Treatment Trials

296 Clinical Trials for Various Conditions

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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.

COMPLETED
Dimethyl Fumarate, Temozolomide, and Radiation Therapy in Treating Patients With Newly Diagnosed Glioblastoma Multiforme
Description

This phase 1 trial studies the side effects and best dose of dimethyl fumarate when given together with temozolomide and radiation therapy(RT) in treating patients with newly diagnosed glioblastoma multiforme (GBM). Dimethyl fumarate may help radiation therapy work better by making tumor cells more sensitive to the radiation therapy. 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 and shrink tumors. Giving dimethyl fumarate with temozolomide and radiation therapy may work better in treating glioblastoma multiforme.

COMPLETED
Tipifarnib, Radiation Therapy, and Temozolomide in Treating Patients With Newly Diagnosed Glioblastoma Multiforme
Description

This phase I trial studies the side effects and best dose of tipifarnib when given together with radiation therapy and temozolomide in treating patients with newly diagnosed glioblastoma multiforme. Tipifarnib may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Radiation therapy uses high energy x rays to kill tumor cells. 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. Giving tipifarnib together with radiation therapy and temozolomide may be a better way to treat glioblastoma multiforme.

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
COMPLETED
Alisertib and Fractionated Stereotactic Radiosurgery in Treating Patients With Recurrent High Grade Gliomas
Description

This phase I trial studies the side effects and best dose of alisertib when combined with fractionated stereotactic radiosurgery in treating patients with high-grade gliomas that have returned after previous treatment with radiation therapy (recurrent). Alisertib may stop the growth of tumor cells by blocking an enzyme needed for the cells to divide. Radiation therapy uses high energy x rays to kill tumor cells. Stereotactic radiosurgery uses special positioning equipment to send a single high dose of radiation directly to the tumor and cause less damage to normal tissue. Delivering stereotactic radiosurgery over multiple doses (fractionation) may cause more damage to tumor tissue than normal tissue while maintaining the advantage of its accuracy.

ACTIVE_NOT_RECRUITING
Dose-Escalated Photon IMRT or Proton Beam Radiation Therapy Versus Standard-Dose Radiation Therapy and Temozolomide in Treating Patients With Newly Diagnosed Glioblastoma
Description

This randomized phase II trial studies how well dose-escalated photon intensity-modulated radiation therapy (IMRT) or proton beam radiation therapy works compared with standard-dose radiation therapy when given with temozolomide in patients with newly diagnosed glioblastoma. Radiation therapy uses high-energy x-rays and other types of radiation to kill tumor cells and shrink tumors. Specialized radiation therapy that delivers a high dose of radiation directly to the tumor may kill more tumor cells and cause less damage to normal tissue. Drugs, such as temozolomide, may make tumor cells more sensitive to radiation therapy. It is not yet known whether dose-escalated photon IMRT or proton beam radiation therapy is more effective than standard-dose radiation therapy with temozolomide in treating glioblastoma.

TERMINATED
18F-FDOPA PET/CT or PET/MRI in Measuring Tumors in Patients With Newly-Diagnosed or Recurrent Gliomas
Description

To evaluate 18F-FDOPA PET obtained from PET/CT or PET/MRI imaging in patients with newly diagnosed or recurrent gliomas.

Conditions
Adult Anaplastic EpendymomaAdult Anaplastic OligodendrogliomaAdult Brain Stem GliomaAdult Diffuse AstrocytomaAdult Giant Cell GlioblastomaAdult GlioblastomaAdult GliosarcomaAdult Mixed GliomaAdult OligodendrogliomaAdult Pilocytic AstrocytomaAdult Pineal Gland AstrocytomaAdult Subependymal Giant Cell AstrocytomaChildhood High-grade Cerebellar AstrocytomaChildhood High-grade Cerebral AstrocytomaChildhood Low-grade Cerebellar AstrocytomaChildhood Low-grade Cerebral AstrocytomaRecurrent 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 Fibrillary AstrocytomaRecurrent Childhood Gemistocytic AstrocytomaRecurrent Childhood Giant Cell GlioblastomaRecurrent Childhood GlioblastomaRecurrent Childhood Gliomatosis CerebriRecurrent Childhood GliosarcomaRecurrent Childhood OligoastrocytomaRecurrent Childhood OligodendrogliomaRecurrent Childhood Pilomyxoid AstrocytomaRecurrent Childhood Protoplasmic AstrocytomaRecurrent Childhood Subependymal Giant Cell AstrocytomaRecurrent Childhood Visual Pathway and Hypothalamic GliomaRecurrent Childhood Visual Pathway GliomaUntreated Childhood Anaplastic AstrocytomaUntreated Childhood Anaplastic OligoastrocytomaUntreated 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 OligoastrocytomaUntreated Childhood OligodendrogliomaUntreated Childhood Pilomyxoid AstrocytomaUntreated Childhood Protoplasmic AstrocytomaUntreated Childhood Subependymal Giant Cell AstrocytomaUntreated Childhood Visual Pathway and Hypothalamic GliomaUntreated Childhood Visual Pathway Glioma
WITHDRAWN
Genetically Modified Stem Cells and Irinotecan Hydrochloride in Treating Patients With Recurrent High-Grade Gliomas
Description

This phase I trial studies the side effects and best dose of genetically modified stem cells when given together with irinotecan hydrochloride in treating patients with recurrent high-grade gliomas. Irinotecan hydrochloride may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Placing a gene that has been created in the laboratory into neural stem cells and injecting it into the brain may help irinotecan hydrochloride kill more tumor cells once it reaches the brain.

COMPLETED
Genetically Modified Neural Stem Cells, Flucytosine, and Leucovorin for Treating Patients With Recurrent High-Grade Gliomas
Description

This phase I trial studies the side effects and determines the best dose of genetically modified neural stem cells and flucytosine when given together with leucovorin for treating patients with recurrent high-grade gliomas. Neural stem cells can travel to sites of tumor in the brain. The neural stem cells that are being used in this study were genetically modified express the enzyme cytosine deaminase (CD), which converts the prodrug flucytosine (5-FC) into the chemotherapy agent 5-fluorouracil (5-FU). Leucovorin may help 5-FU kill more tumor cells. The CD-expressing neural stem cells are administered directly into the brain. After giving the neural stem cells a few days to spread out and migrate to tumor cells, research participants take a 7 day course of oral 5-FC. (Depending on when a research participant enters the study, they may also be given leucovorin to take with the 5-FC.) When the 5-FC crosses into brain, the neural stem cells convert it into 5-FU, which diffuses out of the neural stem cells to preferentially kill rapidly dividing tumor cells while minimizing toxicity to healthy tissues. A Rickham catheter, placed at the time of surgery, will be used to administer additional doses of NSCs every two weeks, followed each time by a 7 day course of oral 5-FC (and possibly leucovorin). This neural stem cell-based anti-cancer strategy may be an effective treatment for high-grade gliomas. Funding Source - FDA OOPD

TERMINATED
3T MRI Biomarkers of Glioma Treatment Response
Description

This pilot clinical trial studies advanced magnetic resonance imaging (MRI) techniques in measuring treatment response in patients with high-grade glioma. New diagnostic procedures, such as advanced MRI techniques at 3 Tesla, may be more effective than standard MRI in measuring treatment response in patients receiving treatment for high-grade gliomas.

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
NovoTTF-100A With Bevacizumab (Avastin) in Patients With Recurrent Glioblastoma
Description

NovoTTF-100A is a device and Bevacizumab is a study drug that have both been approved by the FDA (Food and Drug Administration) for use as monotherapy in treating glioblastoma multiforme. The NovoTTF-l00A is a portable battery operated device which produces TTFields within the human body using surface electrodes (transducer arrays). Intermediate frequency electric fields (TTFields) stunt the growth of tumor cells. The purpose of this study is to determine the efficacy of the combination of Bevacizumab and NovoTTF-100A in Bevacizumab naive (meaning have never received bevacizumab before) patients with recurrent glioblastoma (GBM) as measured by 6-month progression free survival.

COMPLETED
18F-FPPRGD2 PET/CT or PET/MRI in Predicting Early Response in Patients With Cancer Receiving Anti-Angiogenesis Therapy
Description

The purpose of the study is to conduct research of a new PET radiopharmaceutical in cancer patients. The uptake of the novel radiopharmaceutical 18F-FPPRGD2 will be assessed in study participants with glioblastoma multiforme (GBM), gynecological cancers, and renal cell carcinoma (RCC) who are receiving antiangiogenesis treatment.

Conditions
Adult Giant Cell GlioblastomaAdult GlioblastomaAdult GliosarcomaMale Breast CancerMetastatic Squamous Neck Cancer With Occult Primary Squamous Cell CarcinomaRecurrent Adenoid Cystic Carcinoma of the Oral CavityRecurrent Adult Brain TumorRecurrent Basal Cell Carcinoma of the LipRecurrent Colon CancerRecurrent Esthesioneuroblastoma of the Paranasal Sinus and Nasal CavityRecurrent Hypopharyngeal CancerRecurrent Inverted Papilloma of the Paranasal Sinus and Nasal CavityRecurrent Laryngeal CancerRecurrent Lip and Oral Cavity CancerRecurrent Lymphoepithelioma of the NasopharynxRecurrent Lymphoepithelioma of the OropharynxRecurrent Metastatic Squamous Neck Cancer With Occult PrimaryRecurrent Midline Lethal Granuloma of the Paranasal Sinus and Nasal CavityRecurrent Mucoepidermoid Carcinoma of the Oral CavityRecurrent Nasopharyngeal CancerRecurrent Non-small Cell Lung CancerRecurrent Oropharyngeal CancerRecurrent Pancreatic CancerRecurrent Paranasal Sinus and Nasal Cavity CancerRecurrent Rectal CancerRecurrent Renal Cell CancerRecurrent Salivary Gland CancerStage IIIA Breast CancerStage IIIA Non-small Cell Lung CancerStage IIIB Breast CancerStage IIIB Non-small Cell Lung CancerStage IIIC Breast CancerStage IV Breast CancerStage IV Non-small Cell Lung CancerStage IV Pancreatic CancerStage IV Renal Cell CancerStage IVA Colon CancerStage IVA Rectal CancerStage IVA Salivary Gland CancerStage IVB Colon CancerStage IVB Salivary Gland CancerStage IVC Salivary Gland CancerTongue CancerUnspecified Adult Solid Tumor, Protocol Specific
COMPLETED
Dovitinib in Treating Patients With Recurrent or Progressive Glioblastoma
Description

This phase II trial studies how well dovitinib works in treating patients with recurrent or progressive glioblastoma. Dovitinib may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth

COMPLETED
Bevacizumab With or Without Radiation Therapy in Treating Patients With Recurrent Glioblastoma
Description

This randomized phase II trial studies how well bevacizumab with or without radiation therapy works in treating patients with recurrent glioblastoma. Monoclonal antibodies, such as bevacizumab, can block tumor growth in different ways. Some block the ability of tumor cells to grow and spread. Others find tumor cells and help kill them or carry cancer-killing substances to them. Specialized radiation therapy that delivers a high dose of radiation directly to the tumor may kill more tumor cells and cause less damage to normal tissue. It is not yet know whether bevacizumab is more effective with or without radiation therapy in treating patients with recurrent glioblastoma

COMPLETED
Bevacizumab With or Without Anti-Endoglin Monoclonal Antibody TRC105 in Treating Patients With Recurrent Glioblastoma Multiforme
Description

This partially randomized phase I/II trial studies the side effects and the best dose of anti-endoglin monoclonal antibody TRC105 when given together with bevacizumab and to see how well they work in treating patients with glioblastoma multiforme that has come back. Monoclonal antibodies, such as anti-endoglin monoclonal antibody TRC105 and bevacizumab, may find tumor cells and help kill them. Giving anti-endoglin monoclonal antibody TRC105 together with bevacizumab may be an effective treatment for glioblastoma multiforme.

TERMINATED
Aminolevulinic Acid in Visualizing a Tumor During Surgery in Patients With Glioblastoma Multiforme
Description

The purpose of this study is to investigate the safety and performance of an investigational agent, known as 5-ALA or Gliolan (aminolevulinic acid), that many be useful to a surgeon for visualizing a tumor during surgery. It is also being studied to determine if there are differences in what Gliolan shows a surgeon compared to intraoperative magnetic resonance imaging (MRI)

TERMINATED
High-Dose Vorinostat and Fractionated Stereotactic Body Radiation Therapy in Treating Patients With Recurrent Glioma
Description

This study is being done to determine if an investigational cancer treatment called vorinostat combined with fractionated stereotactic radiation therapy (FSRT) is effective in treating recurrent high grade gliomas. The main goal of this research study is to determine the highest dose of vorinostat that can be given to patients with recurrent tumors. The study will also determine the potential side effects and safety of these treatment combinations. Vorinostat is a small molecule inhibitor of histone deacetylase (HDAC). HDAC inhibitors help unravel the deoxyribonucleic acid (DNA) of the cancer cells and make them more susceptible to the treatment with radiation.

COMPLETED
Bafetinib in Treating Patients With Recurrent High-Grade Glioma or Brain Metastases
Description

RATIONALE: Bafetinib may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. PURPOSE: This clinical trial studies bafetinib in treating patients with recurrent high-grade glioma or brain metastases.

TERMINATED
RO4929097and Bevacizumab in Treating Patients With Progressive or Recurrent Malignant Glioma
Description

This phase I/II trial is studying the side effects and the best dose of RO4929097 to see how well it works when given together with bevacizumab compared to bevacizumab alone in treating patients with progressive or recurrent malignant glioma. RO4929097 may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Monoclonal antibodies, such as bevacizumab, can block tumor growth in different ways. Some block the ability of tumor cells to grow and spread. Others find tumor cells and help kill them or carry tumor-killing substances to them. Giving RO4929097 together with bevacizumab may kill more tumor cells.

COMPLETED
A Pilot Feasibility Study of Oral 5-Fluorocytosine and Genetically-Modified Neural Stem Cells Expressing E.Coli Cytosine Deaminase for Treatment of Recurrent High Grade Gliomas
Description

RATIONALE: Genetically-modified neural stem cells (NSCs) that convert 5-fluorocytosine (5-FC) into the chemotherapy agent 5-FU (fluorouracil) at sites of tumor in the brain may be an effective treatment for glioma. PURPOSE: This clinical trial studies genetically-modified NSCs and 5-FC in patients undergoing surgery for recurrent high-grade gliomas.

ACTIVE_NOT_RECRUITING
Fluorine F 18 Fluorodopa-Labeled PET Scan in Planning Surgery and Radiation Therapy in Treating Patients With Newly Diagnosed High- or Low-Grade Malignant Glioma
Description

RATIONALE: New imaging procedures, such as fluorine F 18 fluorodopa-labeled PET scan, may help in guiding surgery and radiation therapy and allow doctors to plan better treatment. PURPOSE: This clinical trial studies fluorine F 18 fluorodopa-labeled PET scan in planning surgery and radiation therapy in treating patients with newly diagnosed high- or low-grade malignant glioma

TERMINATED
Aminolevulinic Acid During Surgery in Treating Patients With Malignant Brain Tumors
Description

This phase I trial is studying the side effects and best dose of aminolevulinic acid during surgery in treating patients with malignant brain tumors. Aminolevulinic acid becomes active when it is exposed to a certain kind of light and may help doctors find and remove tumor cells during surgery

TERMINATED
Gamma-Secretase/Notch Signalling Pathway Inhibitor RO4929097 in Treating Patients With Recurrent or Progressive Glioblastoma
Description

This phase II trial is studying how well gamma-secretase/Notch signalling pathway inhibitor RO4929097 works in treating patients with recurrent or progressive glioblastoma. Gamma-secretase/Notch signalling pathway inhibitor RO4929097 may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth.

TERMINATED
Cilengitide and Sunitinib Malate in Treating Patients With Advanced Solid Tumors or Glioblastoma Multiforme
Description

This clinical trial is studying how well giving cilengitide together with sunitinib malate works in treating patients with advanced solid tumors or glioblastoma multiforme. Cilengitide and sunitinib malate may stop the growth of tumor cells by blocking blood flow to the tumor. Giving cilengitide together with sunitinib malate may kill more tumor cells. Studying samples of blood in the laboratory from patients receiving cilengitide and sunitinib malate may help doctors understand the effect of these drugs on biomarkers.

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
Erlotinib Hydrochloride and Isotretinoin in Treating Patients With Recurrent Malignant Glioma
Description

This phase I trial is studying the side effects and best dose of erlotinib hydrochloride when given with isotretinoin in treating patients with recurrent malignant glioma. Erlotinib hydrochloride may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Isotretinoin may help cells that are involved in the body's immune response to work better. Giving erlotinib hydrochloride together with isotretinoin may kill more tumor cells

COMPLETED
Temozolomide and Radiation Therapy With or Without Cediranib Maleate in Treating Patients With Newly Diagnosed Glioblastoma
Description

This randomized phase II trial studies temozolomide, radiation therapy, and cediranib maleate to see how well they work compared with temozolomide, radiation therapy, and a placebo in treating patients with newly diagnosed glioblastoma (a type of brain 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. Cediranib maleate 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. It is not yet known whether temozolomide and radiation therapy are more effective when given with or without cediranib maleate in treating glioblastoma.

COMPLETED
Temsirolimus and Perifosine in Treating Patients With Recurrent or Progressive Malignant Glioma
Description

This phase I/II trial studies the side effects and best dose of temsirolimus when given together with perifosine and to see how well it works in treating patients with recurrent or progressive malignant glioma. Temsirolimus may stop the growth of tumor cells by blocking some of the enzymes needed for cell growth. Drugs used in chemotherapy, such as perifosine, work in different ways to stop the growth of tumor cells, either by killing the cells or by stopping them from dividing. Giving temsirolimus with perifosine may be an effective treatment for malignant glioma.