Registered Malawi · PMRA

LOX HEAVY 106.6MG/2ML INJECTION

LIDOCAINE HYDROCHLORIDE & DEXTROSE

PMPB/PL406/4 INJECTION blood and blood forming organs INN generic

What it does

Dextrose is a form of sugar that provides energy and can be used to treat low blood sugar levels.

Commonly used for: low blood sugar (hypoglycemia), dehydration, providing energy for patients unable to eat

Read more in plain English ↓

Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.

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Registration & product details

Registration no.
PMPB/PL406/4
Registration date
13/10/2011
Expiry date
31/03/2025
Status
Registered
Active ingredient
LIDOCAINE HYDROCHLORIDE & DEXTROSE
Dosage form
INJECTION
Strength
-
Pack size
-
Therapeutic class
-
ATC class (WHO)
B05CX - Other irrigating solutions
RxNorm RxCUI
4850
Manufacturer / MAH
-
Applicant / LTR
-
Country of origin
-

Source: Pharmacy and Medicines Regulatory Authority · fetched 2026-04-21 17:37:42 · updated 2026-09-15 04:32:43

Drug Interactions

4
Check interactions

Pharmacodynamic Warnings

Lidocaine appears in TABLE 11: Drugs with CNS depressant effects

Moderate (1)

Lidocaine - increases exposure

Cimetidine increases the exposure to antiarrhythmics (lidocaine). Monitor and adjust dose.

Moderate Study

Unknown (3)

Lidocaine - increases concentration

Cobicistat potentially increases the concentration of antiarrhythmics (amiodarone, disopyramide, flecainide, lidocaine).

Unknown Theoretical

Lidocaine - increases exposure

Ciprofloxacin slightly increases the exposure to antiarrhythmics (lidocaine).

Unknown Study

Suxamethonium - increases effects

Lidocaine is predicted to increase the effects of suxamethonium.

Unknown Study

Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact

Disclaimer: This information is sourced from Pharmacy and Medicines Regulatory Authority (Malawi). Always consult a qualified healthcare professional before using any medication.

About dextrose

Dextrose is a form of sugar that provides energy and can be used to treat low blood sugar levels.

What it treats

  • low blood sugar (hypoglycemia)
  • dehydration
  • providing energy for patients unable to eat

How it works

Dextrose is quickly absorbed into the bloodstream and raises blood sugar levels, providing immediate energy.

Who it's for

Dextrose is suitable for people who need a quick source of energy, especially those with diabetes or other conditions that cause low blood sugar.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About lidocaine

Lidocaine is a local anesthetic used to numb specific areas of the body.

What it treats

  • local pain relief
  • numbing during minor surgical procedures
  • treating certain heart rhythm disorders (arrhythmias)

How it works

Lidocaine works by blocking nerve signals in the area where it is applied, which helps reduce pain.

Who it's for

Lidocaine is suitable for adults and children needing pain relief or local anesthesia.

Cautions

  • • Use with caution if taking medications that can cause drowsiness or sedation.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

Clinical monograph: Lidocainehydrochloride

BNF-referenced

Lidocaine hydrochloride is a local anesthetic of the amide type, used primarily for its analgesic properties. It is administered through various routes, including intravenous, topical, and local infiltration, to provide temporary pain relief or to manage arrhythmias. Lidocaine works by blocking sodium channels in the neuronal cell membrane, thus inhibiting the propagation of action potentials in nerves, leading to a loss of sensation in the targeted area.

Indications

  • Ventricular arrhythmias, especially after myocardial infarction
  • Local anesthesia for minor surgical procedures
  • Pain relief in conditions such as oral ulceration and inflammation

Dosage

Children: Refer to the BNF for Children

Adults: For ventricular arrhythmias, an initial intravenous bolus of 100 mg is given over a few minutes, followed by a continuous infusion of 4 mg/minute for 30 minutes, then reduced to 2 mg/minute for 2 hours, and finally to 1 mg/minute. The total dose should not exceed 3 mg/kg.

Mechanism of action

Lidocaine hydrochloride exerts its effects by blocking voltage-gated sodium channels in neurons, which inhibits the influx of sodium ions during depolarization. This action prevents the generation and conduction of nerve impulses, resulting in local anesthesia. The drug also stabilizes neuronal membranes and decreases the excitability of both peripheral and central nerves.

Pharmacodynamics

The onset of action for lidocaine is rapid, typically occurring within minutes of administration, with a duration of action that can vary based on the route of administration and the presence of additives such as epinephrine. Lidocaine can be used to manage ventricular arrhythmias by decreasing myocardial excitability and conduction velocity, thus stabilizing the cardiac rhythm.

Pharmacokinetics

Lidocaine is well-absorbed when administered intravenously, with peak plasma concentrations occurring shortly after infusion. It is extensively metabolized in the liver via cytochrome P450 enzymes, primarily CYP1A2 and CYP3A4, producing active metabolites. The elimination half-life of lidocaine ranges from 1.5 to 2 hours, and it is excreted mainly in urine. Caution is advised in cases of hepatic impairment, as the metabolism of lidocaine may be significantly reduced, leading to increased plasma levels.

Contra-indications

  • All grades of atrioventricular block
  • Severe myocardial depression
  • Sino-atrial disorders

Adverse effects

  • Anxiety
  • Arrhythmias
  • Cardiac arrest
  • Circulatory collapse
  • Confusion
  • Dizziness
  • Drowsiness
  • Euphoric mood
  • Headache
  • Hypotension (may lead to cardiac arrest)
  • Loss of consciousness
  • Methaemoglobinaemia
  • Muscle twitching
  • Nausea
  • Neurological disorders
  • Tinnitus
  • Tremor
  • Blurred vision
  • Vomiting

Interactions

  • Antiarrhythmics

Precautions

  • Acute porphyrias (consider infusion of glucose for its anti-porphyrinogenic effects)
  • Congestive cardiac failure (consider lower dose)
  • Post cardiac surgery (consider lower dose)
  • Monitor serum potassium
  • Caution in hepatic impairment (risk of increased exposure)
  • Caution in renal impairment (possible accumulation of lidocaine and active metabolites)

Pregnancy

Crosses the placenta but not known to be harmful in animal studies-use if benefit outweighs risk.

Breast-feeding

Present in milk but amount too small to be harmful.

Storage

Store in a cool, dry place away from direct sunlight.

Formulations

  • Lidocaine hydrochloride 5 mg per 1 ml solution for injection
  • Lidocaine hydrochloride 10 mg per 1 ml solution for injection
  • Lidocaine hydrochloride 10% solution for oral use
BNF 85 (British National Formulary) p.130 BNF 85 (British National Formulary) p.1352 BNF 85 (British National Formulary) p.1513 BNF for Children 2019-2020 p.99 BNF for Children 2019-2020 p.753 BNF for Children 2019-2020 p.874 PubChem / pathway

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: dextrose

BNF-referenced

Dextrose, also known as D-glucose, is a simple sugar that serves as a primary energy source for the body. It is commonly used in medical settings to treat hypoglycemia and provide caloric intake in patients unable to consume food orally. Dextrose is readily absorbed and utilized by various tissues, making it essential for cellular metabolism.

Indications

  • Hypoglycemia
  • Caloric supplementation in patients unable to eat
  • Fluid replacement therapy
  • Parenteral nutrition

Dosage

Children: Paediatric doses must be determined based on clinical condition and specific needs. Refer to the BNF for Children for appropriate dosing information.

Adults: The dosage of dextrose in adults varies based on clinical condition and route of administration. For hypoglycemia, intravenous dextrose 50% (D50W) is commonly administered. Refer to the BNF for specific dosing guidelines.

Mechanism of action

Dextrose supplies energy to tissues by generating ATP and NADH through glycolysis, where glucose is phosphorylated by hexokinase to form glucose 6-phosphate. This activates glucose for breakdown, ultimately converting glucose into energy molecules. Dextrose also plays a role in gene transcription, enzyme activity, and hormone secretion, regulating glucose homeostasis and cellular metabolic integrity.

Pharmacodynamics

Blood glucose acts as a crucial energy source for cellular activities and functions as a signaling molecule. It is oxidized into carbon dioxide and water, producing energy through glycolysis, the citric cycle, and oxidative phosphorylation. Dextrose can be converted into fat for energy storage and is stored as glycogen in the liver and muscles. Its administration, particularly orally, enhances insulin secretion due to stimulation of incretin hormones.

Pharmacokinetics

Dextrose is rapidly absorbed in the gastrointestinal tract, leading to a quick elevation of blood glucose levels. It is distributed throughout the body and can be utilized by various tissues for energy. The metabolism of dextrose primarily occurs in the liver, where it can be stored as glycogen or converted into fat. Renal excretion may occur when blood glucose levels are excessively high.

Adverse effects

  • Hyperglycemia
  • Fluid overload
  • Hypokalemia
  • Thrombophlebitis at injection site

Interactions

  • Corticosteroids may increase blood glucose levels
  • Beta-blockers may mask symptoms of hypoglycemia
  • Diuretics may cause electrolyte imbalances

Precautions

  • Use with caution in patients with diabetes mellitus
  • Monitor blood glucose levels regularly
  • Use cautiously in patients with renal impairment or heart failure

Pregnancy

Dextrose is generally considered safe for use during pregnancy when clinically indicated, but should be used with caution.

Breast-feeding

Dextrose can be used during breastfeeding as it is a natural sugar found in breast milk.

Storage

Store at room temperature, away from direct sunlight, and protect from freezing.

Formulations

  • Dextrose 5% solution for infusion
  • Dextrose 10% solution for infusion
  • Dextrose 50% solution for injection
  • Oral dextrose tablets

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: lidocaine

BNF-referenced

Lidocaine is a local anesthetic of the amide type, primarily used to provide local anesthesia through nerve blockade at various sites in the body. It works by stabilizing neuronal membranes and inhibiting ionic fluxes necessary for impulse initiation and conduction, effectively preventing pain signal propagation and generation. Lidocaine also has effects on the central nervous system and cardiovascular system, causing alterations in excitability and cardiac function at excessive blood levels.

Indications

  • Local anesthesia for surgical and diagnostic procedures
  • Management of certain types of arrhythmias
  • Topical anesthesia for mucosal surfaces

Dosage

Children: Refer to the BNF for Children for specific pediatric dosing information.

Adults: Refer to the BNF for specific dosing information.

Mechanism of action

Lidocaine acts by diffusing through neural sheaths into the axoplasm, where it is ionized and binds reversibly to sodium ion channels on nerve cell membranes. This binding keeps the channels in an open state, preventing nerve depolarization and thus blocking action potential transmission. This mechanism facilitates its anesthetic effects by aborting pain signal generation and preventing their transmission to the brain.

Pharmacodynamics

Excessive blood levels of lidocaine may lead to changes in cardiac output, total peripheral resistance, and mean arterial pressure. The block of autonomic fibers and the direct depressant effect on the cardiovascular system can cause hypotension when recommended dosages are exceeded. Lidocaine's action on sodium channels affects cardiac myocytes, potentially leading to hypotension, bradycardia, myocardial depression, arrhythmias, or even cardiac arrest.

Pharmacokinetics

Lidocaine is absorbed rapidly and widely distributed throughout the body. It undergoes extensive hepatic metabolism, primarily by cytochrome P450 enzymes, leading to various metabolites. Its elimination half-life is approximately 1.5 to 2 hours, but this can vary based on factors such as hepatic blood flow and enzyme activity.

Contra-indications

  • Hypersensitivity to lidocaine or any amide local anesthetics
  • Severe degree of heart block
  • A history of malignant hyperthermia

Adverse effects

  • Hypotension
  • Bradycardia
  • Myocardial depression
  • Cardiac arrhythmias
  • CNS stimulation followed by depression
  • Dizziness
  • Nausea
  • Vomiting
  • Tinnitus

Interactions

  • cimetidine+lidocaine: Moderate (increases exposure)
  • cobicistat+lidocaine: Unknown (increases concentration)
  • lidocaine+suxamethonium: Unknown (increases effects)
  • ciprofloxacin+lidocaine: Unknown (increases exposure)

Precautions

  • Use with caution in patients with hepatic impairment
  • Use with caution in patients with cardiac conditions
  • Monitor for signs of systemic toxicity, especially after high doses or rapid administration

Pregnancy

Lidocaine should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus. It is categorized as FDA pregnancy category B.

Breast-feeding

Lidocaine is excreted in breast milk, but at therapeutic doses, it is not expected to cause adverse effects in nursing infants. Monitor infants for any signs of sedation.

Storage

Store at room temperature, away from moisture and heat. Protect from light. Do not freeze.

Formulations

  • Lidocaine injection solution
  • Lidocaine cream
  • Lidocaine gel
  • Lidocaine patch

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Molecular reference: dextrose

PubChem CID 5793

Molecular formula: C6H12O6

Mechanism of action

Glucose supplies most of the energy to all tissues by generating energy molecules ATP and NADH during a series of metabolism reactions called glycolysis. Glycolysis can be divided into two main phases where the preparatory phase is initiated by the phosphorylation of glucose by hexokinase to form glucose 6-phosphate. The addition of the high-energy phosphate group activates glucose for the subsequent breakdown in later steps of glycolysis and is the rate-limiting step. Products end up as substrates for following reactions, to ultimately convert C6 glucose molecule into two C3 sugar molecules. These products enter the energy-releasing phase where the total of 4ATP and 2NADH molecules are generated per one glucose molecule. The total aerobic metabolism of glucose can produce up to 36 ATP molecules. These energy-producing reactions of glucose are limited to D-glucose as L-glucose cannot be phosphorylated by hexokinase. Glucose can act as precursors to generate other biomolecules such as vitamin C. It plays a role as a signaling molecule to control glucose and energy homeostasis. Glucose can regulate gene transcription, enzyme activity, hormone secretion, and the activity of glucoregulatory neurons. The types, number, and kinetics of glucose transporters expressed depends on the tissues and fine-tunes glucose uptake, metabolism, and signal generation to preserve cellular and whole body metabolic integrity. Vascular calcification is a hallmark of type 2 diabetes. Glucose stimulates calcification in culture of vascular smooth muscle cells (VSMCs) but the underlying mechanisms remain obscure. We observed that high glucose levels stimulated mouse and human VSMC trans-differentiation into chondrocytes, with increased levels of Sox9, type II collagen, glycosaminoglycan and Runx2 expression, and increased alkaline phosphatase activity and mineralization. These effects were associated with increased expression of IL-1beta, which stimulated alkaline phosphatase and calcification, suggesting that glucose induces chondrocyte differentiation of VSMCs, possibly through IL-1beta activation.

Pharmacodynamics

Blood glucose is an obligatory energy source for humans involved in various cellular activities, and it also acts as a signaling molecule for diverse glucose-sensing molecules and proteins. Glucose undergoes oxidation into carbon dioxide, water, and yields energy molecules in the process of glycolysis and subsequent citric cycle and oxidative phosphorylation. Glucose is readily converted into fat in the body which can be used as a source of energy as required. Under a similar conversion into storage of energy, glucose is stored in the liver and muscles as glycogen. Glucose stores are mobilized in a regulated manner, depending on the tissues' metabolic demands. Oral glucose tablets or injections serve to increase the supply of glucose and oral glucose administration is more effective in stimulating insulin secretion because it stimulates the incretin hormones from the gut, which promotes insulin secretion.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: lidocaine

PubChem CID 3676

Molecular formula: C14H22N2O

Mechanism of action

Lidocaine is a local anesthetic of the amide type. It is used to provide local anesthesia by nerve blockade at various sites in the body. It does so by stabilizing the neuronal membrane by inhibiting the ionic fluxes required for the initiation and conduction of impulses, thereby effecting local anesthetic action. In particular, the lidocaine agent acts on sodium ion channels located on the internal surface of nerve cell membranes. At these channels, neutral uncharged lidocaine molecules diffuse through neural sheaths into the axoplasm where they are subsequently ionized by joining with hydrogen ions. The resultant lidocaine cations are then capable of reversibly binding the sodium channels from the inside, keeping them locked in an open state that prevents nerve depolarization. As a result, with sufficient blockage, the membrane of the postsynaptic neuron will ultimately not depolarize and will thus fail to transmit an action potential. This facilitates an anesthetic effect by not merely preventing pain signals from propagating to the brain but by aborting their generation in the first place. In addition to blocking conduction in nerve axons in the peripheral nervous system, lidocaine has important effects on the central nervous system and cardiovascular system. After absorption, lidocaine may cause stimulation of the CNS followed by depression and in the cardiovascular system, it acts primarily on the myocardium where it may produce decreases in electrical excitability, conduction rate, and force of contraction. Abnormal, repetitive impulse firing arising from incomplete inactivation of Na+ channels may be involved in several diseases of muscle and nerve, including familial myotonias and neuropathic pain syndromes. Systemic local anesthetics have been shown to have clinical efficacy against myotonias and some forms of neuropathic pain, so we sought to develop an in vitro model to examine the cellular basis for these drugs' effects. In frog sciatic nerves, studied in vitro by the sucrose-gap method, peptide alpha-toxins from sea anemone (ATXII) or scorpion (LQIIa) venom, which inhibit Na+ channel inactivation, induced repetitively firing compound action potentials (CAPs) superimposed on a plateau depolarization lasting several seconds. The initial spike of the CAP was unaffected, but the plateau and repetitive firing were strongly suppressed by 5-30 uM lidocaine. Lidocaine caused a rapid, concentration-dependent decay of the plateau, quantitatively consistent with blockade of open Na(+) channels. Early and late repetitive firing were equally suppressed by lidocaine with IC50 = 10 uM. After washout of lidocaine and LQIIa, the plateau and repetitive firing remained for > 1 hr, showing that lidocaine had not caused dissociation of channel-bound alpha-toxin. These findings indicate that therapeutic concentrations of lidocaine can reverse the "abnormal" features of action potentials caused by non-inactivating Na+ channels without affecting the normal spike component. Lidocaine controls ventricular arrhythmias by suppressing automaticity in the His-Purkinje system and by suppressing spontaneous depolarization of the ventricles during diastole. These effects occur at lidocaine concentrations that do not suppress automaticity of the sinoatrial (SA) node. At therapeutic plasma concentrations, lidocaine has little effect on atrioventricular (AV) node conduction and His-Purkinje conduction in the normal heart. Specialized conducting tissues of the atria are less sensitive to the effects of lidocaine than are those of ventricular tissues. Lidocaine has a variable effect on the effective refractory period (ERP) of the AV node; the drug shortens the ERP and the action potential duration of the His-Purkinje system. Lidocaine does not appear to affect excitability of normal cardiac tissue. Prilocaine and lidocaine are classified as amide-type local anesthetics for which serious adverse effects include methemoglobinemia. Although the hydroly

Pharmacodynamics

Excessive blood levels of lidocaine can cause changes in cardiac output, total peripheral resistance, and mean arterial pressure. With central neural blockade these changes may be attributable to the block of autonomic fibers, a direct depressant effect of the local anesthetic agent on various components of the cardiovascular system, and/or the beta-adrenergic receptor stimulating action of epinephrine when present. The net effect is normally a modest hypotension when the recommended dosages are not exceeded. In particular, such cardiac effects are likely associated with the principal effect that lidocaine elicits when it binds and blocks sodium channels, inhibiting the ionic fluxes required for the initiation and conduction of electrical action potential impulses necessary to facilitate muscle contraction. Subsequently, in cardiac myocytes, lidocaine can potentially block or otherwise slow the rise of cardiac action potentials and their associated cardiac myocyte contractions, resulting in possible effects like hypotension, bradycardia, myocardial depression, cardiac arrhythmias, and perhaps cardiac arrest or circulatory collapse. Moreover, lidocaine possesses a dissociation constant (pKa) of 7.7 and is considered a weak base. As a result, about 25% of lidocaine molecules will be un-ionized and available at the physiological pH of 7.4 to translocate inside nerve cells, which means lidocaine elicits an onset of action more rapidly than other local anesthetics that have higher pKa values. This rapid onset of action is demonstrated in about one minute following intravenous injection and fifteen minutes following intramuscular injection. The administered lidocaine subsequently spreads rapidly through the surrounding tissues and the anesthetic effect lasts approximately ten to twenty minutes when given intravenously and about sixty to ninety minutes after intramuscular injection. Nevertheless, it appears that the efficacy of lidocaine may be minimized in the presence of inflammation. This effect could be due to acidosis decreasing the amount of un-ionized lidocaine molecules, a more rapid reduction in lidocaine concentration as a result of increased blood flow, or potentially also because of increased production of inflammatory mediators like peroxynitrite that elicit direct actions on sodium channels.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

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