多模式放射线学模型(18F-FAPI PET/CT + CMR)用于心脏淀粉样变性的预后 (AL-CA)
基于18F-FAPI PET/CT和3D CMR的多模式融合放射组模型的轻链型心脏淀粉样变性(AL-CA)的预后评估的前瞻性研究
研究的目标:
这项前瞻性观察性研究的目的是开发和验证一种新型的无创方法,以预测轻链心脏淀粉样变性(AL-CA)患者的预后。 该方法集成了先进的多模式成像技术和人工智能(放射线学),以提供对治疗反应和生存结果的早期和准确评估。
主要问题:
多模式放射素学是否可以基于[] FAPI PET/CT的融合(评估成纤维细胞激活)和3D心脏MRI(CMR)(评估结构损伤)成像数据,准确地预测12个月全因素死亡率,并在接受Al-CA接受AL-CA的患者中进行动态疾病进展如何?
参与者:
人群:被诊断为AL-CA的患者(通过心内膜活检或心脏外活检确认,加上特定的心脏标准:NT-PROBNP> 332 pg/ml,平均左心室壁厚> 12 mm,不包括高血压/其他原因)。
环境:首都医科大学北京安津医院的单中心研究。
编号:49名患者(计算出辍学的样本量)。
关键标准:
纳入:确认的AL-CA诊断,接受标准Al-CA治疗(例如,基于Daratumumab的方案 +支持性心脏护理)。
排除:主动感染,晚期恶性肿瘤(预期寿命<12个月),严重的认知障碍/固定性影响成像依从性/随访。
研究设计和程序:
设计:单中心前瞻性队列研究。
干预措施:根据指南(基于Daratumumab,Bortezomib,bortezomib,cyctophamide,Texamethasone;根据需要使用利尿剂,速率控制,抗凝治疗量基于Daratumumab,bortezomib,Cyclophamide,抗抗癌),参与者接受AL-CA的护理标准治疗方法)。
程序:
基线:入学后,参与者接受了全面的评估:[F] FAPI PET/CT扫描,3D CMR扫描,血液测试(NT-ProBNP,Troponin,Free Light Light Chains等),临床分期(Mayo 2012)(Mayo 2012),功能评估(NYHA类),Life Question Question Question Question Question Questionnaire(KCC)。
成像:专业软件(Siemens true D)执行PET/CT和3D CMR图像的跨平台融合。 使用专用软件(SIEMENS功能资源管理器)从融合图像中提取了放射学特征。
后续:
临床:每3个月(症状,药物依从性,不良事件,包括NT-ProBNP在内的实验室测试)。
成像:在基线后6个月重复[] FAPI PET/CT和3D CMR扫描。 放射素学特征再次提取。
终点:主要终点是12个月的全因死亡率。 次要终点包括重新住院率和NYHA类别的变化。 随访一直持续到所有参与者的12个月终点。
数据分析:机器学习(Lasso-Cox回归)用于从基线和6个月的扫描中选择关键的放射素特征,并将它们与定量成像参数(FAPI吸收量,SUVMAX,LGE,LGE负担,ECV,ECV)和临床数据相结合,以构建预言模型预测模型。
- 比较:
研究人员将比较开发的多模式放射线学模型的预测性能与:
- 传统的临床生物标志物:NT-ProBNP水平和Mayo诊所分期。
- 仅标准定量成像参数:例如心肌FAPI摄取量,SUVMAX或CMR衍生的细胞外体积(ECV),在基线和6个月时测量。
目的是使用综合放射线学方法来证明在预测12个月全因死亡率方面具有较高的准确性。
研究概览
地位
详细说明
Light-chain cardiac amyloidosis (AL-CA) is an important cardiac manifestation of systemic light-chain amyloidosis and may lead to progressive myocardial involvement, impaired cardiac function, and poor prognosis. The extent of cardiac involvement and treatment response are important determinants of clinical outcomes in patients with AL-CA. Currently, risk assessment and treatment monitoring mainly rely on cardiac biomarkers, disease staging, and conventional cardiac imaging. However, conventional clinical biomarkers and quantitative imaging parameters may not fully characterize the biological activity, tissue remodeling, and longitudinal changes occurring within the myocardium. Therefore, the development of a non-invasive multimodal imaging approach capable of simultaneously characterizing myocardial biological activity, tissue properties, structural remodeling, and functional changes may improve disease monitoring and prognostic assessment in patients with AL-CA.
This prospective observational study will investigate the value of multimodal imaging integrating [18F]FAPI PET/CT and three-dimensional cardiac magnetic resonance (3D CMR), together with radiomics analysis, for the non-invasive assessment, longitudinal monitoring, and prognostic evaluation of AL-CA. [18F]FAPI PET/CT will provide information related to myocardial fibroblast activation and disease-associated biological activity, whereas 3D CMR will provide complementary information regarding cardiac morphology, function, myocardial tissue characteristics, and fibrosis. By integrating the complementary information provided by these imaging modalities and extracting high-dimensional imaging features that may not be identified by conventional visual assessment, multimodal radiomics may provide a more comprehensive characterization of myocardial involvement and its longitudinal changes in patients with AL-CA.
[18F]FAPI PET/CT imaging will be performed using a Siemens Biograph mCT PET/CT system. Myocardial imaging will be performed approximately 60 minutes after intravenous administration of the [18F]FAPI tracer. Participants will undergo image acquisition in the supine position. PET images will be reconstructed using the TrueX+TOF Ultral HD iterative reconstruction method and post-processed on a Siemens Syngo multimodality workstation. Cedars QPS/QGS software will be used for myocardial image analysis, generating left ventricular vertical long-axis, horizontal long-axis, and short-axis images, as well as short-axis polar maps for the assessment of myocardial tracer uptake characteristics and distribution patterns.
For PET/CT image analysis, volumetric regions of interest will be delineated throughout the left ventricular myocardium from the base to the apex on fused PET/CT images for quantitative and semi-quantitative assessment of myocardial [18F]FAPI uptake. The primary imaging parameters will include the maximum standardized uptake value (SUVmax), mean standardized uptake value (SUVmean), and standardized uptake value ratio (SUVR). SUVR will be defined as the ratio of the SUVmean within the myocardial volume of interest to the SUVmean within a reference volume of interest placed in the descending aorta. Myocardial FAPI uptake volume and uptake distribution patterns will also be assessed. To further quantify the cardiac fibroblast activation protein burden, cardiac fibroblast activation protein volume (CFV) and total cardiac FAP (TCF) will be analyzed. CFV will be calculated based on the volume of myocardial voxels meeting the predefined SUV threshold, and TCF will be derived from myocardial uptake intensity and FAP uptake volume. In the absence of visually apparent abnormal uptake, a standardized region of interest will be used for semi-quantitative assessment.
3D CMR imaging will be performed using a Philips 3T magnetic resonance system equipped with a dedicated cardiac coil. Participants will undergo imaging in the supine position. Balanced steady-state free precession (bSSFP) sequences will be used to acquire left ventricular long-axis and contiguous short-axis images for the assessment of cardiac morphology and function. High-resolution three-dimensional late gadolinium enhancement (LGE) imaging will be performed following gadolinium contrast administration to characterize myocardial tissue abnormalities and fibrosis-related changes. The 3D LGE acquisition will incorporate image navigation (iNAV), compressed sensing (CS), and Dixon water-fat separation techniques to improve spatial resolution and image quality and to reduce the effects of respiratory and other motion-related artifacts.
Motion-tracking and image-reconstruction techniques will be applied during 3D CMR data acquisition and reconstruction to address motion-related effects. High-resolution 3D LGE images will be reconstructed using compressed sensing and iterative reconstruction approaches to generate three-dimensional water-fat-separated myocardial delayed enhancement images. CVI post-processing software will be used to analyze CMR data and derive parameters reflecting cardiac morphology, function, and myocardial tissue characteristics, including ventricular morphological and functional parameters, LGE burden, native T1, extracellular volume (ECV), and other relevant myocardial tissue parameters. These parameters will be used to characterize myocardial structural remodeling, tissue alterations, and fibrosis and will subsequently be incorporated as conventional imaging variables in the multimodal analysis.
Multimodal image fusion will be performed using the Siemens Ture D multimodality post-processing platform. The purpose of image fusion is to achieve spatial registration, alignment, and integration of [18F]FAPI PET/CT and 3D CMR datasets, thereby combining information on myocardial biological activity and tracer uptake obtained from PET/CT with structural, functional, and tissue characterization obtained from CMR. Differences in spatial resolution, patient positioning, and cardiac motion between imaging modalities will be addressed through image registration. Manual adjustment based on left ventricular myocardial regions of interest will be performed when necessary. The fused datasets will be used to investigate the relationships among myocardial FAPI uptake, tissue characteristics, fibrosis, and structural remodeling.
Radiomics analysis will be performed using Siemens FeAture Explorer (FAE, version 0.5.13). High-dimensional radiomics features will be extracted from PET/CT, 3D CMR, and fused multimodal imaging datasets following standardized image preprocessing and region-of-interest segmentation. Extracted features will include first-order statistical features, morphological features, texture features, gray-level co-occurrence matrix (GLCM) features, gray-level run-length matrix (GLRLM) features, wavelet features, and other relevant image descriptors. Radiomics analysis will further quantify myocardial signal intensity, spatial heterogeneity, texture distribution, and tissue structural characteristics, thereby complementing the information provided by conventional quantitative imaging parameters.
Radiomics features will be integrated with quantitative parameters obtained from PET/CT and CMR, including myocardial FAPI uptake volume and distribution patterns, SUVmax, SUVmean, SUVR, CFV, TCF, LGE burden, native T1, and ECV. Relevant clinical, laboratory, and pathological variables will also be incorporated as appropriate for the planned analyses. The integration of multimodal radiomics features, conventional imaging parameters, and clinical variables will enable the construction of a comprehensive dataset representing different biological and structural dimensions of myocardial involvement in AL-CA.
LASSO-based methods will be used for feature selection to reduce redundancy in high-dimensional radiomics data and identify key variables associated with prognosis. Selected multimodal radiomics features, conventional quantitative imaging parameters, and clinical variables will subsequently be incorporated into predictive models. Machine learning approaches will be used for model development according to the characteristics of the available data and study objectives, and Cox proportional hazards regression models will be used for survival and prognostic analyses. These models will be used to evaluate the incremental predictive value of multimodal imaging features beyond conventional clinical indicators and standard imaging parameters.
Longitudinal multimodal imaging data obtained during follow-up will be analyzed to evaluate dynamic changes in myocardial FAPI uptake, CMR-derived tissue characteristics, and radiomics features. Changes in imaging characteristics between baseline and follow-up examinations will be analyzed in relation to clinical response, disease progression, and survival outcomes. This longitudinal analysis will explore the potential value of multimodal imaging for dynamic monitoring of disease activity and myocardial changes in patients with AL-CA.
The predictive performance of the multimodal radiomics models will also be compared with conventional clinical and imaging-based assessment methods. Comparator approaches will include traditional clinical biomarkers, disease staging, and quantitative imaging parameters derived from PET/CT or CMR alone. By evaluating and comparing the predictive performance of different approaches, this study will investigate whether the integration of [18F]FAPI PET/CT, 3D CMR, multimodal image fusion, and radiomics analysis can provide additional prognostic information.
The overall objective of this study is to develop and evaluate a non-invasive imaging-based approach integrating [18F]FAPI PET/CT and 3D CMR multimodal imaging. The study will explore the potential value of radiomics and integrated predictive models for assessing cardiac involvement, monitoring longitudinal disease changes, and evaluating prognosis in patients with AL-CA. The findings may provide more comprehensive and individualized imaging information for patients with AL-CA and offer additional imaging evidence for treatment response monitoring and clinical risk stratification.
研究类型
注册 (估计的)
联系人和位置
学习地点
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Beijing Municipality
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Beijing、Beijing Municipality、中国、100029
- Beijing Anzhen Hospital
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参与标准
资格标准
适合学习的年龄
- 孩子
- 成人
- 年长者
接受健康志愿者
取样方法
研究人群
研究设计
- 研究类型:单一中心前瞻性队列研究(评估标准化治疗下的放射素学参数的预后价值)。
- 研究人群:从2025年2月至2028年8月,通过心内膜或心脏外活检患有疑似或确认心脏轻链淀粉样变性(AL-CA)的患者被贝尼安本医院血液学系的患者入院。
描述
纳入标准:
- 病理证实的心脏活检证实了心脏淀粉样变性(AL-CA);
- 通过心外(骨髓,脂肪组织,舌头肌肉等)进行病理证实的al-CA活检,血清N末端核脑纳特里尿素肽(NT-PROBNP)> 332 pg/ml,左心室平均壁厚> 12 mm> 12 mm,以及其他超级脉动的左心室平均壁厚和其他静脉内的超高含量;
- 接受标准的AL-CA治疗方案(包括化学疗法和支持疗法)。
排除标准:
- 患有主动感染或晚期恶性肿瘤(预期生存时间<12个月)复杂;
- 存在严重认知障碍,有限的流动性或其他影响符合成像检查或随访完整性的状况。
学习计划
研究是如何设计的?
设计细节
队列和干预
团体/队列 |
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理由:AL-CA:清楚地识别疾病人群(轻链心脏淀粉样变性)。 mul
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研究衡量的是什么?
主要结果指标
结果测量 |
大体时间 |
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12个月的生存
大体时间:12个月
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12个月
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合作者和调查者
调查人员
- 首席研究员:wei dong, MD,PHD、Beijing Anzhen Hospital
研究记录日期
研究主要日期
学习开始 (实际的)
初级完成 (估计的)
研究完成 (估计的)
研究注册日期
首次提交
首先提交符合 QC 标准的
首次发布 (实际的)
研究记录更新
最后更新发布 (实际的)
上次提交的符合 QC 标准的更新
最后验证
更多信息
与本研究相关的术语
其他相关的 MeSH 术语
其他研究编号
- BeijingAnzhen dongwei
- High Level research funding (其他赠款/资助编号:Beijing Anzhen Hospital)
计划个人参与者数据 (IPD)
计划共享个人参与者数据 (IPD)?
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