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Drug Interactions between venetoclax and Verelan PM

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

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Interactions between your drugs

Major

verapamil venetoclax

Applies to: Verelan PM (verapamil) and venetoclax

GENERALLY AVOID: Coadministration with moderate inhibitors of CYP450 3A4 may increase the plasma concentrations of venetoclax, which is a substrate of the isoenzyme. In a study of 11 previously treated non-Hodgkin lymphoma patients, when the potent CYP450 3A4 inhibitor, P-glycoprotein (P-gp) and breast cancer resistance protein (BCRP) inhibitor ketoconazole (400 mg daily for 7 days) was coadministered with venetoclax (50 mg single dose), venetoclax peak plasma concentration (Cmax) and systemic exposure (AUC) increased by 2.3-fold and 6.4-fold, respectively. Likewise, concomitant use of the P-gp and potent CYP450 3A4 inhibitor posaconazole (300 mg) with venetoclax 50 mg or 100 mg daily for 7 days increased the venetoclax Cmax by 1.61-fold and 1.86-fold, respectively, and AUC by 1.9-fold and 2.44-fold, respectively, compared with venetoclax (400 mg daily) alone. Clinical data exploring the use of venetoclax with less potent CYP450 3A4 inhibitors are not available. However, physiologically-based pharmacokinetic modeling estimates that the moderate CYP450 3A4 inhibitors diltiazem and erythromycin may increase the Cmax and AUC of venetoclax by between 1.4- to 2-fold and 2- to 4.9-fold, respectively, while the weak CYP450 3A4 inhibitors fluoxetine and fluvoxamine appear to have no significant effect on its Cmax or AUC. Increased venetoclax exposure may potentiate the risk of tumor lysis syndrome, particularly at initiation of therapy and during the dosage ramp-up phase, as well as other adverse effects such as diarrhea, nausea, vomiting, neutropenia, anemia, and thrombocytopenia.

MANAGEMENT: In patients with chronic lymphocytic leukemia or small lymphocytic lymphoma (CLL/SLL), concomitant use of moderate CYP450 3A4 inhibitors with venetoclax at its steady daily dosage (after the dosage ramp-up phase) should generally be avoided. Some authorities advise that the concomitant use of moderate CYP450 3A4 inhibitors with venetoclax should also be avoided at initiation and during the dose titration phase in patients with CLL/SLL. However, if coadministration is required, the manufacturer recommends the venetoclax dosage be reduced by at least 50% of the original dose for patients with CLL/SLL as well as patients with acute myeloid leukemia (AML). All patients, regardless of indication, should be monitored closely for signs and symptoms of venetoclax-related adverse effects/toxicities. In addition, the dosage used prior to initiating the moderate CYP450 3A4 inhibitor may be resumed 2 to 3 days after discontinuation of the inhibitor.

References (6)
  1. (2016) "Product Information. Venclexta (venetoclax)." AbbVie US LLC
  2. (2022) "Product Information. Venclexta (venetoclax)." AbbVie US LLC
  3. (2023) "Product Information. Venclexta (venetoclax)." AbbVie Pty Ltd
  4. (2024) "Product Information. Venclyxto (venetoclax)." AbbVie Ltd
  5. (2022) "Product Information. Venclexta (venetoclax)." AbbVie Corporation
  6. Freise K.J, Shebley M, Salem A.H (2017) "Quantitative prediction of the effect of CYP3A inhibitors and inducers on venetoclax pharmacokinetics using a physiologically based pharmacokinetic model" J Clin Pharmacol, 57, p. 796-804

Drug and food interactions

Major

venetoclax food

Applies to: venetoclax

ADJUST DOSING INTERVAL: Food enhances the oral bioavailability of venetoclax. Relative to fasting conditions, venetoclax systemic exposure (AUC) increased by approximately 3.4-fold when administered with a low-fat meal (approximately 512 kilocalories, 25% calories from fat) and by 5.1- to 5.3-fold when administered with a high-fat meal (approximately 753 kilocalories, 55% calories from fat).

GENERALLY AVOID: Grapefruit, grapefruit juice, Seville oranges, and starfruit may increase the plasma concentrations of venetoclax, which is primarily metabolized by the CYP450 3A4 isoenzyme. The proposed mechanism is inhibition of CYP450 3A4-mediated first-pass metabolism in the gut wall by certain compounds present in grapefruit. Inhibition of hepatic CYP450 3A4 may also contribute. The interaction has not been studied with grapefruit juice, but has been reported with potent CYP450 3A4 inhibitors. In a study of 11 previously treated non-Hodgkin lymphoma patients, when the potent CYP450 3A4 inhibitor, P-glycoprotein (P-gp) and breast cancer resistance protein (BCRP) inhibitor ketoconazole (400 mg daily for 7 days) was coadministered with venetoclax (50 mg single dose), venetoclax peak plasma concentration (Cmax) and systemic exposure (AUC) increased by 2.3-fold and 6.4-fold, respectively. Physiologically based pharmacokinetic modeling estimates that the moderate CYP450 3A4 inhibitors diltiazem and erythromycin may increase the Cmax and AUC of venetoclax by between 1.4- to 2- fold and 2- to 4.9-fold, respectively, while the weak CYP450 3A4 inhibitors fluoxetine and fluvoxamine appear to have no significant effect on its Cmax or AUC. In general, the effect of grapefruit juice is concentration-, dose- and preparation-dependent, and can vary widely among brands. Certain preparations of grapefruit juice (e.g., high dose, double strength) have sometimes demonstrated potent inhibition of CYP450 3A4, while other preparations (e.g., low dose, single strength) have typically demonstrated moderate inhibition. Increased venetoclax exposure may potentiate the risk of tumor lysis syndrome, particularly at initiation of therapy and during the dosage ramp-up phase, as well as other adverse effects such as diarrhea, nausea, vomiting, neutropenia, anemia, and thrombocytopenia.

MANAGEMENT: Venetoclax should be administered with a meal and water at approximately the same time each day. Patients should avoid consumption of grapefruit products, Seville oranges, and starfruit during treatment with venetoclax.

References (6)
  1. (2016) "Product Information. Venclexta (venetoclax)." AbbVie US LLC
  2. (2022) "Product Information. Venclexta (venetoclax)." AbbVie US LLC
  3. (2023) "Product Information. Venclexta (venetoclax)." AbbVie Pty Ltd
  4. (2024) "Product Information. Venclyxto (venetoclax)." AbbVie Ltd
  5. (2022) "Product Information. Venclexta (venetoclax)." AbbVie Corporation
  6. Freise K.J, Shebley M, Salem A.H (2017) "Quantitative prediction of the effect of CYP3A inhibitors and inducers on venetoclax pharmacokinetics using a physiologically based pharmacokinetic model" J Clin Pharmacol, 57, p. 796-804
Moderate

verapamil food

Applies to: Verelan PM (verapamil)

GENERALLY AVOID: Consumption of large quantities of grapefruit juice may be associated with significantly increased plasma concentrations of oral verapamil. The mechanism is inhibition of CYP450 3A4-mediated first-pass metabolism in the gut wall by certain compounds present in grapefruits. One study reported no significant effect of a single administration of grapefruit juice on the pharmacokinetics of verapamil in ten hypertensive patients receiving chronic therapy. In another study conducted in nine healthy male volunteers, administration of 120 mg oral verapamil twice daily for 3 days following pretreatment with 200 mL grapefruit juice twice daily for 5 days resulted in a 57% increase in S-verapamil peak plasma concentration (Cmax), a 36% increase in S-verapamil systemic exposure (AUC), a 40% increase in R-verapamil Cmax, and a 28% increase in R-verapamil AUC compared to administration following orange juice. Elimination half-life and renal clearance of both S- and R-verapamil were not affected by grapefruit juice, and there were no significant effects on blood pressure, heart rate, or PR interval. A third study reported a 1.63-fold increase in Cmax and a 1.45-fold increase in AUC of (R,S)-verapamil in 24 young, healthy volunteers given verapamil sustained-release 120 mg twice daily for 7 days with 250 mL grapefruit juice four times daily on days 5 through 7. Two subjects developed PR interval prolongation of more than 350 ms during grapefruit juice coadministration. A high degree of interindividual variability has been observed in these studies. The interaction was also suspected in a case report of a 42-year-old woman who developed complete heart block, hypotension, hypoxic respiratory failure, severe anion gap metabolic acidosis, and hyperglycemia following accidental ingestion of three verapamil sustained-release 120 mg tablets over a span of six hours. The patient's past medical history was remarkable only for migraine headaches, for which she was receiving several medications including verapamil. Prior to admission, the patient had a 2-week history of poorly controlled migraine, and the six hours preceding hospitalization she suffered from worsening headache and palpitations progressing to altered sensorium. An extensive workup revealed elevated verapamil and norverapamil levels more than 4.5 times above the upper therapeutic limits. These levels also far exceeded those reported in the medical literature for patients taking verapamil 120 mg every 6 hours, or 480 mg in a 24-hour period. The patient recovered after receiving ventilator and vasopressor support. Upon questioning, it was discovered that the patient had been drinking large amounts of grapefruit juice (3 to 4 liters total) the week preceding her admission due to nausea. No other sources or contributing factors could be found for the verapamil toxicity.

MANAGEMENT: Patients treated with oral verapamil should avoid the consumption of large amounts of grapefruit or grapefruit juice to prevent any undue fluctuations in serum drug levels. Patients should be advised to seek medical attention if they experience edema or swelling of the lower extremities; sudden, unexplained weight gain; difficulty breathing; chest pain or tightness; or hypotension as indicated by dizziness, fainting, or orthostasis.

References (9)
  1. McAllister RG, Jr (1982) "Clinical pharmacology of slow channel blocking agents." Prog Cardiovasc Dis, 25, p. 83-102
  2. (2001) "Product Information. Covera-HS (verapamil)." Searle
  3. Zaidenstein R, Dishi V, Gips M, Soback S, Cohen N, Weissgarten J, Blatt A, Golik A (1998) "The effect of grapefruit juice on the pharmacokinetics of orally administered verapamil." Eur J Clin Pharmacol, 54, p. 337-40
  4. Ho PC, Ghose K, Saville D, Wanwimolruk S (2000) "Effect of grapefruit juice on pharmacokinetics and pharmacodynamics of verapamil enantiomers in healthy volunteers." Eur J Clin Pharmacol, 56, p. 693-8
  5. Fuhr U, Muller-Peltzer H, Kern R, et al. (2002) "Effects of grapefruit juice and smoking on verapamil concentrations in steady state." Eur J Clin Pharmacol, 58, p. 45-53
  6. Bailey DG, Dresser GK (2004) "Natural products and adverse drug interactions." Can Med Assoc J, 170, p. 1531-2
  7. Bailey DG, Malcolm J, Arnold O, Spence JD (2004) "Grapefruit juice-drug interactions. 1998." Br J Clin Pharmacol, 58, S831-40; discussion S841-3
  8. Arayne MS, Sultana N, Bibi Z (2005) "Review: grape fruit juice - drug interactions." Pak J Pharm Sci, 18, p. 45-57
  9. Pillai U, Muzaffar J, Sandeep S, Yancey A (2009) "Grapefruit juice and verapamil: a toxic cocktail." South Med J, 102, p. 308-9
Moderate

verapamil food

Applies to: Verelan PM (verapamil)

GENERALLY AVOID: Verapamil may increase the blood concentrations and intoxicating effects of ethanol. The exact mechanism of interaction is unknown but may involve verapamil inhibition of ethanol metabolism. In 10 healthy, young volunteers, verapamil (80 mg orally every 8 hours for 6 days) increased the mean peak blood concentration (Cmax) and the 12-hour area under the concentration-time curve (AUC) of ethanol (0.8 g/kg single oral dose) by 17% and 30%, respectively, compared to placebo. Verapamil AUCs were positively correlated to increased ethanol blood AUC values. Subjectively (i.e. each subject's perception of intoxication as measured on a visual analog scale), verapamil also significantly increased the area under the ethanol effect versus time curve but did not change the peak effect or time to peak effect.

MANAGEMENT: Patients treated with verapamil should be counseled to avoid alcohol consumption.

References (2)
  1. Bauer LA, Schumock G, Horn J, Opheim K (1992) "Verapamil inhibits ethanol elimination and prolongs the perception of intoxication." Clin Pharmacol Ther, 52, p. 6-10
  2. (2001) "Product Information. Isoptin (verapamil)." Knoll Pharmaceutical Company
Moderate

verapamil food

Applies to: Verelan PM (verapamil)

MONITOR: Calcium-containing products may decrease the effectiveness of calcium channel blockers by saturating calcium channels with calcium. Calcium chloride has been used to manage acute severe verapamil toxicity.

MANAGEMENT: Management consists of monitoring the effectiveness of calcium channel blocker therapy during coadministration with calcium products.

References (14)
  1. Henry M, Kay MM, Viccellio P (1985) "Cardiogenic shock associated with calcium-channel and beta blockers: reversal with intravenous calcium chloride." Am J Emerg Med, 3, p. 334-6
  2. Moller IW (1987) "Cardiac arrest following intravenous verapamil combined with halothane anaesthesia." Br J Anaesth, 59, p. 522-6
  3. Oszko MA, Klutman NE (1987) "Use of calcium salts during cardiopulmonary resuscitation for reversing verapamil-associated hypotension." Clin Pharm, 6, p. 448-9
  4. Schoen MD, Parker RB, Hoon TJ, et al. (1991) "Evaluation of the pharmacokinetics and electrocardiographic effects of intravenous verapamil with intravenous calcium chloride pretreatment in normal subjects." Am J Cardiol, 67, p. 300-4
  5. O'Quinn SV, Wohns DH, Clarke S, Koch G, Patterson JH, Adams KF (1990) "Influence of calcium on the hemodynamic and anti-ischemic effects of nifedipine observed during treadmill exercise testing." Pharmacotherapy, 10, p. 247
  6. Woie L, Storstein L (1981) "Successful treatment of suicidal verapamil poisoning with calcium gluconate." Eur Heart J, 2, p. 239-42
  7. Morris DL, Goldschlager N (1983) "Calcium infusion for reversal of adverse effects of intravenous verapamil." JAMA, 249, p. 3212-3
  8. Guadagnino V, Greengart A, Hollander G, Solar M, Shani J, Lichstein E (1987) "Treatment of severe left ventricular dysfunction with calcium chloride in patients receiving verapamil." J Clin Pharmacol, 27, p. 407-9
  9. Luscher TF, Noll G, Sturmer T, Huser B, Wenk M (1994) "Calcium gluconate in severe verapamil intoxication." N Engl J Med, 330, p. 718-20
  10. Bar-Or D, Gasiel Y (1981) "Calcium and calciferol antagonise effect of verapamil in atrial fibrillation." Br Med J (Clin Res Ed), 282, p. 1585-6
  11. Lipman J, Jardine I, Roos C, Dreosti L (1982) "Intravenous calcium chloride as an antidote to verapamil-induced hypotension." Intensive Care Med, 8, p. 55-7
  12. McMillan R (1988) "Management of acute severe verapamil intoxication." J Emerg Med, 6, p. 193-6
  13. Perkins CM (1978) "Serious verapamil poisoning: treatment with intravenous calcium gluconate." Br Med J, 2, p. 1127
  14. Moroni F, Mannaioni PF, Dolara A, Ciaccheri M (1980) "Calcium gluconate and hypertonic sodium chloride in a case of massive verapamil poisoning." Clin Toxicol, 17, p. 395-400

Therapeutic duplication warnings

No warnings were found for your selected drugs.

Therapeutic duplication warnings are only returned when drugs within the same group exceed the recommended therapeutic duplication maximum.


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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

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