Prediction of Tumor Treatment Response

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Author :
Publisher : New York ; Toronto : Pergamon
ISBN 13 :
Total Pages : 352 pages
Book Rating : 4.3/5 (91 download)

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Book Synopsis Prediction of Tumor Treatment Response by : J. Donald Chapman

Download or read book Prediction of Tumor Treatment Response written by J. Donald Chapman and published by New York ; Toronto : Pergamon. This book was released on 1989 with total page 352 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Prediction of Tumor Treatment Response

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Author :
Publisher : Wiley-Blackwell
ISBN 13 : 9780071052580
Total Pages : pages
Book Rating : 4.0/5 (525 download)

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Book Synopsis Prediction of Tumor Treatment Response by : J. D. Chapman

Download or read book Prediction of Tumor Treatment Response written by J. D. Chapman and published by Wiley-Blackwell. This book was released on 1991-09-01 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Tumor Organoids

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Publisher : Humana Press
ISBN 13 : 3319605119
Total Pages : 225 pages
Book Rating : 4.3/5 (196 download)

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Book Synopsis Tumor Organoids by : Shay Soker

Download or read book Tumor Organoids written by Shay Soker and published by Humana Press. This book was released on 2017-10-20 with total page 225 pages. Available in PDF, EPUB and Kindle. Book excerpt: Cancer cell biology research in general, and anti-cancer drug development specifically, still relies on standard cell culture techniques that place the cells in an unnatural environment. As a consequence, growing tumor cells in plastic dishes places a selective pressure that substantially alters their original molecular and phenotypic properties.The emerging field of regenerative medicine has developed bioengineered tissue platforms that can better mimic the structure and cellular heterogeneity of in vivo tissue, and are suitable for tumor bioengineering research. Microengineering technologies have resulted in advanced methods for creating and culturing 3-D human tissue. By encapsulating the respective cell type or combining several cell types to form tissues, these model organs can be viable for longer periods of time and are cultured to develop functional properties similar to native tissues. This approach recapitulates the dynamic role of cell–cell, cell–ECM, and mechanical interactions inside the tumor. Further incorporation of cells representative of the tumor stroma, such as endothelial cells (EC) and tumor fibroblasts, can mimic the in vivo tumor microenvironment. Collectively, bioengineered tumors create an important resource for the in vitro study of tumor growth in 3D including tumor biomechanics and the effects of anti-cancer drugs on 3D tumor tissue. These technologies have the potential to overcome current limitations to genetic and histological tumor classification and development of personalized therapies.

Prediction of Response in Cancer Therapy

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Publisher :
ISBN 13 :
Total Pages : 312 pages
Book Rating : 4.3/5 (121 download)

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Book Synopsis Prediction of Response in Cancer Therapy by : Thomas C. Hall

Download or read book Prediction of Response in Cancer Therapy written by Thomas C. Hall and published by . This book was released on 1971 with total page 312 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Prediction of Tumor Response to Therapy

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Publisher :
ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (814 download)

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Book Synopsis Prediction of Tumor Response to Therapy by : Shirley Lehnert

Download or read book Prediction of Tumor Response to Therapy written by Shirley Lehnert and published by . This book was released on 2000 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Oncologic Imaging

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Publisher : Saunders
ISBN 13 : 9780721674940
Total Pages : 0 pages
Book Rating : 4.6/5 (749 download)

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Book Synopsis Oncologic Imaging by : David G. Bragg

Download or read book Oncologic Imaging written by David G. Bragg and published by Saunders. This book was released on 2002 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: Completely updated to reflect the latest developments in science and technology, the second edition of this reference presents the diagnostic imaging tools essential to the detection, diagnosis, staging, treatment planning, and post-treatment management of cancer in both adults and children. Organized by major organs and body systems, the text offers comprehensive, abundantly illustrated guidance to enable both the radiologist and clinical oncologist to better appreciate and overcome the challenges of tumor imaging. Features 12 brand-new chapters that examine new imaging techniques, molecular imaging, minimally invasive approaches, 3D and conformal treatment planning, interventional techniques in radiation oncology, interventional breast techniques, and more. Emphasizes practical interactions between oncologists and radiologists. Includes expanded coverage of paediatric tumours as well as thorax, gastrointestinal tract, genitourinary, and musculoskeletal cancers. Offers reorganized and increased content on the brain and spinal cord. Nearly 1,400 illustrations enable both the radiologist and clinical oncologist to better appreciate and overcome the challenges of tumour imaging. - Outstanding Features! Presents internationally renowned authors' insights on recent technological breakthroughs in imaging for each anatomical region, and offers their views on future advances in the field. Discusses the latest advances in treatment planning. Devotes four chapters to the critical role of imaging in radiation treatment planning and delivery. Makes reference easy with a body-system organisation.

Diffusion-Weighted MR Imaging

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Publisher : Springer Science & Business Media
ISBN 13 : 3540785760
Total Pages : 299 pages
Book Rating : 4.5/5 (47 download)

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Book Synopsis Diffusion-Weighted MR Imaging by : Dow-Mu Koh

Download or read book Diffusion-Weighted MR Imaging written by Dow-Mu Koh and published by Springer Science & Business Media. This book was released on 2010-01-13 with total page 299 pages. Available in PDF, EPUB and Kindle. Book excerpt: It is a great privilege to introduce this book devoted to the current and future roles in research and clinical practice of another exciting new development in MRI: Diffusi- weighted MR imaging. This new, quick and non-invasive technique, which requires no contrast media or i- izing radiation, offers great potential for the detection and characterization of disease in the body as well as for the assessment of tumour response to therapy. Indeed, whereas DW-MRI is already ? rmly established for the study of the brain, progress in MR techn- ogy has only recently enabled its successful application in the body. Although the main focus of this book is on the role of DW-MRI in patients with malignant tumours, n- oncological emerging applications in other conditions are also discussed. The editors of this volume, Dr. D. M. Koh and Prof. H. Thoeny, are internationally well known for their pioneering work in the ? eld and their original contributions to the l- erature on DW-MRI of the body. I am very much indebted to them for the enthusiasm and engagement with which they prepared and edited this splendid volume in a record short time for our series Medical Radiology – Diagnostic section.

Imaging Tumor Response to Therapy

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Publisher : Springer Science & Business Media
ISBN 13 : 884702613X
Total Pages : 165 pages
Book Rating : 4.8/5 (47 download)

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Book Synopsis Imaging Tumor Response to Therapy by : Massimo Aglietta

Download or read book Imaging Tumor Response to Therapy written by Massimo Aglietta and published by Springer Science & Business Media. This book was released on 2012-07-16 with total page 165 pages. Available in PDF, EPUB and Kindle. Book excerpt: Measurement of solid tumor response to treatment relies mainly on imaging. WHO tumor response criteria and, more recently, RECIST (response evaluation criteria in solid tumors) have provided means to objectively measure tumor response in clinical trials with imaging. These guidelines have been rapidly adopted in clinical practice to monitor patient treatment and for therapy planning. However, relying only on anatomical information is not always sufficient when evaluating new drugs that will reduce a tumor's functionality while preserving its size. Finding more reliable and reproducible measures of tumor response is one of the most important and difficult challenges facing modern radiology as it requires an entirely new approach to imaging. The aim of this book is to address the assessment of response to treatment by adopting a multidisciplinary perspective, just as occurs in real life in a comprehensive cancer center. Oncologists and imaging experts consider two cancer models, locally advanced disease and metastatic disease, jointly exploring both conventional and advanced means of measuring response to standard treatment protocols and new targeted therapies.

Development of a Novel Technique for Predicting Tumor Response in Adaptive Radiation Therapy

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Publisher :
ISBN 13 :
Total Pages : 133 pages
Book Rating : 4.:/5 (843 download)

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Book Synopsis Development of a Novel Technique for Predicting Tumor Response in Adaptive Radiation Therapy by : Rebecca Marie Seibert

Download or read book Development of a Novel Technique for Predicting Tumor Response in Adaptive Radiation Therapy written by Rebecca Marie Seibert and published by . This book was released on 2012 with total page 133 pages. Available in PDF, EPUB and Kindle. Book excerpt: This dissertation concentrates on the introduction of Predictive Adaptive Radiation Therapy (PART) as a potential method to improve cancer treatment. PART is a novel technique that utilizes volumetric image-guided radiation therapy treatment (IGRT) data to actively predict the tumor response to therapy and estimate clinical outcomes during the course of treatment. To implement PART, a patient database containing IGRT image data for 40 lesions obtained from patients who were imaged and treated with helical tomotherapy was constructed. The data was then modeled using locally weighted regression. This model predicts future tumor volumes and masses and the associated confidence intervals based on limited observations during the first two weeks of treatment. All predictions were made using only 8 days worth of observations from early in the treatment and were all bound by a 95% confidence interval. Since the predictions were accurate with quantified uncertainty, they could eventually be used to optimize and adapt treatment accordingly, hence the term PART (Predictive Adaptive Radiation Therapy). A challenge in implementing PART in a clinical setting is the increased quality assurance that it will demand. To help ease this burden, a technique was developed to automatically evaluate helical tomotherapy treatments during delivery using exit detector data. This technique uses an auto-associative kernel regression (AAKR) model to detect errors in tomotherapy delivery. This modeling scheme is especially suited for the problem of monitoring the fluence values found in the exit detector data because it is able to learn the complex detector data relationships. Several AAKR models were tested using tomotherapy detector data from deliveries that had intentionally inserted errors and different attenuations from the sinograms that were used to develop the model. The model proved to be robust and could predict the correct "error-free" values for a projection in which the opening time of a single MLC leaf had been decreased by 10%. The model also was able to determine machine output errors. The automation of this technique should significantly ease the QA burden that accompanies adaptive therapy, and will help to make the implementation of PART more feasible.

Diseases of the Abdomen and Pelvis 2018-2021

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Publisher : Springer
ISBN 13 : 3319750194
Total Pages : 262 pages
Book Rating : 4.3/5 (197 download)

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Book Synopsis Diseases of the Abdomen and Pelvis 2018-2021 by : Juerg Hodler

Download or read book Diseases of the Abdomen and Pelvis 2018-2021 written by Juerg Hodler and published by Springer. This book was released on 2018-03-20 with total page 262 pages. Available in PDF, EPUB and Kindle. Book excerpt: This open access book deals with imaging of the abdomen and pelvis, an area that has seen considerable advances over the past several years, driven by clinical as well as technological developments. The respective chapters, written by internationally respected experts in their fields, focus on imaging diagnosis and interventional therapies in abdominal and pelvic disease; they cover all relevant imaging modalities, including magnetic resonance imaging, computed tomography, and positron emission tomography. As such, the book offers a comprehensive review of the state of the art in imaging of the abdomen and pelvis. It will be of interest to general radiologists, radiology residents, interventional radiologists, and clinicians from other specialties who want to update their knowledge in this area.

Prediction of Response in Cancer Therapy

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Publisher :
ISBN 13 :
Total Pages : 298 pages
Book Rating : 4.:/5 (726 download)

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Book Synopsis Prediction of Response in Cancer Therapy by : Thomas C. Hall

Download or read book Prediction of Response in Cancer Therapy written by Thomas C. Hall and published by . This book was released on 1971 with total page 298 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Prediction of Response in Radiation Therapy: Analytical models and modelling

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Publisher :
ISBN 13 :
Total Pages : 400 pages
Book Rating : 4.3/5 (415 download)

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Book Synopsis Prediction of Response in Radiation Therapy: Analytical models and modelling by :

Download or read book Prediction of Response in Radiation Therapy: Analytical models and modelling written by and published by . This book was released on 1989 with total page 400 pages. Available in PDF, EPUB and Kindle. Book excerpt:

New Prognostic and Predictive Markers in Cancer Progression

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Publisher : MDPI
ISBN 13 : 3039439774
Total Pages : 294 pages
Book Rating : 4.0/5 (394 download)

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Book Synopsis New Prognostic and Predictive Markers in Cancer Progression by : Susan Costantini Alfredo Budillon

Download or read book New Prognostic and Predictive Markers in Cancer Progression written by Susan Costantini Alfredo Budillon and published by MDPI. This book was released on 2021-02-12 with total page 294 pages. Available in PDF, EPUB and Kindle. Book excerpt: Biomarkers are of critical medical importance for oncologists, allowing them to predict and detect disease and to determine the best course of action for cancer patient care. Prognostic markers are used to evaluate a patient’s outcome and cancer recurrence probability after initial interventions such as surgery or drug treatments and, hence, to select follow-up and further treatment strategies. On the other hand, predictive markers are increasingly being used to evaluate the probability of benefit from clinical intervention(s), driving personalized medicine. Evolving technologies and the increasing availability of “multiomics” data are leading to the selection of numerous potential biomarkers, based on DNA, RNA, miRNA, protein, and metabolic alterations within cancer cells or tumor microenvironment, that may be combined with clinical and pathological data to greatly improve the prediction of both cancer progression and therapeutic treatment responses. However, in recent years, few biomarkers have progressed from discovery to become validated tools to be used in clinical practice. This Special Issue comprises eight review articles and five original studies on novel potential prognostic and predictive markers for different cancer types.

Towards Early Treatment Response Prediction Using Longitudinal Distortion-free Diffusion-weighted Magnetic Resonance Imaging

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Publisher :
ISBN 13 :
Total Pages : 148 pages
Book Rating : 4.:/5 (113 download)

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Book Synopsis Towards Early Treatment Response Prediction Using Longitudinal Distortion-free Diffusion-weighted Magnetic Resonance Imaging by : Yu Gao

Download or read book Towards Early Treatment Response Prediction Using Longitudinal Distortion-free Diffusion-weighted Magnetic Resonance Imaging written by Yu Gao and published by . This book was released on 2019 with total page 148 pages. Available in PDF, EPUB and Kindle. Book excerpt: Radiotherapy is an effective tool to treat tumors by delivering high-energy photons or charged particles to destroy malignant cancer cells. In the current fractionated radiotherapy treatment workflow, the same radiation plan is delivered to the patient in every fraction during the entire course of treatment, whereas tumor changes and patient response are not taken into consideration. Early patient response prediction is appealing as it offers a window of personalized treatment adaptation for potentially improved treatment outcome. Diffusion-weighted imaging (DWI) has been shown to be a promising non-invasive biomarker for treatment response assessment. However, the conventional diffusion-weighted single-shot echo-planar-imaging (DW-ssEPI) has strong spatial distortion, which is unacceptable for radiotherapy applications as high geometric accuracy is required for accurate tumor delineation. To achieve the ultimate goal of response-based adaptive radiotherapy, this dissertation sought to develop distortion-free diffusion sequences, and evaluate the possibility of early treatment response assessment using longitudinal DWI on sarcoma patient. In Chapter 3, a diffusion-prepared turbo spin-echo (DP-TSE) sequence was programmed and compared with the DW-ssEPI sequence on a 0.35T MRI-guided radiotherapy system. The DW-ssEPI failed the spatial integrity test due to severe distortion and low signal intensity, whereas the DP-TSE passed the test successfully. The diffusion phantom study showed that noise correction must be performed for the DW-ssEPI sequence to avoid apparent diffusion coefficient (ADC) quantification errors, whereas DP-TSE had desirable ADC accuracy and ADC reproducibility. Good geometric fidelity and ADC quantifications were obtained in the patient study involving two glioblastoma (GBM) patients and six sarcoma patients. Shot-to-shot k-space magnitude inconsistency is a common problem in multi-shot diffusion-prepared imaging. In Chapter 4, a magnitude stabilizer strategy was proposed to convert the malignant magnitude inconsistency to phase inconsistency, which is easier to resolve. We demonstrated that the proposed diffusion-prepared magnitude-stabilized balanced steady-state free precession sequence (DP-MS-bSSFP, abbreviated as DP-MS) had satisfactory ADC accuracy, and significantly improved geometric accuracy on both phantom and volunteers compared to the conventional DW-ssEPI approach. To meet the requirement of high spatial integrity and high spatial resolution for treatment planning and adaptation, the 2D DP-MS sequence was extended to 3D in Chapter 5. A locally low-rank constrained reconstruction was applied to correct the k-space inconsistency. Similar as Chapter 4, the 3D DP-MS sequence was verified on the diffusion phantom and five healthy volunteers for geometric fidelity and ADC accuracy. Overall, the 3D DP-MS sequence had submillimeter geometric accuracy and satisfactory ADC accuracy on both phantom and volunteers. In the second half of this dissertation, we focused on early treatment response prediction using longitudinal DWI on sarcoma patients treated with hypofractionated radiation therapy. Diffusion images were acquired using DW-ssEPI three times through the treatment. In Chapter 6, a radiomics-based approach was used to prediction treatment effect score, which is obtained from the post-surgery pathology. Logistic regression and support vector machine (SVM) models were constructed to predict the treatment effect using radiomics features selected by univariate analysis and sequential forward selection. The SVM model outperformed logistic regression and had an area under the receiver operating characteristic curve (AUC) of 0.91 0.05. To overcome the small sample size problem in Chapter 6 and further improve the prediction, deep learning-based data augmentation and prediction were implemented in Chapter 7. An ACGAN network was trained to augment the data based on training patients, and a prediction model based on the VGG-19 was trained using the synthesized data and validated on the training patient dataset. This trained model was then tested on the hold-out test patients. Overall, the training, validation, and test accuracies was 94.3%, 90.1%, and 87.7%, indicating good performance of the data augmentation and response prediction models.

Surgical Pathology Dissection

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Publisher : Springer Science & Business Media
ISBN 13 : 1475725485
Total Pages : 295 pages
Book Rating : 4.4/5 (757 download)

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Book Synopsis Surgical Pathology Dissection by : William H. Westra

Download or read book Surgical Pathology Dissection written by William H. Westra and published by Springer Science & Business Media. This book was released on 2013-03-14 with total page 295 pages. Available in PDF, EPUB and Kindle. Book excerpt: Filling the need for a comprehensive, fully-illustrated guide to the subject, this practical manual demonstrates a logical approach to the preparation, dissection, and handling of the tissue specimens most commonly encountered in today's surgical pathology laboratory. Each dissection is vividly illustrated with powerful 3D line drawings created exclusively for this book. The authors discuss the clinically important features of various types of specimens and lesions over the whole range of organ systems. The consistent approach provides a valuable conceptual framework for points to bear in mind during the dissection and each chapter concludes with a convenient reminder of the important issues to address in the surgical pathology report. Indispensable for staff pathologists, residents, pathologist's assistants, histotechnologists and other laboratory personnel.

Brain Tumor Imaging

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Publisher : Springer
ISBN 13 : 3642450407
Total Pages : 166 pages
Book Rating : 4.6/5 (424 download)

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Book Synopsis Brain Tumor Imaging by : Elke Hattingen

Download or read book Brain Tumor Imaging written by Elke Hattingen and published by Springer. This book was released on 2015-09-02 with total page 166 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book describes the basics, the challenges and the limitations of state of the art brain tumor imaging and examines in detail its impact on diagnosis and treatment monitoring. It opens with an introduction to the clinically relevant physical principles of brain imaging. Since MR methodology plays a crucial role in brain imaging, the fundamental aspects of MR spectroscopy, MR perfusion and diffusion-weighted MR methods are described, focusing on the specific demands of brain tumor imaging. The potential and the limits of new imaging methodology are carefully addressed and compared to conventional MR imaging. In the main part of the book, the most important imaging criteria for the differential diagnosis of solid and necrotic brain tumors are delineated and illustrated in examples. A closing section is devoted to the use of MR methods for the monitoring of brain tumor therapy. The book is intended for radiologists, neurologists, neurosurgeons, oncologists and other scientists in the biomedical field with an interest in neuro-oncology.

Multimodal Scene Understanding

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Publisher : Academic Press
ISBN 13 : 0128173599
Total Pages : 424 pages
Book Rating : 4.1/5 (281 download)

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Book Synopsis Multimodal Scene Understanding by : Michael Ying Yang

Download or read book Multimodal Scene Understanding written by Michael Ying Yang and published by Academic Press. This book was released on 2019-07-16 with total page 424 pages. Available in PDF, EPUB and Kindle. Book excerpt: Multimodal Scene Understanding: Algorithms, Applications and Deep Learning presents recent advances in multi-modal computing, with a focus on computer vision and photogrammetry. It provides the latest algorithms and applications that involve combining multiple sources of information and describes the role and approaches of multi-sensory data and multi-modal deep learning. The book is ideal for researchers from the fields of computer vision, remote sensing, robotics, and photogrammetry, thus helping foster interdisciplinary interaction and collaboration between these realms. Researchers collecting and analyzing multi-sensory data collections – for example, KITTI benchmark (stereo+laser) - from different platforms, such as autonomous vehicles, surveillance cameras, UAVs, planes and satellites will find this book to be very useful. - Contains state-of-the-art developments on multi-modal computing - Shines a focus on algorithms and applications - Presents novel deep learning topics on multi-sensor fusion and multi-modal deep learning