Objectives: Radiomic involves testing the associations of a large number of quantitative imaging features with clinical characteristics. Our aim was to extract a radiomic signature from axial T2-weighted (T2-W) magnetic resonance imaging (MRI) of the whole prostate able to predict oncological and radiological scores in prostate cancer (PCa).
Methods: This study included 65 patients with localized PCa treated with radiotherapy (RT) between 2014 and 2018. For each patient, the T2-W MRI images were normalized with the histogram intensity scale standardization method. Features were extracted with the IBEX software. The association of each radiomic feature with risk class, T-stage, Gleason score (GS), extracapsular extension (ECE) score, and Prostate Imaging Reporting and Data System (PI-RADS v2) score was assessed by univariate and multivariate analysis.
Results: Forty-nine out of 65 patients were eligible. Among the 1702 features extracted, 3 to 6 features with the highest predictive power were selected for each outcome. This analysis showed that texture features were the most predictive for GS, PI-RADS v2 score, and risk class; intensity features were highly associated with T-stage, ECE score, and risk class, with areas under the receiver operating characteristic curve (ROC AUC) ranging from 0.74 to 0.94.
Conclusions: MRI-based radiomics is a promising tool for prediction of PCa characteristics. Although a significant association was found between the selected features and all the mentioned clinical/radiological scores, further validations on larger cohorts are needed before these findings can be applied in the clinical practice.
Key Points: • A radiomic model was used to classify PCa aggressiveness. • Radiomic analysis was performed on T2-W magnetic resonance images of the whole prostate gland. • The most predictive features belong to the texture (57%) and intensity (43%) domains.
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http://dx.doi.org/10.1007/s00330-020-07105-z | DOI Listing |
Background: Although investment in biomedical and pharmaceutical research has increased significantly over the past two decades, there are no oral disease-modifying treatments for Alzheimer's disease (AD).
Method: We performed comprehensive human genetic and multi-omics data analyses to test likely causal relationship between EPHX2 (encoding soluble epoxide hydrolase [sEH]) and risk of AD. Next, we tested the effect of the oral administration of EC5026 (a first-in-class, picomolar sEH inhibitor) in a transgenic mouse model of AD-5xFAD and mechanistic pathways of EC5026 in patient induced Pluripotent Stem Cells (iPSC) derived neurons.
Alzheimers Dement
December 2024
Innovation Center for Neurological Disorders, Xuanwu Hospital, Capital Medical University, Beijing, China;, Beijing, China.
Background: Individuals with type 2 diabetes mellitus (T2DM) face an increased risk of dementia. Recent discoveries indicate that SGLT2 inhibitors, a newer class of anti-diabetic medication, exhibit beneficial metabolic effects beyond glucose control, offering a potential avenue for mitigating the risk of Alzheimer's disease (AD). However, limited evidence exists regarding whether the use of SGLT2 inhibitors effectively reduces the risk of AD.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Center for Biomedical Semantics and Data Intelligence (CBSDI), University of Texas Health Science Center at Houston, Houston, TX, USA.
Background: Findings regarding the protective effect of Angiotensin II receptor blockers (ARBs) against Alzheimer's disease and related dementias (ADRD) and cognitive decline have been inconclusive.
Method: A total of 6,390,826 hypertensive individuals were included in this study from Optum's de-identified Clinformatics® Data Mart. We identified antihypertensive medication (AHM) drug classes and subclassified ARBs by blood-brain barrier (BBB) permeability.
Alzheimers Dement
December 2024
Huzhou University, Huzhou, Zhejiang, China.
Background: Recognizing perceived stress as a modifiable cognitive risk factor, mindfulness-based programs emerge as promising for stress mitigation in older adults with Mild cognitive impairment (MCI). However, existing research, primarily observational and focused on chronic patients and caregivers, necessitates developing and evaluating MCI-specific mindfulness interventions.
Design: A two-arm and assessor-blinded randomized controlled trial.
J Am Geriatr Soc
January 2025
Division of Research, Kaiser Permanente, Pleasanton, California, USA.
Background: Little is known about how patients' preferences, expectations, and beliefs (jointly referred to as perspectives) influence deprescribing. We evaluated the association of patients' self-reported perspectives with subsequent deprescribing of diabetes medications in older adults with type 2 diabetes.
Methods: Longitudinal cohort study of 1629 pharmacologically treated adults ages 65-100 years with type 2 diabetes who received care at Kaiser Permanente of Northern California (KPNC) and participated in the Diabetes Preferences and Self-Care survey (2019).
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