Record Information
Version1.0
Creation Date2009-05-28 14:38:59 UTC
Update Date2026-04-05 15:29:23 UTC
Accession NumberCHEM000703
Identification
Common NameLead thiocyanate
ClassSmall Molecule
DescriptionLead thiocyanate is a chemical compound of lead and cyanide. Lead is a heavy metal and stable element with the symbol Pb and the atomic number 82, existing in metallic, organic, and inorganic forms. It is mainly found in nature as the mineral galena (PbS), cerussite (PbCO3) or anglesite (PbSO4), usually in ore with zinc, silver, or copper. (4)
Contaminant Sources
  • Clean Air Act Chemicals
  • T3DB toxins
Contaminant Type
  • Cyanide Compound
  • Industrial/Workplace Toxin
  • Inorganic Compound
  • Lead Compound
  • Nitrile
  • Organic Compound
  • Pollutant
  • Synthetic Compound
Chemical Structure
Thumb
Synonyms
ValueSource
Lead thiocyanic acidGenerator
Lead(II) thiocyanateMeSH
Chemical FormulaC2N2PbS2
Average Molecular Mass323.400 g/mol
Monoisotopic Mass323.927 g/mol
CAS Registry Number592-87-0
IUPAC Namebis(cyanosulfanyl)plumbane
Traditional Namelead thiocyanate
SMILESN#CS[Pb]SC#N
InChI IdentifierInChI=1S/2CHNS.Pb/c2*2-1-3;/h2*3H;/q;;+2/p-2
InChI KeyVRNINGUKUJWZTH-UHFFFAOYSA-L
Chemical Taxonomy
Description belongs to the class of organic compounds known as metal thiocyanates. These are metal salts of thiocyanic acid.
KingdomOrganic compounds
Super ClassOrganosulfur compounds
ClassThiocyanates
Sub ClassMetal thiocyanates
Direct ParentMetal thiocyanates
Alternative Parents
Substituents
  • Metal thiocyanate
  • Organic nitrogen compound
  • Organopnictogen compound
  • Hydrocarbon derivative
  • Organic lead salt
  • Organic salt
  • Organonitrogen compound
  • Aliphatic acyclic compound
Molecular FrameworkNot Available
External DescriptorsNot Available
Biological Properties
StatusDetected and Not Quantified
OriginExogenous
Cellular Locations
  • Cytoplasm
  • Extracellular
Biofluid LocationsNot Available
Tissue LocationsNot Available
PathwaysNot Available
ApplicationsNot Available
Biological RolesNot Available
Chemical RolesNot Available
Physical Properties
StateSolid
AppearanceWhite powder.
Experimental Properties
PropertyValue
Melting PointNot Available
Boiling PointNot Available
Solubility5 mg/mL [MERCK INDEX (1996)]
Predicted Properties
PropertyValueSource
Water Solubility7.48 g/LALOGPS
logP0.53ALOGPS
logP1.04ChemAxon
logS-1.6ALOGPS
Physiological Charge0ChemAxon
Hydrogen Acceptor Count2ChemAxon
Hydrogen Donor Count0ChemAxon
Polar Surface Area47.58 ŲChemAxon
Rotatable Bond Count2ChemAxon
Refractivity28.9 m³·mol⁻¹ChemAxon
Polarizability12.11 ųChemAxon
Number of Rings0ChemAxon
Bioavailability1ChemAxon
Rule of FiveYesChemAxon
Ghose FilterNoChemAxon
Veber's RuleNoChemAxon
MDDR-like RuleNoChemAxon
Spectra
Spectra
Spectrum TypeDescriptionSplash KeyView
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Positivesplash10-001i-0009000000-46e7620c100fed048f07Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Positivesplash10-001i-0009000000-46e7620c100fed048f07Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Positivesplash10-001i-0009000000-46e7620c100fed048f07Spectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 10V, Negativesplash10-004i-0009000000-0e27ea45497fe940cb2eSpectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 20V, Negativesplash10-004i-0009000000-0e27ea45497fe940cb2eSpectrum
Predicted LC-MS/MSPredicted LC-MS/MS Spectrum - 40V, Negativesplash10-004i-0009000000-0e27ea45497fe940cb2eSpectrum
Toxicity Profile
Route of ExposureInhalation (5) ; oral (5) ; dermal (5)
Mechanism of ToxicityLead mimics other biologically important metals, such as zinc, calcium, and iron, competing as cofactors for many of their respective enzymatic reactions. For example, lead has been shown to competitively inhibit calcium's binding of calmodulin, interferring with neurotransmitter release. It exhibits similar competitive inhibition at the NMDA receptor and protein kinase C, which impairs brain microvascular formation and function, as well as alters the blood-brain barrier. Lead also affects the nervous system by impairing regulation of dopamine synthesis and blocking evoked release of acetylcholine. However, it's main mechanism of action occurs by inhibiting delta-aminolevulinic acid dehydratase, an enzyme vital in the biosynthesis of heme, which is a necesssary cofactor of hemoglobin. Organic nitriles decompose into cyanide ions both in vivo and in vitro. Consequently the primary mechanism of toxicity for organic nitriles is their production of toxic cyanide ions or hydrogen cyanide. Cyanide is an inhibitor of cytochrome c oxidase in the fourth complex of the electron transport chain (found in the membrane of the mitochondria of eukaryotic cells). It complexes with the ferric iron atom in this enzyme. The binding of cyanide to this cytochrome prevents transport of electrons from cytochrome c oxidase to oxygen. As a result, the electron transport chain is disrupted and the cell can no longer aerobically produce ATP for energy. Tissues that mainly depend on aerobic respiration, such as the central nervous system and the heart, are particularly affected. Cyanide is also known produce some of its toxic effects by binding to catalase, glutathione peroxidase, methemoglobin, hydroxocobalamin, phosphatase, tyrosinase, ascorbic acid oxidase, xanthine oxidase, succinic dehydrogenase, and Cu/Zn superoxide dismutase. Cyanide binds to the ferric ion of methemoglobin to form inactive cyanmethemoglobin. (10, 2, 3, 6, 9)
MetabolismLead and cyanide are absorbed following inhalation, oral, and dermal exposure. Lead is then distributed mainly to the bones and red blood cells. In the blood lead may be found bound to serum albumin or the metal-binding protein metallothionein. Organic lead is metabolized by cytochrome P-450 enzymes, whereas inorganic lead forms complexes with delta-aminolevulinic acid dehydratase. Lead is excreted mainly in the urine and faeces. Organic nitriles are converted into cyanide ions through the action of cytochrome P450 enzymes in the liver. Cyanide is rapidly absorbed and distributed throughout the body. Cyanide is mainly metabolized into thiocyanate by either rhodanese or 3-mercaptopyruvate sulfur transferase. Cyanide metabolites are excreted in the urine. (5, 9)
Toxicity ValuesNot Available
Lethal Dose200 to 300 milligrams for an adult human (cyanide salts). (11)
Carcinogenicity (IARC Classification)Organic lead compounds are not classifiable as to their carcinogenicity to humans (Group 3). To the extent that organic lead compounds are metabolized in part to ionic lead, they are expected to exert the toxicities associated with inorganic lead (Group 2A, probably carcinogenic to humans). (8)
Uses/SourcesNot Available
Minimum Risk LevelChronic Inhalation: 0.05 mg/m3 (Lead) (7)
Health EffectsLead is a neurotoxin and has been known to cause brain damage and reduced cognitive capacity, especially in children. Lead exposure can result in nephropathy, as well as blood disorders such as high blood pressure and anemia. Lead also exhibits reproductive toxicity and can results in miscarriages and reduced sperm production. Exposure to high levels of cyanide for a short time harms the brain and heart and can even cause coma, seizures, apnea, cardiac arrest and death. Chronic inhalation of cyanide causes breathing difficulties, chest pain, vomiting, blood changes, headaches, and enlargement of the thyroid gland. Skin contact with cyanide salts can irritate and produce sores. (4, 5, 6)
SymptomsSymptions of chronic lead poisoning include reduced cognitive abilities, nausea, abdominal pain, irritability, insomnia, metal taste in the mouth, excess lethargy or hyperactivity, chest pain, headache and, in extreme cases, seizures, comas, and death. There are also associated gastrointestinal problems, such as constipation, diarrhea, vomiting, poor appetite, weight loss, which are common in acute poisoning. Cyanide poisoning is identified by rapid, deep breathing and shortness of breath, general weakness, giddiness, headaches, vertigo, confusion, convulsions/seizures and eventually loss of consciousness. (1, 4, 5, 6)
TreatmentLead poisoning is usually treated with chelation therapy using DMSA, EDTA, or dimercaprol. Antidotes to cyanide poisoning include hydroxocobalamin and sodium nitrite, which release the cyanide from the cytochrome system, and rhodanase, which is an enzyme occurring naturally in mammals that combines serum cyanide with thiosulfate, producing comparatively harmless thiocyanate. Oxygen therapy can also be administered. (4, 6)
Concentrations
Not Available
DrugBank IDNot Available
HMDB IDNot Available
FooDB IDNot Available
Phenol Explorer IDNot Available
KNApSAcK IDNot Available
BiGG IDNot Available
BioCyc IDNot Available
METLIN IDNot Available
PDB IDNot Available
Wikipedia LinkLead(II) thiocyanate
Chemspider IDNot Available
ChEBI IDNot Available
PubChem Compound ID11616
Kegg Compound IDNot Available
YMDB IDNot Available
ECMDB IDNot Available
References
Synthesis ReferenceNot Available
MSDSNot Available
General ReferencesNot Available