skin, redness, and pain can result from dermal and eye exposure depending on the route of exposure. Conjunctivitis, dermatitis, irritation to respiratory tract, dyspnea, anorexia, vomiting, fatigue, vertigo, incoordination, irritation, gangrene and anemia can also follow xylene poisoning. (1)
TreatmentIf the compound has been ingested, rapid gastric lavage should be performed using 5% sodium bicarbonate. For skin contact, the skin should be washed with soap and water. If the compound has entered the eyes, they should be washed with large quantities of isotonic saline or water. In serious cases, atropine and/or pralidoxime should be administered. Anti-cholinergic drugs work to counteract the effects of excess acetylcholine and reactivate AChE. Atropine can be used as an antidote in conjunction with pralidoxime or other pyridinium oximes (such as trimedoxime or obidoxime), though the use of '-oximes' has been found to be of no benefit, or possibly harmful, in at least two meta-analyses. Atropine is a muscarinic antagonist, and thus blocks the action of acetylcholine peripherally.
Concentrations
Not Available
DrugBank IDNot Available
HMDB IDHMDB0059810
FooDB IDFDB005816
Phenol Explorer IDNot Available
KNApSAcK IDC00035778
BiGG IDNot Available
BioCyc IDMETA-XYLENE
METLIN IDNot Available
PDB IDNot Available
Wikipedia LinkM-xylene
Chemspider ID7641
ChEBI ID28488
PubChem Compound ID7929
Kegg Compound IDC07208
YMDB IDYMDB16043
ECMDB IDNot Available
References
Synthesis ReferenceNot Available
MSDSNot Available
General References
1. https://www.ncbi.nlm.nih.gov/pubmed/?term=14755610
2. https://www.ncbi.nlm.nih.gov/pubmed/?term=22360283
3. https://www.ncbi.nlm.nih.gov/pubmed/?term=24389912
4. Wang DL, Chen CL, Zhao C, Gao J, Kong DY, You H, Brugger J: [The solution of nonlinear function of ion mobility based on FAIMS spectrum peak position]. Guang Pu Xue Yu Guang Pu Fen Xi. 2012 Aug;32(8):2050-5.