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Irinotecan

Irinotecan structure

Irinotecan 

structure
  • CAS No:

    97682-44-5

  • Formula:

    C33H38N4O6

  • Chemical Name:

    Irinotecan

  • Synonyms:

    [1,4′-Bipiperidine]-1′-carboxylic acid,(4S)-4,11-diethyl-3,4,12,14-tetrahydro-4-hydroxy-3,14-dioxo-1H-pyrano[3′,4′:6,7]indolizino[1,2-b]quinolin-9-yl ester;[1,4′-Bipiperidine]-1′-carboxylic acid,4,11-diethyl-3,4,12,14-tetrahydro-4-hydroxy-3,14-dioxo-1H-pyrano[3′,4′:6,7]indolizino[1,2-b]quinolin-9-yl ester,(S)-;1H-Pyrano[3′,4′:6,7]indolizino[1,2-b]quinoline,[1,4′-bipiperidine]-1′-carboxylic acid deriv.;Irinotecan;(+)-Irinotecan;Irinotecan lactone;Irinophore C;Irinotecan mylan;(19S)-10,19-Diethyl-19-hydroxy-14,18-dioxo-17-oxa-3,13-diazapentacyclo[11.8.0.0[2,11].0[4,9].0[15,20]]henicosa-1(21),2(11),3,5,7,9,15(20)-heptaen-7-yl 4-(piperidin-1-yl)piperidine-1-carboxylate

  • Categories:

    Active Pharmaceutical Ingredients  >  Antineoplastic Agents

Description

Irinotecan is a water soluble topoisomerase I inhibitor, preventing religation of the DNA strand by binding to topoisomerase I-DNA complex.


Solid


Irinotecan is a member of the class of pyranoindolizinoquinolines that is the carbamate ester obtained by formal condensation of the carboxy group of [1,4'-bipiperidine]-1'-carboxylic acid with the phenolic hydroxy group of (4S)-4,11-diethyl-4,9-dihydroxy-1H-pyrano[3',4':6,7]indolizino[1,2- hydrochloride]quinoline-3,14-dione. Used (in the form of its hydrochloride salt trihydrate) in combination with fluorouracil and leucovorin, for the treatment of patients with metastatic adenocarcinoma of the pancreas after disease progression following gemcitabine-based therapy. It is converted via hydrolysis of the carbamate linkage to its active metabolite, SN-38, which is ~1000 times more active. It has a role as an apoptosis inducer, an EC 5.99.1.2 (DNA topoisomerase) inhibitor, an antineoplastic agent and a prodrug. It is a pyranoindolizinoquinoline, a N-acylpiperidine, a carbamate ester, a tertiary alcohol, a tertiary amino compound, a delta-lactone and a ring assembly. It derives from a SN-38. It is a conjugate base of an irinotecan(1+).|Irinotecan is an antineoplastic enzyme inhibitor primarily used in the treatment of colorectal cancer. It is a derivative of camptothecin that inhibits the action of topoisomerase I. Irinotecan prevents religation of the DNA strand by binding to topoisomerase I-DNA complex, and causes double-strand DNA breakage and cell death. It is a derivative of camptothecin. Irinotecan was approved for the treatment of advanced pancreatic cancer in October, 2015 (irinotecan liposome injection, trade name Onivyde).|Irinotecan is a Topoisomerase Inhibitor. The mechanism of action of irinotecan is as a Topoisomerase Inhibitor.|Irinotecan and topotecan are semisynthetic derivatives of the plant alkaloid camptothecin and are used as antineoplastic agents in the therapy of colorectal, ovarian and non-small cell lung cancer. Both irinotecan and topotecan are associated with an appreciable rate of serum enzyme elevations during therapy, and irinotecan has been implicated in causing steatohepatitis when given as cyclic anticancer therapy.|A semisynthetic camptothecin derivative that inhibits DNA TOPOISOMERASE I to prevent nucleic acid synthesis during S PHASE. It is used as an antineoplastic agent for the treatment of COLORECTAL NEOPLASMS and PANCREATIC NEOPLASMS.

Irinotecan Basic Attributes

623.14

586.68

1806241-263-5

7673326042

728073

DTXSID1041051

Pale yellow powder

L01XX19|L - Antineoplastic and immunomodulating agents

Characteristics

113

3

Solid

1.4±0.1 g/cm3

222-223 °C

482.0±34.3 °C

1.689

1.07e-01 g/L

2-8°C

Pale yellow to yellow crystalline powder. MW: 677.19. Slightly soluble in water and organic solvents /Hydrochloride/

Safety Information

22

DW1061000

Xn

P201, P202, P260, P264, P270, P280, P281, P301+P312, P302+P352, P305+P351+P338, P308+P313, P310, P314, P321, P330, P332+P313, P362, P405, P501

H302

SRP: At the time of review, criteria for land treatment or burial (sanitary landfill) disposal practices are subject to significant revision. Prior to implementing land disposal of waste residue (including waste sludge), consult with environmental regulatory agencies for guidance on acceptable disposal practices.|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ All contaminated disposables should be contained in sealable bags for transfer to larger waste containers. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ All bottles must be discarded as contaminated waste after decontamination of the biohazard cabinet. All protective apparel (gown, gloves, goggles, and respirator) should be discarded as contaminated waste. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ The contaminated filters must be removed, bagged in thick plastic and prepared for disposal in a hazardous waste dump site or incinerator licensed by the Environmental Protection Agency (EPA). /Antineoplastic agents/|For more Disposal Methods (Complete) data for IRINOTECAN (8 total), please visit the HSDB record page.

The Approved Drug Products with Therapeutic Equivalence Evaluations List identifies currently marketed prescription drug products, incl irinotecan hydrochloride, approved on the basis of safety and effectiveness by FDA under sections 505 of the Federal Food, Drug, and Cosmetic Act. /Irinotecan hydrochloride/

|Danger|H302 (100%): Harmful if swallowed [Warning Acute toxicity, oral]|P201, P202, P260, P264, P270, P280, P281, P301+P312, P302+P352, P305+P351+P338, P308+P313, P310, P314, P321, P330, P332+P313, P362, P405, and P501|Aggregated GHS information provided by 9 companies from 1 notifications to the ECHA C&L Inventory. Each notification may be associated with multiple companies.

/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Protective apparel: Disposable closed-front gown or coveralls, disposable utility gloves over disposable latex gloves, NIOSH-approved air-purifying half-mask respirator equipped with a high efficiency filter, and eye protection should be worn. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Class 100 clean-air work stations, both horizontal and vertical airflow (with no containment characteristics), are inappropriate engineering controls for handling hazardous drugs because they provide no personnel protection and permit environmental contamination. Although there are no engineering controls designed specifically for the safe handling of hazardous chemicals as sterile products, Class II contained vertical-flow biological safety cabinets (biohazard cabinets) have been adopted for this use. Biohazard cabinetry is, however, designed for the handling of infectious agents, not hazardous chemicals. ... Based on design, ease of use, and cost considerations, Class II contained-vertical-flow biohazard cabinetry is currently recommended for use in preparing sterile doses of hazardous drugs. Class II cabinetry design and performance specifications are defined in NSF Standard 49. Biological safety cabinets selected for use with hazardous drugs should meet NSF Standard 49 specifications to ensure the maximum protection from these engineering controls. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Workers should wear powder free, disposable surgical latex gloves of good quality when preparing hazardous drugs. Selection criteria for gloves should include thickness (especially at the fingertips where stress is the greatest), fit, length, and tactile sensation. ... The practice of double gloving is supported by research that indicates that many glove materials vary in drug permeability even within lots; therefore, double gloving is recommended. ... In general, surgical latex gloves fit better, have appropriate elasticity for double gloving and maintaining the integrity of the glove-gown interface, and have sufficient tactile sensation (even during double gloving) for stringent aseptic procedures. ... Powdered gloves should be avoided. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Workers who are not protected by the containment environment of a biohazard cabinet should use respiratory protection when handling hazardous drugs. Respiratory protection should be an adjunct to and not a substitute for engineering controls. Surgical masks of all types provide no respiratory protection against powdered or liquid aerosols of hazardous drugs. In situations where workers may be exposed to potential eye contact with hazardous drugs, an appropriate plastic face shield or splash goggles should be worn. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ During compounding of hazardous drugs (eg, crushing, dissolving, and preparing an ointment), workers should wear low permeability gowns and double gloves. Compounding should take place in a protective area such as a disposable glove box. If compounding must be done in the open, an area away from drafts and traffic must be selected, and the worker should use appropriate respiratory protection. /Antineoplastic agents/

If irinotecan hydrochloride for injection concentrate or a solution of the drug comes in contact with the skin or mucous membranes, the skin should be washed immediately and thoroughly with soap and water or the mucosa should be flushed with copious amounts of water.|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Accidental contamination of the health-care environment, resulting in exposure of personnel, patients, visitors, and family members to hazardous substances, is prevented by maintaining the physical integrity and security of packages of hazardous drugs. 1. Access to all areas where hazardous drugs are stored is limited to specified authorized staff. 2. A method should be present for identifying to personnel those drugs that require special precautions (eg, cytotoxics). One way to accomplish this is to apply appropriate warning labels to all hazardous drug containers, shelves, and bins where the drug products are stored. ... 3. A method of identifying, for patients and family members, those drugs that require special precautions in the home should be in place. This may be accomplished in the health-care setting, by providing specific labeling for discharge medications, along with written instructions. 4. Methods for identifying shipping cartons of hazardous drugs should be required from manufacturers and distributors of these drugs. 5. Written procedures for handling damaged packages of hazardous drugs should be maintained. Personnel involved in shipping and receiving hazardous drugs should be trained in these procedures, including the proper use of protective garments and equipment. Damaged shipping cartons of hazardous drugs should be received and opened in an isolated area (eg, in a laboratory fume hood, if available, not in a vertical laminar airflow biological safety cabinet used for preparing sterile products). /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Facilities (eg, shelves, carts, counters, and trays) for storing hazardous drugs are designed to prevent breakage and to limit contamination in the event of leakage. Bins, shelves with barriers at the front, or other design features that reduce the chance of drug containers falling to the floor should be used. Hazardous drugs requiring refrigeration should be stored separately from nonhazardous drugs in individual bins designed to prevent breakage and to contain leakage. /Antineoplastic agents/|/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Until the reproductive risks (or lack thereof) associated with handling hazardous drugs within a safety program have been substantiated, staff who are pregnant or breast-feeding should be allowed to avoid contact with these drugs. Policies should be in effect that provide these individuals with alternative tasks or responsibilities if they so desire. /Antineoplastic agents/|For more Preventive Measures (Complete) data for IRINOTECAN (21 total), please visit the HSDB record page.

/PRECAUTIONS FOR ANTINEOPLASTIC AGENTS:/ Methods for transporting hazardous drugs to the health-care setting should be consistent with environmental protection and national or local regulations for transporting hazardous substances. When hazardous drugs are being transported to the home-care setting, appropriate containers (eg, lined cardboard boxes) and procedures should be used to prevent breakage and contain leakage. ... The drugs must be securely capped or sealed and properly packaged and protected during transport to reduce further the chance of breakage and spillage in a public area such as a corridor or elevator. /Antineoplastic agents/

Toxicity

Gastrointestinal complications, such as nausea, vomiting, abdominal cramping, diarrhea, and infection.

Chemotherapy with irinotecan and topotecan in combination with other agents is associated with serum enzyme elevations in up 15% of patients depending upon the dose, other agents used, the frequency of monitoring and degree of elevation that is reported. The ALT elevations are usually asymptomatic and transient and may resolve without dose modification. Marked elevations occur in 1% to 4% of patients, but rarely require dose modification. Genetic variants in hepatic transporters and metabolic enzymes have been associated with predisposition to irinotecan toxicity, including OATP 1B1 (SLC01B1), UGT1A1 and CYP 3A4. However, the major toxicities of irinotecan are hematologic and diarrhea, and liver test elevations are rare causes of drug interruption or dose modification.

A total of 190 patients (49 smokers, 141 nonsmokers) treated with irinotecan (90-minute intravenous administration on a 3-week schedule) were evaluated for pharmacokinetics. Complete toxicity data were available in a subset of 134 patients receiving 350 mg/sq m or 600 mg flat-fixed dose irinotecan. In smokers, the dose-normalized area under the plasma concentration-time curve of irinotecan was significantly lower (median, 28.7 v 33.9 ng x hr/mL/mg; P = .001) compared with nonsmokers. In addition, smokers showed an almost 40% lower exposure to SN-38 (median, 0.54 v 0.87 ng x h/mL/mg; P < .001) and a higher relative extent of glucuronidation of SN-38 into SN-38G (median, 6.6 v 4.5; P = .006). Smokers experienced considerably less hematologic toxicity. In particular, the incidence of grade 3 to 4 neutropenia was 6% in smokers versus 38% in nonsmokers (odds ratio [OR], 0.10; 95% CI, 0.02 to 0.43; P < .001). There was no significant difference in incidence of delayed-onset diarrhea (6% v 15%; OR, 0.34; 95% CI, 0.07 to 1.57; P = .149). This study indicates that smoking significantly lowers both the exposure to irinotecan and treatment-induced neutropenia, indicating a potential risk of treatment failure. Although the underlying mechanism is not entirely clear, modulation of CYP3A and uridine diphosphate glucuronosyltransferase isoform 1A1 may be part of the explanation. The data suggest that additional investigation is warranted to determine whether smokers are at increased risk for treatment failure.|The coadministration of protease inhibitors with anticancer drugs in the management of human immunodeficiency virus-related malignancies can cause potential drug-drug interactions. The effect of lopinavir/ritonavir (LPV/RTV) on the pharmacokinetics of irinotecan (CPT11) has been investigated in seven patients with Kaposi's sarcoma. Coadministration of LPV/RTV reduces the clearance of CPT11 by 47% (11.3+/-3.5 vs 21.3+/-6.3 l/h/m(2), P=0.0008). This effect was associated with an 81% reduction (P=0.02) of the AUC (area under the curve) of the oxidized metabolite APC (7-ethyl-10-[4-N-(5-aminopentanoic-acid)-1-piperidino]-carbonyloxycamptothecin). The LPV/RTV treatment also inhibited the formation of SN38 glucuronide (SN38G), as shown by the 36% decrease in the SN38G/SN38 AUCs ratio (5.9+/-1.6 vs 9.2+/-2.6, P=0.002) consistent with UGT1A1 inhibition by LPV/RTV. This dual effect resulted in increased availability of CPT11 for SN38 conversion and reduced inactivation on SN38, leading to a 204% increase (P=0.0001) in SN38 AUC in the presence of LPV/RTV. The clinical consequences of these substantial pharmacokinetic changes should be investigated.|Irinotecan or CPT-11 [7-ethyl-10-[4-(1-piperidino)-1-piperidino]carbonyloxycamptothecine] is a derivative of camptothecine used in the treatment of advanced colorectal cancer. It requires activation to SN-38 (7-ethyl-10-hydroxycamptothecine) by carboxylesterase. Irinotecan and SN-38 are detoxified through two major metabolic pathways: the first one leads to oxidative degradation compounds, APC (7-ethyl-10-[4-N-(5-aminopentanoic acid)-1-piperidino)carbonyloxycamptothecine] and NPC [7-ethyl-10-(4-amino-1-piperidino)carbonyloxycamptothecine], and involves cytochrome P450 (3A4 isoform); the second one leads to SN-38 glucuronide (SN-38G) and involves UDP-glucuronosyltransferase (UGT). Using human hepatic microsomes, ... the interactions of 15 drugs of common use in colorectal cancer patients on these metabolic pathways /were studied/. Only nifedipine had a significant effect on SN-38 formation, decreasing carboxylesterase activity by 50% at 100 microM and 35% at 10 microM. Three drugs had a significant effect on SN-38G formation: clonazepam increased UGT activity by 50% at 100 uM and 30% at 10 microM, and nifedipine and vinorelbine inhibited the activity by 65 and 55% at 100 uM, respectively, with no effect at 10 microM. Five drugs exerted a significant inhibition on SN-38 formation at 100 microM: clonazepam (70%), methylprednisolone (50%), nifedipine (80%), omeprazole (85%), and vinorelbine (100%). Only omeprazole and vinorelbine still exerted a significant inhibition at 10 microM (30 and 90%, respectively), whereas only vinorelbine had a significant effect at 2 and 0.5 microM (70 and 40%, respectively). In conclusion, potential clinical interactions with the metabolism of irinotecan are likely to be important for vinorelbine, which strongly inhibits irinotecan catabolism by CYP3A4 at clinically relevant concentrations, but not for the other drugs, which exert an effect at concentrations not achievable in patients.|Coadministration of atazanavir sulfate, a CYP3A4 and UGT1A1 inhibitor has the potential to increase systemic exposure to SN-38, the active metabolite of irinotecan. Physicians should take this into consideration when co-administering these drugs.|For more Interactions (Complete) data for IRINOTECAN (12 total), please visit the HSDB record page.

Because irinotecan often causes neutropenia, leukopenia, and anemia, which can be severe, the drug should not be used in patients with severe bone marrow failure. Because irinotecan hydrochloride for injection concentrate contains sorbitol, the drug should not be given to patients with hereditary fructose intolerance.|Close monitoring is advised in patients older than 65 years of age because of increased risk of treatment-related toxicity, such as late diarrhea, during irinotecan therapy. ...|... Uridine-diphosphoglucuronosyl transferase 1A1 (UGT1A1)*28 polymorphism reduces UGT1A1 enzyme activity, which may lead to severe toxicities in patients who receive irinotecan. This study was conducted to assess the influence of this polymorphism on the efficacy and toxicity of irinotecan treatment in Chinese patients with metastatic colorectal carcinoma. In total, 128 patients with metastatic colorectal carcinoma who had received previous treatment with irinotecan plus 5-fluorouracil/leucovorin were analyzed retrospectively. Genomic DNA samples were obtained from patients' leukocytes, and genotypes were determined by analyzing the sequence of TATA boxes in the UGT1A1 gene. The influence of the UGT1A1*28 polymorphism on toxicity and treatment outcome was analyzed. Approximately 20% of patients were identified with the UGT1A1*28 polymorphism, including 15.6% (n = 20 patients) with the thymine-adenine (TA)6/TA7 genotype and 4.7% (n = 6 patients) with the TA7/TA7 genotype. The remaining 79.7% of patients (n = 102) had wild type TA6/TA6. Marked increases in grade 3 or 4 neutropenia (53.8% vs 4.9%; P < .01), neutropenic fever (38.5% vs 3.9%; P < .01), diarrhea (26.9% vs 5.9%; P < .01), and pretreatment bilirubin level (23.1% vs 8.8%; P = .04) were observed in patients who had the TA6/TA7 or TA7/TA7 genotypes. Patients' pretreatment bilirubin levels correlated well with irinotecan-induced neutropenia (P < .01). It was noted that, although the requirement for irinotecan dose reduction was significantly greater in patients who had this genetic variant (42.3% vs 12.7%; P < .01), it did not affect the response rate to irinotecan-based chemotherapy (42.3% vs 45.1%; P = .80), and it did not significantly affect progression-free survival (10 months vs 11 months; P = .94) or overall survival (19 months vs 18 months; P = .84). The current data suggested that the UGT1A1*28 polymorphism may be a key determinant for predicting irinotecan-induced severe toxicities without affecting treatment outcome for patients with metastatic colorectal carcinoma.|... The association of ABCC2 (MRP2) polymorphisms and haplotypes with irinotecan disposition and diarrhea /were examined/. A cohort of 167 Caucasian cancer patients who were previously assessed for irinotecan pharmacokinetics (90-min infusion given every 21 days), toxicity, and UGT1A1*28 genotype were genotyped for polymorphisms in ABCC2 using Pyrosequencing. Fifteen ABCC2 haplotypes were identified in the studied patients. The haplotype ABCC2*2 was associated with lower irinotecan clearance (28.3 versus 31.6 L/hr; P=0.020). In patients who did not carry a UGT1A1*28 allele, a significant reduction of severe diarrhea was noted in patients with the ABCC2*2 haplotype (10 versus 44%; odds ratio, 0.15; 95% confidence interval, 0.04-0.61; P=0.005). This effect was not observed in patients with at least one UGT1A1*28 allele (32 versus 20%; odds ratio, 1.87; 95% confidence interval, 0.49-7.05; P=0.354). This study suggests that the presence of the ABCC2*2 haplotype is associated with less irinotecan-related diarrhea, maybe as a consequence of reduced hepatobiliary secretion of irinotecan. As the association was seen in patients not genetically predisposed at risk for diarrhea due to UGT1A1*28, confirmatory studies of the relationships of ABCC2 genotypes and irinotecan disposition and toxicity are warranted.

30%-68% protein bound, mainly to albumin.

Drug Information

For the treatment of metastatic colorectal cancer (first-line therapy when administered with 5-fluorouracil and leucovorin). Also used in combination with cisplatin for the treatment of extensive small cell lung cancer. Irinotecan is currently under investigation for the treatment of metastatic or recurrent cervical cancer. Also used in combination with fluorouracil and leucovorin for the treatment of patients with metastatic adenocarcinoma of the pancreas after disease progression following gemcitabine-based therapy.|FDA Label|Drug: Irinotecanhydrochloride

Irinotecan and topotecan are semisynthetic derivatives of the plant alkaloid camptothecin and are used as antineoplastic agents in the therapy of colorectal, ovarian and non-small cell lung cancer. Both irinotecan and topotecan are associated with an appreciable rate of serum enzyme elevations during therapy, and irinotecan has been implicated in causing steatohepatitis when given as cyclic anticancer therapy.

Antineoplastic Agents

Irinotecan is used in combination with cisplatin for the initial treatment of extensive small cell lung cancer.|Irinotecan hydrochloride is used as a single agent for the treatment of metastatic carcinoma of the colon or rectum in patients whose disease has recurred or progressed following initial therapy with fluorouracil-based antineoplastic regimens. /Irinotecan hydrochloride/|Irinotecan is being investigated as an active agent in the treatment of metastatic or recurrent cervical cancer. Objective response rates of 13-21% have been reported with use of irinotecan as a single agent for advanced squamous cell carcinoma of the cervix. Although no responses to irinotecan were observed in one small uncontrolled phase II study of patients with platinum-resistant advanced squamous cell carcinoma of the cervix, responses to the drug have been reported in similar patients in another phase II study. The benefit of combination chemotherapy regimens vs single-agent therapy (e.g., cisplatin alone) has not been fully established, and further study is needed to determine the role of irinotecan in the treatment of advanced cervical cancer. /Use is not currently included in the labeling approved by the US FDA/|Irinotecan hydrochloride is used as a component of first-line therapy in combination with fluorouracil and leucovorin for the treatment of metastatic carcinoma of the colon or rectum. /Irinotecan hydrochloride/|The effectiveness of irinotecan in pediatric patients has not been established. Results from two open-label, single arm studies were evaluated. One hundred and seventy children with refractory solid tumors were enrolled in one phase 2 trial in which 50 mg/ sq m of irinotecan was infused for 5 consecutive days every 3 weeks. Grade 3-4 neutropenia was experienced by 54 (31.8%) patients. Neutropenia was complicated by fever in 15 (8.8%) patients. Grade 3-4 diarrhea was observed in 35 (20.6%) patients. This adverse event profile was comparable to that observed in adults. In the second phase 2 trial of 21 children with previously untreated rhabdomyosarcoma, 20 mg/sq m of irinotecan was infused for 5 consecutive days on weeks 0, 1, 3 and 4. This single agent therapy was followed by multimodal therapy. Accrual to the single agent irinotecan phase was halted due to the high rate (28.6%) of progressive disease and the early deaths (14%). The adverse event profile was different in this study from that observed in adults; the most significant grade 3 or 4 adverse events were dehydration experienced by 6 patients (28.6%) associated with severe hypokalemia in 5 patients (23.8%) and hyponatremia in 3 patients (14.3%); in addition Grade 3-4 infection was reported in 5 patients (23.8%) (across all courses of therapy and irrespective of causal relationship).

Camptosar injection should be administered only under the supervision of a physician who is experienced in the use of cancer chemotherapeutic agents. Appropriate management of complications is possible only when adequate diagnostic and treatment facilities are readily available. Camptosar can induce both early and late forms of diarrhea that appear to be mediated by different mechanisms. Both forms of diarrhea may be severe. Early diarrhea (occurring during or shortly after infusion of Camptosar) may be accompanied by cholinergic symptoms of rhinitis, increased salivation, miosis, lacrimation, diaphoresis, flushing, and intestinal hyperperistalsis that can cause abdominal cramping. Early diarrhea and other cholinergic symptoms may be prevented or ameliorated by atropine. Late diarrhea (generally occurring more than 24 hours after administration of Camptosar) can be life threatening since it may be prolonged and may lead to dehydration, electrolyte imbalance, or sepsis. Late diarrhea should be treated promptly with loperamide. Patients with diarrhea should be carefully monitored and given fluid and electrolyte replacement if they become dehydrated or antibiotic therapy if they develop ileus, fever, or severe neutropenia. Administration of Camptosar should be interrupted and subsequent doses reduced if severe diarrhea occurs. Severe myelosuppression may occur.|Close monitoring is advised in patients older than 65 years of age because of increased risk of treatment-related toxicity, such as late diarrhea, during irinotecan therapy. Patients receiving irinotecan/fluorouracil/leucovorin therapy should be monitored closely (e.g., weekly assessment), particularly during the first cycle of treatment, since most of the treatment-related toxicities leading to early death occurred within the first 3-4 weeks. Changes in serum electrolytes and/or acid-base balance, including hyponatremia or hypernatremia, hypokalemia, and/or metabolic acidosis, may be an early indication of treatment-related toxicity; patients with abnormalities in serum sodium, potassium, and/or bicarbonate concentrations, with or without concomitant elevations in serum BUN or creatinine concentrations, should be evaluated carefully for dehydration and receive aggressive medical management, including fluid and electrolyte replacement.|Deaths due to sepsis following severe neutropenia have been reported in patients treated with Camptosar.|In addition to GI and hematologic toxicity, other severe adverse effects have occurred in patients receiving irinotecan. Hypersensitivity reactions, including severe anaphylactic or anaphylactoid reactions, have been reported. Renal impairment and acute renal failure have occurred rarely, usually in patients who became volume-depleted from severe vomiting and/or diarrhea. Cardiovascular and thromboembolic events also have been reported.|For more Drug Warnings (Complete) data for IRINOTECAN (19 total), please visit the HSDB record page.

Irinotecan is an antineoplastic enzyme inhibitor primarily used in the treatment of colorectal cancer. Irinotecan is a semisynthetic derivative of camptothecin. Camptothecins interact specifically with topoisomerase I, an enzyme in the cell nucleus that regulates DNA topology and facilitates nuclear processes such as DNA replication, recombination, and repair. During these processes, topoisomerase I relieves torsional strain in DNA by inducing reversible single-strand breaks, allowing single DNA strands to pass through the break. The 3'-DNA terminus of the broken DNA strands bind covalently with the topoisomerase enzyme to form a catalytic intermediate called a cleavable complex. After the DNA is sufficiently relaxed and the strand passage reaction is complete, DNA topoisomerase reattaches the broken DNA strands to form the chemically unaltered topoisomers that allow transcription to proceed. Irinotecan and its active metabolite SN-38 bind to the topoisomerase I-DNA complex and prevent religation of these single-strand breaks. Current research suggests that the cytotoxicity of irinotecan is due to double-strand DNA damage produced during DNA synthesis when replication enzymes interact with the ternary complex formed by topoisomerase I, DNA, and either Irinotecan or SN-38. Mammalian cells cannot efficiently repair these double-strand breaks. The precise contribution of SN-38 to the activity of irinotecan in humans is not known. Irinotecan is cell cycle phase-specific (S-phase).

Compounds that inhibit the activity of DNA TOPOISOMERASE I. (See all compounds classified as Topoisomerase I Inhibitors.)

The maximum plasma concentration (Cmax) when a dose of 125 mg/m^2 is given to patients with solid tumours is 1660 ng/mL. The AUC (0-24) is 10,200 ng·h/mL. The Cmax when a dose of 340 mg/m^2 is given to patients with solid tumours is 3392 ng/mL. The AUC (0-24) is 20,604 ng·h/mL.|The cumulative biliary and urinary excretion of irinotecan and its metabolites (SN-38 and SN-38 glucuronide) over a period of 48 hours following administration of irinotecan in two patients ranged from approximately 25% (100 mg/m2) to 50% (300 mg/m2).|The volume of distribution of terminal elimination phase is 110 L/m^2 when a dose of 125 mg/m^2 is given to patients with solid tumours. The volume of distribution of terminal elimination phase is 234 L/m^2 when a dose of 340 mg/m^2 is given to patients with solid tumours.|13.3 L/h/m^2 [Dose of 125 mg/m^2, patients with solid tumours]|Pharmacokinetic parameters for irinotecan and SN-38 were determined in 2 pediatric solid-tumor trials at dose levels of 50 mg/sq m (60-min infusion, n=48) and 125 mg/sq m (90-min infusion, n=6). Irinotecan clearance (mean + or - S.D.) was 17.3 + or - 6.7 L/h/sq m for the 50 mg/sq m dose and 16.2 + or - 4.6 L/h/sq m for the 125 mg/sq m dose, which is comparable to that in adults. Dose-normalized SN-38 AUC values were comparable between adults and children. Minimal accumulation of irinotecan and SN-38 was observed in children on daily dosing regimens (daily X 5 every 3 weeks or (daily X 5) X 2 weeks every 3 weeks).|The clinical pharmacokinetics of irinotecan (CPT11) can be described by a 2 or 3 compartment model, a mean terminal half-life of 12 hours, a volume of distribution at steady state of 168 L/sq m and a total body clearance of 15 L/sq m/hr. Irinotecan is 65% bound to plasma proteins. The areas under the plasma concentration-time curve (AUC) of both irinotecan and active metabolite SN38 increase proportionally to the administered dose, although interpatient variability is important. ... The mean 24 hr irinotecan urinary excretion represents 17-25% of the administered dose, whereas SN38 and its glucuronide recovery in urine is minimal (0.5 and 6%, respectively). Irinotecan and SN38 pharmacokinetics are not influenced by prior exposure to the parent drug. Irinotecan and SN38 AUCs correlate significantly with leuko-neutropenia and sometimes with the intensity of diarrhea. Increased bilirubin levels appear to influence irinotecan total body clearance.

Hepatic. The metabolic conversion of irinotecan to the active metabolite SN-38 is mediated by carboxylesterase enzymes and primarily occurs in the liver. SN-38 is subsequently conjugated predominantly by the enzyme UDP-glucuronosyl transferase 1A1 (UGT1A1) to form a glucuronide metabolite.|... SN38 levels achieved in humans are about 100-fold lower than corresponding irinotecan levels, but these concentrations are important since SN38 is 100- to 1,000-fold more cytotoxic than the parent compound. SN38 is 95% bound to plasma proteins. SN38 plasma decay follows closely that of the parent compound. Irinotecan is extensively metabolized in the liver. The bipiperidinocarbonyloxy group of irinotecan is first removed by a carboxyesterase to yield the corresponding carboxylic acid and SN38. This metabolite can be converted into SN38 glucuronide by UDP-glucuronyltransferase (1.1 isoform). A recently identified metabolite is the 7-ethyl-10-[4-N-(5-aminopentanoic acid)-1-piperidino]-carbonyloxy-camptothecin (APC), which is formed by the action of cytochrome P450 3A4. Numerous other unidentified metabolites are detected in bile and urine. ...|Irinotecan, a camptothecin analogue, is a prodrug which requires bioactivation to form the active metabolite SN-38. SN-38 acts as a DNA topoisomerase I poison. ... Irinotecan is subjected to be shunted between CYP3A4 mediated oxidative metabolism to form two inactive metabolites APC or NPC and tissue carboxylesterase mediated hydrolysis to form SN-38 which is eventually detoxified via glucuronidation by UGT1A1 to form SN-38G. The pharmacology of this compound is further complicated by the existence of genetic inter-individual differences in activation and deactivation enzymes of irinotecan (e.g., CYP3A4, CYP3A5, UGT1A1) and sharing competitive elimination pathways with many concomitant medications, such as anticonvulsants, St. John's Wort, and ketoconazole. Efflux of the parent compound and metabolites out of cells by several drug transporters (e.g., Pgp, BCRP, MRP1, MRP2) also occurs. This review highlights the latest findings in drug activation, transport mechanisms, glucuronidation, and CYP3A-mediated drug-drug interactions of irinotecan in order to unlock some of its complicated pharmacology and to provide ideas for relevant future studies into optimization of this promising agent.|Irinotecan serves as a water-soluble precursor of the lipophilic metabolite SN-38. SN-38 is formed from irinotecan by carboxylesterase-mediated cleavage of the carbamate bond between the camptothecin moiety and the dipiperidino side chain. SN-38 is approximately 1000 times as potent as irinotecan as an inhibitor of topoisomerase I purified from human and rodent tumor cell lines. In vitro cytotoxicity assays show that the potency of SN-38 relative to irinotecan varies from 2- to 2000-fold. However, the plasma area under the concentration versus time curve (AUC) values for SN-38 are 2% to 8% of irinotecan and SN-38 is 95% bound to plasma proteins compared to approximately 50% bound to plasma proteins for irinotecan. The precise contribution of SN-38 to the activity of Camptosar is thus unknown. Both irinotecan and SN-38 exist in an active lactone form and an inactive hydroxy acid anion form. A pH-dependent equilibrium exists between the two forms such that an acid pH promotes the formation of the lactone, while a more basic pH favors the hydroxy acid anion form.|The metabolic conversion of irinotecan to the active metabolite SN-38 is mediated by carboxylesterase enzymes and primarily occurs in the liver. SN-38 is subsequently conjugated predominantly by the enzyme UDP-glucuronosyl transferase 1A1 (UGT1A1) to form a glucuronide metabolite. UGT1A1 activity is reduced in individuals with genetic polymorphisms that lead to reduced enzyme activity such as the UGT1A1*28 polymorphism. Approximately 10% of the North American population is homozygous for the UGT1A1*28 allele. In a prospective study, in which irinotecan was administered as a single-agent on a once-every-3-week schedule, patients who were homozygous for UGT1A1*28 had a higher exposure to SN-38 than patients with the wild-type UGT1A1 allele. SN-38 glucuronide had 1/50 to 1/100 the activity of SN-38 in cytotoxicity assays using two cell lines in vitro. The disposition of irinotecan has not been fully elucidated in humans. The urinary excretion of irinotecan is 11% to 20%; SN-38, <1%; and SN-38 glucuronide, 3%. The cumulative biliary and urinary excretion of irinotecan and its metabolites (SN-38 and SN-38 glucuronide) over a period of 48 hours following administration of irinotecan in two patients ranged from approximately 25% (100 mg/sq m) to 50% (300 mg/sq m).|Irinotecan has known human metabolites that include (2S,3S,4S,5R)-6-[[(19S)-10,19-diethyl-14,18-dioxo-7-(4-piperidin-1-ylpiperidine-1-carbonyl)oxy-17-oxa-3,13-diazapentacyclo[11.8.0.02,11.04,9.015,20]henicosa-1(21),2,4(9),5,7,10,15(20)-heptaen-19-yl]oxy]-3,4,5-trihydroxyoxane-2-carboxylic acid and 7-ethyl-10-[4-N-(5-aminopentanoic acid)-1-piperidino] carbonyloxycamptothecin.

The half life of irinotecan is about 6 - 12 hours. The terminal elimination half-life of the active metabolite, SN-38 is 10 - 20 hours.|After intravenous infusion of irinotecan in humans, irinotecan plasma concentrations decline in a multiexponential manner, with a mean terminal elimination half-life of about 6 to 12 hours. The mean terminal elimination half-life of the active metabolite SN-38 is about 10 to 20 hours. The half-lives of the lactone (active) forms of irinotecan and SN-38 are similar to those of total irinotecan and SN-38, as the lactone and hydroxy acid forms are in equilibrium.

Irinotecan inhibits the action of topoisomerase I. Irinotecan prevents religation of the DNA strand by binding to topoisomerase I-DNA complex. The formation of this ternary complex interferes with the moving replication fork, which induces replication arrest and lethal double-stranded breaks in DNA. As a result, DNA damage is not efficiently repaired and apoptosis (programmed cell death) occurs.|Irinotecan is a derivative of camptothecin. Camptothecins interact specifically with the enzyme topoisomerase I which relieves torsional strain in DNA by inducing reversible single-strand breaks. Irinotecan and its active metabolite SN-38 bind to the topoisomerase I-DNA complex and prevent religation of these single-strand breaks. Current research suggests that the cytotoxicity of irinotecan is due to double-strand DNA damage produced during DNA synthesis when replication enzymes interact with the ternary complex formed by topoisomerase I, DNA, and either irinotecan or SN-38. Mammalian cells cannot efficiently repair these double-strand breaks.

Emergency and supportive measures. Maintain an open airway and assist ventilation if necessary. Treat coma, seizures, hypotension, and arrhythmias if they occur. Treat nausea and vomiting with metoclopramide and fluid loss caused by gastroenteritis with intravenous crystalloid fluids. /Antineoplastic agents/|Bone marrow depression should be treated with the assistance of an experienced hematologist or oncologist. /Antineoplastic agents/|Decontamination. Administer activated charcoal orally if conditions are appropriate. Gastric lavage is not necessary after small to moderate ingestions if activated charcoal can be given promptly. /Antineoplastic agents/|Enhanced elimination. Because of the rapid intracellular incorporation of most of these agents, dialysis and other extracorporeal removal procedures are generally not effective. /Antineoplastic agents/

/SIGNS AND SYMPTOMS/ In U.S. phase 1 trials, single doses of up to 345 mg/sq m of irinotecan were administered to patients with various cancers. Single doses of up to 750 mg/sq m of irinotecan have been given in non-U.S. trials. The adverse events in these patients were similar to those reported with the recommended dosage and regimen. There have been reports of overdosage at doses up to approximately twice the recommended therapeutic dose, which may be fatal. The most significant adverse reactions reported were severe neutropenia and severe diarrhea.|/SIGNS AND SYMPTOMS/ In addition to GI and hematologic toxicity, other severe adverse effects have occurred in patients receiving irinotecan. Hypersensitivity reactions, including severe anaphylactic or anaphylactoid reactions, have been reported. Renal impairment and acute renal failure have occurred rarely, usually in patients who became volume-depleted from severe vomiting and/or diarrhea. Cardiovascular and thromboembolic events also have been reported.|/SIGNS AND SYMPTOMS/ Close monitoring is advised in patients older than 65 years of age because of increased risk of treatment-related toxicity, such as late diarrhea, during irinotecan therapy. Patients receiving irinotecan/fluorouracil/leucovorin therapy should be monitored closely (e.g., weekly assessment), particularly during the first cycle of treatment, since most of the treatment-related toxicities leading to early death occurred within the first 3-4 weeks. Changes in serum electrolytes and/or acid-base balance, including hyponatremia or hypernatremia, hypokalemia, and/or metabolic acidosis, may be an early indication of treatment-related toxicity; patients with abnormalities in serum sodium, potassium, and/or bicarbonate concentrations, with or without concomitant elevations in serum BUN or creatinine concentrations, should be evaluated carefully for dehydration and receive aggressive medical management, including fluid and electrolyte replacement.|/SIGNS AND SYMPTOMS/ Deaths due to sepsis following severe neutropenia have been reported in patients treated with Camptosar.|For more Human Toxicity Excerpts (Complete) data for IRINOTECAN (13 total), please visit the HSDB record page.

7 Ethyl 10 hydroxycamptothecin

Irinotecan Use and Manufacturing

Methods of Manufacturing

Camptothecin (I) is used as raw material. (I) (1.00g, 2.9mmo1) was suspended in 100ml of water containing FeSO4?7H2O (300mg, 1.1mmo1) and 2ml of propionaldehyde, and 11ml of concentrated sulfuric acid was added dropwise under ice bath cooling. Then 30% hydrogen peroxide (720 mg, 6.4 mmol) was added with stirring. After stirring at room temperature for 3h, dilute with water and extract with chloroform (3×100ml). The extract was concentrated, and the residue was passed through a silica gel chromatography column, eluting with 2% methanol-chloroform. 7-Ethyl camptothecin (Ⅱ) was obtained as pale yellow needle crystals with a yield of 77% and a melting point of 258~261°C. Compound (II) (3.00 g, 8.0 mmol) and 50 ml of 30% hydrogen peroxide in 800 ml of acetic acid were heated at 70-80°C for 3.5 hours. The reaction was concentrated to 1/3 volume at 45-55°C, and the residue was poured into 3L of ice water. The precipitate that precipitated was collected by filtration, and after recrystallization and purification, 2.4 g of orange-yellow needle-like crystals of 7-ethylcamptothecin-1-oxo (Ⅲ) was obtained, with a yield of 78% and a melting point of 255°C. Compound (III) (1.00g, 2.6mmo1) and 2.6ml lmol/L sulfuric acid were dissolved in 1L dioxane, and nitrogen was bubbled for 20min. Under stirring, illuminate 30rain with a high-pressure mercury lamp (450W, Usio UM-452) with a Pyrex filter. The reaction solution was concentrated to dryness, and the residue was dissolved in 50 ml of 10% methanol. Chloroform. The solution was washed with 500 ml of water, and both the organic layer and the inorganic layer passed through a column containing celite. The insoluble materials in the two phases were adsorbed on it, and then eluted with 10% methanol-chloroform (3×200m1). After the eluent was concentrated, the residue was washed with methanol and recrystallized to obtain 0.5 g of 7-ethyl-10-hydroxycamptothecin (IV) as pale yellow needle crystals, with a yield of 49% and a melting point of 216°C. Compound (IV) (5.00g, 12.8mmo1) was dissolved in 10L of dioxane and 50ml of triethylamine, and phosgene was introduced at room temperature under stirring (from 3.75ml of diphosgene acting on activated carbon), and stirring was continued for 1h . Filter and concentrate the filtrate under reduced pressure. The residue was impregnated with acetone and filtered to obtain 5.2 g of compound (V) as a colorless powder in a yield of 90.0%. Compound (V) (3.0 g) was dissolved in a mixture of dichloromethane-methanol (500 ml-150 ml) and 15 ml of pyridine, and with stirring, twice the dichloromethane solution of compound (VI) was added dropwise. After the addition, stirring was continued at room temperature for 15h. It was concentrated to dryness under reduced pressure, and the residue was dissolved in methylene chloride, washed with 7% sodium bicarbonate solution, and dried over anhydrous magnesium sulfate. Filter and evaporate under reduced pressure. The residue was subjected to silica gel column chromatography, eluting with 4% methanol-dichloromethane. The product was obtained as light yellow powder with a yield of 79.8% and a melting point of 222~223°C. It can also be obtained by converting compound (V1) into acid chloride (VII) and then condensing with (IV). The operation is as follows. Compound (VI) (60g) was dissolved in benzene, and under stirring and in a nitrogen atmosphere, a phosgene (50ml) benzene solution was added dropwise below 10°C. After the addition, stirring was continued at room temperature for 1 h. The deposited precipitate was collected by filtration and dissolved in methylene chloride. After the solution was washed with 7% sodium bicarbonate solution, it was dried over anhydrous magnesium sulfate. Filter and concentrate to dryness under reduced pressure. The residue is passed through a silica gel column and eluted with dichloromethane-acetone (500:1). Compound (VII) was obtained. Compound (IV) and 1.1 times compound (VII) were dissolved in pyridine and stirred at room temperature for 15h. It was concentrated to dryness under reduced pressure, the residue was dissolved in dichloromethane, and shaken by adding 7% sodium bicarbonate solution. The organic layer was separated and dried over anhydrous magnesium sulfate. Filter and concentrate the filtrate under reduced pressure. The residue was chromatographed on a silica gel column (eluent was methanol-chloroform, 1:20) to obtain the product.

Uses

Irinotecan is a topoisomerase I inhibitor for LoVo cells and HT-29 cells with IC50 of 15.8 μM and 5.17 μM, respectively Anti-tumor drugs. It is a DNA synthesis inhibitor. It is a semi-synthetic derivative of camptothecin; used to prepare irinotecan hydrochloride and irinotecan hydrochloride trihydrate; an anticancer drug.

Parenteral For injection, concentrate, for IV use only: 20 mg/mL (40 and 100 mg) Camptosar (Pfizer). /Ironotecan hydrochloride (trihydrate)/

Analyte: irinotecan; matrix: bile; procedure: high-performance liquid chromatography with ultraviolet detection at 254 nm|Analyte: irinotecan; matrix: blood (plasma); procedure: high-performance liquid chromatography with fluorescence detection at 380 nm (excitation) and 500 nm (emission); limit of detection: 1 ng/mL|Analyte: irinotecan; matrix: blood (plasma); procedure: reversed-phase high-performance liquid chromatography with fluorescence detection at 355 nm (excitation) and 515 nm (emission); limit of quantitation: 10 ng/mL|Analyte: irinotecan; matrix: blood (plasma); procedure: high-performance liquid chromatography with fluorescence detection at 380 nm (excitation) and 556 nm (emission) or at 370 nm (excitation) and 430 nm (emission); limit of quantitation: 30 ng/mL|For more Clinical Laboratory Methods (Complete) data for IRINOTECAN (9 total), please visit the HSDB record page.

Human Drugs -> FDA Approved Drug Products with Therapeutic Equivalence Evaluations (Orange Book) -> Active Ingredients

Computed Properties

Molecular Weight:586.7
XLogP3:3
Hydrogen Bond Donor Count:1
Hydrogen Bond Acceptor Count:8
Rotatable Bond Count:5
Exact Mass:586.27913494
Monoisotopic Mass:586.27913494
Topological Polar Surface Area:113
Heavy Atom Count:43
Complexity:1200
Defined Atom Stereocenter Count:1
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes

Material

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