Treatment Trials

96 Clinical Trials for Various Conditions

Focus your search

ACTIVE_NOT_RECRUITING
Combination Chemotherapy Followed By Peripheral Stem Cell Transplant in Treating Young Patients With Newly Diagnosed Supratentorial Primitive Neuroectodermal Tumors or High-Risk Medulloblastoma
Description

This randomized phase III trial is studying two different combination chemotherapy regimens to compare how well they work in treating young patients with newly diagnosed supratentorial primitive neuroectodermal tumors or high-risk medulloblastoma when given before additional intense chemotherapy followed by peripheral blood stem cell rescue. It is not yet known which combination chemotherapy regimen is more effective when given before a peripheral stem cell transplant in treating supratentorial primitive neuroectodermal tumors or medulloblastoma.

COMPLETED
Treatment of Patients With Newly Diagnosed Medulloblastoma, Supratentorial Primitive Neuroectodermal Tumor, or Atypical Teratoid Rhabdoid Tumor
Description

Drugs used in chemotherapy, such as vincristine, cisplatin, and cyclophosphamide, work in different ways to stop tumor cells from dividing so they stop growing or die. Radiation therapy uses high-energy x-rays to damage tumor cells. Combining radiation therapy with chemotherapy may kill more tumor cells. Autologous stem cell transplant may be able to replace blood-forming cells that were destroyed by chemotherapy or radiation therapy. It is not yet known which radiation therapy regimen combined with chemotherapy and donor stem cell transplant is more effective in treating medulloblastoma, supratentorial primitive neuroectodermal tumor, or atypical teratoid rhabdoid tumor. This phase III trial is studying two different regimens of radiation therapy when given together with chemotherapy and autologous stem cell transplant to see how well they work in treating patients with newly diagnosed medulloblastoma, supratentorial primitive neuroectodermal tumor, or atypical teratoid rhabdoid tumor. PRIMARY OBJECTIVE: * To assess the relationship between ERBB2 protein expression in tumors and progression-free survival probability for patients with medulloblastoma. * To estimate the frequency of mutations associated with SHH and WNT tumors (as defined by gene expression profiling) via targeted sequencing performed in an independent cohort of WNT and SHH tumors (also defined by gene expression profiling).

COMPLETED
Oxaliplatin in Treating Children With Recurrent or Refractory Medulloblastoma, Supratentorial Primitive Neuroectodermal Tumor, or Atypical Teratoid Rhabdoid Tumor
Description

RATIONALE: Drugs used in chemotherapy use different ways to stop tumor cells from dividing so they stop growing or die. PURPOSE: Phase II trial to study the effectiveness of oxaliplatin in treating children who have recurrent or refractory medulloblastoma, supratentorial primitive neuroectodermal or atypical teratoid rhabdoid tumor.

COMPLETED
Combination Chemotherapy Followed by Radiation Therapy in Treating Patients With Medulloblastoma, Supratentorial Primitive Neuroectodermal Tumor, or Ependymoma
Description

RATIONALE: Drugs used in chemotherapy use different ways to stop tumor cells from dividing so they stop growing or die. Radiation therapy uses high-energy x-rays to damage tumor cells. Combining more than one drug or combining chemotherapy with radiation therapy may kill more tumor cells. PURPOSE: Phase II trial to study the effectiveness of combination chemotherapy followed by radiation therapy in treating patients who have surgically resected, newly diagnosed medulloblastoma or supratentorial primitive neuroectodermal tumor, or incompletely resected ependymoma.

COMPLETED
Chemotherapy, Radiation Therapy, and Peripheral Stem Cell Transplantation in Treating Children With Newly Diagnosed Medulloblastoma or Supratentorial Primitive Neuroectodermal Tumor
Description

RATIONALE: Drugs used in chemotherapy use different ways to stop tumor cells from dividing so they stop growing or die. Combining chemotherapy and radiation therapy with peripheral stem cell transplantation may allow the doctor to give higher doses of chemotherapy or radiation therapy and kill more tumor cells. PURPOSE: Phase II trial to study the effectiveness of chemotherapy with topotecan, cyclophosphamide, cisplatin, and vincristine plus radiation therapy and peripheral stem cell transplantation in treating children with newly diagnosed medulloblastoma or supratentorial primitive neuroectodermal tumor.

COMPLETED
18F-FLT Positron Emission Tomography and Diffusion-Weighted Magnetic Resonance Imaging in Planning Surgery and Radiation Therapy and Measuring Response in Patients With Newly Diagnosed Ewing Sarcoma
Description

This pilot trial studies fluorine F 18 fluorothymidine (18F-FLT) positron emission tomography and diffusion-weighted magnetic resonance imaging in planing surgery and radiation therapy and measuring response in patients with newly diagnosed Ewing sarcoma. Comparing results of diagnostic procedures done before and after treatment may help doctors predict a patient's response and help plan the best treatment.

WITHDRAWN
Whole-Body Radiation Therapy, Systemic Chemotherapy, and High-Dose Chemotherapy Followed By Stem Cell Rescue in Treating Patients With Poor-Risk Ewing Sarcoma
Description

This pilot clinical trial studies whole-body radiation therapy, systemic chemotherapy, and high-dose chemotherapy followed by stem cell rescue in treating patients with poor-risk Ewing sarcoma. Giving chemotherapy and radiation therapy before a peripheral blood stem cell or bone marrow transplant stops the growth of tumor cells by stopping them from dividing or killing them. After treatment, stem cells are collected from the patient's blood and stored. More chemotherapy is given to prepare the bone marrow for stem cell transplant. The stem cells are then returned to the patient to replace the blood-forming cells that were destroyed by the chemotherapy

RECRUITING
Testing Cerebrospinal Fluid for Cell-free Tumor DNA in Children, Adolescents, and Young Adults with Brain Tumors
Description

Recent advances in technology have allowed for the detection of cell-free DNA (cfDNA). cfDNA is tumor DNA that can be found in the fluid that surrounds the brain and spinal cord (called cerebrospinal fluid or CSF) and in the blood of patients with brain tumors. The detection of cfDNA in blood and CSF is known as a "liquid biopsy" and is non-invasive, meaning it does not require a surgery or biopsy of tumor tissue. Multiple studies in other cancer types have shown that cfDNA can be used for diagnosis, to monitor disease response to treatment, and to understand the genetic changes that occur in brain tumors over time. Study doctors hope that by studying these tests in pediatric brain tumor patients, they will be able to use liquid biopsy in place of tests that have more risks for patients, like surgery. There is no treatment provided on this study. Patients who have CSF samples taken as part of regular care will be asked to provide extra samples for this study. The study doctor will collect a minimum of one extra tube of CSF (about 1 teaspoon or 5 mL) for this study. If the patients doctor thinks it is safe, up to 2 tubes of CSF (about 4 teaspoons or up to 20 mL) may be collected. CSF will be collected through the indwelling catheter device or through a needle inserted into the lower part of the patient's spine (known as a spinal tap or lumbar puncture). A required blood sample (about ½ a teaspoon or 2 3 mL) will be collected once at the start of the study. This sample will be used to help determine changes found in the CSF. Blood will be collected from the patient's central line or arm as a part of regular care. An optional tumor tissue if obtained within 8 weeks of CSF collection will be collected if available. Similarities between changes in the DNA of the tissue that has caused the tumor to form and grow with the cfDNA from CSF will be compared. This will help understand if CSF can be used instead of tumor tissue for diagnosis. Up to 300 people will take part in this study. This study will use genetic tests that may identify changes in the genes in the CSF. The report of the somatic mutations (the mutations that are found in the tumor only) will become part of the medical record. The results of the cfDNA sequencing will be shared with the patient. The study doctor will discuss what the results mean for the patient and patient's diagnosis and treatment. Looking for inheritable mutations in normal cells (blood) is not the purpose of this study. Genetic tests of normal blood can reveal information about the patient and also about the their relatives. The doctor will discuss what the tests results may mean for the patient and the their family. Patient may be monitored on this study for up to 5 years.

TERMINATED
Gadobutrol Versus Gadopentetate Dimeglumine or Gadobenate Dimeglumine Before DCE-MRI in Diagnosing Patients With Multiple Sclerosis, Grade II-IV Glioma, or Brain Metastases
Description

This pilot clinical trial compares gadobutrol with standard of care contrast agents, gadopentetate dimeglumine or gadobenate dimeglumine, before dynamic contrast-enhanced (DCE)-magnetic resonance imaging (MRI) in diagnosing patients with multiple sclerosis, grade II-IV glioma, or tumors that have spread to the brain. Gadobutrol is a type of contrast agent that may increase DCE-MRI sensitivity for the detection of tumors or other diseases of the central nervous system. It is not yet known whether gadobutrol is more effective than standard of care contrast agents before DCE-MRI in diagnosing patients with multiple sclerosis, grade II-IV glioma, or tumors that have spread to the brain.

TERMINATED
Palbociclib Isethionate in Treating Younger Patients With Recurrent, Progressive, or Refractory Central Nervous System Tumors
Description

This phase I trial studies the side effects and best dose of palbociclib isethionate in treating younger patients with central nervous system tumors that have grown, come back, or not responded to treatment. Palbociclib isethionate may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth.

WITHDRAWN
Efficacy of 68Ga-DOTATOC Positron Emission Tomography (PET) CT in Children and Young Adults With Brain Tumors
Description

This pilot clinical trial studies gallium Ga 68-edotreotide (68Ga-DOTATOC) positron emission tomography (PET)/computed tomography (CT) in finding brain tumors in younger patients. Diagnostic procedures, such as gallium Ga 68-edotreotide PET/CT imaging, may help find and diagnose brain tumors.

Conditions
Acoustic SchwannomaAdult Anaplastic AstrocytomaAdult Anaplastic EpendymomaAdult Anaplastic MeningiomaAdult Anaplastic OligodendrogliomaAdult Brain Stem GliomaAdult Choroid Plexus TumorAdult CraniopharyngiomaAdult Diffuse AstrocytomaAdult EpendymoblastomaAdult EpendymomaAdult Giant Cell GlioblastomaAdult GlioblastomaAdult GliosarcomaAdult Grade I MeningiomaAdult Grade II MeningiomaAdult MedulloblastomaAdult Meningeal HemangiopericytomaAdult Mixed GliomaAdult Myxopapillary EpendymomaAdult OligodendrogliomaAdult Papillary MeningiomaAdult Pilocytic AstrocytomaAdult Pineal Gland AstrocytomaAdult PineoblastomaAdult PineocytomaAdult Subependymal Giant Cell AstrocytomaAdult SubependymomaAdult Supratentorial Primitive Neuroectodermal Tumor (PNET)Childhood Choroid Plexus TumorChildhood CraniopharyngiomaChildhood EpendymoblastomaChildhood Grade I MeningiomaChildhood Grade II MeningiomaChildhood Grade III MeningiomaChildhood High-grade Cerebellar AstrocytomaChildhood High-grade Cerebral AstrocytomaChildhood Infratentorial EpendymomaChildhood Low-grade Cerebellar AstrocytomaChildhood Low-grade Cerebral AstrocytomaChildhood MedulloepitheliomaChildhood Supratentorial EpendymomaMeningeal MelanocytomaNewly Diagnosed Childhood EpendymomaRecurrent Adult Brain TumorRecurrent Childhood Anaplastic AstrocytomaRecurrent Childhood Anaplastic OligoastrocytomaRecurrent Childhood Anaplastic OligodendrogliomaRecurrent Childhood Brain Stem GliomaRecurrent Childhood Cerebellar AstrocytomaRecurrent Childhood Cerebral AstrocytomaRecurrent Childhood Diffuse AstrocytomaRecurrent Childhood EpendymomaRecurrent Childhood Fibrillary AstrocytomaRecurrent Childhood Gemistocytic AstrocytomaRecurrent Childhood Giant Cell GlioblastomaRecurrent Childhood GlioblastomaRecurrent Childhood Gliomatosis CerebriRecurrent Childhood GliosarcomaRecurrent Childhood MedulloblastomaRecurrent Childhood OligoastrocytomaRecurrent Childhood OligodendrogliomaRecurrent Childhood Pilocytic AstrocytomaRecurrent Childhood Pilomyxoid AstrocytomaRecurrent Childhood PineoblastomaRecurrent Childhood Pleomorphic XanthoastrocytomaRecurrent Childhood Protoplasmic AstrocytomaRecurrent Childhood Subependymal Giant Cell AstrocytomaRecurrent Childhood Supratentorial Primitive Neuroectodermal TumorRecurrent Childhood Visual Pathway and Hypothalamic GliomaRecurrent Childhood Visual Pathway GliomaUntreated Childhood Anaplastic AstrocytomaUntreated Childhood Anaplastic OligodendrogliomaUntreated Childhood Brain Stem GliomaUntreated Childhood Cerebellar AstrocytomaUntreated Childhood Cerebral AstrocytomaUntreated Childhood Diffuse AstrocytomaUntreated Childhood Fibrillary AstrocytomaUntreated Childhood Gemistocytic AstrocytomaUntreated Childhood Giant Cell GlioblastomaUntreated Childhood GlioblastomaUntreated Childhood Gliomatosis CerebriUntreated Childhood GliosarcomaUntreated Childhood MedulloblastomaUntreated Childhood OligoastrocytomaUntreated Childhood OligodendrogliomaUntreated Childhood Pilocytic AstrocytomaUntreated Childhood Pilomyxoid AstrocytomaUntreated Childhood PineoblastomaUntreated Childhood Pleomorphic XanthoastrocytomaUntreated Childhood Protoplasmic AstrocytomaUntreated Childhood Subependymal Giant Cell AstrocytomaUntreated Childhood Supratentorial Primitive Neuroectodermal TumorUntreated Childhood Visual Pathway and Hypothalamic GliomaUntreated Childhood Visual Pathway Glioma
TERMINATED
Study of Fixed vs. Flexible Filgrastim to Accelerate Bone Marrow Recovery After Chemotherapy in Children With Cancer
Description

This randomized phase III trial studies flexible administration of filgrastim after combination chemotherapy to see how well it works compared to fixed administration of filgrastim in decreasing side effects of chemotherapy in younger patients with cancer. Cancer chemotherapy frequently results in neutropenia (low blood counts) when patients are susceptible to severe infections. A medicine called G-CSF (filgrastim) stimulates bone marrow and daily filgrastim shots are commonly used to shorten neutropenic periods and decrease infections after chemotherapy. Since filgrastim is customarily used on a fixed schedule starting early after chemotherapy and there are data that early doses may not be needed, this study tests new flexible schedule of filgrastim to optimize its use by reducing the number of painful shots, cost of treatment, and filgrastim side effects in children with cancer receiving chemotherapy.

COMPLETED
Plerixafor After Radiation Therapy and Temozolomide in Treating Patients With Newly Diagnosed High Grade Glioma
Description

This pilot phase I/II trial studies the side effects and best dose of plerixafor after radiation therapy and temozolomide and to see how well it works in treating patients with newly diagnosed high grade glioma. Plerixafor may stop the growth of tumor cells by blocking blood flow to the tumor. Drugs used in chemotherapy, such as temozolomide, work in different ways to stop the growth of tumor cells, either by killing the cells or by stopping them from dividing. Radiation therapy uses high energy x rays to kill tumor cells. Giving plerixafor after radiation therapy and temozolomide may be an effective treatment for high grade glioma.

COMPLETED
RO4929097, Temozolomide, and Radiation Therapy in Treating Patients With Newly Diagnosed Malignant Glioma
Description

This phase I trial studies the side effects and best dose of gamma-secretase/Notch signalling pathway inhibitor RO4929097 (RO4929097) when given together with temozolomide and radiation therapy in treating patients with newly diagnosed malignant glioma. Enzyme inhibitors, such as gamma-secretase/Notch signalling pathway inhibitor RO4929097, may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as temozolomide, work in different ways to stop the growth of tumor cells, either by killing the cells, by stopping them from dividing, or by stopping them from spreading. Radiation therapy uses high-energy x-rays to kill tumor cells. Giving gamma-secretase/Notch signalling pathway inhibitor RO4929097 together with temozolomide and radiation therapy may kill more tumor cells.

TERMINATED
Gamma-Secretase Inhibitor RO4929097 in Treating Young Patients With Relapsed or Refractory Solid Tumors, CNS Tumors, Lymphoma, or T-Cell Leukemia
Description

This phase I/II clinical trial is studying the side effects and best dose of gamma-secretase inhibitor RO4929097 and to see how well it works in treating young patients with relapsed or refractory solid tumors, CNS tumors, lymphoma, or T-cell leukemia. Gamma-secretase inhibitor RO4929097 may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth.

Conditions
Childhood Atypical Teratoid/Rhabdoid TumorChildhood Central Nervous System ChoriocarcinomaChildhood Central Nervous System GerminomaChildhood Central Nervous System Mixed Germ Cell TumorChildhood Central Nervous System TeratomaChildhood Central Nervous System Yolk Sac TumorChildhood Choroid Plexus TumorChildhood CraniopharyngiomaChildhood EpendymoblastomaChildhood Grade I MeningiomaChildhood Grade II MeningiomaChildhood Grade III MeningiomaChildhood Infratentorial EpendymomaChildhood MedulloepitheliomaChildhood Mixed GliomaChildhood OligodendrogliomaChildhood Supratentorial EpendymomaGonadotroph AdenomaPituitary Basophilic AdenomaPituitary Chromophobe AdenomaPituitary Eosinophilic AdenomaProlactin Secreting AdenomaRecurrent Childhood Acute Lymphoblastic LeukemiaRecurrent Childhood Anaplastic Large Cell LymphomaRecurrent Childhood Brain Stem GliomaRecurrent Childhood Central Nervous System Embryonal TumorRecurrent Childhood Cerebellar AstrocytomaRecurrent Childhood Cerebral AstrocytomaRecurrent Childhood EpendymomaRecurrent Childhood Grade III Lymphomatoid GranulomatosisRecurrent Childhood Large Cell LymphomaRecurrent Childhood Lymphoblastic LymphomaRecurrent Childhood MedulloblastomaRecurrent Childhood PineoblastomaRecurrent Childhood Small Noncleaved Cell LymphomaRecurrent Childhood Spinal Cord NeoplasmRecurrent Childhood Subependymal Giant Cell AstrocytomaRecurrent Childhood Supratentorial Primitive Neuroectodermal TumorRecurrent Childhood Visual Pathway and Hypothalamic GliomaRecurrent Childhood Visual Pathway GliomaRecurrent Pituitary TumorRecurrent/Refractory Childhood Hodgkin LymphomaT-cell Childhood Acute Lymphoblastic LeukemiaT-cell Large Granular Lymphocyte LeukemiaTSH Secreting AdenomaUnspecified Childhood Solid Tumor, Protocol Specific
COMPLETED
Vorinostat and Temozolomide in Treating Young Patients With Relapsed or Refractory Primary Brain Tumors or Spinal Cord Tumors
Description

This phase I trial is studying the side effects and best dose of vorinostat when given together with temozolomide in treating young patients with relapsed or refractory primary brain tumors or spinal cord tumors. Vorinostat may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as temozolomide, work in different ways to stop the growth of tumor cells, either by killing the cells or by stopping them from dividing. Vorinostat may help temozolomide work better by making tumor cells more sensitive to the drug.

COMPLETED
Vorinostat and Bortezomib in Treating Young Patients With Refractory or Recurrent Solid Tumors, Including Central Nervous System Tumors and Lymphoma
Description

This phase I trial is studying the side effects and best dose of vorinostat when given together with bortezomib in treating young patients with refractory or recurrent solid tumors, including CNS tumors and lymphoma. Vorinostat and bortezomib may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth and by blocking blood flow to the tumor.

COMPLETED
ABT-888 and Temozolomide in Treating Young Patients With Recurrent or Refractory CNS Tumors
Description

This phase I trial is studying the side effects and best dose of ABT-888 when given in combination with temozolomide in treating young patients with recurrent or refractory CNS tumors. ABT-888 may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as temozolomide, work in different ways to stop the growth of tumor cells, either by killing the cells or by stopping them from dividing. Giving ABT-888 together with temozolomide may kill more tumor cells.

COMPLETED
Busulfan, Melphalan, Topotecan Hydrochloride, and a Stem Cell Transplant in Treating Patients With Newly Diagnosed or Relapsed Solid Tumor
Description

RATIONALE: Giving high-dose chemotherapy before an autologous stem cell transplant stops the growth of tumor cells by stopping them from dividing or killing them. Giving colony-stimulating factors, such as G-CSF, helps stem cells move from the bone marrow to the blood so they can be collected and stored. Chemotherapy is then given to prepare the bone marrow for the stem cell transplant. The stem cells are then returned to the patient to replace the blood-forming cells that were destroyed by the chemotherapy. PURPOSE: This clinical trial is studying how well giving busulfan, melphalan, and topotecan hydrochloride together with a stem cell transplant works in treating patients with newly diagnosed or relapsed solid tumor.

COMPLETED
Vorinostat With or Without Isotretinoin in Treating Young Patients With Recurrent or Refractory Solid Tumors, Lymphoma, or Leukemia
Description

This phase I trial is studying the side effects and best dose of vorinostat when given together with isotretinoin in treating young patients with recurrent or refractory solid tumors, lymphoma, or leukemia. Drugs used in chemotherapy, such as vorinostat, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Vorinostat may also stop the growth of cancer cells by blocking some of the enzymes needed for cell growth and by blocking blood flow to the cancer. Isotretinoin may cause cancer cells to look more like normal cells, and to grow and spread more slowly. Giving vorinostat together with isotretinoin may be an effective treatment for cancer.

TERMINATED
Positron Emission Tomography Using Fluorine F 18 EF5 to Find Oxygen in Tumor Cells of Patients Who Are Undergoing Surgery or Biopsy for Newly Diagnosed Brain Tumors
Description

This phase I trial is studying the side effects of fluorine F18 EF5 when given during positron emission tomography to find oxygen in tumor cells of patients who are undergoing surgery or biopsy for newly diagnosed brain tumors. Diagnostic procedures using fluorine F 18 EF5 and positron emission tomography to detect tumor hypoxia may help in planning cancer treatment

COMPLETED
Oxaliplatin and Irinotecan in Treating Young Patients With Refractory Solid Tumors or Lymphomas
Description

This phase I trial is studying the side effects and best dose of oxaliplatin when given together with irinotecan in treating young patients with refractory solid tumors or lymphomas. Drugs used in chemotherapy, such as oxaliplatin and irinotecan, work in different ways to stop the growth of cancer cells, either by killing the cells or by stopping them from dividing. Oxaliplatin may help irinotecan kill more cancer cells by making cancer cells more sensitive to the drug. Giving oxaliplatin together with irinotecan may kill more cancer cells.

COMPLETED
Erlotinib and Temozolomide in Treating Young Patients With Recurrent or Refractory Solid Tumors
Description

This phase I trial is studying the side effects and best dose of erlotinib when given with temozolomide in treating young patients with recurrent or refractory solid tumors. Erlotinib may stop the growth of tumor cells by blocking the enzymes necessary for their growth. Drugs used in chemotherapy, such as temozolomide, work in different ways to stop tumor cells from dividing so they stop growing or die. Giving erlotinib with temozolomide may kill more tumor cells.

COMPLETED
Tipifarnib in Treating Young Patients With Recurrent or Progressive High-Grade Glioma, Medulloblastoma, Primitive Neuroectodermal Tumor, or Brain Stem Glioma
Description

This phase II trial is studying how well tipifarnib works in treating young patients with recurrent or progressive high-grade glioma, medulloblastoma, primitive neuroectodermal tumor, or brain stem glioma. Tipifarnib may stop the growth of tumor cells by blocking the enzymes necessary for their growth.