このページは自動翻訳されたものであり、翻訳の正確性は保証されていません。を参照してください。 英語版 ソーステキスト用。

Phase I Trial of Stereotactic Radiosurgery Following Surgical Resection of Brain Metastases

2015年12月2日 更新者:Ian Crocker, MD、Emory University

Phase I Trial of Stereotactic Radiosurgery Following Surgical Resection of Intra-axial Brain Metastases

Brain metastases are the most common adult intracranial tumor, occurring in approximately 10% to 30% of adult cancer patients, and represent an important cause of morbidity and mortality in this population. The standard of care for solitary brain metastasis is surgery followed by whole brain radiation therapy (WBRT). Without WBRT, there are unacceptably high levels of local failure that occur. Local recurrence rates ranged from approximately 45% at 1 year to 60% at 2 years after resection alone. However, aside from improvements in intra-cranial control, it is well documented that WBRT is associated with serious long term side effects, including significant decline in short term recall by as early as 4 months after treatment.

Many centers are now offering patients stereotactic radiosurgery (SRS) to the cavity after resection alone to improve local control while avoiding the negative effects of WBRT. There have been several retrospective studies on the use of SRS to the resection cavity alone, from which the 1 year actuarial local control rates range from 35% - 82%. The high rate of in-field local failure suggests that the current dosing regimen used may not be high enough for adequate local control. Currently, the highest local control rates are approximately 80%, but there may be room for improvement with increased dose without significantly increasing the risk of side effects.

The investigators propose a trial for patients after surgical resection of solitary brain metastases. The purpose of this trial will be to determine the maximum tolerated dose for single fraction SRS to the resection cavity. There will be three groups based on the resection cavity size. Dose escalation enrollment will be done sequentially within each cohort. You will know which cohort and which specific dose level you are randomized to. After treatment, which will take one day, regardless of cohort, you will be followed closely for treatment outcome and possible side effects. You will be asked to complete three quick surveys at each follow-up appointment regarding quality of life and memory in addition to standard of care surveillance brain MRI and physical exam.

調査の概要

詳細な説明

Brain metastases are the most common adult intracranial tumor, occurring in approximately 10% to 30% of adult cancer patients, and represent an important cause of morbidity and mortality in this population. The risk of developing brain metastases differs with different primary tumor histologies, with lung cancer accounting for approximately one half of all brain metastases. The prognosis of patients with brain metastases is poor. The median survival time of untreated patients is approximately 1 month. With treatment, the overall median survival time after diagnosis is approximately 4 months. The Radiation Therapy Oncology Group (RTOG) recursive partitioning analysis (RPA) describes three prognostic classes, defined by age, Karnofsky Performance Score (KPS), and disease status. The most widely used treatment for patients with multiple brain metastases is whole brain radiation therapy (WBRT). The appropriate use of WBRT can provide rapid attenuation of many neurological symptoms, improve quality of life, extend median survival, and be especially beneficial in patients whose brain metastases are surgically inaccessible or when other medical considerations preclude surgery. The use of adjuvant WBRT after resection or stereotactic radiosurgery (SRS) has been proven to be effective in terms of improving local control of brain metastases, and thus, the likelihood of neurological death is decreased.

The standard of care for solitary brain metastasis is surgery followed by WBRT. In a study by Patchell et al. for solitary brain metastases status post resection, the addition of whole brain radiation significantly reduced local recurrence from approximately 45% to 10% after resection. Although it does not prolong survival or functional independence, this treatment regimen was shown to result in significantly improved loco-regional control. A more recent study from the European Organization for Research and Treatment of Cancer (EORTC) randomized patients who underwent gross total resection (GTR) of up to 3 brain metastases to adjuvant WBRT versus observation. Adjuvant WBRT resulted in significantly reduced intracranial failure and neurologic death, however again both overall survival and functionally independent survival were not different. Among the major findings of both of these studies are the unacceptably high levels of local failure that occur after GTR alone. Local recurrence rates ranged from approximately 45% at 1 year to 60% at 2 years after resection.

However, aside from improvements in intra-cranial control, it is well documented that WBRT is associated with serious long term side effects, including significant neurocognitive decline. A randomized study conducted by Chang et al of SRS versus SRS + WBRT for 1 - 3 brain metastases found that addition of WBRT was associated with significantly worse memory recall as early as 4 months. A conclusion of this study was that a regimen of close surveillance and SRS as necessary is preferred over SRS + WBRT because the neurocognitive effects of WBRT may actually be worse than that caused by intracranial disease recurrence.

Many centers are now offering patients SRS to the cavity after resection alone to improve local control while avoiding the negative effects of WBRT. There have been several retrospective studies on the use of SRS to the resection cavity alone, from which the 1 year actuarial local control rates range from 35% - 82%. The radiation necrosis rates from these same studies range from 2% - 6%. In currently unpublished data from Emory University reviewing 63 patients with 65 cavities treated between 01/2007 and 08/2010, the 1 year actuarial local control rate was 78%. Of the 10 local failures, 70% were in-field only, 10% were marginal only, and 20% were both. The high rate of in-field failure suggests that the current dosing regimen used may be insufficient for optimal local control. The current SRS dose constraints used are derived from the phase I trial RTOG 90-05. This study determined the maximum tolerated dose for SRS in previously irradiated patients with unresected brain metastases based on lesion size. The maximum doses currently used may be artificially low for resected patients for several reasons. First, the patient population studied had been previously irradiated which most likely lowered the maximum tolerated dose versus a non-irradiated population. Secondly, the typical planning target volume (PTV) of the resection bed is the cavity with a 1 - 2mm margin. This means that the vast majority of the irradiated PTV is not brain parenchyma, but actually cerebrospinal fluid (CSF), which should result in a lower radiation necrosis rate for the same dose/volume. Currently, the highest local control rates are approximately 80%, but there may be room for improvement with increased dose without significantly increasing the risk of radiation necrosis.

The investigators propose a prospective phase I trial for patients status post surgical resection of solitary brain metastases. The purpose of this trial will be to determine the maximum tolerated dose for single fraction SRS to the resection cavity. The investigators believe that the current SRS dosing constraints may be too low, and that a larger therapeutic window exists for this patient population. Results from this trial may form the basis of future trials directly comparing WBRT with SRS to the cavity alone following resection of solitary brain metastases. This phase III study would answer the question about as to whether local irradiation is adequate treatment for patients following surgery for metastatic brain disease. Also it is anticipated that QOL measures would be built into the study in an attempt to confirm the data reported by Chang that WBRT is associated with a significant decline in QOL at even early endpoints.

研究の種類

介入

入学 (実際)

9

段階

  • フェーズ 1

連絡先と場所

このセクションには、調査を実施する担当者の連絡先の詳細と、この調査が実施されている場所に関する情報が記載されています。

研究場所

    • Georgia
      • Atlanta、Georgia、アメリカ、30322
        • Emory University Hospital
      • Atlanta、Georgia、アメリカ、30322
        • The Emory Clinic

参加基準

研究者は、適格基準と呼ばれる特定の説明に適合する人を探します。これらの基準のいくつかの例は、人の一般的な健康状態または以前の治療です。

適格基準

就学可能な年齢

18年歳以上 (大人、高齢者)

健康ボランティアの受け入れ

いいえ

受講資格のある性別

全て

説明

Inclusion Criteria:

  • Pathologic proven diagnosis of solid tumor malignancy
  • Age ≥ 18
  • RPA class I or class II
  • Mini Mental Status Exam (MMSE) ≥ 18 prior to study entry
  • Karnofsky Performance Status ≥ 70%
  • Single brain metastasis status post surgical resection with ≤ 1 cc of residual enhancing tumor
  • Up to 2 additional intact brain metastases to be treated with stereotactic radiosurgery (SRS) alone
  • Resection cavity volume on planning scan of ≤ 35 cc
  • First presentation of brain metastases
  • Post-operative MRI within 72 hours of surgical resection

Exclusion Criteria:

  • Previous brain radiotherapy (SRS or WBRT)
  • RPA class III
  • Resection cavity volume > 35 cc
  • Radiosensitive or non-solid (eg. small cell lung carcinomas, germ cell tumors, leukemias, or lymphomas) or unknown tumor histologies
  • Concurrent chemotherapy (no chemotherapy starting 14 days before start of radiation to 14 days after completion of radiation)
  • Evidence of leptomeningeal disease by MRI and/or CSF cytology
  • Current pregnancy
  • More than 8 weeks between resection and radiosurgical procedure
  • No metastases to brain stem, midbrain, pons, or medulla or within 7 mm of the optic apparatus (optic nerves and chiasm)
  • Inability to undergo MRI evaluation for treatment planning and follow-up

研究計画

このセクションでは、研究がどのように設計され、研究が何を測定しているかなど、研究計画の詳細を提供します。

研究はどのように設計されていますか?

デザインの詳細

  • 主な目的:処理
  • 割り当て:非ランダム化
  • 介入モデル:並列代入
  • マスキング:なし(オープンラベル)

武器と介入

参加者グループ / アーム
介入・治療
実験的:Cohort A

Cohort A: resection cavity volume up to 4.2 cc (corresponds to 0 - 2 cm diameter).

Dose level Cohort A (Gy)

  1. 21
  2. 23
  3. 25

Cohort A: resection cavity volume up to 4.2 cc (corresponds to 0 - 2 cm diameter).

Cohort B: resection cavity volume > 4.2 cc and ≤ 14.1 cc (2 - 3 cm diameter) Cohort C: resection cavity volume > 14.1 cc and ≤ 35 cc (3 - 4 cm diameter)

Dose level Cohort A (Gy) Cohort B (Gy) Cohort C (Gy)

  1. 21 18 15
  2. 23 20 17
  3. 25 22 19
実験的:Cohort B

Cohort B: resection cavity volume > 4.2 cc and ≤ 14.1 cc (2 - 3 cm diameter).

Dose level Cohort B (Gy)

  1. 18
  2. 20
  3. 22

Cohort A: resection cavity volume up to 4.2 cc (corresponds to 0 - 2 cm diameter).

Cohort B: resection cavity volume > 4.2 cc and ≤ 14.1 cc (2 - 3 cm diameter) Cohort C: resection cavity volume > 14.1 cc and ≤ 35 cc (3 - 4 cm diameter)

Dose level Cohort A (Gy) Cohort B (Gy) Cohort C (Gy)

  1. 21 18 15
  2. 23 20 17
  3. 25 22 19
実験的:Cohort C

Cohort C: resection cavity volume > 14.1 cc and ≤ 35 cc (3 - 4 cm diameter).

Dose level Cohort C (Gy)

  1. 15
  2. 17
  3. 19

Cohort A: resection cavity volume up to 4.2 cc (corresponds to 0 - 2 cm diameter).

Cohort B: resection cavity volume > 4.2 cc and ≤ 14.1 cc (2 - 3 cm diameter) Cohort C: resection cavity volume > 14.1 cc and ≤ 35 cc (3 - 4 cm diameter)

Dose level Cohort A (Gy) Cohort B (Gy) Cohort C (Gy)

  1. 21 18 15
  2. 23 20 17
  3. 25 22 19

この研究は何を測定していますか?

主要な結果の測定

結果測定
メジャーの説明
時間枠
Maximum Tolerated Dose
時間枠:4 months after intervention
To assess whether treating a brain resection cavity with this stereotactic radiosurgery is safe and tolerable and to determine the maximum-tolerated radiation dose for SRS to the resection cavity alone with 4-month toxicity as assessed by the RTOG central nervous system (CNS) toxicity scale
4 months after intervention

二次結果の測定

結果測定
メジャーの説明
時間枠
Local Control
時間枠:up to 2 years after intervention
Defined as lack of progression of disease in resection cavity as assessed by period MRI scans for up to 2 years after intervention.
up to 2 years after intervention
Distant Control
時間枠:up to 2 years after intervention
Defined as lack of progression of disease in surrounding brain as assessed by period MRI scans for up to 2 years after intervention
up to 2 years after intervention
Neurocognitive Outcomes
時間枠:up to 2 years after intervention
Neurocognitive assessment using the Hopkins Verbal Learning Test-Revised (HVLT-R), Mini Mental Status Exam (MMSE) and Cognitive Functioning Subscale of the Medical Outcomes Scale (MOS), administered to the patient periodically for up to 2 years after intervention.
up to 2 years after intervention
Quality of Life
時間枠:up to 2 years after intervention
Quality of life (QOL) outcomes: using the quality of life questionnaire for the Functional Assessment of Cancer Therapy-Brain (FACT-Br) administered periodically for up to 2 years.
up to 2 years after intervention

協力者と研究者

ここでは、この調査に関係する人々や組織を見つけることができます。

スポンサー

捜査官

  • 主任研究者:Ian Crocker, MD、Emory University

出版物と役立つリンク

研究に関する情報を入力する責任者は、自発的にこれらの出版物を提供します。これらは、研究に関連するあらゆるものに関するものである可能性があります。

一般刊行物

研究記録日

これらの日付は、ClinicalTrials.gov への研究記録と要約結果の提出の進捗状況を追跡します。研究記録と報告された結果は、国立医学図書館 (NLM) によって審査され、公開 Web サイトに掲載される前に、特定の品質管理基準を満たしていることが確認されます。

主要日程の研究

研究開始

2011年7月1日

一次修了 (実際)

2015年10月1日

研究の完了 (実際)

2015年10月1日

試験登録日

最初に提出

2011年7月14日

QC基準を満たした最初の提出物

2011年7月14日

最初の投稿 (見積もり)

2011年7月15日

学習記録の更新

投稿された最後の更新 (見積もり)

2015年12月3日

QC基準を満たした最後の更新が送信されました

2015年12月2日

最終確認日

2015年12月1日

詳しくは

本研究に関する用語

この情報は、Web サイト clinicaltrials.gov から変更なしで直接取得したものです。研究の詳細を変更、削除、または更新するリクエストがある場合は、register@clinicaltrials.gov。 までご連絡ください。 clinicaltrials.gov に変更が加えられるとすぐに、ウェブサイトでも自動的に更新されます。

購読する