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Showing posts with label Studies. Show all posts
Showing posts with label Studies. Show all posts

Wednesday, June 26, 2013

Three Important Studies Published In The June Issue Of Neurosurgery

Main Category: Neurology / Neuroscience
Also Included In: Cancer / Oncology
Article Date: 24 Jun 2013 - 0:00 PDT Current ratings for:
Three Important Studies Published In The June Issue Of Neurosurgery
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The results of three important studies have been published in the June issue of Neurosurgery, official journal of the Congress of Neurological Surgeons. The journal is published by Lippincott Williams & Wilkins, a part of Wolters Kluwer Health.

One study indicates that continuous "machine learning" using artificial neural networks (ANNs) may improve the ability to predict survival in patients with advanced brain cancers. Another study in the June Neurosurgery supports increased use of stereotactic biopsy for obtaining samples of brainstem tumors; while another calls for medical professionals and specialty societies to play an increased role in evaluating "off label" uses of medications.

Artificial Neural Networks Predict Brain Cancer Prognosis

Dr. Matthew Ewend of University of North Carolina and colleagues evaluated the use of ANNs to predict the chances of survival for patients with brain cancer. Based on the biological functioning of brain cells, ANNs are computer programs designed "to learn patterns within a data set and then apply that learning for recognition and prediction."

The researchers performed a pilot study of ANNs using data on patients treated for advanced brain cancer at several hospitals. The results showed that ANNs beat standard prediction models for predicting patient survival. "Pooled voting" of five ANNs correctly predicted the risk of death within one year in 84 percent of patients, compared to 78 percent with a single ANN and 74 percent using standard statistical techniques.

The predictive power of ANNs would likely increase over time, providing a "facile and powerful means or predicting survival" in patients with brain cancers or other conditions. The researchers conclude, "With the explosion in clinical data over the past few years....we anticipate a growing need for modern machine learning techniques such as ANNs to properly make use of the information at our disposal and realize its full benefit for clinical care."

New Proposal for Evaluating 'Off Label' Uses of Medications

An improved process for evaluating "off label" use of drugs - using medications for purposes other than those for which they were approved - is described by Donlin Long, MD, PhD, of Johns Hopkins School of Medicine and Clark Watts, MD, JD, of University of Texas School of Law. They cite the example of bone morphogenetic protein-2 (BMP-2), a product approved to promote bone growth in one specific type of spinal fusion surgery.

After approval, surgeons started using BMP-2 for various other types of spinal surgery - leading to complications in some cases. The authors believe that problems resulting from "uncontrolled" off-label use have had a chilling effect, leading to missed opportunities to develop effective uses of BMP-2.

In the proposed approach, medical specialty societies such as the Congress of Neurological Surgeons would play a leading role in setting parameters for off-label use of new products, and in systematically gathering evidence of effectiveness. Drs. Long and Watts write, "Our goal is to challenge our professional societies to take a leadership role in the study of valid uses of new drugs and devices in a cooperative, constructive relationship with government regulators and industry."

Stereotactic Biopsy for Brainstem Tumors

Dr. Philipp Kickingereder of University Hospital of Cologne and colleagues present a review of research evidence on stereotactic biopsy - using triangulation techniques to precisely localize tumors - to obtain samples of uncommon brainstem cancers. While stereotactic biopsy is not a new technique, surgeons may hesitate to use it for brainstem tumors because of the perceived risks of the procedure.

But the available data show a diagnostic success rate of 96 percent, with a relatively low complication rates. Dr. Kickingereder and coauthors conclude that stereotactic biopsy is a safe and valuable procedure that provides samples for simultaneous tissue and genetic analysis - which may allow more individualized treatment. They recommend its use in all adult patients with brainstem cancers, as well as in certain groups of children.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our neurology / neuroscience section for the latest news on this subject. Please use one of the following formats to cite this article in your essay, paper or report:

MLA

Health, Wolters Kluwer. "Three Important Studies Published In The June Issue Of Neurosurgery." Medical News Today. MediLexicon, Intl., 24 Jun. 2013. Web.
24 Jun. 2013. APA

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'Three Important Studies Published In The June Issue Of Neurosurgery'

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Monday, May 27, 2013

In Preclinical Studies, New Drug Enhances Radiation Treatment For Brain Cancer

Main Category: Cancer / Oncology
Also Included In: Neurology / Neuroscience;??Radiology / Nuclear Medicine
Article Date: 16 May 2013 - 1:00 PDT Current ratings for:
In Preclinical Studies, New Drug Enhances Radiation Treatment For Brain Cancer
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A novel drug may help increase the effectiveness of radiation therapy for the most deadly form of brain cancer, report scientists at Virginia Commonwealth University Massey Cancer Center. In mouse models of human glioblastoma multiforme (GBM), the new drug helped significantly extend survival when used in combination with radiation therapy.

Recently published in the journal Clinical Cancer Research, the study provides the first preclinical evidence demonstrating that an ATM kinase inhibitor radiosensitizes gliomas. Gliomas are brain tumors that originate from glial cells, which provide support for nerve cells and help regulate the internal environment of the brain. ATM, or ataxia telangiectasia mutated, is an enzyme that helps repair DNA damage. The scientists used an experimental drug, KU-60019, to block the activation of ATM, which led to the enhanced destruction of the gliomas due to their reduced ability to repair the DNA damage caused by the radiation treatment. The new approach was particularly effective against gliomas that have a mutation in the p53 tumor suppressor gene, which accounts for approximately 30 percent of all glioma cases.

"Sadly, the average life expectancy of patients diagnosed with glioblastoma is just 12 to 15 months," says the study's lead researcher Kristoffer Valerie, Ph.D., co-leader of the Radiation Biology and Oncology research program and a professor in the Department of Radiation Oncology at VCU Massey Cancer Center. "By limiting the tumor's ability to combat DNA damage caused by treatments such as radiation, we are hopeful that we can enhance our ability to specifically target the glioma, prolong survival and reduce damage to surrounding brain tissue."

Currently, GBM is treated with surgery, followed by chemotherapy and radiation therapy. Potentially, ATM kinase inhibitors like the one used in this study could enhance the effectiveness of some other cancer treatments that kill tumor cells by damaging DNA. The scientists chose radiation therapy in this study since it is already standard care and can be delivered to brain tumors with extreme accuracy, minimizing damage to surrounding healthy tissue.

"If these findings hold up in early phase clinical trials, we expect patients with p53 mutant gliomas to respond well to this treatment while showing few side effects. Also, we anticipate that this same treatment strategy could be effective for other cancers that are treated with DNA-damaging chemotherapies," says Valerie. "We are encouraged by these early findings and will continue to move forward with our research. However, more studies are needed before we can proceed with testing this new therapy in humans."

This first, 'proof-of-principle' study is an important follow-up of a study published several years ago on KU-60019 by Valerie and his research team that demonstrated KU-60019's superior efficacy, specificity and potency on glioma cells as compared to a predecessor ATM inhibitor.

Valerie and his team are conducting additional studies examining the effects of KU-60019 and other ATM kinase inhibitors on gliomas, including studies that combine ATM kinase inhibitors with a type of drug known as a PARP inhibitor to increase the effectiveness of the treatment. PARP inhibitors block the action of poly ADP ribose polymerase (PARP), an enzyme that also aids in the repair of DNA damage. The researchers believe that combining an ATM kinase inhibitor with a PARP inhibitor may cause a condition referred to as "synthetic lethality," which arises when the functions of at least two interacting genes are simultaneously inhibited, which, in turn, leads to tumor cell death.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our cancer / oncology section for the latest news on this subject. Valerie collaborated on this study with Sumitra Deb, Ph.D., a member of the Cancer Molecular Genetics research program at VCU Massey Cancer Center and professor in the Department of Biochemistry and Molecular Biology at VCU School of Medicine; Nitai D. Mukhopadhyay, M.Stat., Ph.D., a member of the Radiation Biology and Oncology research program at VCU Massey and assistant professor in the Department of Biostatistics at VCU School of Medicine; Laura Biddlestone-Thorpe, Muhammad Sajjad, Elizabeth Rosenberg, Jason M. Beckta, Nicholas C.K. Valerie, Mary Tokarz, Bret R. Adams, Alison F Wagner, Ashraf Khalil, Donna Gilfor and Sarah E. Golding, all from the Department of Radiation Oncology at VCU School of Medicine; David G. Temesi, Ph.D., Alan Lau, Ph.D., and Mark J. O'Connor, Ph.D., all from AstraZeneca; and Kevin S Choe, M.D., Ph.D., Luis F. Parada, Ph.D., and Sang Kyun Lim, Ph.D., all from the University of Texas Southwestern.

This study was supported by National Institutes of Health Grant R01NS064593 and National Cancer Institute Grants R21CA156995, T32CA113277, T32CA085159, T32CA085159 and F30CA171893. Additional support was provided by the American Brain Tumor Association and, in part, by funding from VCU Massey Cancer Center's NIH-NCI Cancer Center Support Grant P30 CA016059.

The full manuscript of this study is available online at: http://clincancerres.aacrjournals.org/content/early/2013/04/25/1078-0432.CCR-12-3408.abstract

Virginia Commonwealth University

Please use one of the following formats to cite this article in your essay, paper or report:

MLA

University, Virginia Commonwealth. "In Preclinical Studies, New Drug Enhances Radiation Treatment For Brain Cancer." Medical News Today. MediLexicon, Intl., 16 May. 2013. Web.
20 May. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'In Preclinical Studies, New Drug Enhances Radiation Treatment For Brain Cancer'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam)

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here