View clinical trials related to Sarcoma.
Filter by:Bone and soft tissue sarcomas are currently classified based upon light microscopy supplemented by immunohistochemistry, but within many if not all of these tumor histologic types, considerable heterogeneity exists not only in microscopic appearance but also in biologic behavior and prognosis. Progress in the directed treatment of these tumors, particularly the sarcomas, awaits characterization of the gene profiles for these tumors. Orthopedic oncology researchers at Huntsman Cancer Institute at the University of Utah are establishing a tumor bank for this purpose. The long term objectives of this work include: 1. creating tumor specific gene profiles to improve diagnostic accuracy 2. performing gene set validation for diagnostic predictive power 3. defining a discriminate gene list implicated in pathogenesis The tissue procured under this protocol at SUNY Upstate Medical University will be limited to excess soft tissue and bone tumor tissue from patients otherwise undergoing clinically indicated procedures for diagnosis or treatment under the care of the local principal investigator (PI) and will be forwarded to the central investigator, R. Lor Randall, MD at Huntsman Cancer Institute for use in the characterization of the gene profiles of these tumors.
The purpose of this study is to assess the feasibility of conducting a large hospital based case control study of the role of dioxins and dioxinlike polychlorinated dibenzofurans (PCDFs) and polychlorinated biphenyls (PCBs).
This phase I clinical trial is studying the side effects and best dose of IMC-A12 in treating young patients with relapsed or refractory Ewing sarcoma/peripheral primitive neuroectodermal tumor or other solid tumors. Monoclonal antibodies, such as IMC-A12, can block cancer growth in different ways. Some block the ability of cancer cells to grow and spread. Others find cancer cells and help kill them or carry cancer-killing substances to them.
RATIONALE: Studying samples of blood from patients with cancer in the laboratory may help doctors learn more about changes that occur in DNA and identify biomarkers related to cancer. It may also help doctors predict how patients will respond to treatment. PURPOSE: This clinical trial is evaluating DNA mutations in predicting the effect of external-beam radiation therapy in patients with early breast cancer, localized prostate cancer, or gynecologic cancer.
The purpose of this study is to see whether fast imaging with MRI and the usual contrast material used for MRI, predicts which patients will do well with treatment. Some studies suggest that MRIs done right before surgery may be able to tell how much of the cancer was killed by the chemotherapy. This study will see if this is true in patients with osteogenic sarcoma (OS) and Ewing's sarcoma (ES). This study will also see if MRIs done early in treatment can tell if the chemotherapy is working.
The purpose of this study is to test the effectiveness of high dose radiation administered by both proton and photon therapy. Radiation is an effective treatment for many types of tumors and it is thought that radiation alone, when given in much higher doses over a shorter period of time, may be more effective in controlling recurrence of sarcoma.
The main purpose of this study is to assess the short term and the long term side effects of proton beam radiation for pediatric bone and non-rhabdomyosarcoma soft tissue sarcomas.
RATIONALE: Image-guided radiation therapy uses high-energy x-rays to kill tumor cells. Specialized radiation therapy that delivers a lower dose of radiation directly to the tumor may kill more tumor cells and cause less damage to normal tissue. PURPOSE: This phase II trial is studying the side effects and how well image-guided radiation therapy works in treating patients with primary soft tissue sarcoma of the shoulder, arm, hip, or leg.
For patients who have one or two metastases in the brain, the tumor(s) can often be removed with surgery to relieve symptoms from the tumor(s) and to improve survival. However, about half of all patients who have the tumor(s) removed with surgery will develop regrowth (recurrence) of the tumor. To prevent this regrowth of tumor, some patients receive radiation to the entire brain (whole brain radiation) after surgery. This involves daily treatment for about two to three weeks, and may cause long-term neurological problems, such as memory loss. Stereotactic radiosurgery (SRS) is sometimes used instead of surgery to treat brain metastasis. This involves the use of a special head frame and sophisticated computer programs that enable us to deliver a high dose of radiation to a small focused area of the brain in only one treatment. Research has shown that the results of treatment with SRS are as good as surgical removal of the tumor. SRS and surgical resection are considered the standard options for the treatment of brain metastases. This Phase II clinical trial is studying the combination of these two techniques. The purpose of this study is to evaluate the use of SRS following surgical removal of brain metastases. The outcomes we will be looking at are tumor regrowth after treatment and side effects of treatment.
The purpose of this study is to obtain clinical specimens from pathologists and physicians involved in the diagnosis and care of patients with AIDS and non-AIDS associated malignancies. The National Cancer Institute has set up a Bank for tissues and biological fluids from HIVpositive and HIV-negative individuals in order to have specimens available for scientists studying malignancies associated with HIV disease.