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精密放射線治療のガイダンスと適応のための新しいコーンビーム CT の評価

2026年8月4日 更新者:Varian, a Siemens Healthineers Company
これは、放射線治療中のソファでのイメージングに使用される新しい高性能コーンビーム CT (CBCT) の画質を調査する実現可能性調査です。

調査の概要

詳細な説明

この研究では、放射線治療の精度を向上させるための高性能コーンビーム CT (CBCT) 画像誘導システムの潜在的な利点に焦点を当てています。 CBCT は現在、放射線治療中に患者を元の治療計画に合わせて放射線照射の精度を高めるために使用されています。 現在の CBCT イメージング技術では、画像を取得するのに約 1 分かかります。 正確なターゲティングを可能にするのに十分な品質の画像を取得するために、患者は複数回の息止め操作を実行して、呼吸サイクルで移動する腫瘍の動きを「凍結」する必要がある場合があります (例: 肺、肝臓、乳房の腫瘍)。 新しい高性能 CBCT は、約 6 秒で画像を取得できるため、1 回の息止めで画像を取得できる可能性があります。 画像再構成に使用される動き補償アルゴリズムの改善により、患者が息を止めていなくても、高品質の画像を取得できる可能性があります。

被験者の治療設定、CTシミュレーション、治療計画、画像ガイダンス、および治療実施の方法論は、被験者の治療チームによって決定され、この研究では指定されていません。 研究への登録は、治療の提供が開始された後に行うことができますが、5回目の分割の前でなければなりません。

この研究に参加するためのインフォームド コンセントの完了後、高性能 CBCT イメージングは​​、被験者の最初の 5 つの予定された放射線治療の分割の直前または直後に予定されます。 2 つの研究用 CBCT 画像が取得されます。1 つは息止め、もう 1 つは自由呼吸です。

参加患者の混乱を最小限に抑えて、この研究では、(i) 被験者の治療計画ファンビーム CT と (ii) 既存の治療ユニットで取得した従来の CBCT と (iii) 高性能 CBCT との比較が可能になります。 これにより、高性能 CBCT 画像データの画質が、最良のケースの標準 (ファンビーム) とソファー上での画像処理の現状の両方と比較され、改善点が特定され、特定されます。

研究の種類

介入

入学 (実際)

31

段階

  • 適用できない

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

    • Nova Scotia
      • Halifax、Nova Scotia、カナダ、B3H 2E2
        • Nova Scotia Health (QEII)

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

19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

説明

包含基準:

  • 被験者は、NS Health QE2 サイトの 5 つの TrueBeam プラットフォームのいずれかで治療を受ける予定です。
  • -被験者は息止め技術を使用して放射線療法を受けています(たとえば、肺がん、肝臓がん、左乳がん)。

除外基準:

  • -患者は妊娠中、または治療期間中に妊娠の計画があります。
  • -患者は研究への参加に同意したくない、またはインフォームドコンセントが不可能な人。

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:他の
  • 割り当て:なし
  • 介入モデル:単一グループの割り当て
  • 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:高性能 CBCT イメージング
2 つの追加研究イメージング セットが取得されます。
被験者ごとに 2 つの研究用 CBCT 画像が取得されます。

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
CBCT Image Quality - Artifact Index
時間枠:1 day

Artifact Index (AI) is a measurement of the strength of imaging artifact and the degree to which is affects visibility of anatomical structures in the vicinity of the artifact. Artifacts can be produced in CT and CBCT images by a number of factors, such as metal implants, gas, or breathing motion.

AI = sqrt((STD_VOI)^2 - (STD_background)^2),

where STD_VOI is the standard deviation of the image Hounsfield Units in a region of interest at the location of an artifact, and STD_background is the standard deviation of the Hounsfield Unit values in the background (i.e. in similar tissue but away from the artifact.

A lower AI value indicates that the artifact has a lower impact on image quality. Artifacts were identified in all study participants. The median AI across the study population is presented for four imaging modalities.

1 day
CBCT Image Quality - Image Nonuniformity
時間枠:1 day

Nonuniformity (NU) is a measure of the variation of CT image intensity in uniform tissue.

NU = (HU_max - HU_min)/(HU_max + HU_min),

where HU_max and HU_min are the maximum and minimum Hounsfield Unit values among multiple locations sampled within regions of uniform tissue that were relevant to the anatomy of interest (e.g., a uniform region of breast tissue for patients undergoing breast treatments).

A lower NU represents greater uniformity of CT image intensity within a region of interest. Median NU across the study population is presented for four imaging modalities.

1 day
CBCT Image Quality - Contrast
時間枠:1 week

Contrast represents the ability to distinguish between two different regions in a CT image (e.g. to distinguish between two adjacent organs).

Contrast = |HU1 - HU2|

where HU1 and HU2 are the mean HU values in two different 100 mm^2 ROIs, where the ROIs were located in two different tissue types that were relevant to the site being treated (e.g., in the liver and in perihepatic fat for liver treatments).

Higher contrast values indicate that it is easier to distinguish between regions (anatomical structures) in a CT image. Median contrast across the study population is presented for four imaging modalities.

1 week
CBCT Image Quality - Contrast to Noise Ratio
時間枠:1 week

Contrast to Noise Ratio (CNR) measures the ability to distinguish an object or lesion from its background.

CNR = |HU1 - HU2|/[0.5 (STD1 + STD2)]

where HU1 and HU2 are the mean Hounsfield Unit values in two different 100 mm^2 ROIs, where the ROIs were located in two different tissue types that were relevant to the site being treated (e.g., in the liver and in perihepatic fat for liver treatments), and STD1 and STD2 are the standard deviations of the HU values in those same ROIs.

A higher CNR makes it easier to distinguish an object from its background. CNR analysis was limited to images with similar imaging dose. Median CNR across all study participants treated for lung cancer are presented for three CBCT modalities.

1 week
CBCT Image Quality - HU Similarity to CT Simulation
時間枠:1 week

The intensity of a pixel in a CT image is a function of its Hounsfield Unit (HU) value. HU is also directly related to the underlying electron density, which means that the pixel value of a CT image can be used directly in the calculation of dose for a prescribed radiation treatment plan. CT simulation scanners produce images with high HU accuracy and are regularly used for radiation treatment planning. Here, we present the difference in HU between CT simulation images and different CBCT images.

ΔHU = HU_CBCT - HU_CTSim,

where HU_CBCT and HU_CTSim are mean values among HU averages at 4 reference points in a CBCT image and the corresponding CT simulation image, respectively.

The lower the ΔHU, the greater the HU accuracy of the CBCT image, and the greater the likelihood that CBCT imaging can be used for radiation treatment planning. Median ΔHU across the study population are presented for three different tissue types for three CBCT imaging modalities.

1 week

二次結果の測定

結果測定
メジャーの説明
時間枠
Dosimetry Calculations - Gamma Pass Rate
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. The overall difference between calculated radiation distributions was evaluated using three different gamma pass criteria: 3% dose difference / 3 mm distance to agreement, 2%/2mm, and 1%/1mm. The gamma pass rate is expressed as a percentage of data points that meet the pass criteria. A gamma pass rate of > 95% is typically considered acceptable for 3%/3mm. As the gamma pass criteria become stricter, the pass rates decrease. Gamma pass rates were calculated to compare the CT simulation-based dose calculation and the high performance CBCT-based dose calculation. Gamma pass rates were also calculated to compare the CT simulation-based dose calculation and the conventional CBCT-based dose calculation. The median gamma pass rates across the entire study population are presented.
1 day
Dosimetry Calculations - Target DVH Volume Metrics
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. Dose-volume histograms (DVH) were calculated for individual target structures from all three dose distributions. Individual DVH metrics, such as V90(%) (the percentage of the structure volume receiving 90% of the prescribed radiation dose) were extracted for individual target structures from their DVH. The difference between a DVH metric derived from CT simulation-based dose calculation and the same metric derived from a CBCT-based dose calculation are reported. The smaller the difference, the greater the accuracy of the CBCT-based dose calculation. Median target DVH metric differences across the study population are presented.
1 day
Dosimetry Calculations - Target DVH Dose Metrics
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. Dose-volume histograms (DVH) were calculated for individual target structures from all three dose distributions. Individual DVH dose metrics, such as D95(%) (the minimum dose covering 95% of the structure, expressed as a % of the prescription dose) were extracted for individual target structures from their DVH. The difference between a DVH metric derived from CT simulation-based dose calculation and the same metric derived from a CBCT-based dose calculation are reported. The smaller the difference, the greater the accuracy of the CBCT-based dose calculation. Median target DVH metric differences across the study population are presented.
1 day
Dosimetry Calculations - Breast OAR DVH Metrics
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. Dose-volume histograms (DVH) were calculated for individual organs at risk (OAR) from all three dose distributions. The key organs at risk for patients being treated for breast cancer are the heart, ipsilateral lung, and contralateral breast. The differences between the D2%(%) (minimum dose received by the "hottest" 2% of the OAR, expressed as a % of the prescription dose) derived from CT simulation-based dose calculation and the same metric derived from a CBCT-based dose calculation are reported. The smaller the difference, the greater the accuracy of the CBCT-based dose calculation. Median differences in OAR D2%(%) across study participants treated for breast cancer are presented.
1 day
Dosimetry Calculations - Lung OAR DVH Metrics
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. Dose-volume histograms (DVH) were calculated for individual organs at risk (OAR) from all three dose distributions. The key organs at risk for patients being treated for lung cancer are the heart, esophagus and spinal cord. The differences between the D2%(%) (minimum dose received by the "hottest" 2% of the OAR, expressed as a % of the prescription dose) derived from CT simulation-based dose calculation and the same metric derived from a CBCT-based dose calculation are reported. The smaller the difference, the greater the accuracy of the CBCT-based dose calculation. Median differences in OAR D2%(%) across study participants treated for lung cancer are presented.
1 day
Dosimetry Calculations - Abdomen OAR DVH Metrics
時間枠:1 day
Every trial participant had a radiation treatment plan calculated on their CT simulation image series. That same plan was then re-calculated on both the breath hold high-performance CBCT and conventional CBCT. Dose-volume histograms (DVH) were calculated for individual organs at risk (OAR) from all three dose distributions. The key organs at risk for patients being treated for abdominal cancer are the heart, bowel and kidneys. The differences between the D2%(%) (minimum dose received by the "hottest" 2% of the OAR, expressed as a % of the prescription dose) derived from CT simulation-based dose calculation and the same metric derived from a CBCT-based dose calculation are reported. The smaller the difference, the greater the accuracy of the CBCT-based dose calculation. Median differences in OAR D2%(%) across study participants treated for abdominal cancer are presented.
1 day
Patient Experience - General Ease of Breath Hold
時間枠:1 Day
Study participants were asked to respond to the statement, "I find it easy to hold my breath", on a 5-point scale, where 1 represents "Strongly Disagree", 3 represents "Neutral", and 5 represents "Strongly Agree".
1 Day
Patient Experience - Ease of Breath Hold on TrueBeam
時間枠:1 Day
Study participants were asked to respond to the statement, "It was easy for me to perform the breath holds that were needed for imaging on the TrueBeam radiation machine", on a 5-point scale, where 1 represents "Strongly Disagree", 3 represents "Neutral", and 5 represents "Strongly Agree".
1 Day
Patient Experience - Ease of Breath Hold on Ethos
時間枠:1 Day
Study participants were asked to respond to the statement, "It was easy for me to perform the breath holds needed for imaging on the Ethos radiation machine", on a 5-point scale, where 1 represents "Strongly Disagree", 3 represents "Neutral", and 5 represents "Strongly Agree".
1 Day
Patient Experience - Relative Ease of Breath Hold Between Machines
時間枠:1 Day
Study participants were asked to respond to the statement, "It was easier for me to perform the breath holds needed for imaging on one radiation machine compared to the other", on a 5-point scale, where 1 represents "TrueBeam much easier", 3 represents "Both machines equally easy", and 5 represents "Ethos much easier".
1 Day
Patient Experience - Overall TrueBeam Experience
時間枠:1 Day
Study participants were asked to respond to the statement, "My overall experience during imaging on the TrueBeam was good", on a 5-point scale, where 1 represents "Strongly Disagree", 3 represents "Neutral", and 5 represents "Strongly Agree".
1 Day
Patient Experience - Overall Ethos Experience
時間枠:1 Day
Study participants were asked to respond to the statement, "My overall experience during imaging on the Ethos platform was good", on a 5-point scale, where 1 represents "Strongly Disagree", 3 represents "Neutral", and 5 represents "Strongly Agree".
1 Day

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。

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 (実際)

2022年12月20日

一次修了 (実際)

2023年7月30日

研究の完了 (実際)

2023年7月30日

試験登録日

最初に提出

2021年12月16日

QC基準を満たした最初の提出物

2021年12月16日

最初の投稿 (実際)

2022年1月4日

学習記録の更新

投稿された最後の更新 (実際)

2026年8月26日

QC基準を満たした最後の更新が送信されました

2026年8月4日

最終確認日

2026年8月1日

詳しくは

本研究に関する用語

個々の参加者データ (IPD) の計画

個々の参加者データ (IPD) を共有する予定はありますか?

いいえ

医薬品およびデバイス情報、研究文書

米国FDA規制医薬品の研究

いいえ

米国FDA規制機器製品の研究

はい

米国で製造され、米国から輸出された製品。

はい

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