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marți, 13 decembrie 2011

Vaccine Developed That Attacks Breast Cancer In Mice; Implications For Ovarian, Colorectal And Pancreatic Cancers

Main Category: Breast Cancer
Also Included In: Pancreatic Cancer;  Ovarian Cancer;  Immune System / Vaccines
Article Date: 13 Dec 2011 - 3:00 PST

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Researchers from the University of Georgia and the Mayo Clinic in Arizona have developed a vaccine that dramatically reduces tumors in a mouse model that mimics 90 percent of human breast and pancreatic cancer cases - including those that are resistant to common treatments.

The vaccine, described this week in the early edition of the journal Proceedings of the National Academy of Sciences, reveals a promising new strategy for treating cancers that share the same distinct carbohydrate signature, including ovarian and colorectal cancers.

"This vaccine elicits a very strong immune response," said study co-senior author Geert-Jan Boons, Franklin Professor of Chemistry and a researcher in the UGA Cancer Center and its Complex Carbohydrate Research Center. "It activates all three components of the immune system to reduce tumor size by an average of 80 percent."

When cells become cancerous, the sugars on their surface proteins undergo distinct changes that set them apart from healthy cells. For decades, scientists have tried to enable the immune system to recognize those differences to destroy cancer cells rather than normal cells. But since cancer cells originate within the body, the immune system generally doesn't recognize them as foreign and therefore doesn't mount an attack.

The researchers used unique mice developed by Sandra Gendler, Grohne Professor of Therapeutics for Cancer Research at the Mayo Clinic in Arizona and co-senior author on the study. Like humans, the mice develop tumors that overexpress a protein known as MUC1 on the surface of their cells. The tumor-associated MUC1 protein is adorned with a distinctive, shorter, set of carbohydrates that set it apart from healthy cells.

"This is the first time that a vaccine has been developed that trains the immune system to distinguish and kill cancer cells based on their different sugar structures on proteins such as MUC1," Gendler said. "We are especially excited about the fact that MUC1 was recently recognized by the National Cancer Institute as one of the three most important tumor proteins for vaccine development."

Gendler pointed out that MUC1 is found on more than 70 percent of all cancers that kill. Many cancers, such as breast, pancreatic, ovarian and multiple myeloma, express MUC1 with the shorter carbohydrate in more than 90 percent of cases.

She explained that when cancer occurs, the architecture of the cell changes and MUC1 is produced at high levels, promoting tumor formation. A vaccine directed against MUC1 has tremendous potential, Gendler said, as a preventative for recurrence or as a prophylactic in patients at high risk for particular cancers. A vaccine also can be used together with standard therapy such as chemotherapy in cancers that cannot be cured by surgery, such as pancreatic cancer.

Boons noted that MUC1 is also overexpressed in 90 percent of the subset of patients who are not responsive to hormonal therapy, such as Tamoxifen or aromatase inhibitors, or the drug Herceptin. These so-called "triple-negative" tumors are extremely aggressive and difficult to treat, Boons said, and a new treatment option is urgently needed.

"In the U.S. alone, there are 35,000 patients diagnosed every year whose tumors are triple-negative," Boons said. "So we might have a therapy for a large group of patients for which there is currently no drug therapy aside from chemotherapy."

Therapeutic vaccines received renewed attention last year when the Food and Drug Administration approved the first cancer treatment vaccine, a drug known as Provenge that is used to treat metastatic prostate cancer. Treatment with the drug, which is manufactured in Georgia, requires clinicians to isolate immune cells from the patient and then to send the cells to a lab, where they are linked to a protein that stimulates the immune system. The cells are returned to the patient's treating physician, who then infuses the drug over three treatments, usually two weeks apart.

Boons' vaccine, on the other hand, is much simpler. It is fully synthetic, meaning that its components can be manufactured in a lab with assembly-line precision. The vaccine consists of three components - an immune system booster known as an adjuvant, a component that triggers the production of the immune system's T-helper cells, and a carbohydrate-linked peptide molecule that directs the immune response to cells bearing MUC1 proteins with truncated carbohydrates.

Biotechnology is a key industry in Georgia, and this year Boons founded an Athens-based company, known as Viamune, to help develop and commercialize the vaccine and the technologies used to create it. The company is one of nearly 30 that are affiliated with the University's BioBusiness Center, which is an incubator for life sciences start-up companies associated with UGA.

"Companies like these have the potential to create stable, high-paying jobs that have a significant social and economic impact," said Stefan Schulze, associate director of the Georgia BioBusiness Center. He noted that Viamune was a one four finalists selected from 40 companies at an investor's forum hosted this year by the non-profit organization Southeast BIO.

Boons, Gendler and their colleagues are currently testing the vaccine's effectiveness against human cancer cells in culture and are planning to assess its toxicity. If all goes well, they anticipate that phase I clinical trials to test the safety of the vaccine could begin by late 2013.

The vaccine represents nearly a decade of work on the part of Boons and his team. A 2007 study demonstrated the vaccine's effectiveness in another mouse model, and Boons is cautiously optimistic about his most recent results. Although promising results in mice often don't translate to humans, Boons said he is confident that vaccines that target the specific carbohydrate signatures of cancer cells will ultimately play an important role in the treatment of the disease.

"We are beginning to have therapies that can teach our immune system to fight what is uniquely found in cancer cells," Boons said. "When combined with early diagnosis, the hope is that one day cancer will become a manageable disease."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our breast cancer section for the latest news on this subject. In addition to co-senior authors Boons, Ph.D., and Gendler, Ph.D., the co-first authors on the paper are Vani Lakshminarayanan, Ph.D., at the Mayo Clinic in Arizona and Pamela Thompson at the University of Georgia. Additional authors include, at UGA, Margreet Wolfert, Ph.D., and Therese Buskas, Ph.D., and, at the Mayo Clinic, Judy Bradley, Latha Pathangey, Cathy Madsen and Peter Cohen, M.D.
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vineri, 9 decembrie 2011

Unique Genetic Marker May Improve Detection Of Recurrent Ovarian Cancer

Main Category: Ovarian Cancer
Article Date: 09 Dec 2011 - 1:00 PST

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Ovarian cancer is a major health concern for women and the identification of sensitive biomarkers for early detection and/or monitoring of disease recurrence is of high clinical relevance.

New work published in the online journal PLoS ONE reports promising advances toward the development of blood-based DNA markers for ovarian cancer.

The researchers, led by Peter W. Laird of the University of Southern California in Los Angeles, found that a DNA modification called "methylation" at a specific DNA site occurs frequently in ovarian tumors and can also be detected in the blood of ovarian cancer patients. This newly described methylation site was identified through a rigorous high-throughput screening process that tested over 27,000 different sites in the genome.

The epigenetic marker identified in this study was shown to have the potential to monitor disease status after surgery and might therefore prove helpful in enhancing the performance of existing biomarkers for disease recurrence.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our ovarian cancer section for the latest news on this subject. Citation: Campan M, Moffitt M, Houshdaran S, Shen H, Widschwendter M, et al. (2011) Genome-Scale Screen for DNA Methylation-Based Detection Markers for Ovarian Cancer. PLoS ONE 6(12): e28141. doi:10.1371/journal.pone.0028141
Financial Disclosure: This work was supported by the Ovarian Cancer Research Fund, grant PPD/USC.06, and National Institutes of Health and National Cancer Institute, grant R01-CA096958. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
Competing Interest Statement: PL is a consultant and Scientific Advisory Board member for Epigenomics AG. He holds issued patents on the MethyLight technology, which have been licensed to Epigenomics AG. This work was not supported by Epigenomics AG. Epigenomics had no role in study design, data collection or analysis, decision to publish, or preparation of the manuscript. In addition, PL and MC are named as inventors on a pending patent application for the Digital MethyLight technology. The patents and the relationship with Epigenomics do not alter the authors' adherence to all the PLoS ONE policies on sharing data and materials. The other authors disclosed no potential competing interest.
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joi, 8 decembrie 2011

Chemo Combo Kills Resistant Ovarian Cancer Cells

Featured Article
Academic Journal
Main Category: Ovarian Cancer
Also Included In: Cancer / Oncology
Article Date: 08 Dec 2011 - 2:00 PST

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Two drugs never used together before in treating ovarian cancer killed 70% of cells already resistant to commonly used chemotherapy compounds, concludes a new study published online recently in Gynecologic Oncology. Lead author Dr Prakash Vishnu from the Mayo Clinic in Jacksonville, Florida, and colleagues, hope the combination of ixabepilone and sunitinib will offer women with advanced ovarian cancer a much needed treatment option.

Late stage ovarian cancer is often fatal because it becomes progressively resistant to the chemotherapy compounds currently used to treat it.

Co-author Dr Gerardo Colon-Otero, a hematologist-oncologist who treats patients with ovarian cancer said in a statement issued on Wednesday that:

"Women die from ovarian cancer because their tumors become resistant to chemotherapy, so a drug that might be able to reduce that resistance -- which may be what this combination of agents is doing -- would be a boon to treatment of this difficult cancer."

The "proof of principle" study also found that a cellular protein called RhoB, which is activated by the two-drug combination, plays a vital role.

RhoB belongs to a family of proteins that act as "molecular switches" that send important signals in cellular processes such as gene expression, cell proliferation and apoptosis or "cell suicide".

Study senior author and cancer biologist Dr John Copland had already identified RhoB as a key modulator in helping drugs kill other types of tumor, but this is the first time RhoB has been identified as having a role in ovarian cancer.

"Now we find that with this combination of drugs, RhoB is increased and cells die," said Copland.

Copland said RhoB is a potential biomarker that may help identify which ovarian cancer patients might benefit from the new chemotherapy drug combination.

The idea for the study arose because Copland and the team at his lab, including co-author Laura Marlow, had set up two new ovarian laboratory cell lines derived from tumor tissue taken from a patient whose ovarian cancer had spread and had stopped responding to chemotherapy treatments.

Colon-Otero suggested that Copland and his team try the two drugs on their new cell lines.

They found that in both cell lines, the proportion of cells killed was much greater when the drugs were used together than when they were used separately.

In the chemotherapy-resistant lines, ixabepilone killed up to 30% of cells, and suntinib up to 10%. But when used together, the kill rate was 70%.

Ixabepilone is a taxane that targets microtubules and thereby stops diving cells from being able to form a spindle, an essential element of cell division. Sunitinib is a tyrosine kinase inhibitor that stops growth signals from reaching inside cancer cells.

Neither drug is currently approved for treatment with ovarian cancer. Ixabepilone is currently approved for use in metastatic breast cancer, and sunitinib for use in kidney cancer.

Written by Catharine Paddock PhD
Copyright: Medical News Today
Not to be reproduced without permission of Medical News Today

Visit our ovarian cancer section for the latest news on this subject. "RhoB mediates antitumor synergy of combined ixabepilone and sunitinib in human ovarian serous cancer"; Prakash Vishnu, Gerardo Colon-Otero, Gregory T. Kennedy, Laura A. Marlow, William P. Kennedy, Kevin J. Wu, Joseph T. Santoso, John A. Copland; Gynecologic Oncology In Press, Available online 22 November 2011; DOI:10.1016/j.ygyno.2011.11.019
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posted by wokt on 8 Dec 2011 at 4:52 am

Definitely great news for my mother (3C-Stage Ovarian Cancer)... we'll be looking to hear more updates on this combo!

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