COVERSYL PLUS 5MG/1.25MG TABLETS
Perindopril arginine/Indapamide
What it does
Arginine is an amino acid that helps with various bodily functions, including blood flow and immune support.
Commonly used for: heart disease, erectile dysfunction, high blood pressure (hypertension), sickle cell disease
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Sourcing - Kenya onlyRegistration & product details
Source: Food and Drugs Authority · fetched 2026-04-18 08:37:20 · updated 2026-09-25 04:00:10
About arginine
Arginine is an amino acid that helps with various bodily functions, including blood flow and immune support.
What it treats
- heart disease
- erectile dysfunction
- high blood pressure (hypertension)
- sickle cell disease
How it works
Arginine helps produce nitric oxide, which widens blood vessels and improves blood flow.
Who it's for
Arginine is for adults who may need support for heart health, blood circulation, or sexual function.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About indapamide
Indapamide is a medication that helps to lower blood pressure and reduce swelling by helping the body get rid of excess fluid.
What it treats
- high blood pressure (hypertension)
- swelling (oedema)
How it works
It works by increasing the amount of urine your body makes, which helps to lower blood pressure and reduce fluid retention.
Who it's for
It is prescribed for adults with high blood pressure or conditions that cause swelling.
Drug class
Thiazide diuretics
Cautions
- • Be careful if you are taking other medications that lower blood pressure.
- • Caution is needed with drugs that can lower potassium levels in the blood.
- • Watch out for medications that can cause low sodium levels.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About perindopril
Perindopril is a medication that helps lower blood pressure and protect heart health.
What it treats
- high blood pressure (hypertension)
- heart failure
- to reduce the risk of heart problems after a heart attack
How it works
It works by relaxing blood vessels, making it easier for the heart to pump blood.
Who it's for
It is for adults with high blood pressure or certain heart conditions.
Drug class
ACE inhibitors
Cautions
- • Be cautious if you are taking other medications that can lower blood pressure.
- • Avoid medications that can cause low blood pressure.
- • Be aware of drugs that may increase potassium levels in the blood.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Arginine
BNF-referencedArginine is an amino acid used primarily as a dietary supplement in the management of urea cycle disorders, particularly in cases of hyperammonaemia due to various enzymatic deficiencies.
Indications
- Urea cycle disorders
- Hyperammonaemia types I and II
- Citrullinaemia
- Arginosuccinic aciduria
- Deficiency of N-acetyl glutamate synthetase
- Acute hyperammonaemia in carbamylphosphate synthetase deficiency
- Acute hyperammonaemia in ornithine transcarbamylase deficiency
Dosage
Children: Neonate: 100–300 mg/kg daily in 3–4 divided doses; Child (body-weight up to 40 kg): 6 mg/kg/hour; Child (body-weight 40 kg and above): 4 mg/kg/hour.
Adults: Refer to BNF for specific dosing based on condition; typically administered as 5–50 mg/kg twice daily, adjusted according to plasma ammonia concentration.
Mechanism of action
Arginine serves as a substrate for the synthesis of nitric oxide (NO), a crucial signaling molecule, and contributes to the urea cycle, facilitating the detoxification of ammonia in the liver.
Pharmacodynamics
As a precursor for nitric oxide, arginine plays a vital role in vasodilation and modulating blood flow. It also aids in protein synthesis and supports metabolic processes in the body.
Pharmacokinetics
Arginine is absorbed from the gastrointestinal tract and is distributed throughout the body. It undergoes hepatic metabolism, primarily via the urea cycle, and its half-life is influenced by renal function.
Pregnancy
Use only if clearly needed; consult specialist.
Breast-feeding
Use with caution; benefits should outweigh risks.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- L-Arginine 500 mg tablets
- L-Arginine 1 gram tablets
- L-Arginine powder for solution
- L-Arginine 500 mg capsules
- L-Arginine 21% concentrate for solution for infusion
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: Indapamide
BNF-referencedIndapamide is a thiazide-like diuretic primarily used for the treatment of hypertension. It exerts its antihypertensive effects by inhibiting sodium and chloride reabsorption at the distal convoluted tubule of the nephron. This results in increased urine output and a reduction in blood pressure. Indapamide is also thought to have additional mechanisms that contribute to its blood pressure-lowering effects, beyond its diuretic action.
Indications
- Essential hypertension
- Management of fluid retention
Dosage
Adults: For adult patients, the usual dose is 2.5 mg once daily, which should be taken in the morning. In cases where a modified-release formulation is used, the dose may
Mechanism of action
Indapamide acts on the nephron, specifically at the proximal segment of the distal convoluted tubule where it inhibits the Na+/Cl- cotransporter. This inhibition leads to reduced sodium reabsorption, causing sodium and water to remain in the nephron lumen for urinary excretion. Consequently, this results in decreased plasma volume, venous return, and cardiac output, ultimately lowering blood pressure. Additionally, indapamide may decrease responsiveness to pressor agents and reduce peripheral resistance, although these mechanisms require further investigation.
Pharmacodynamics
Indapamide is classified as a sulfonamide diuretic and is recognized for its efficacy in managing hypertension and preventing target organ damage. It induces water and electrolyte loss, with higher doses correlating with increased diuresis. Indapamide can cause significant electrolyte disturbances, such as hypokalemia, which may lead to QTc prolongation. It also influences plasma levels of renin and aldosterone while decreasing calcium excretion. Importantly, studies indicate that indapamide does not significantly alter glucose tolerance in hypertensive patients, although long-term metabolic effects remain to be fully elucidated.
Pharmacokinetics
Indapamide is absorbed orally and has a bioavailability that can be affected by food. It is extensively metabolized in the liver, with metabolites primarily excreted in urine. The drug has a half-life of approximately 14 to 18 hours, allowing for once-daily dosing. Renal function can influence the pharmacokinetics of indapamide, necessitating caution in patients with renal impairment due to the risk of hyperkalaemia.
Contra-indications
- Hypersensitivity to sulfonamides
- Severe renal impairment
Adverse effects
- Hypokalemia
- Dehydration
- Electrolyte disturbances
- Hypotension
- Dizziness
- Dry mouth
- Fatigue
- Restlessness
- Angina pectoris
- Arrhythmias
- Arthralgia
- Asthenia
- Chest pain
- Confusion
- Severe cutaneous adverse reactions
- Vision disorders
- Rhabdomyolysis
- QT interval prolongation
Interactions
- Potassium-sparing diuretics
- Thiazide diuretics
- Pressor agents
- Other antihypertensives
Precautions
- Caution in diabetes mellitus
- Caution in elderly patients
- Monitor electrolytes regularly
- Caution in patients with a history of acute porphyrias
- Caution in hepatic disorders
Pregnancy
No information available; use with caution and consult healthcare professional.
Breast-feeding
Avoid; no information regarding safety in breast milk.
Storage
Store at room temperature, away from moisture and heat.
Formulations
- 2.5 mg immediate-release tablet
- 1.5 mg modified-release tablet
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: perindopril
BNF-referencedPerindopril is an angiotensin-converting enzyme (ACE) inhibitor used primarily for the treatment of hypertension and heart failure. As a prodrug, it is metabolized into its active form, perindoprilat, which exerts its therapeutic effects by blocking the conversion of angiotensin I to angiotensin II, a potent vasoconstrictor. This action leads to vasodilation, reduced blood pressure, and decreased workload on the heart.
Indications
- Hypertension
- Heart failure
- Prevention of cardiovascular events in patients with coronary artery disease
Dosage
Adults: The usual
Mechanism of action
Perindoprilat, the active metabolite of perindopril, binds to and inhibits the activity of the somatic isoform of angiotensin-converting enzyme (ACE), particularly the C-domain, which plays a crucial role in blood pressure regulation. By inhibiting ACE, perindoprilat decreases the levels of angiotensin II (ATII), thereby reducing blood pressure and promoting vasodilation. Additionally, the inhibition of ATII leads to increased plasma renin activity due to the loss of feedback inhibition.
Pharmacodynamics
Perindopril is a nonsulfhydryl prodrug that undergoes first-pass metabolism and systemic hydrolysis to produce perindoprilat. This active form lowers blood pressure by antagonizing the renin-angiotensin-aldosterone system (RAAS), which is involved in regulating blood pressure and fluid balance. By inhibiting the actions of ATII, perindoprilat reduces aldosterone secretion, leading to decreased sodium and water reabsorption in the kidneys. This results in increased urine output and a decrease in blood volume, further contributing to its antihypertensive effects.
Pharmacokinetics
After oral administration, perindopril is rapidly absorbed, with a bioavailability of approximately 62%. It undergoes extensive first-pass metabolism in the liver to form its active metabolite, perindoprilat, which has a half-life of about 17 hours. Perindoprilat is primarily excreted by the kidneys, and its pharmacokinetics may be altered in patients with renal impairment. The peak plasma concentration of perindoprilat is reached within 3 to 4 hours after administration.
Contra-indications
- History of hypersensitivity to perindopril or any other ACE inhibitor
- History of angioedema associated with previous ACE inhibitor therapy
- Hereditary or idiopathic angioedema
- Severe renal impairment (creatinine clearance less than 30 mL/min)
- Pregnancy
Adverse effects
- Cough
- Hyperkalemia
- Hypotension
- Dizziness
- Fatigue
- Renal impairment
- Angioedema
Interactions
- Potassium supplements or potassium-sparing diuretics may increase the risk of hyperkalemia
- Nonsteroidal anti-inflammatory drugs (NSAIDs) may reduce the antihypertensive effect of perindopril
- Lithium levels may increase when used concurrently with perindopril
- Other antihypertensive agents may have additive effects leading to hypotension
Precautions
- Monitor renal function before and during treatment
- Use with caution in patients with aortic stenosis or hypertrophic cardiomyopathy
- Consider monitoring potassium levels in at-risk populations
- Caution in patients with a history of angioedema
Pregnancy
Perindopril is contraindicated during pregnancy due to potential harm to the fetus, particularly in the second and third trimesters.
Breast-feeding
Caution is advised as perindopril is excreted in breast milk; consult a healthcare professional before use.
Storage
Store in a cool, dry place, away from direct sunlight. Keep out of reach of children.
Formulations
- Tablets: 2 mg, 4 mg, 8 mg
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: Arginine
PubChem CID 6322Molecular formula: C6H14N4O2
Mechanism of action
Many of supplemental L-arginine's activities, including its possible anti-atherogenic actions, may be accounted for by its role as the precursor to nitric oxide or NO. NO is produced by all tissues of the body and plays very important roles in the cardiovascular system, immune system and nervous system. NO is formed from L-arginine via the enzyme nitric oxide synthase or synthetase (NOS), and the effects of NO are mainly mediated by 3,'5' -cyclic guanylate or cyclic GMP. NO activates the enzyme guanylate cyclase, which catalyzes the synthesis of cyclic GMP from guanosine triphosphate or GTP. Cyclic GMP is converted to guanylic acid via the enzyme cyclic GMP phosphodiesterase. NOS is a heme-containing enzyme with some sequences similar to cytochrome P-450 reductase. Several isoforms of NOS exist, two of which are constitutive and one of which is inducible by immunological stimuli. The constitutive NOS found in the vascular endothelium is designated eNOS and that present in the brain, spinal cord and peripheral nervous system is designated nNOS. The form of NOS induced by immunological or inflammatory stimuli is known as iNOS. iNOS may be expressed constitutively in select tissues such as lung epithelium. All the nitric oxide synthases use NADPH (reduced nicotinamide adenine dinucleotide phosphate) and oxygen (O2) as cosubstrates, as well as the cofactors FAD (flavin adenine dinucleotide), FMN (flavin mononucleotide), tetrahydrobiopterin and heme. Interestingly, ascorbic acid appears to enhance NOS activity by increasing intracellular tetrahydrobiopterin. eNOS and nNOS synthesize NO in response to an increased concentration of calcium ions or in some cases in response to calcium-independent stimuli, such as shear stress. In vitro studies of NOS indicate that the Km of the enzyme for L-arginine is in the micromolar range. The concentration of L-arginine in endothelial cells, as well as in other cells, and in plasma is in the millimolar range. What this means is that, under physiological conditions, NOS is saturated with its L-arginine substrate. In other words, L-arginine would not be expected to be rate-limiting for the enzyme, and it would not appear that supraphysiological levels of L-arginine which could occur with oral supplementation of the amino acid^would make any difference with regard to NO production. The reaction would appear to have reached its maximum level. However, in vivo studies have demonstrated that, under certain conditions, e.g. hypercholesterolemia, supplemental L-arginine could enhance endothelial-dependent vasodilation and NO production.
Pharmacodynamics
Studies have shown that is has improved immune responses to bacteria, viruses and tumor cells; promotes wound healing and regeneration of the liver; causes the release of growth hormones; considered crucial for optimal muscle growth and tissue repair.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Indapamide
PubChem CID 3702Molecular formula: C16H16ClN3O3S
Mechanism of action
Indapamide acts on the nephron, specifically at the proximal segment of the distal convoluted tubule where it inhibits the Na+/Cl- cotransporter, leading to reduced sodium reabsorption. As a result, sodium and water are retained in the lumen of the nephron for urinary excretion. The effects that follow include reduced plasma volume, reduced venous return, lower cardiac output, and ultimately decreased blood pressure. Interestingly, it is likely that thiazide-like diuretics such as indapamide have additional blood pressure lowering mechanisms that are unrelated to diuresis. This is exemplified by the observation that the antihypertensive effects of thiazides are sustained 4-6 weeks after initiation of therapy, despite recovering plasma and extracellular fluid volumes. Some studies have suggested that indapamide may decrease responsiveness to pressor agents while others have suggested it can decrease peripheral resistance. Although it is clear that diuresis contributes to the antihypertensive effects of indapamide, further studies are needed to investigate the medication’s ability to decrease peripheral vascular resistance and relax vascular smooth muscle.
Pharmacodynamics
Classified as a sulfonamide diuretic, indapamide is an effective antihypertensive agent and by extension, has shown efficacy in the prevention of target organ damage. Administration of indapamide produces water and electrolyte loss, with higher doses associated with increased diuresis. Severe and clinically significant electrolyte disturbances may occur with indapamide use - for example, hypokalemia resulting from renal potassium loss may lead to QTc prolongation. Further electrolyte imbalances may occur due to renal excretion of sodium, chloride, and magnesium. Other indapamide induced changes include increases in plasma renin and aldosterone, and reduced calcium excretion in the urine. In many studies investigating the effects of indapamide in both non-diabetic and diabetic hypertensive patients, glucose tolerance was not significantly altered. However, additional studies are necessary to assess the long term metabolic impacts of indapamide, since thiazide related impaired glucose tolerance can take several years to develop in non-diabetic patients.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: perindopril
PubChem CID 107807Molecular formula: C19H32N2O5
Mechanism of action
There are two isoforms of ACE: the somatic isoform, which exists as a glycoprotein comprised of a single polypeptide chain of 1277; and the testicular isoform, which has a lower molecular mass and is thought to play a role in sperm maturation and binding of sperm to the oviduct epithelium. Somatic ACE has two functionally active domains, N and C, which arise from tandem gene duplication. Although the two domains have high sequence similarity, they play distinct physiological roles. The C-domain is predominantly involved in blood pressure regulation while the N-domain plays a role in hematopoietic stem cell differentiation and proliferation. ACE inhibitors bind to and inhibit the activity of both domains, but have much greater affinity for and inhibitory activity against the C-domain. Perindoprilat, the active metabolite of perindopril, competes with ATI for binding to ACE and inhibits and enzymatic proteolysis of ATI to ATII. Decreasing ATII levels in the body decreases blood pressure by inhibiting the pressor effects of ATII as described in the Pharmacology section above. Perindopril also causes an increase in plasma renin activity likely due to a loss of feedback inhibition mediated by ATII on the release of renin and/or stimulation of reflex mechanisms via baroreceptors.
Pharmacodynamics
Perindopril is a nonsulfhydryl prodrug that is metabolized via first pass effect (62%) and systemic hydrolysis (38%) to perindoprilat, its active metabolite, following oral administration. Perindoprilat lowers blood pressure by antagonizing the effect of the RAAS. The RAAS is a homeostatic mechanism for regulating hemodynamics, water and electrolyte balance. During sympathetic stimulation or when renal blood pressure or blood flow is reduced, renin is released from the granular cells of the juxtaglomerular apparatus in the kidneys. In the blood stream, renin cleaves circulating angiotensinogen to ATI, which is subsequently cleaved to ATII by ACE. ATII increases blood pressure using a number of mechanisms. First, it stimulates the secretion of aldosterone from the adrenal cortex. Aldosterone travels to the distal convoluted tubule (DCT) and collecting tubule of nephrons where it increases sodium and water reabsorption by increasing the number of sodium channels and sodium-potassium ATPases on cell membranes. Second, ATII stimulates the secretion of vasopressin (also known as antidiuretic hormone or ADH) from the posterior pituitary gland. ADH stimulates further water reabsorption from the kidneys via insertion of aquaporin-2 channels on the apical surface of cells of the DCT and collecting tubules. Third, ATII increases blood pressure through direct arterial vasoconstriction. Stimulation of the Type 1 ATII receptor on vascular smooth muscle cells leads to a cascade of events resulting in myocyte contraction and vasoconstriction. In addition to these major effects, ATII induces the thirst response via stimulation of hypothalamic neurons. ACE inhibitors inhibit the rapid conversion of ATI to ATII and antagonize RAAS-induced increases in blood pressure. ACE (also known as kininase II) is also involved in the enzymatic deactivation of bradykinin, a vasodilator. Inhibiting the deactivation of bradykinin increases bradykinin levels and may sustain the effects of perindoprilat by causing increased vasodilation and decreased blood pressure.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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