View clinical trials related to Brain Metastases.
Filter by:Brain metastases, a common complication,occur in 25-40% of patients with non-small cell lung cancer (NSCLC). Whole-brain radiation therapy(WBRT) and Stereotactic Radiosurgery (SRS) are important approaches to the treatment of brain metastases from NSCLC. Known to us, epidermal growth factor receptor tyrosine kinase inhibitors (EGFR-TKIs) can pass through the blood-brain barrier and show promising antitumor activity against brain metastases from NSCLC, especially for EGFR mutation patients. However, due to the lower concentration of tyrosine kinase inhibitors (TKIs) in the cerebrospinal fluid and its inevitable emergence of drug resistance, brain metastases will be refractory or resistant to standard-dose EGFR inhibitors. Icotinib is one agent of EGFR-TKIs. The previous studies have shown that the Icotinib conventional dose (125mg, TID) is far from reached its maximum tolerable dose. It is a challenge whether the further dose escalation of Icotinib will enhance its concentration in cerebrospinal fluid and thereby improve its therapeutic effect. Here the investigators examine the therapeutic effect and side-effect of double dose of Icitinib in treating patients with brain metastases from NSCLC who have suffered from the failure of conventional dose treatment.
The primary objective of this study is to evaluate the efficacy and safety of veliparib and whole brain radiation therapy in adults with brain metastases from non-small cell lung cancer (NSCLC).
The purpose of this study is to determine whether erlotinib plus pemetrexed, cisplatin are effective and safe in treating lung adenocarcinoma with brain metastases.
Recent pre-clinical and clinical data have indicated that BSI-201 does not possess characteristics typical of the PARP inhibitor class. Based on the results from in vitro and in vivo studies, this trial aims to evaluate the combination of BSI-201 concomitantly with radiotherapy in patients who present with multiple non operable brain metastases. As radiotherapy is a local treatment targeting only the tumor, and because the molecule BSI-201 has shown no major toxicity against tissues without DNA alterations, the proposed combination is expected to provide tumor-selective therapy and leading to a clinical benefit improvement. Primary objective is to determine the recommended phase II dose (RP2D) and evaluate acute toxicity (CTC-AE v4.0 grading scale) of concurrent administration of whole brain radiotherapy (WBR) and a small molecule BSI-201 in non operable brain metastases.
The purpose of this study is to evaluate diagnostic imaging techniques using 124I-NM404 PET/CT in human brain tumors. This goal will be accomplished by quantifying tumor uptake and determining the optimal PET/CT protocol, comparing PET tumor uptake to MRI, and calculating tumor dosimetry. The long-term goals of this research are to improve the diagnosis and treatment of malignant brain tumors by using radioiodinated NM404
Adjuvant whole-brain radiation therapy (WBRT) after resection of single brain metastasis is considered as a standard associated with side effects leading to decreased neurocognitive function. The Investigators addressed the question whether stereotactic radiotherapy of the resection cavity impairs neurological status and/or cognitive functions in compare to adjuvant WBRT.
The purpose of this study is to evaluate the safety and tolerability of Icotinib at different dose levels in combination with whole brain radiotherapy for NSCLC patients with brain metastases and EGFR mutation.
The purpose of this study is to evaluate diagnostic imaging techniques using 124I-NM404 PET/CT in humans with brain metastases and GBMs. This goal will be accomplished by determining the optimal PET/CT protocol and comparing PET tumor uptake to MRI and calculating tumor dosimetry. A future aim of this study will be to compare non-invasive PET/CT and MRI findings with pathological specimens, which is the gold standard but is invasive and impractical in many cases, to determine the sensitivity and specificity of both techniques for accurately detecting tumor infiltration. The data obtained from this study will be used to develop larger diagnostic and therapeutic trials in brain tumors. The long-term goals of this research are to improve the diagnosis and treatment of malignant brain tumors by using radioiodinated NM404.
The purpose of this study is to assess the efficacy, safety, and tolerability of GRN1005 in patients with brain metastases from breast cancer. For patients with HER2 positive metastatic breast cancer, GRN1005 will be assessed in combination with Trastuzumab (Herceptin®) as per standard-of-care practice. In addition, this study will evaluate the ability of 18F-FLT to determine if the amount of change in the uptake in the brain metastases from breast cancer after GRN1005 treatment, correlates with intra-cranial response (for patients enrolled at NCI).
The investigators plan to study high dose, single treatment radiation, using a plastic mask instead of a head frame that pins into a patient's skull. The investigators need to (1) quantify set-up accuracy and patient motion during radiation treatment and (2) ensure that without the head frame the tumour control rate and risk of complications are similar to our previous experience using the head frame.