Drug Interactions between calcium carbonate / melatonin / valerian / vitamin e and mercaptopurine
This report displays the potential drug interactions for the following 2 drugs:
- calcium carbonate/melatonin/valerian/vitamin e
- mercaptopurine
Interactions between your drugs
mercaptopurine vitamin E
Applies to: mercaptopurine and calcium carbonate / melatonin / valerian / vitamin e
GENERALLY AVOID: The potential effects of vitamin E on cancer chemotherapy and radiation have not been established. Because vitamin E is an antioxidant, pharmacologic doses could theoretically interfere with radiation therapy and chemotherapeutic agents whose cytotoxic mechanism depends on generation of reactive oxygen species (ROS) that damage DNA and proteins, including but not limited to alkylating agents (e.g., busulfan, cyclophosphamide, melphalan), anthracyclines (e.g., doxorubicin, epirubicin), platinum coordination complexes (e.g., cisplatin, carboplatin), DNA topoisomerase inhibitors (e.g., etoposide, teniposide, irinotecan, topotecan), and photodynamic agents (e.g., porfimer). On the other hand, vitamin E may help reduce oxidative stress associated with more aggressive cancers and protect non-cancer cells from oxidative damage generated by cancer treatments, which can enhance patient tolerance and lessen the need for reducing dosage or duration of treatment. Limited data from clinical studies suggest that vitamin E may attenuate cisplatin-induced neurotoxicity without compromising antineoplastic efficacy, whereas no effect on doxorubicin-induced cardiotoxicity has been reported. Animal studies have also reported an increase in the effectiveness of some antineoplastic agents against certain cancers in the presence of vitamin E (e.g., fluorouracil for colon cancer), although these results have not been replicated in human studies. Still other studies have found neither a beneficial nor adverse effect of vitamin E on cancer development or treatment, although slightly increased risks of heart failure and mortality in association with vitamin E have been observed. A review of published randomized clinical trials regarding concurrent antioxidant supplementation during cytotoxic therapy was conducted by a group of investigators at the Naval Medical Center San Diego and published in 2008. Based on their findings, the investigators recommended that use of supplemental antioxidants during chemotherapy and radiation therapy be discouraged due to the possibility of tumor protection and reduced survival. Additional and larger studies are clearly needed to determine the exact nature of the interaction between vitamin E and ROS-generating chemotherapies. Other antineoplastic agents such as the taxanes (e.g., docetaxel, paclitaxel), vinca alkaloids (e.g., vinblastine, vincristine), and antimetabolites (e.g., cytarabine, fluorouracil, methotrexate) are also known to generate a low level of oxidative stress in biological systems, but free radical damage is not considered their primary mechanism of action and it is not known if or how vitamin E may affect them.
MANAGEMENT: Until more information is available, vitamin E supplementation should preferably be avoided in patients undergoing cancer chemotherapy or radiation treatment. Clinicians should closely monitor antitumor response if vitamin E is used in these patients. No specific dosing of vitamin E has been established for uses other than to treat vitamin E deficiency. There has been evidence suggesting possible adverse health effects including increased risk of heart failure and mortality in association with long-term use of 400 IU/day or greater.
References (9)
- Whittaker JA, Al-Ismail SA (1984) "Effect of digoxin and vitamin E in preventing cardiac damage caused by doxorubicin in acute myeloid leukaemia." Br Med J (Clin Res Ed), 288, p. 283-4
- Lonn E, Bosch J, Yusuf S, et al. (2005) "Effects of long-term vitamin E supplementation on cardiovascular events and cancer: a randomized controlled trial." JAMA, 293, p. 1338-47
- Labriola D, Livingston R (1999) "Possible interactions between dietary antioxidants and chemotherapy." Oncology (Williston Park), 13, 1003-8; discussion 1008, 1011-2
- Therapeutic Research Faculty (2008) Natural Medicines Comprehensive Database. http://www.naturaldatabase.com
- Block KI, Koch AC, Mead MN, Tothy PK, Newman RA, Gyllenhaal C (2008) "Impact of antioxidant supplementation on chemotherapeutic toxicity: a systematic review of the evidence from randomized controlled trials." Int J Cancer, 123, p. 1227-39
- D'Andrea GM (2005) "Use of antioxidants during chemotherapy and radiotherapy should be avoided." CA Cancer J Clin, 55, p. 319-21
- Prasad KN (2004) "Rationale for using high-dose multiple dietary antioxidants as an adjunct to radiation therapy and chemotherapy." J Nutr, 134, 3182S-3S
- Conklin KA (2004) "Cancer chemotherapy and antioxidants." J Nutr, 134, 3201S-4S
- Pace A, Savarese A, Picardo M, et al. (2003) "Neuroprotective effect of vitamin E supplementation in patients treated with cisplatin chemotherapy." J Clin Oncol, 21, p. 927-31
melatonin valerian
Applies to: calcium carbonate / melatonin / valerian / vitamin e and calcium carbonate / melatonin / valerian / vitamin e
MONITOR: Central nervous system- and/or respiratory-depressant effects may be additively or synergistically increased in patients taking multiple drugs that cause these effects, especially in elderly or debilitated patients. Sedation and impairment of attention, judgment, thinking, and psychomotor skills may increase.
MANAGEMENT: During concomitant use of these drugs, patients should be monitored for potentially excessive or prolonged CNS and respiratory depression. Cautious dosage titration may be required, particularly at treatment initiation. Ambulatory patients should be counseled to avoid hazardous activities requiring mental alertness and motor coordination until they know how these agents affect them, and to notify their physician if they experience excessive or prolonged CNS effects that interfere with their normal activities.
References (36)
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- Sotaniemi EA, Anttila M, Rautio A, et al. (1981) "Propranolol and sotalol metabolism after a drinking party." Clin Pharmacol Ther, 29, p. 705-10
- Grabowski BS, Cady WJ, Young WW, Emery JF (1980) "Effects of acute alcohol administration on propranolol absorption." Int J Clin Pharmacol Ther Toxicol, 18, p. 317-9
- Lemberger L, Rowe H, Bosomworth JC, Tenbarge JB, Bergstrom RF (1988) "The effect of fluoxetine on the pharmacokinetics and psychomotor responses of diazepam." Clin Pharmacol Ther, 43, p. 412-9
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- Divoll M, Greenblatt DJ, Lacasse Y, Shader RI (1981) "Benzodiazepine overdosage: plasma concentrations and clinical outcome." Psychopharmacology (Berl), 73, p. 381-3
- Naylor GJ, McHarg A (1977) "Profound hypothermia on combined lithium carbonate and diazepam treatment." Br Med J, 2, p. 22
- Stovner J, Endresen R (1965) "Intravenous anaesthesia with diazepam." Acta Anaesthesiol Scand, 24, p. 223-7
- Driessen JJ, Vree TB, Booij LH, van der Pol FM, Crul JF (1984) "Effect of some benzodiazepines on peripheral neuromuscular function in the rat in-vitro hemidiaphragm preparation." J Pharm Pharmacol, 36, p. 244-7
- Feldman SA, Crawley BE (1970) "Interaction of diazepam with the muscle-relaxant drugs." Br Med J, 1, p. 336-8
- Ochs HR, Greenblatt DJ, Verburg-Ochs B (1984) "Propranolol interactions with diazepam, lorazepam and alprazolam." Clin Pharmacol Ther, 36, p. 451-5
- Desager JP, Hulhoven R, Harvengt C, Hermann P, Guillet P, Thiercelin JF (1988) "Possible interactions between zolpidem, a new sleep inducer and chlorpromazine, a phenothiazine neuroleptic." Psychopharmacology (Berl), 96, p. 63-6
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- Markowitz JS, Wells BG, Carson WH (1995) "Interactions between antipsychotic and antihypertensive drugs." Ann Pharmacother, 29, p. 603-9
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- Plushner SL (2000) "Valerian: valeriana officinalis." Am J Health Syst Pharm, 57, p. 328-35
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- Cerner Multum, Inc. "UK Summary of Product Characteristics."
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- (2012) "Product Information. Fycompa (perampanel)." Eisai Inc
- (2014) "Product Information. Belsomra (suvorexant)." Merck & Co., Inc
- (2015) "Product Information. Rexulti (brexpiprazole)." Otsuka American Pharmaceuticals Inc
Drug and food interactions
mercaptopurine food
Applies to: mercaptopurine
ADJUST DOSING INTERVAL: The oral bioavailability of mercaptopurine (6-MP) is highly variable and may be affected by administration with food or dairy products. The mechanism by which food may impact the absorption of 6-MP has not been fully established, but cow's milk specifically has been found to contain a high concentration of xanthine oxidase, the enzyme responsible for first-pass metabolism of 6-MP to the inactive metabolite 6-thiouric acid. Incubation with cow's milk at 37 C induced a 30% catabolism of 6-MP within 30 minutes in one investigation. However, food or dairy intake with 6-MP in study patients has yielded variable results. In a study conducted in 17 children with acute lymphoblastic leukemia (ALL), oral 6-MP 75 mg/m2 administered 15 minutes after a standardized breakfast including 250 mL of milk resulted in a prolonged Tmax and a lower Cmax and AUC compared with 6-MP administration in the fasting state (mean Tmax: 2.3 hours vs. 1.2 hours; mean Cmax: 0.63 uM vs. 0.98 uM; mean AUC: 105 uM vs. 143 uM, respectively). In a different study, oral 6-MP 31.2 to 81.1 mg/m2 administered to 7 subjects with ALL 15 minutes after a standard breakfast consisting of orange juice, cereal, and toast also trended towards longer Tmax and lower Cmax values compared to 6-MP administration after an overnight fast, although the differences were not statistically significant. Two subjects had blood samples that were all below the limit of detection (20 ng/mL) following administration in the fed state. Likewise, a study of 15 pediatric patients reported non-significant 20% to 22% decreases in the Cmax and AUC of 6-MP when administered after a standardized breakfast containing both milk and cheese compared to administration after fasting, but in contrast to the two earlier studies, Tmax was decreased from 1.8 to 1.1 hours. Another study of 10 children with ALL or non-Hodgkin's lymphoma given an average oral 6-MP dose of 63 mg/m2 revealed substantial interpatient variations in the effect of food intake on 6-MP plasma levels, with Cmax changes ranging from 67% decrease to 81% increase and AUC changes ranging from 53% decrease to 86% increase relative to administration following fasting. Collectively for the group, however, there was no statistically significant difference in mean Tmax, Cmax, or AUC between the fed and fasting states. In this study, patients were fed what they normally ate at home rather than a standardized breakfast, which may have contributed to the inconsistent results. The clinical significance of the data and observations from these studies has not been determined. An interaction with milk was suspected in a four-year-old male with ALL who experienced persistent elevations of peripheral blood counts during maintenance with 6-MP and methotrexate despite increasing doses of 6-MP up to 160% of the calculated dosage for his body surface area (75 mg/m2). Cessation of concomitant milk ingestion allowed for the 6-MP dosage to return to 75 mg/m2 and resulted in control of peripheral blood counts within a week. Other data do not support a clinically relevant interaction with food or dairy products. In a prospective study of 441 patients aged 2 to 20 years receiving 6-MP for ALL maintenance, investigators found no significant association between relapse risk and 6-MP ingestion habits including administration with food versus never with food and administration with milk/dairy versus never with milk/dairy. Among the 56.2% of patients who were considered adherent by the study, there was also no significant association between red cell thioguanine nucleotide (active metabolite) levels and taking 6-MP with food versus without or taking with milk/dairy versus without. However, taking 6-MP with milk/dairy was associated with a 1.9-fold increased risk for nonadherence. These results suggest that taking 6-MP with food or milk/dairy products may not influence clinical outcome but may hinder patient adherence. Poor 6-MP adherence has been associated with an increased risk of childhood ALL relapse.
MANAGEMENT: To minimize variability in absorption and systemic exposure, the timing of mercaptopurine administration should be standardized in relation to food intake (i.e., always with food or always on an empty stomach). Some authorities suggest avoiding concomitant administration with milk or dairy products, although the clinical relevance of their effects on mercaptopurine bioavailability has not been established. As a precaution, patients may consider taking mercaptopurine at least 1 hour before or 2 hours after milk or dairy ingestion if they are able to do so without compromising treatment adherence.
References (11)
- lafolie p, bjork o, hayder s, ahstrom l, Peterson C (1989) "Variability of 6-mercaptopurine pharmacokinetics during oral maintenance therapy of children with acute leukemia." Med Oncol Tumor Pharmacother, 6, p. 259-65
- (2024) "Product Information. Mercaptopurine (mercaptopurine)." Quinn Pharmaceutical. LLC
- (2024) "Product Information. Allmercap (mercaptOPURine)." Link Medical Products Pty Ltd T/A Link Pharmaceuticals
- (2024) "Product Information. Xaluprine (mercaptopurine)." Nova Laboratories Ltd
- (2023) "Product Information. Mercaptopurine (mercaptopurine)." Sterimax Inc
- Landier W, Hageman L, Chen Y, et al. (2017) "Mercaptopurine ingestion habits, red cell thioguanine nucleotide levels, and relapse risk in children with acute lymphoblastic leukemia: a report from the Children's Oncology Group Study AALL03N1." J Clin Oncol, 35, p. 1730-6
- rivard ge, Lin KT, Leclerc JM, David M (1989) "Milk could decrease the bioavailability of 6-mercaptopurine." Am J Pediatr Hematol Oncol, 11, p. 402-6
- Burton NK, barnett mj, Aherne GW, et al. (1986) "The effect of food on the oral administration of 6-mercaptopurine." Cancer Chemother Pharmacol, 18, p. 90-1
- Riccardi R, Balis FM, ferrara p, et al. (1986) "Influence of food intake on bioavailability of oral 6-mercaptopurine in children with acute lymphoblastic leukemia." Pediatr Hematol Oncol, 3, p. 319-24
- Lonnerholm G, Kreuger A, Lindstrom B, et al. (1989) "Oral mercaptopurine in childhood leukemia: influence of food intake on bioavailability." Pediatr Hematol Oncol, 6, p. 105-12
- Sofianou-Katsoulis A, Khakoo G, Kaczmarski R, et al. (2006) "Reduction in bioavailability of 6-mercaptopurine on simultaneous administration with cow's milk." Pediatr Hematol Oncol, 23, p. 485-7
calcium carbonate food
Applies to: calcium carbonate / melatonin / valerian / vitamin e
ADJUST DOSING INTERVAL: Administration with food may increase the absorption of calcium. However, foods high in oxalic acid (spinach or rhubarb), or phytic acid (bran and whole grains) may decrease calcium absorption.
MANAGEMENT: Calcium may be administered with food to increase absorption. Consider withholding calcium administration for at least 2 hours before or after consuming foods high in oxalic acid or phytic acid.
References (6)
- Cerner Multum, Inc. "UK Summary of Product Characteristics."
- Canadian Pharmacists Association (2006) e-CPS. http://www.pharmacists.ca/function/Subscriptions/ecps.cfm?link=eCPS_quikLink
- Cerner Multum, Inc. "Australian Product Information."
- Agencia Española de Medicamentos y Productos Sanitarios Healthcare (2008) Centro de información online de medicamentos de la AEMPS - CIMA. https://cima.aemps.es/cima/publico/home.html
- Mangels AR (2014) "Bone nutrients for vegetarians." Am J Clin Nutr, 100, epub
- Davies NT (1979) "Anti-nutrient factors affecting mineral utilization." Proc Nutr Soc, 38, p. 121-8
melatonin food
Applies to: calcium carbonate / melatonin / valerian / vitamin e
MONITOR: Oral caffeine may significantly increase the bioavailability of melatonin. The proposed mechanism is inhibition of CYP450 1A2 first-pass metabolism. After administration of melatonin 6 mg and caffeine 200 mg orally (approximately equivalent to 1 large cup of coffee) to 12 healthy subjects, the mean peak plasma concentration (Cmax) of melatonin increased by 137% and the area under the concentration-time curve (AUC) increased by 120%. The metabolic inhibition was greater in nonsmokers (n=6) than in smokers (n=6). The greatest effect was seen in subjects with the *1F/*1F genotype (n=7), whose melatonin Cmax increased by 202%. The half-life did not change significantly. The clinical significance of this interaction is unknown.
According to some authorities, alcohol may reduce the effect of melatonin on sleep. The mechanism of this interaction is not fully understood.
In addition, CYP450 1A2 inducers like cigarette smoking may reduce exogenous melatonin plasma levels. In a small clinical trial (n=8), habitual smokers had their melatonin plasma levels measured two times, each after a single oral dose of 25 mg of melatonin. They had smoked prior to the first measurement but had not smoked for 7 days prior to the second. Cigarette smoking significantly reduced melatonin plasma exposure (AUC) as compared to melatonin levels after 7 days of smoking abstinence (7.34 +/- 1.85 versus 21.07 +/- 7.28 nmol/L*h, respectively).
MANAGEMENT: Caution and monitoring are recommended if melatonin is used with inhibitors of CYP450 1A2 like caffeine or inducers of CYP450 1A2 like cigarette smoking. Consumption of alcohol should be avoided when taking melatonin.
References (3)
- Hartter S, Nordmark A, Rose DM, Bertilsson L, Tybring G, Laine K (2003) "Effects of caffeine intake on the pharmacokinetics of melatonin, a probe drug for CYP1A2 activity." Br J Clin Pharmacol, 56, p. 679-682
- Cerner Multum, Inc. "UK Summary of Product Characteristics."
- Ursing C, Bahr CV, Brismar K, Rojdmark S (2005) "Influence of cigarette smoking on melatonin levels in man" Eur J Clin Pharmacol, 61, p. 197-201
valerian food
Applies to: calcium carbonate / melatonin / valerian / vitamin e
GENERALLY AVOID: Alcohol may potentiate some of the pharmacologic effects of CNS-active agents. Use in combination may result in additive central nervous system depression and/or impairment of judgment, thinking, and psychomotor skills.
MANAGEMENT: Patients receiving CNS-active agents should be warned of this interaction and advised to avoid or limit consumption of alcohol. Ambulatory patients should be counseled to avoid hazardous activities requiring complete mental alertness and motor coordination until they know how these agents affect them, and to notify their physician if they experience excessive or prolonged CNS effects that interfere with their normal activities.
References (4)
- Warrington SJ, Ankier SI, Turner P (1986) "Evaluation of possible interactions between ethanol and trazodone or amitriptyline." Neuropsychobiology, 15, p. 31-7
- 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.
- (2012) "Product Information. Fycompa (perampanel)." Eisai Inc
- (2015) "Product Information. Rexulti (brexpiprazole)." Otsuka American Pharmaceuticals Inc
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.
See also
Drug Interaction Classification
Highly clinically significant. Avoid combinations; the risk of the interaction outweighs the benefit. | |
Moderately clinically significant. Usually avoid combinations; use it only under special circumstances. | |
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. | |
No interaction information available. |
Further information
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