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Number of Participants With Chromosomal Abnormalities
Time frame: Based on samples obtained at the time of initial surgery or repeat surgery prior to treatment
Amplifications and deletions (gains and losses) for chromosomes of interest are shown in the table of measured values.
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Numbers of Patients With Gene Alterations
Time frame: Based on samples obtained at the time of initial surgery or repeat surgery prior to treatment
Gene alterations, which include single nucleotide variants (SNPs), amplifications, deletions, translocations, indels, and germline alterations are shown for specific genes of interest in the results table.
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Numbers of Patients With Molecular Abnormalities by Tumor Type
Time frame: Based on samples obtained at the time of initial surgery or repeat surgery prior to treatment
Alterations included single nucleotide variants (SNPs), amplifications, deletions, translocations, indels, and germline alterations. Cytogenetic information shows gains and losses as specified in the table of measured values.
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Number of Successful Collections for Frozen and Fixed Tumor Samples
Time frame: Based on samples obtained at the time of initial surgery or repeat surgery prior to treatment
Successful collections will be defined as the number of patients who have frozen/fixed tumor samples available.
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Event-free Survival (EFS) Compared to Historical Controls
Time frame: From date on treatment until date of first event (progression, second malignancy or death) or until date of last contact, assessed up to 10 years
EFS was measured from the date of initial treatment to the earliest date of disease progression, second malignancy or death for patients who fail; and to the date of last contact for patients who remain at risk for failure. 1-year EFS estimates are reported by risk group. EFS was compared to St. Jude historical cohorts by risk group using hazard ratios with 95% confidence intervals.
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Overall Survival (OS) Compared to Historical Controls
Time frame: 1 year after treatment initiation of last patient
OS was measured from the date of initial treatment to date of death or to date of last contact for survivors. 1-year OS estimates were reported by risk group. OS was compared to St. Jude historical cohorts by risk group using hazard ratios with 95% confidence intervals.
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Percentage of Patients With Objective Responses Rate to Induction Chemotherapy
Time frame: From on-study date to 2 months after completion of induction chemotherapy (up to 4 months after on-study date)
For patients treated in the intermediate and high risk strata with residual or metastatic disease we will estimate the stratum-specific objective response rate (complete response (CR) or partial response [ PR]). All patients who receive at least 1 -dose of methotrexate are evaluable for response. Objective responses must be sustained for at least eight weeks.
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Feasibility and Toxicity of Administering Vinblastine With Induction Chemotherapy for Patients With Metastatic Disease as Measured by the Percentage of Courses Delayed for More Than 7 Days Due to Toxicity
Time frame: From on-study date up to 4 months after on-study date
For the subset of patients with metastatic disease (high-risk group patients), during induction, the proportion percentage of courses during which subsequent chemotherapy administration was delayed for more than 7 days due to toxicity will be calculated. Patients were to receive 4 courses of induction and then consolidation chemotherapy.
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Feasibility and Toxicity of Administering Consolidation Therapy Including Cyclophosphamide and Pharmacokinetically Targeted Topotecan to Patients With Metastatic Disease Based on the Percentage of Courses Delayed for More Than 7 Days Due to Toxicity
Time frame: At completion of consolidation therapy (up to 6 months after on-study date)
For the subset of patients with metastatic disease (high-risk group patients), during consolidation, we will calculate the number and proportion of courses during which subsequent chemotherapy administration was delayed for more than 7 days due to toxicity. Patients were to received 2 courses of consolidation chemotherapy and then maintenance therapy.
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Percent of Patients With Sustained Objective Responses Rate After Consolidation
Time frame: 8 weeks after completion of consolidation therapy (up to 8 months after on-study date)
For patients enrolled on the high-risk arm with measurable residual disease after induction treated with consolidation therapy, we will estimate the objective response (complete response (CR)/partial response (PR)) rate after consolidation therapy with a 95% confidence interval. Objective responses must be sustained for at least eight weeks. All patients who receive at least 1 dose of cyclophosphamide or topotecan during consolidation are evaluable for response.
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Feasibility and Toxicity of Administering Oral Maintenance Therapy in Children <3 Years of Age as Measured by the Percentage of Total Scheduled Maintenance Doses Received
Time frame: From start of oral maintenance therapy (approximately 6 months after on-study date) to completion of oral maintenance therapy (up to 1 year after on-study date)
These data are based on patient diaries. For children <3 years of age, we will calculate the percentage of total scheduled doses each patient received per course for each of the oral maintenance courses and report the overall average number percentage of doses received per course across patients. If patients received all planned doses, their percentage would be 100%. If the average percentage was less than 75%, then feasibility would be in question.
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Percent of PET Scans With Loss of Signal Intensity
Time frame: Up to 3 times during RT consolidation
Measures will be analyzed for intermediate risk participants who receive proton beam therapy (PBT) and who consent. This objective aims to assess the feasibility of using post-proton beam therapy (PBT) positron emission tomography (PET) as an in-vivo dosimetric and distal edge verification system in this patient population. To quantify the decay in signal, 134 scans from 53 patients were analyzed by recording the mean activation value (MAV), the average recorded PET signal from activation, within the target volume. With each patient being given the same dose, the percent standard deviation in the MAV can serve as a quantitative representation of signal loss due to radioactive decay.
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Concentration of Cerebrospinal Fluid Neurotransmitters
Time frame: Baseline, at the completion of therapy, and every 12 months up to 36 months after off therapy date
Concentrations of various neurotransmitters in cerebrospinal fluid were measured at 5 timepoints. The median concentration of each neurotransmitter at each time point was calculated and provided with a full range.
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Number and Type of Genetic Polymorphisms
Time frame: At study enrollment (Day 0)
Types of genetic polymorphisms of neurotransmitters were examined. We studied 3 genetic polymorphisms; these were types of genetic polymorphisms involved in dopamine metabolism. They were as follows: rs6323, rs4680, and rs6280.
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Pharmacogenetic Variation on Central Nervous System Transmitters
Time frame: At study enrollment (Day 0)
Frequencies of genetic polymorphisms were reported.
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Number of Participants With Endocrinopathy
Time frame: End of induction therapy (approximately 16 weeks from start of treatment), end of therapy (approximately 48 weeks from start of treatment), and 6, 12, 24, 36, 48, and 60 months off therapy
Endocrine screening and growth hormone (GH) testing were done in consenting intermediate risk patients at the end of induction therapy, the end of all therapy, and at 6, 12, 24, 36, 48, and 60 months off therapy. Endocrinopathy was defined as the presence of central hypothyroidism (free T4 concentration below normal with low or normal TSH concentration), growth hormone deficiency (peak growth hormone concentration below 5 ng/mL on dynamic testing), or ACTH deficiency (cortisol concentration below 14 ug/dL after low dose cosyntropin stimulation). Numbers of participants with endocrinopathy at each time point are reported. Please note the small numbers of participants with available data.
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Growth Hormone Secretion
Time frame: End of induction therapy (approximately 16 weeks from start of treatment), end of therapy (approximately 48 weeks from start of treatment), and 6, 12, 24, 36, 48, and 60 months off therapy
Growth hormone secretion was measured in consenting intermediate risk patients at the end of induction therapy, the end of all therapy, and at 6, 12, 24, 36, 48, and 60 months off therapy. Mean growth hormone secretion values are reported by assessment time point. Please note the small numbers of participants with available data.
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Methotrexate Clearance in Induction Cycle 1
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of Methotrexate (MTX)
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 1. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate clearance are obtained using post hoc analysis.
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Methotrexate Clearance in Induction Cycle 2
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 2. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate clearance are obtained using post hoc analysis.
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Methotrexate Clearance in Induction Cycle 3
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 3. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate clearance are obtained using post hoc analysis.
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Methotrexate Clearance in Induction Cycle 4
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 4. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate clearance are obtained using post hoc analysis.
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Methotrexate Volume of Central Compartment in Induction Cycle 1
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 1. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate volume of central compartment are obtained using post hoc analysis.
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Methotrexate Volume of Central Compartment in Induction Cycle 2
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 2. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate volume of central compartment are obtained using post hoc analysis.
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Methotrexate Volume of Central Compartment in Induction Cycle 3
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 3. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate volume of central compartment are obtained using post hoc analysis.
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Methotrexate AUC0-66h in Induction Cycle 1
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 1. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate AUC0-66h (area under concentration curve from time 0 to 66 hours post-dose) are obtained using post hoc analysis.
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Methotrexate AUC0-66h in Induction Cycle 2
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 2. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate AUC0-66h (area under concentration curve from time 0 to 66 hours post-dose) are obtained using post hoc analysis.
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Methotrexate Volume of Central Compartment in Induction Cycle 4
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 4. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate volume of central compartment are obtained using post hoc analysis.
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Methotrexate AUC0-66h in Induction Cycle 3
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 3. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate AUC0-66h (area under concentration curve from time 0 to 66 hours post-dose) are obtained using post hoc analysis.
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Methotrexate AUC0-66h in Induction Cycle 4
Time frame: Pre-infusion and 6, 23, 42, 66 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 4. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate AUC0-66h (area under concentration curve from time 0 to 66 hours post-dose) are obtained using post hoc analysis.
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Methotrexate Concentration at 42 Hours Post-dose in Induction Cycle 1
Time frame: 42 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 1. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate concentration at 42 hours post-dose are obtained using post hoc analysis.
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Methotrexate Concentration at 42 Hours Post-dose in Induction Cycle 2
Time frame: 42 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 2. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate concentration at 42 hours post-dose are obtained using post hoc analysis.
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Methotrexate Concentration at 42 Hours Post-dose in Induction Cycle 3
Time frame: 42 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 3. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate concentration at 42 hours post-dose are obtained using post hoc analysis.
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Methotrexate Concentration at 42 Hours Post-dose in Induction Cycle 4
Time frame: 42 hours from start of MTX
Methotrexate plasma concentration-time data are collected after the start of methotrexate infusion in induction cycle 4. Population parameters and inter-subject variability are estimated. Individual estimates of methotrexate concentration at 42 hours post-dose are obtained using post hoc analysis.
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Cyclophosphamide Clearance in Induction Chemotherapy
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected on day 9 in one cycle of induction chemotherapy. Individual estimates of cyclophosphamide clearance are obtained using post hoc analysis.
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Cyclophosphamide Clearance in Consolidation Chemotherapy Cycle 1
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected in consolidation cycle 1. Individual estimates of cyclophosphamide clearance are obtained using post hoc analysis.
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Cyclophosphamide Clearance in Consolidation Chemotherapy Cycle 2
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected in consolidation cycle 2. Individual estimates of cyclophosphamide clearance are obtained using post hoc analysis.
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Cyclophosphamide Apparent Oral Clearance in Maintenance Chemotherapy Cycle A1
Time frame: Pre-dose, 0.5, 1.75, 3 and 6 hours post-dose
Cyclophosphamide plasma concentration-time data are collected on day 1 of maintenance cycle A1. Individual estimates of cyclophosphamide apparent oral clearance are obtained using post hoc analysis.
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Cyclophosphamide AUC0-24h in Induction Chemotherapy
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected on day 9 in one cycle of induction chemotherapy. Individual estimates of cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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Cyclophosphamide AUC0-24h in Consolidation Chemotherapy Cycle 1
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected in consolidation cycle 1. Individual estimates of cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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4-OH Cyclophosphamide AUC0-24h in Consolidation Chemotherapy Cycle 1
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
4-OH cyclophosphamide plasma concentration-time data are collected in consolidation cycle 1. Individual estimates of 4-OH cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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Cyclophosphamide AUC0-24h in Consolidation Chemotherapy Cycle 2
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Cyclophosphamide plasma concentration-time data are collected in consolidation cycle 2. Individual estimates of cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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Cyclophosphamide AUC0-24h in Maintenance Chemotherapy Cycle A1
Time frame: Pre-dose, 0.5, 1.75, 3, 6, and 24 hours post-dose
Cyclophosphamide plasma concentration-time data are collected on day 1 of maintenance cycle A1. Individual estimates of cyclophosphamide AUC0-24h are obtained using post hoc analysis.
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4-OH Cyclophosphamide AUC0-24h in Induction Chemotherapy
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
4-OH cyclophosphamide plasma concentration-time data are collected on day 9 in one cycle of induction chemotherapy. Individual estimates of 4-OH cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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4-OH Cyclophosphamide AUC0-24h in Consolidation Chemotherapy Cycle 2
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
4-OH cyclophosphamide plasma concentration-time data are collected in consolidation cycle 2. Individual estimates of 4-OH cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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4-OH Cyclophosphamide AUC0-24h in Maintenance Chemotherapy Cycle A1
Time frame: Pre-dose, 0.5, 1.75, 3, 6, and 24 hours post-dose
4-OH cyclophosphamide plasma concentration-time data are collected on day 1 of maintenance cycle A1. Individual estimates of 4-OH cyclophosphamide AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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CEPM AUC0-24h in Induction Chemotherapy
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Carboxyethylphosphoramide mustard (CEPM) plasma concentration-time data are collected on day 9 in one induction cycle. Individual estimates of CEPM AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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CEPM AUC0-24h in Consolidation Chemotherapy Cycle 1
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Carboxyethylphosphoramide mustard (CEPM) plasma concentration-time data are collected in consolidation cycle 1. Individual estimates of CEPM AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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CEPM AUC0-24h in Consolidation Chemotherapy Cycle 2
Time frame: Pre-infusion, end of infusion, 3, 6, and 24 hours from end of cyclophosphamide infusion
Carboxyethylphosphoramide mustard (CEPM) plasma concentration-time data are collected in consolidation cycle 2. Individual estimates of CEPM AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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CEPM AUC0-24h in Maintenance Chemotherapy Cycle A1
Time frame: Pre-dose, 0.5, 1.75, 3, 6, and 24 hours post-dose
Carboxyethylphosphoramide mustard (CEPM) plasma concentration-time data are collected on day 1 of maintenance cycle A1. Individual estimates of CEPM AUC0-24h (area under concentration curve from time 0 to 24 hours post-dose) are obtained using post hoc analysis.
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Participants With Empirical Dosage Achieving Target System Exposure of Intravenous Topotecan
Time frame: Pre-infusion, 5 min., 1, and 3 hours from end of infusion
Number of participants who successfully achieve target systemic exposure of intravenous topotecan after an empiric dosage during consolidation phase of therapy are reported.
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Participants With PK-guided Dosage Adjustment Achieving Target System Exposure of Intravenous Topotecan
Time frame: Pre-infusion, 5 min., 1, and 3 hours from end of infusion
Number of participants who successfully achieve target systemic exposure of intravenous topotecan after a pharmacokinetic-guided dosage adjustment during consolidation phase of therapy are reported.
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Topotecan Clearance in Consolidation Chemotherapy
Time frame: Pre-infusion, 5 min., 1, and 3 hours from end of infusion
Topotecan plasma concentration-time data are collected on day 1 of consolidation cycle 1 after a single IV dose. Individual estimates of topotecan clearance are obtained using post hoc analysis.
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Topotecan Apparent Oral Clearance in Maintenance Chemotherapy
Time frame: Pre-dose, 0.25, 1.5 and 6 hours post-dose
Topotecan plasma concentration-time data are collected on day 1 of maintenance cycle A1 after a single oral dose. Individual estimates of topotecan apparent oral clearance are obtained using post hoc analysis.
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Topotecan AUC0-24h in Consolidation Chemotherapy
Time frame: Pre-infusion, 5 min., 1, 3, and 24 hours from end of infusion
Topotecan plasma concentration-time data are collected on day 1 of consolidation cycle 1 after a single IV dose. Individual estimates of topotecan AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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Topotecan AUC0-24h in Maintenance Chemotherapy
Time frame: Pre-dose, 0.25, 1.5, 6, and 24 hours post-dose
Topotecan plasma concentration-time data are collected on day 1 of maintenance cycle A1 after a single oral dose. Individual estimates of topotecan AUC0-24h (area under concentration curve from time 0 to 24 hours post- dose) are obtained using post hoc analysis.
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Erlotinib Apparent Oral Clearance
Time frame: Pre-dose, 1, 2, 4, 8, and 24 hours post-dose
Erlotinib plasma concentration-time data are collected on day 1 of maintenance cycle B2. Individual estimates of erlotinib apparent oral clearance are obtained using post hoc analysis.
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Erlotinib Apparent Volume of Central Compartment
Time frame: Pre-dose, 1, 2, 4, 8, and 24 hours post-dose
Erlotinib plasma concentration-time data are collected on day 1 of maintenance cycle B2. Individual estimates of erlotinib apparent volume of central compartment are obtained using post hoc analysis.
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Erlotinib AUC0-24h
Time frame: Pre-dose, 1, 2, 4, 8, and 24 hours post-dose
Erlotinib plasma concentration-time data are collected on day 1 of maintenance cycle B2. Individual estimates of erlotinib AUC0-24h (area under concentration curve from 0 to 24 hours post-dose) are obtained using post hoc analysis.
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OSI-420 AUC0-24h
Time frame: Pre-dose, 1, 2, 4, 8, and 24 hours post-dose
Erlotinib metabolite OSI-420 plasma concentration-time data are collected on day 1 of maintenance cycle B2. Individual estimates of OSI-420 AUC0-24h (area under concentration curve from 0 to 24 hours post-dose) are obtained using post hoc analysis.
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Rate of Local Disease Progression
Time frame: 1 year after completion of radiation therapy for last patient
Local failure was defined as the interval from end of RT to date of local failure (or combined local + distant failure). Competing events were distant failure or second malignancy. Patients without an event were censored at date of last contact. The 1-year cumulative incidence was estimated and reported with a 95% confidence interval.
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Rate of Distant Disease Progression
Time frame: 1 year after completion of radiation therapy for last patient
Distant failure was defined as the interval from end of RT to date of distant failure (or combined local + distant failure). Competing events were local failure or second malignancy. Patients without an event were censored at date of last contact. The 1-year cumulative incidence was estimated and reported with a 95% confidence interval.
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Neurocognitive Performance Related to Global Cognitive Functioning as Measured by Cognitive Composite Scores and Estimated IQ Scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Global cognitive functioning was measured based on Cognitive Composite Scores from the Bayley III instrument for subjects <3 years of age and on estimated IQ scores from the Stanford Binet V instrument for subjects ≥3 years of age. Higher scores indicate better performance. The normative mean is 100 with a standard deviation of 15.
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Neurocognitive Performance Related to Attention as Measured by Attention Problems T-scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring attention were obtained from the Attention Problems T-score on the BASC-2 instrument which is a parent report. Higher scores indicate more attention problems. The normative mean is 50 with a standard deviation of 10.
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Neurocognitive Performance Related to Processing Speed as Measured by Visual Matching Standard Scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring processing speed were obtained based on the visual matching standard score from the Woodcock Johnson III instrument. Higher scores indicate better performance. The normative mean is 100 with a standard deviation of 15.
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Neurocognitive Performance Related to Executive Functioning as Measured by Global Executive Composite T-scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring executive functioning were obtained from Global Executive Composite (GEC) T-scores, which were obtained from the Behavior Rating Inventory of Executive Function (BRIEF) instrument which is a parent report. Higher scores indicate more problems. The normative mean is 50 with a standard deviation of 10.
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Neurocognitive Performance Related to Working Memory as Measured by Working Memory T-scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring working memory were obtained from Working Memory T-scores, which were obtained from the Behavior Rating Inventory of Executive Function (BRIEF) instrument which is a parent report. Higher scores indicate more problems. The normative mean is 50 with a standard deviation of 10.
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Neurocognitive Performance Related to Verbal Fluency as Measured by Retrieval Fluency Standard Scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring verbal fluency were obtained from Retrieval Fluency standard scores on the Woodcock Johnson III instrument. Higher scores indicate better performance. The normative mean is 100 with a standard deviation of 15.
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Neurocognitive Performance Related to Visual-spatial Reasoning as Measured by Visual Motor Integration (VMI) T-scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring visual-spatial reasoning were obtained from VMI T-scores on the Beery VMI instrument. Higher scores indicate better performance. The normative mean is 50 with standard deviation of 10.
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Neurocognitive Performance Related to Visual-spatial Reasoning as Measured by Visual Perception T-scores
Time frame: Baseline, prior to maintenance therapy, completion of therapy, and 12 months, 24 months, 36 months, 48 months, and 60 months off therapy
Scores measuring visual-spatial reasoning were obtained from Visual Perception T-scores on the Beery Visual Motor Integration (VMI) instrument. Higher scores indicate better performance. The normative mean is 50 with a standard deviation of 10.
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in right frontal-lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in left frontal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in right parietal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in left parietal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in right occipital lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in left occipital lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in right temporal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Neurostructure, Especially White Matter Volume and Integrity
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in left temporal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Quantitative Magnetic Resonance (MR) Measures in the Frontal Lobe
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in frontal lobe over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1
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Change in Quantitative MR Measures in the Right Frontal-parietal Regions
Time frame: From baseline (month 0) to 60 months (therapy duration lasted approximately 48 weeks or 11 months)
Quantitative MRI measures Fractional Anisotropy (FA) change per month in right frontal-parietal region over time in each risk group will be assessed using a random effects model incorporating various covariates. Covariates to be considered include age at diagnosis, time since diagnosis and risk-arm. Differences in quantitative MRI measures of neurostructure volume and integrity between patient groups will be evaluated as a metric of structural neurotoxicity of therapy.
Fractional anisotropy (FA) is a scalar unitless measure that quantifies the degree of anisotropy of a diffusion process, particularly in the context of diffusion tensor imaging (DTI) used in MRI scans. FA values range from 0 to 1