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Drug Interactions between atenolol / chlorthalidone and Urin D/S

This report displays the potential drug interactions for the following 2 drugs:

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Major

chlorthalidone sodium biphosphate

Applies to: atenolol / chlorthalidone and Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

MONITOR CLOSELY: The following interaction applies only to products containing sodium biphosphate that are used for bowel cleansing. It does not apply to products containing sodium biphosphate that are used for other, non-laxative related purposes.

Coadministration with agents that affect renal function or perfusion such as diuretics, ACE inhibitors, angiotensin receptor blockers, and nonsteroidal anti-inflammatory drugs (NSAIDs) may increase the risk of acute phosphate nephropathy associated with the use of bowel-cleansing phosphate solutions. The risk and/or severity of fluid and electrolyte disturbances may also be increased, which can lead to serious adverse events including cardiac arrhythmias, seizures, and renal impairment. Acute phosphate nephropathy is a rare adverse event that presents as acute renal failure with minimal proteinuria and a bland urine sediment. Renal biopsy findings are consistent with nephrocalcinosis and include acute and/or chronic renal tubular injury, calcium-phosphate crystal deposition in the distal tubules and collecting ducts, and no other pattern of histological injury. The risk of acute phosphate nephropathy stems from the large phosphate load, fluid shifts, and decreased intravascular volume, which can be exacerbated in the presence of medications that affect renal perfusion or function. In reported cases, acute renal failure was typically diagnosed within two to five months of colonoscopy. These cases often resulted in permanent impairment of renal function, some requiring long-term dialysis.

MANAGEMENT: Caution is advised when bowel-cleansing phosphate preparations are prescribed in patients treated with agents that affect renal function or perfusion, particularly if they are frail or elderly. Bowel-cleansing phosphate preparations should not be used in patients who have impaired renal function or perfusion, dehydration, or uncorrected electrolyte abnormalities. In patients at risk for acute phosphate nephropathy, baseline and postprocedure labs including serum electrolytes, calcium, phosphate, BUN, and creatinine should be performed. Patients should be advised not to exceed the recommended dosage of their bowel-cleansing preparation and to drink sufficient quantities of clear fluids during before, during, and after bowel cleansing. Limited data suggest that administration of an electrolyte rehydration solution may attenuate the electrolyte abnormalities and hypovolemia. Hospitalization and intravenous fluid hydration may be appropriate for frail or elderly patients who may be unable to drink an adequate volume of fluid.

References (3)
  1. (2007) "Product Information. Fleet Phospho Soda (sodium acid phosphate-sodium phosphate)." Fleet, CB
  2. (2007) "Product Information. Visicol (sodium acid phosphate-sodium phosphate)." Salix Pharmaceuticals
  3. FDA. Food and Drug Admnistration (2007) Oral sodium phosphate products for bowel cleansing. http://www.fda.gov/cder/drug/InfoSheets/HCP/OSP_solutionHCP.pdf
Major

sodium biphosphate phenyl salicylate

Applies to: Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate) and Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

MONITOR CLOSELY: The following interaction applies only to products containing sodium biphosphate that are used for bowel cleansing. It does not apply to products containing sodium biphosphate that are used for other, non-laxative related purposes.

Coadministration with agents that affect renal function or perfusion such as diuretics, ACE inhibitors, angiotensin receptor blockers, and nonsteroidal anti-inflammatory drugs (NSAIDs) may increase the risk of acute phosphate nephropathy associated with the use of bowel-cleansing phosphate solutions. The risk and/or severity of fluid and electrolyte disturbances may also be increased, which can lead to serious adverse events including cardiac arrhythmias, seizures, and renal impairment. Acute phosphate nephropathy is a rare adverse event that presents as acute renal failure with minimal proteinuria and a bland urine sediment. Renal biopsy findings are consistent with nephrocalcinosis and include acute and/or chronic renal tubular injury, calcium-phosphate crystal deposition in the distal tubules and collecting ducts, and no other pattern of histological injury. The risk of acute phosphate nephropathy stems from the large phosphate load, fluid shifts, and decreased intravascular volume, which can be exacerbated in the presence of medications that affect renal perfusion or function. In reported cases, acute renal failure was typically diagnosed within two to five months of colonoscopy. These cases often resulted in permanent impairment of renal function, some requiring long-term dialysis.

MANAGEMENT: Caution is advised when bowel-cleansing phosphate preparations are prescribed in patients treated with agents that affect renal function or perfusion, particularly if they are frail or elderly. Bowel-cleansing phosphate preparations should not be used in patients who have impaired renal function or perfusion, dehydration, or uncorrected electrolyte abnormalities. In patients at risk for acute phosphate nephropathy, baseline and postprocedure labs including serum electrolytes, calcium, phosphate, BUN, and creatinine should be performed. Patients should be advised not to exceed the recommended dosage of their bowel-cleansing preparation and to drink sufficient quantities of clear fluids during before, during, and after bowel cleansing. Limited data suggest that administration of an electrolyte rehydration solution may attenuate the electrolyte abnormalities and hypovolemia. Hospitalization and intravenous fluid hydration may be appropriate for frail or elderly patients who may be unable to drink an adequate volume of fluid.

References (3)
  1. (2007) "Product Information. Fleet Phospho Soda (sodium acid phosphate-sodium phosphate)." Fleet, CB
  2. (2007) "Product Information. Visicol (sodium acid phosphate-sodium phosphate)." Salix Pharmaceuticals
  3. FDA. Food and Drug Admnistration (2007) Oral sodium phosphate products for bowel cleansing. http://www.fda.gov/cder/drug/InfoSheets/HCP/OSP_solutionHCP.pdf
Moderate

atenolol chlorthalidone

Applies to: atenolol / chlorthalidone and atenolol / chlorthalidone

MONITOR: Although they are often combined in clinical practice, diuretics and beta-blockers may increase the risk of hyperglycemia and hypertriglyceridemia in some patients, especially in patients with diabetes or latent diabetes. In addition, the risk of QT interval prolongation and arrhythmias (e.g. torsades de pointes) due to sotalol may be increased by potassium-depleting diuretics.

MANAGEMENT: Monitoring of serum potassium levels, blood pressure, and blood glucose is recommended during coadministration. Patients should be advised to seek medical assistance if they experience dizziness, weakness, fainting, fast or irregular heartbeats, or loss of blood glucose control.

References (5)
  1. Dornhorst A, Powell SH, Pensky J (1985) "Aggravation by propranolol of hyperglycaemic effect of hydrochlorothiazide in type II diabetics without alteration of insulin secretion." Lancet, 1, p. 123-6
  2. Roux A, Le Liboux A, Delhotal B, Gaillot J, Flouvat B (1983) "Pharmacokinetics in man of acebutolol and hydrochlorothiazide as single agents and in combination." Eur J Clin Pharmacol, 24, p. 801-6
  3. Dean S, Kendall MJ, Potter S, Thompson MH, Jackson DA (1985) "Nadolol in combination with indapamide and xipamide in resistant hypertensives." Eur J Clin Pharmacol, 28, p. 29-33
  4. (2002) "Product Information. Lozol (indapamide)." Rhone Poulenc Rorer
  5. Marcy TR, Ripley TL (2006) "Aldosterone antagonists in the treatment of heart failure." Am J Health Syst Pharm, 63, p. 49-58
Moderate

atenolol hyoscyamine

Applies to: atenolol / chlorthalidone and Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

MONITOR: Anticholinergic agents frequently cause drowsiness and other central nervous system-depressant effects that may be additive with those induced by beta blockers. In addition, these agents may increase heart rate and theoretically may counteract the bradycardic effects of beta blockers. Pharmacokinetically, anticholinergic agents may delay the gastrointestinal absorption of beta blockers and other drugs that are administered orally. The proposed mechanism involves increased gastrointestinal transit time due to reduction of stomach and intestinal motility by anticholinergic agents. In healthy volunteers, pretreatment with propantheline has been shown to prolong the time to reach peak plasma concentration (Tmax) for both atenolol and metoprolol. Propantheline also decreased metoprolol peak plasma concentration (Cmax) but had no effect on its systemic exposure (AUC). In contrast, propantheline increased atenolol AUC but had no effect on its Cmax. The clinical relevance of these changes is probably minimal.

MANAGEMENT: Clinicians should be aware of the potential for diminished effects of beta blockers during coadministration with anticholinergic agents. Patients should also be monitored for potentially excessive CNS adverse effects (e.g., drowsiness, dizziness, lightheadedness, confusion, blurred vision) if these agents are used in combination. Patients should be counseled to avoid activities requiring mental alertness until they know how these agents affect them.

References (6)
  1. Briant RH, Dorrington RE, Ferry DG, Paxton JW (1983) "Bioavailability of metoprolol in young adults and the elderly, with additional studies on the effects of metoclopramide and probanthine." Eur J Clin Pharmacol, 25, p. 353-6
  2. Clark JM, Seager SJ (1983) "Gastric emptying following premedication with glycopyrrolate or atropine." Br J Anaesth, 55, p. 1195-9
  3. Regardh CG, Lundborg P, Persson BA (1981) "The effect of antacid, metoclopramide, and propantheline on the bioavailability of metoprolol and atenolol." Biopharm Drug Dispos, 2, p. 79-87
  4. Gilman AG, eds., Nies AS, Rall TW, Taylor P (1990) "Goodman and Gilman's the Pharmacological Basis of Therapeutics." New York, NY: Pergamon Press Inc.
  5. Cerner Multum, Inc. "UK Summary of Product Characteristics."
  6. Cerner Multum, Inc. "Australian Product Information."
Moderate

methenamine chlorthalidone

Applies to: Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate) and atenolol / chlorthalidone

GENERALLY AVOID: Agents that can alkalinize the urine such as thiazide diuretics, carbonic anhydrase inhibitors, and antacids may decrease the antibacterial effectiveness of methenamine by inhibiting its conversion to formaldehyde. Methenamine is most effectively converted in an acidic milieu of pH less than 5.5.

MANAGEMENT: Concomitant use of methenamine-containing preparations with thiazide diuretics, carbonic anhydrase inhibitors, or large doses of antacids should be avoided if possible. Otherwise, frequent urine pH testing may be considered. Some methenamine products may be used with antacids if dosing times are separated by at least one hour. Consult the manufacturer's product labeling for specific recommendations.

References (5)
  1. Musher D, Griffith D (1974) "Generation of formaldehyde from methenamine: effect of pH and concentration, and antibacterial effect." Antimicrob Agents Chemother, 6, p. 708-11
  2. Kevorkian C, Merritt J, Ilstrup D (1984) "Methenamine mandelate with acidification: an effective urinary antiseptic in patients with neurogenic bladder." Mayo Clin Proc, 59, p. 523
  3. (2002) "Product Information. Hiprex (methenamine)." Hoechst Marion Roussel
  4. Sand TE, Jacobsen S (1981) "Effect of urine pH and flow on renal clearance of methotrexate." Eur J Clin Pharmacol, 19, p. 453-6
  5. (2016) "Product Information. Hyophen (benzoic acid/hyoscy/methen/mblue/phenylsal)." BioComp Pharma
Moderate

chlorthalidone phenyl salicylate

Applies to: atenolol / chlorthalidone and Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

MONITOR: Concomitant use of nonsteroidal anti-inflammatory drugs (NSAIDs) and diuretics may adversely affect renal function due to NSAID inhibition of the renal synthesis of prostaglandins that help maintain renal perfusion in dehydrated states. The risk may be increased in patients on dietary sodium restriction. At the same time, hypotensive effect of the diuretics may be reduced because inhibition of prostaglandins can lead to unopposed pressor activity and, consequently, elevation in blood pressure. Natriuretic and diuretic effects may also be reduced, as NSAIDs have been reported to cause sodium and water retention, which may account for the increased risk of congestive heart failure associated with the combination. One study showed an increase in the incidence density of congestive heart failure (in patients over 55 years of age) from 9.3 per 1,000 person-years in patients on diuretics to 23.3 per 1,000 person-years in patients on both diuretic and NSAID therapy. NSAIDs may also increase the risk of hyperkalemia associated with potassium-sparing diuretics.

MANAGEMENT: In patients receiving both diuretic and NSAID therapy, management consists of avoiding dehydration and carefully monitoring the patient's renal function and blood pressure. If renal insufficiency or hyperkalemia develops, both drugs should be discontinued until the condition is corrected.

References (33)
  1. Allan SG, Knox J, Kerr F (1981) "Interaction between diuretics and indomethacin." Br Med J, 283, p. 1611
  2. McCarthy JT, Torres VE, Romero JC, et al. (1982) "Acute intrinsic renal failure induced by indomethacin." Mayo Clin Proc, 57, p. 289-96
  3. Favre L, Glasson P, Vallotton MB (1982) "Reversible acute renal failure from combined triamterene and indomethacin." Ann Intern Med, 96, p. 317-20
  4. Poe TE, Scott RB, Keith JF Jr (1983) "Interaction of indomethacin with furosemide." J Fam Pract, 16, p. 610-6
  5. Ahmad S (1984) "Indomethacin-bumetanide interaction: an alert." Am J Cardiol, 54, p. 246-7
  6. Dixey JJ, Noormohamed FH, Lant AF, Brewerton DA (1987) "The effects of naproxen and sulindac on renal function and their interaction with hydrochlorothiazide and piretanide in man." Br J Clin Pharmacol, 23, p. 55-63
  7. Brater DC, Fox WR, Chennavasin P (1981) "Interaction studies with bumetanide and furosemide: effects of probenecid and of indomethacin on response to bumetanide in man." J Clin Pharmacol, 21, p. 647-53
  8. Smith DE, Brater DC, Lin ET, Benet LZ (1979) "Attenuation of furosemide's diuretic effect by indomethacin: pharmacokinetic evaluation." J Pharmacokinet Biopharm, 7, p. 265-74
  9. Mor R, Pitlik S, Rosenfeld JB (1983) "Indomethacin- and Moduretic--induced hyperkalemia." Isr J Med Sci, 19, p. 535-7
  10. Kaufman J, Hamburger R, Matheson J, Flamenbaum W (1981) "Bumetanide-induced diuresis and natriuresis: effect of prostaglandin synthetase inhibition." J Clin Pharmacol, 21, p. 663-7
  11. Favre L, Glasson P, Riondel A, Vallotton MB (1983) "Interaction of diuretics and non-steroidal anti-inflammatory drugs in man." Clin Sci, 64, p. 407-15
  12. Pedrinelli R, Magagna A, Arzilli F, et al. (1980) "Influence of indomethacin on the natriuretic and renin-stimulating effect of bumetanide in essential hypertension." Clin Pharmacol Ther, 28, p. 722-31
  13. Weinberg MS, Quigg RJ, Salant DJ, Bernard DB (1985) "Anuric renal failure precipitated by indomethacin and triamterene." Nephron, 40, p. 216-8
  14. Furst DE (1988) "Clinically important interactions of nonsteroidal antiinflammatory drugs with other medications." J Rheumatol Suppl, 17, p. 58-62
  15. Gehr T, Sica DA, Steigler BW, Marshall C (1990) "Interaction of triamterene-hydrochlorothiazide (T-H) and ibuprofen (I)." Clin Pharmacol Ther, 47, p. 200
  16. (2002) "Product Information. HydroDIURIL (hydrochlorothiazide)." Merck & Co., Inc
  17. Watkins J, Abbot EC, Hensby CN, Webster J, Dollery CT (1980) "Attenuation of hypotensive effect of propranolol and thiazide diuretics by indomethacin." Br Med J, 281, p. 702-5
  18. Salerno F, Lorenzano E, Maggi A, Badalamenti S, Minuz P, Degan M, Chinea B, Scotti A (1993) "Effects of imidazole-salicylate on renal function and the diuretic action of furosemide in cirrhotic patients with ascites." J Hepatol, 19, p. 279-84
  19. Ripley EB, Gehr TW, Wallace H, Wade J, Kish C, Sica DA (1994) "The effect of nonsteroidal agents (NSAIDs) on the pharmacokinetics and pharmacodynamics of metolazone." Int J Clin Pharmacol Ther, 32, p. 12-8
  20. Desaulles E, Schwartz J (1979) "A comparative study of the action of frusemide and methyclothiazide on renin release by rat kidney slices and the interaction with indomethacin." Br J Pharmacol, 65, p. 193-6
  21. Muller FO, Schall R, Devaal AC, Groenewoud G, Hundt HKL, Middle MV (1995) "Influence of meloxicam on furosemide pharmacokinetics and pharmacodynamics in healthy volunteers." Eur J Clin Pharmacol, 48, p. 247-51
  22. Gurwitz JH, Everitt DE, Monane M, et al. (1996) "The impact of ibuprofen on the efficacy of antihypertensive treatment with hydrochlorothiazide in elderly persons." J Gerontol A Biol Sci Med Sci, 51, m74-9
  23. Heerdink ER, Leufkens HG, Herings RM, Ottervanger JP, Stricker BH, Bakker A (1998) "NSAIDs associated with increased risk of congestive heart failure in elderly patients taking diuretics." Arch Intern Med, 158, p. 1108-12
  24. Bartoli E, Arras S, Faedda R, Soggia G, Satta A, Olmeo NA (1980) "Blunting of furosemide diuresis by aspirin in man." J Clin Pharmacol, 20, p. 452-8
  25. Tobert MB, Ostaszewski T, Reger B, Meisinger MA, Cook TJ (1980) "Diflunisal-furosemide interaction." Clin Pharmacol Ther, 27, p. 289-90
  26. Planas R, Arroyo V, Rimola A, Perez-Ayuso RM, Rodes J (1983) "Acetylsalicylic acid suppresses the renal hemodynamic effect and reduces the diuretic action of furosemide in cirrhosis with ascites." Gastroenterology, 84, p. 247-52
  27. Wilson TW, McCauley FA, Wells HD (1986) "Effects of low-dose aspirin on responsses to furosemide." J Clin Pharmacol, 26, p. 100-5
  28. Valette H, Apoil E (1979) "Interaction between salicylate and two loop diuretics." Br J Clin Pharmacol, 8, p. 592-4
  29. Leary WP, Reyes AJ (1984) "Drug interactions with diuretics." S Afr Med J, 65, p. 455-61
  30. Bennett WM (1997) "Drug interactions and consequences of sodium restriction." Am J Clin Nutr, 65, S678-81
  31. Marcy TR, Ripley TL (2006) "Aldosterone antagonists in the treatment of heart failure." Am J Health Syst Pharm, 63, p. 49-58
  32. Cerner Multum, Inc. "UK Summary of Product Characteristics."
  33. Perazella MA (2000) "Drug-induced hyperkalemia: old culprits and new offenders." Am J Med, 109, p. 307-14
Minor

chlorthalidone hyoscyamine

Applies to: atenolol / chlorthalidone and Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

Anticholinergic agents may increase the absorption and oral bioavailability of thiazide diuretics. The proposed mechanism involves increased gastrointestinal transit time due to reduction of stomach and intestinal motility by anticholinergic agents. In six healthy volunteers, pretreatment with propantheline prolonged the time to reach peak plasma concentration (Tmax) for hydrochlorothiazide from 2.4 to 4.8 hours and increased its total 48-hour urinary recovery by 36%. Similar results were reported for chlorothiazide in another study. The clinical significance of these changes is unknown.

References (2)
  1. Osman MA, Welling PG (1983) "Influence of propantheline and metoclopramide on the bioavailability of chlorothiazide." Curr Ther Res Clin Exp, 34, p. 404-8
  2. Beermann B, Groschinsky-Grind M (1978) "Enhancement of the gastrointestinal absorption of hydrochlorothiazide by propantheline." Eur J Clin Pharmacol, 13, p. 385-7

Drug and food interactions

Moderate

atenolol food

Applies to: atenolol / chlorthalidone

GENERALLY AVOID: Orange juice may moderately reduce the bioavailability of atenolol by interfering with its absorption from the gastrointestinal tract. In a pharmacokinetic study, subjects ingested 200 mL orange juice 3 times daily for 3 days and twice daily on the fourth day, and took 50 mg atenolol with 200 mL orange juice on day 3. The average peak plasma concentration (Cmax) of atenolol fell by 49% and the area under the concentration-time curve (AUC) fell by 40% in comparison to subjects who drank only water. In addition, the presence of food may reduce the bioavailability of atenolol by 20%. The clinical significance is unknown.

MANAGEMENT: Patients treated orally with atenolol should be advised to take atenolol at the same time each day and to avoid consumption of large amounts of orange juice to prevent any undue fluctuations in serum drug levels. Monitoring for altered efficacy of atenolol may be advisable.

References (1)
  1. Lilja JJ, Raaska K, Neuvonen PJ (2005) "Effects of orange juice on the pharmacokinetics of atenolol." Eur J Clin Pharmacol
Moderate

sodium biphosphate food

Applies to: Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

ADJUST DOSING INTERVAL: Bowel cleansing products can increase the gastrointestinal transit rate. Oral medications administered within one hour of the start of administration of the bowel cleansing solution may be flushed from the gastrointestinal tract and not properly absorbed.

MANAGEMENT: Patients should be advised that absorption of oral medications may be impaired during bowel cleansing treatment. Oral medications (e.g., anticonvulsants, oral contraceptives, antidiabetic agents, antibiotics) should not be administered during and within one hour of starting bowel cleansing treatment whenever possible. However, if concomitant use cannot be avoided, monitoring for reduced therapeutic effects may be advisable.

References (2)
  1. "Product Information. Golytely (polyethylene glycol 3350 with electrolytes)." Braintree
  2. (2022) "Product Information. Prepopik (citric acid/magnesium oxide/sodium picosulfate)." Ferring Pharmaceuticals Inc
Moderate

atenolol food

Applies to: atenolol / chlorthalidone

MONITOR: Many psychotherapeutic and CNS-active agents (e.g., anxiolytics, sedatives, hypnotics, antidepressants, antipsychotics, opioids, alcohol, muscle relaxants) exhibit hypotensive effects, especially during initiation of therapy and dose escalation. Coadministration with antihypertensives and other hypotensive agents, in particular vasodilators and alpha-blockers, may result in additive effects on blood pressure and orthostasis.

MANAGEMENT: Caution and close monitoring for development of hypotension is advised during coadministration of these agents. Some authorities recommend avoiding alcohol in patients receiving vasodilating antihypertensive drugs. Patients should be advised to avoid rising abruptly from a sitting or recumbent position and to notify their physician if they experience dizziness, lightheadedness, syncope, orthostasis, or tachycardia. Patients should also avoid driving or operating hazardous machinery until they know how the medications affect them.

References (10)
  1. Sternbach H (1991) "Fluoxetine-associated potentiation of calcium-channel blockers." J Clin Psychopharmacol, 11, p. 390-1
  2. Shook TL, Kirshenbaum JM, Hundley RF, Shorey JM, Lamas GA (1984) "Ethanol intoxication complicating intravenous nitroglycerin therapy." Ann Intern Med, 101, p. 498-9
  3. Feder R (1991) "Bradycardia and syncope induced by fluoxetine." J Clin Psychiatry, 52, p. 139
  4. Ellison JM, Milofsky JE, Ely E (1990) "Fluoxetine-induced bradycardia and syncope in two patients." J Clin Psychiatry, 51, p. 385-6
  5. Rodriguez de la Torre B, Dreher J, Malevany I, et al. (2001) "Serum levels and cardiovascular effects of tricyclic antidepressants and selective serotonin reuptake inhibitors in depressed patients." Ther Drug Monit, 23, p. 435-40
  6. Cerner Multum, Inc. "Australian Product Information."
  7. Pacher P, Kecskemeti V (2004) "Cardiovascular side effects of new antidepressants and antipsychotics: new drugs, old concerns?" Curr Pharm Des, 10, p. 2463-75
  8. Andrews C, Pinner G (1998) "Postural hypotension induced by paroxetine." BMJ, 316, p. 595
  9. (2023) "Product Information. Buprenorphine (buprenorphine)." G.L. Pharma UK Ltd
  10. (2023) "Product Information. Temgesic (buprenorphine)." Reckitt Benckiser Pty Ltd
Moderate

chlorthalidone food

Applies to: atenolol / chlorthalidone

MONITOR: Many psychotherapeutic and CNS-active agents (e.g., anxiolytics, sedatives, hypnotics, antidepressants, antipsychotics, opioids, alcohol, muscle relaxants) exhibit hypotensive effects, especially during initiation of therapy and dose escalation. Coadministration with antihypertensives and other hypotensive agents, in particular vasodilators and alpha-blockers, may result in additive effects on blood pressure and orthostasis.

MANAGEMENT: Caution and close monitoring for development of hypotension is advised during coadministration of these agents. Some authorities recommend avoiding alcohol in patients receiving vasodilating antihypertensive drugs. Patients should be advised to avoid rising abruptly from a sitting or recumbent position and to notify their physician if they experience dizziness, lightheadedness, syncope, orthostasis, or tachycardia. Patients should also avoid driving or operating hazardous machinery until they know how the medications affect them.

References (10)
  1. Sternbach H (1991) "Fluoxetine-associated potentiation of calcium-channel blockers." J Clin Psychopharmacol, 11, p. 390-1
  2. Shook TL, Kirshenbaum JM, Hundley RF, Shorey JM, Lamas GA (1984) "Ethanol intoxication complicating intravenous nitroglycerin therapy." Ann Intern Med, 101, p. 498-9
  3. Feder R (1991) "Bradycardia and syncope induced by fluoxetine." J Clin Psychiatry, 52, p. 139
  4. Ellison JM, Milofsky JE, Ely E (1990) "Fluoxetine-induced bradycardia and syncope in two patients." J Clin Psychiatry, 51, p. 385-6
  5. Rodriguez de la Torre B, Dreher J, Malevany I, et al. (2001) "Serum levels and cardiovascular effects of tricyclic antidepressants and selective serotonin reuptake inhibitors in depressed patients." Ther Drug Monit, 23, p. 435-40
  6. Cerner Multum, Inc. "Australian Product Information."
  7. Pacher P, Kecskemeti V (2004) "Cardiovascular side effects of new antidepressants and antipsychotics: new drugs, old concerns?" Curr Pharm Des, 10, p. 2463-75
  8. Andrews C, Pinner G (1998) "Postural hypotension induced by paroxetine." BMJ, 316, p. 595
  9. (2023) "Product Information. Buprenorphine (buprenorphine)." G.L. Pharma UK Ltd
  10. (2023) "Product Information. Temgesic (buprenorphine)." Reckitt Benckiser Pty Ltd
Moderate

hyoscyamine food

Applies to: Urin D / S (hyoscyamine / methenamine / methylene blue / phenyl salicylate / sodium biphosphate)

GENERALLY AVOID: Use of anticholinergic agents with alcohol may result in sufficient impairment of attention so as to render driving and operating machinery more hazardous. In addition, the potential for abuse may be increased with the combination. The mechanism of interaction is not established but may involve additive depressant effects on the central nervous system. No effect of oral propantheline or atropine on blood alcohol levels was observed in healthy volunteers when administered before ingestion of a standard ethanol load. However, one study found impairment of attention in subjects given atropine 0.5 mg or glycopyrrolate 1 mg in combination with alcohol.

MANAGEMENT: Alcohol should generally be avoided during therapy with anticholinergic agents. Patients should be counseled to avoid activities requiring mental alertness until they know how these agents affect them.

References (1)
  1. Linnoila M (1973) "Drug effects on psychomotor skills related to driving: interaction of atropine, glycopyrrhonium and alcohol." Eur J Clin Pharmacol, 6, p. 107-12
Moderate

atenolol food

Applies to: atenolol / chlorthalidone

ADJUST DOSING INTERVAL: Concurrent administration with calcium salts may decrease the oral bioavailability of atenolol and possibly other beta-blockers. The exact mechanism of interaction is unknown. In six healthy subjects, calcium 500 mg (as lactate, carbonate, and gluconate) reduced the mean peak plasma concentration (Cmax) and area under the concentration-time curve (AUC) of atenolol (100 mg) by 51% and 32%, respectively. The elimination half-life increased by 44%. Twelve hours after the combination, beta-blocking activity (as indicated by inhibition of exercise tachycardia) was reduced compared to that with atenolol alone. However, during a 4-week treatment in six hypertensive patients, there was no difference in blood pressure values between treatments. The investigators suggest that prolongation of the elimination half-life induced by calcium coadministration may have led to atenolol cumulation during long-term dosing, which compensated for the reduced bioavailability.

MANAGEMENT: It may help to separate the administration times of beta-blockers and calcium products by at least 2 hours. Patients should be monitored for potentially diminished beta-blocking effects following the addition of calcium therapy.

References (1)
  1. Kirch W, Schafer-Korting M, Axthelm T, Kohler H, Mutschler E (1981) "Interaction of atenolol with furosemide and calcium and aluminum salts." Clin Pharmacol Ther, 30, p. 429-35

Therapeutic duplication warnings

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Drug Interaction Classification

These classifications are only a guideline. The relevance of a particular drug interaction to a specific individual is difficult to determine. Always consult your healthcare provider before starting or stopping any medication.
Major Highly clinically significant. Avoid combinations; the risk of the interaction outweighs the benefit.
Moderate Moderately clinically significant. Usually avoid combinations; use it only under special circumstances.
Minor Minimally clinically significant. Minimize risk; assess risk and consider an alternative drug, take steps to circumvent the interaction risk and/or institute a monitoring plan.
Unknown No interaction information available.

Further information

Always consult your healthcare provider to ensure the information displayed on this page applies to your personal circumstances.