keyword
https://read.qxmd.com/read/38670484/cell-free-dna-assay-for-malignancy-classification-of-high-risk-lung-nodules
#41
JOURNAL ARTICLE
Siwei Wang, Fanchen Meng, Peng Chen, Yang Lv, Min Wu, Haimeng Tang, Hua Bao, Xue Wu, Yang Shao, Jie Wang, Juncheng Dai, Lin Xu, Xiaoxiao Wang, Rong Yin
OBJECTIVE: Although low-dose computed tomography has been proven effective to reduce lung cancer-specific mortality, a considerable proportion of surgically resected high-risk lung nodules were still confirmed pathologically benign. There is an unmet need of a novel method for malignancy classification in lung nodules. METHODS: We recruited 307 patients with high-risk lung nodules who underwent curative surgery, and 247 and 60 cases were pathologically confirmed malignant and benign lung lesions, respectively...
April 24, 2024: Journal of Thoracic and Cardiovascular Surgery
https://read.qxmd.com/read/38667493/deep-learning-in-breast-cancer-imaging-state-of-the-art-and-recent-advancements-in-early-2024
#42
REVIEW
Alessandro Carriero, Léon Groenhoff, Elizaveta Vologina, Paola Basile, Marco Albera
The rapid advancement of artificial intelligence (AI) has significantly impacted various aspects of healthcare, particularly in the medical imaging field. This review focuses on recent developments in the application of deep learning (DL) techniques to breast cancer imaging. DL models, a subset of AI algorithms inspired by human brain architecture, have demonstrated remarkable success in analyzing complex medical images, enhancing diagnostic precision, and streamlining workflows. DL models have been applied to breast cancer diagnosis via mammography, ultrasonography, and magnetic resonance imaging...
April 19, 2024: Diagnostics
https://read.qxmd.com/read/38666933/radiogenomics-and-texture-analysis-to-detect-von-hippel-lindau-vhl-mutation-in-clear-cell-renal-cell-carcinoma
#43
REVIEW
Federico Greco, Valerio D'Andrea, Bruno Beomonte Zobel, Carlo Augusto Mallio
Radiogenomics, a burgeoning field in biomedical research, explores the correlation between imaging features and genomic data, aiming to link macroscopic manifestations with molecular characteristics. In this review, we examine existing radiogenomics literature in clear cell renal cell carcinoma (ccRCC), the predominant renal cancer, and von Hippel-Lindau ( VHL ) gene mutation, the most frequent genetic mutation in ccRCC. A thorough examination of the literature was conducted through searches on the PubMed, Medline, Cochrane Library, Google Scholar, and Web of Science databases...
April 8, 2024: Current Issues in Molecular Biology
https://read.qxmd.com/read/38665576/an-integrated-radiology-pathology-machine-learning-classifier-for-outcome-prediction-following-radical-prostatectomy-preliminary-findings
#44
JOURNAL ARTICLE
Amogh Hiremath, Germán Corredor, Lin Li, Patrick Leo, Cristina Magi-Galluzzi, Robin Elliott, Andrei Purysko, Rakesh Shiradkar, Anant Madabhushi
OBJECTIVES: To evaluate the added benefit of integrating features from pre-treatment MRI (radiomics) and digitized post-surgical pathology slides (pathomics) in prostate cancer (PCa) patients for prognosticating outcomes post radical-prostatectomy (RP) including a) rising prostate specific antigen (PSA), and b) extraprostatic-extension (EPE). METHODS: Multi-institutional data (N = 58) of PCa patients who underwent pre-treatment 3-T MRI prior to RP were included in this retrospective study...
April 30, 2024: Heliyon
https://read.qxmd.com/read/38665366/optimizing-breast-cancer-diagnosis-with-photoacoustic-imaging-an-analysis-of-intratumoral-and-peritumoral-radiomics
#45
JOURNAL ARTICLE
Zhibin Huang, Sijie Mo, Huaiyu Wu, Yao Kong, Hui Luo, Guoqiu Li, Jing Zheng, Hongtian Tian, Shuzhen Tang, Zhijie Chen, Youping Wang, Jinfeng Xu, Luyao Zhou, Fajin Dong
BACKGROUND: The differentiation between benign and malignant breast tumors extends beyond morphological structures to encompass functional alterations within the nodules. The combination of photoacoustic (PA) imaging and radiomics unveils functional insights and intricate details that are imperceptible to the naked eye. PURPOSE: This study aims to assess the efficacy of PA imaging in breast cancer radiomics, focusing on the impact of peritumoral region size on radiomic model accuracy...
August 2024: Photoacoustics
https://read.qxmd.com/read/38663911/machine-learning-and-new-insights-for-breast-cancer-diagnosis
#46
REVIEW
Ya Guo, Heng Zhang, Leilei Yuan, Weidong Chen, Haibo Zhao, Qing-Qing Yu, Wenjie Shi
Breast cancer (BC) is the most prominent form of cancer among females all over the world. The current methods of BC detection include X-ray mammography, ultrasound, computed tomography, magnetic resonance imaging, positron emission tomography and breast thermographic techniques. More recently, machine learning (ML) tools have been increasingly employed in diagnostic medicine for its high efficiency in detection and intervention. The subsequent imaging features and mathematical analyses can then be used to generate ML models, which stratify, differentiate and detect benign and malignant breast lesions...
April 2024: Journal of International Medical Research
https://read.qxmd.com/read/38663433/quantitative-ultrasound-radiomics-analysis-to-evaluate-lymph-nodes-in-patients-with-cancer-a-systematic-review
#47
JOURNAL ARTICLE
Antonio Guerrisi, Ludovica Miseo, Italia Falcone, Claudia Messina, Sara Ungania, Fulvia Elia, Flora Desiderio, Fabio Valenti, Vito Cantisani, Antonella Soriani, Mauro Caterino
This systematic review aims to evaluate the role of ultrasound (US) radiomics in assessing lymphadenopathy in patients with cancer and the ability of radiomics to predict metastatic lymph node involvement. A systematic literature search was performed in the PubMed (MEDLINE), Cochrane Central Register of Controlled Trials (CENTRAL), and EMBASE (Ovid) databases up to June 13, 2023. 42 articles were included in which the lymph node mass was assessed with a US exam, and the analysis was performed using radiomics methods...
April 25, 2024: Ultraschall in der Medizin
https://read.qxmd.com/read/38662587/response-evaluation-criteria-in-gastrointestinal-and-abdominal-cancers-which-to-use-and-how-to-measure
#48
REVIEW
Francesca Castagnoli, Justin Mencel, Derfel Ap Dafydd, Jessica Gough, Brent Drake, Naami Charlotte Mcaddy, Samuel Joseph Withey, Angela Mary Riddell, Dow-Mu Koh, Joshua David Shur
As the management of gastrointestinal malignancy has evolved, tumor response assessment has expanded from size-based assessments to those that include tumor enhancement, in addition to functional data such as those derived from PET and diffusion-weighted imaging. Accurate interpretation of tumor response therefore requires knowledge of imaging modalities used in gastrointestinal malignancy, anticancer therapies, and tumor biology. Targeted therapies such as immunotherapy pose additional considerations due to unique imaging response patterns and drug toxicity; as a consequence, immunotherapy response criteria have been developed...
May 2024: Radiographics: a Review Publication of the Radiological Society of North America, Inc
https://read.qxmd.com/read/38660703/feasibility-study-of-computed-tomographic-radiomics-model-for-the-prediction-of-early-and-intermediate-stage-hepatocellular-carcinoma-using-bclc-staging
#49
JOURNAL ARTICLE
Han Dong, Lu Yang, Duan Shaofeng, Guo Lili
BACKGROUND: Hepatocellular carcinoma (HCC) is a serious health concern because of its high morbidity and mortality. The prognosis of HCC largely depends on the disease stage at diagnosis. Computed tomography (CT) image textural analysis is an image analysis technique that has emerged in recent years. OBJECTIVE: To probe the feasibility of a CT radiomic model for predicting early (stages 0, A) and intermediate (stage B) HCC using Barcelona Clinic Liver Cancer (BCLC) staging...
2024: Technology in Cancer Research & Treatment
https://read.qxmd.com/read/38660677/development-and-validation-of-an-interpretable-radiomic-signature-for-preoperative-estimation-of-tumor-mutational-burden-in-lung-adenocarcinoma
#50
JOURNAL ARTICLE
Yuwei Zhang, Yichen Yang, Yue Ma, Ying Liu, Zhaoxiang Ye
BACKGROUND: Tumor mutational burden (TMB) is a promising biomarker for immunotherapy. The challenge of spatial and temporal heterogeneity and high costs weaken its power in clinical routine. The aim of this study is to estimate TMB preoperatively using a volumetric CT-based radiomic signature (rMB). METHODS: Seventy-one patients with resectable lung adenocarcinoma (LUAD) who underwent whole-exome sequencing (WXS) from 2011 to 2014 were enrolled from the institutional biobank of Tianjin Medical University Cancer Institute and Hospital (TMUCIH)...
2024: Frontiers in Genetics
https://read.qxmd.com/read/38660647/computed-tomography-based-radiomics-diagnostic-approach-for-differential-diagnosis-between-early-and-late-stage-pancreatic-ductal-adenocarcinoma
#51
JOURNAL ARTICLE
Shuai Ren, Li-Chao Qian, Ying-Ying Cao, Marcus J Daniels, Li-Na Song, Ying Tian, Zhong-Qiu Wang
BACKGROUND: One of the primary reasons for the dismal survival rates in pancreatic ductal adenocarcinoma (PDAC) is that most patients are usually diagnosed at late stages. There is an urgent unmet clinical need to identify and develop diagnostic methods that could precisely detect PDAC at its earliest stages. AIM: To evaluate the potential value of radiomics analysis in the differentiation of early-stage PDAC from late-stage PDAC. METHODS: A total of 71 patients with pathologically proved PDAC based on surgical resection who underwent contrast-enhanced computed tomography (CT) within 30 d prior to surgery were included in the study...
April 15, 2024: World Journal of Gastrointestinal Oncology
https://read.qxmd.com/read/38658630/mri-radiomics-in-head-and-neck-cancer-from-reproducibility-to-combined-approaches
#52
JOURNAL ARTICLE
Anna Corti, Stefano Cavalieri, Giuseppina Calareso, Davide Mattavelli, Marco Ravanelli, Tito Poli, Lisa Licitra, Valentina D A Corino, Luca Mainardi
The clinical applicability of radiomics in oncology depends on its transferability to real-world settings. However, the absence of standardized radiomics pipelines combined with methodological variability and insufficient reporting may hamper the reproducibility of radiomic analyses, impeding its translation to clinics. This study aimed to identify and replicate published, reproducible radiomic signatures based on magnetic resonance imaging (MRI), for prognosis of overall survival in head and neck squamous cell carcinoma (HNSCC) patients...
April 24, 2024: Scientific Reports
https://read.qxmd.com/read/38658211/ultrasound-based-deep-learning-radiomics-nomogram-for-the-assessment-of-lymphovascular-invasion-in-invasive-breast-cancer-a-multicenter-study
#53
JOURNAL ARTICLE
Di Zhang, Wang Zhou, Wen-Wu Lu, Xia-Chuan Qin, Xian-Ya Zhang, Jun-Li Wang, Jun Wu, Yan-Hong Luo, Ya-Yang Duan, Chao-Xue Zhang
RATIONALE AND OBJECTIVES: The aim of this study was to develop a deep learning radiomics nomogram (DLRN) based on B-mode ultrasound (BMUS) and color doppler flow imaging (CDFI) images for preoperative assessment of lymphovascular invasion (LVI) status in invasive breast cancer (IBC). MATERIALS AND METHODS: In this multicenter, retrospective study, 832 pathologically confirmed IBC patients were recruited from eight hospitals. The samples were divided into training, internal test, and external test sets...
April 23, 2024: Academic Radiology
https://read.qxmd.com/read/38656367/epstein-barr-virus-positive-gastric-cancer-the-pathological-basis-of-ct-findings-and-radiomics-models-prediction
#54
JOURNAL ARTICLE
Shuangshuang Sun, Lin Li, Mengying Xu, Ying Wei, Feng Shi, Song Liu
PURPOSE: To analyze the clinicopathologic information and CT imaging features of Epstein-Barr virus (EBV)-positive gastric cancer (GC) and establish CT-based radiomics models to predict the EBV status of GC. METHODS: This retrospective study included 144 GC cases, including 48 EBV-positive cases. Pathological and immunohistochemical information was collected. CT enlarged LN and morphological characteristics were also assessed. Radiomics models were constructed to predict the EBV status, including decision tree (DT), logistic regression (LR), random forest (RF), and support vector machine (SVM)...
April 24, 2024: Abdominal Radiology
https://read.qxmd.com/read/38656233/erratum-for-identification-of-precise-3d-ct-radiomics-for-habitat-computation-by-machine-learning-in-cancer
#55
Olivia Prior, Carlos Macarro, Víctor Navarro, Camilo Monreal, Marta Ligero, Alonso Garcia-Ruiz, Garazi Serna, Sara Simonetti, Irene Braña, Maria Vieito, Manuel Escobar, Jaume Capdevila, Annette T Byrne, Rodrigo Dienstmann, Rodrigo Toledo, Paolo Nuciforo, Elena Garralda, Francesco Grussu, Kinga Bernatowicz, Raquel Perez-Lopez
No abstract text is available yet for this article.
May 2024: Radiology. Artificial intelligence
https://read.qxmd.com/read/38654284/radiomics-signature-for-dynamic-changes-of-tumor-infiltrating-cd8-t-cells-and-macrophages-in-cervical-cancer-during-chemoradiotherapy
#56
JOURNAL ARTICLE
Kang Huang, Xuehan Huang, Chengbing Zeng, Siyan Wang, Yizhou Zhan, Qingxin Cai, Guobo Peng, Zhining Yang, Li Zhou, Jianzhou Chen, Chuangzhen Chen
BACKGROUND: Our previous study suggests that tumor CD8+ T cells and macrophages (defined as CD68+ cells) infiltration underwent dynamic and heterogeneous changes during concurrent chemoradiotherapy (CCRT) in cervical cancer patients, which correlated with their short-term tumor response. This study aims to develop a CT image-based radiomics signature for such dynamic changes. METHODS: Thirty cervical squamous cell carcinoma patients, who were treated with CCRT followed by brachytherapy, were included in this study...
April 23, 2024: Cancer Imaging: the Official Publication of the International Cancer Imaging Society
https://read.qxmd.com/read/38644724/intratumoral-and-peritumoral-edema-radiomics-based-on-fat-suppressed-t2-weighted-imaging-for-preoperative-prediction-of-triple-negative-breast-cancer
#57
JOURNAL ARTICLE
Ruihong Sun, Yun Hu, Xuechun Wang, Zengfa Huang, Yang Yang, Shutong Zhang, Feng Shi, Lei Chen, Hongyuan Liu, Xiang Wang
AIM: Our aim was to explore the feasibility of using radiomics data derived from intratumoral and peritumoral edema on fat-suppressed T2-weighted imaging (T2 FS) to distinguish triple-negative breast cancer (TNBC) from non-triple-negative breast cancer (non-TNBC). METHODS: This retrospective study enrolled 174 breast cancer patients. According to the MRI examination time, patients before 2021 were divided into training (n = 119) or internal test (n = 30) cohorts at a ratio of 8:2...
April 19, 2024: Current medical imaging
https://read.qxmd.com/read/38644430/radio-anatomical-evaluation-of-clinical-and-radiomic-profile-of-multi-parametric-magnetic-resonance-imaging-of-de-novo-glioblastoma-multiforme
#58
JOURNAL ARTICLE
H Shafeeq Ahmed, Trupti Devaraj, Maanini Singhvi, T Arul Dasan, Priya Ranganath
BACKGROUND: Glioblastoma (GBM) is a fatal, fast-growing, and aggressive brain tumor arising from glial cells or their progenitors. It is a primary malignancy with a poor prognosis. The current study aims at evaluating the neuroradiological parameters of de novo GBM by analyzing the brain multi-parametric magnetic resonance imaging (mpMRI) scans acquired from a publicly available database analysis of the scans. METHODS: The dataset used was the mpMRI scans for de novo glioblastoma (GBM) patients from the University of Pennsylvania Health System, called the UPENN-GBM dataset...
April 22, 2024: Journal of the Egyptian National Cancer Institute
https://read.qxmd.com/read/38642400/mri-based-clinical-radiomics-nomogram-model-for-predicting-microvascular-invasion-in-hepatocellular-carcinoma
#59
JOURNAL ARTICLE
Qinghua Wang, Yongjie Zhou, Hongan Yang, Jingrun Zhang, Xianjun Zeng, Yongming Tan
BACKGROUND: Preoperative microvascular invasion (MVI) of liver cancer is an effective method to reduce the recurrence rate of liver cancer. Hepatectomy with extended resection and additional adjuvant or targeted therapy can significantly improve the survival rate of MVI+ patients by eradicating micrometastasis. Preoperative prediction of MVI status is of great clinical significance for surgical decision-making and the selection of other adjuvant therapy strategies to improve the prognosis of patients...
April 20, 2024: Medical Physics
https://read.qxmd.com/read/38641673/identification-of-ct-radiomic-features-robust-to-acquisition-and-segmentation-variations-for-improved-prediction-of-radiotherapy-treated-lung-cancer-patient-recurrence
#60
JOURNAL ARTICLE
Thomas Louis, François Lucia, François Cousin, Carole Mievis, Nicolas Jansen, Bernard Duysinx, Romain Le Pennec, Dimitris Visvikis, Malik Nebbache, Martin Rehn, Mohamed Hamya, Margaux Geier, Pierre-Yves Salaun, Ulrike Schick, Mathieu Hatt, Philippe Coucke, Pierre Lovinfosse, Roland Hustinx
The primary objective of the present study was to identify a subset of radiomic features extracted from primary tumor imaged by computed tomography of early-stage non-small cell lung cancer patients, which remain unaffected by variations in segmentation quality and in computed tomography image acquisition protocol. The robustness of these features to segmentation variations was assessed by analyzing the correlation of feature values extracted from lesion volumes delineated by two annotators. The robustness to variations in acquisition protocol was evaluated by examining the correlation of features extracted from high-dose and low-dose computed tomography scans, both of which were acquired for each patient as part of the stereotactic body radiotherapy planning process...
April 19, 2024: Scientific Reports
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