Lidocaine Unit Converter

Lidocaine Unit Converter

Convert lidocaine — lignocaine in British usage — between µg/mL, mg/L and µmol/L, with the antiarrhythmic infusion range and the two facts that matter about it: toxicity is neurological before it is cardiac, and levels rise disproportionately in heart failure and liver disease.

Lidocaine converter

Mass ⇄ molar
µg/mL and mg/L are the same number; × 4.2673 gives µmol/L. The range below applies to a steady antiarrhythmic infusion — it is not a guide to local anaesthetic dosing.
1.5–5 µg/mL, the generally accepted therapeutic range for lidocaine as an antiarrhythmic, as given in Bauer's Applied Clinical Pharmacokinetics — which also notes that minor adverse effects begin to appear in some patients above about 3 µg/mL. It applies to a steady intravenous infusion and says nothing about local anaesthetic use, where dosing is by milligrams per kilogram and toxicity is judged clinically rather than by a plasma concentration.
12.8µmol/LExample

Plasma lidocaine 3 µg/mL during an antiarrhythmic infusion

The conversion

µmol/L = µg/mL × 4.2673
µg/mL = µmol/L ÷ 4.2673
because 4.2673 = 1 mg/L ÷ 234.34 g/mol, the molecular weight of lidocaine
µg/mL = mg/L
the same concentration written two ways. Lidocaine concentrations are almost always reported in µg/mL or mg/L; µmol/L appears on some European reports
MW 234.34
lidocaine, C₁₄H₂₂N₂O — <b>lignocaine</b> in British and Commonwealth usage, and the same molecule. The drug is given as the hydrochloride, whose salt weight is higher, but the assay measures the base
MEGX and GX
monoethylglycinexylidide and glycinexylidide, the active metabolites. Both accumulate during prolonged infusions and in renal impairment, and both contribute to neurological toxicity, so a total lidocaine concentration can understate the pharmacologically active load in a patient who has been infused for days
α₁-acid glycoprotein
lidocaine binds to it, and it is an acute-phase protein that rises after myocardial infarction. The measured TOTAL concentration therefore rises over the days after an infarct while the free, active concentration may not — one reason a total level can mislead in exactly the population being treated

Worked example

Plasma lidocaine 3 µg/mL during an antiarrhythmic infusion
3 µg/mL = 3.0 mg/L — the same concentration
3 × 4.2673 = 12.8 µmol/L
12.8 µmol/L sits inside the 1.5–5 µg/mL range, which is 6.4–21.3 µmol/L
It is not, however, a concentration to feel comfortable about: minor adverse effects appear in some patients above about 3 µg/mL, so this is the point at which to start asking about perioral tingling, tinnitus and drowsiness rather than the point at which to stop
Going back: 12.8 ÷ 4.2673 = 3.0 µg/mL
And in a patient with cardiac failure or cirrhosis the same infusion rate produces a higher concentration than this and takes longer to fall, because lidocaine clearance depends on hepatic blood flow

Concentration and effect

Plasma concentrationµmol/LWhat is typically seen
1.5 – 5 µg/mL6.4 – 21.3The accepted antiarrhythmic range. Minor adverse effects begin in some patients above about 3 µg/mL
Above about 5 µg/mLabove 21.3Neurological symptoms become common: perioral and lingual paraesthesia, metallic taste, light-headedness, tinnitus, visual disturbance, drowsiness, agitation, muscle twitching, slurred speech
Higher stillSeizures, then respiratory depression and coma
Higher againCardiac effects — conduction slowing, widened QRS, hypotension, bradyarrhythmia and ultimately asystole
The order of that sequence is the clinically useful part: with lidocaine the central nervous system fails before the heart does, so perioral tingling and tinnitus in a patient on an infusion are the warning, not a curiosity. Individual thresholds vary widely and the concentrations at which each stage appears overlap, which is why the table gives a sequence rather than numbers for each step. Local anaesthetic systemic toxicity from infiltration or a block follows the same sequence but is diagnosed and treated clinically — with lipid emulsion — and never by waiting for a level.

Why heart failure and liver disease change everything

SituationEffect on lidocaineConsequence
Cardiac failure or shockReduced hepatic blood flow reduces clearance; the volume of distribution is also smallerA standard infusion rate produces a substantially higher concentration, and a standard loading dose a higher peak. Rates must be reduced
Hepatic impairment, cirrhosisReduced clearance, both from reduced blood flow and reduced enzyme capacityConcentrations rise and fall slowly; accumulation over a prolonged infusion is the usual pattern
Prolonged infusion (over 24 hours)The apparent half-life lengthens and the active metabolites MEGX and GX accumulateToxicity can appear on day two at an infusion rate that was safe on day one
Renal impairmentLittle effect on lidocaine itself; the metabolites accumulateNeurological toxicity out of proportion to the parent drug concentration
Days after myocardial infarctionα₁-acid glycoprotein rises, increasing protein bindingThe measured total concentration rises while the free, active fraction may not — a total level can look toxic when it is not, or mask a change
Beta blockers, amiodarone, cimetidineReduced hepatic blood flow or inhibited metabolismHigher concentrations on an unchanged rate
Lidocaine has a high hepatic extraction ratio, so its clearance is limited by how much blood the liver receives rather than by enzyme capacity — flow-dependent clearance. That single property explains why the patients most likely to be given an antiarrhythmic lidocaine infusion, those with a failing or infarcted heart, are also the patients in whom it accumulates fastest.

When a lidocaine level is and is not the right test

SettingIs a level useful?
Prolonged antiarrhythmic infusion, particularly with cardiac failure or hepatic impairmentSometimes — to confirm accumulation or to explain neurological symptoms, alongside the clinical picture
Suspected toxicity during an infusion, with equivocal symptomsOccasionally, as supporting evidence. Management does not wait for it
Local anaesthetic systemic toxicity after infiltration, a block or tumescent anaesthesiaNo. This is a clinical emergency treated on recognition with lipid emulsion and resuscitation; a level arrives far too late to be of use and must never be waited for
Routine monitoring of a short antiarrhythmic infusion in a stable patientRarely. Monitoring is by rhythm, blood pressure and symptoms
Topical, dental or dermatological useNo
Lidocaine monitoring is uncommon, and it has become less common as lidocaine's role as a routine antiarrhythmic has receded — the practice of prophylactic lidocaine after myocardial infarction was abandoned decades ago. Where a level is sent it is usually to explain something: unexpected confusion, twitching or seizures in a patient who has been infused for a day or more, or an infusion in someone whose liver blood flow makes accumulation likely.

Lignocaine by another name, neurology before cardiology, and a clearance that depends on blood flow

Lidocaine — lignocaine in British and Commonwealth usage, and the same molecule either way — is reported in micrograms per millilitre, identically in milligrams per litre, or occasionally in micromoles per litre. Its molecular weight is 234.34, so one microgram per millilitre is 4.2673 micromoles per litre and a concentration of 3 µg/mL is 12.8 µmol/L. The generally accepted therapeutic range for lidocaine as an antiarrhythmic is 1.5 to 5 µg/mL, which is 6.4 to 21.3 µmol/L, and minor adverse effects begin to appear in some patients above about 3 µg/mL — so the middle of the range is not a place to relax.

Monitoring lidocaine is uncommon. Its role as a routine antiarrhythmic has shrunk considerably since prophylactic lidocaine after myocardial infarction was abandoned, and most lidocaine given today is given as a local anaesthetic, where dosing is by milligrams per kilogram and no plasma concentration is involved. Where a level is sent, it is almost always to make sense of a prolonged antiarrhythmic infusion — to explain neurological symptoms, or to confirm accumulation in a patient whose liver or heart makes it likely.

The clinically essential fact about lidocaine toxicity is its order. The central nervous system fails before the heart does. The sequence begins with perioral or lingual paraesthesia, a metallic taste, light-headedness and tinnitus; it moves on to visual disturbance, agitation, drowsiness, muscle twitching, slurred speech and confusion; then seizures, respiratory depression and coma; and only at higher concentrations still do the cardiac effects appear — conduction slowing, a widened QRS, hypotension, bradyarrhythmia and ultimately asystole. Anyone looking after a lidocaine infusion is therefore watching for tingling lips and ringing ears, because those are the early signals and they arrive while there is still time. Individual thresholds vary too widely for a number to be the trigger. Local anaesthetic systemic toxicity after infiltration, a nerve block or tumescent anaesthesia follows the same progression, and is a clinical emergency treated on recognition with lipid emulsion and resuscitation: a plasma level has no part in that decision and must never be waited for.

The second essential fact is pharmacokinetic. Lidocaine has a high hepatic extraction ratio, which means its clearance is limited by how much blood reaches the liver rather than by enzyme capacity — flow-dependent clearance. Cardiac failure and shock reduce hepatic blood flow, so the same infusion rate produces a substantially higher concentration, and the volume of distribution is smaller as well, so a standard loading dose produces a higher peak. Hepatic impairment reduces clearance for both reasons at once. The result is an unwelcome coincidence: the patients most likely to receive an antiarrhythmic lidocaine infusion — those with a failing or recently infarcted heart — are the patients in whom it accumulates fastest. Two further complications sit on top of that. The active metabolites monoethylglycinexylidide and glycinexylidide build up during infusions lasting more than a day and in renal impairment, contributing neurological toxicity that the parent concentration understates; and α₁-acid glycoprotein, which binds lidocaine, rises as an acute-phase protein after myocardial infarction, so the measured total concentration can climb while the free, active fraction does not. A lidocaine level is therefore a piece of evidence about an infusion, to be read with the patient’s symptoms, their liver and cardiac function and how long the infusion has been running. It does not set the rate.

Frequently asked questions

How do you convert lidocaine from µg/mL to µmol/L?

Multiply by 4.2673, which is one milligram per litre divided by lidocaine’s molecular weight of 234.34 g/mol. A concentration of 3 µg/mL is 12.8 µmol/L, and dividing by the same factor goes back. µg/mL and mg/L are the same number, so no conversion is needed between them.

Is lignocaine the same as lidocaine?

Yes — lignocaine is the British and Commonwealth name and lidocaine the international non-proprietary name for the same molecule, C₁₄H₂₂N₂O, molecular weight 234.34. Older UK reports, textbooks and local protocols may use either, and no conversion or adjustment is involved. The drug is given as lidocaine hydrochloride, but the assay measures the base, so the salt weight does not enter the arithmetic.

What is the therapeutic range for lidocaine?

1.5–5 µg/mL, equivalently 1.5–5 mg/L or 6.4–21.3 µmol/L, for lidocaine used as an antiarrhythmic by intravenous infusion — with minor adverse effects appearing in some patients above about 3 µg/mL. It does not apply to local anaesthetic use, where dosing is by milligrams per kilogram and toxicity is recognised clinically rather than measured.

What are the first signs of lidocaine toxicity?

Neurological, not cardiac. Perioral or lingual numbness and tingling, a metallic taste, light-headedness and tinnitus come first, followed by visual disturbance, agitation, drowsiness, muscle twitching, slurred speech and confusion, then seizures. Cardiac effects — conduction slowing, a widened QRS, hypotension, bradyarrhythmia and at extreme concentrations asystole — appear only at higher concentrations. That order is why a patient on an infusion who reports tingling lips or ringing ears is taken seriously immediately.

Why do lidocaine levels rise so much in heart failure and liver disease?

Because lidocaine has a high hepatic extraction ratio, so its clearance is limited by hepatic blood flow rather than by enzyme capacity. Cardiac failure and shock reduce that flow, and the volume of distribution is smaller too, so the same infusion rate yields a considerably higher concentration and the same loading dose a higher peak. Hepatic impairment reduces clearance by both mechanisms. Infusion rates have to be reduced in these patients, and a concentration that has risen falls more slowly than expected.

Should you wait for a lidocaine level in suspected local anaesthetic systemic toxicity?

No, never. Local anaesthetic systemic toxicity after infiltration, a nerve block or tumescent anaesthesia is a clinical emergency recognised from its progression — perioral tingling, tinnitus and confusion moving to seizures and cardiovascular collapse — and treated immediately with stopping the injection, airway and seizure management, lipid emulsion and full resuscitation. A plasma level takes far too long to return and contributes nothing to that decision.

Related calculators

References

  1. Bauer LA. Lidocaine. In: Applied Clinical Pharmacokinetics. 2nd ed. New York: McGraw-Hill; 2008: chapter 7. “The generally accepted therapeutic range for lidocaine is 1.5–5 µg/mL”; minor adverse effects above 3 µg/mL in some patients.
  2. Collinsworth KA, Kalman SM, Harrison DC. The clinical pharmacology of lidocaine as an antiarrhythmic drug. Circulation. 1974;50(6):1217–1230.
  3. Thomson PD, Melmon KL, Richardson JA, et al. Lidocaine pharmacokinetics in advanced heart failure, liver disease, and renal failure in humans. Ann Intern Med. 1973;78(4):499–508.
  4. Neal JM, Neal EJ, Weinberg GL. American Society of Regional Anesthesia and Pain Medicine local anesthetic systemic toxicity checklist: 2020 version. Reg Anesth Pain Med. 2021;46(1):81–82.
  5. Torp KD, Metheny E, Simon LV. Lidocaine toxicity. In: StatPearls. Treasure Island FL: StatPearls Publishing; 2024.

Medical Disclaimer: The tools and content provided here are for educational and reference purposes only. They are not intended to substitute for professional medical advice, diagnosis, or treatment. Clinical decisions should always be based on the comprehensive assessment of a qualified healthcare professional.