Showing posts with label protein. Show all posts
Showing posts with label protein. Show all posts

Friday, August 3, 2012

A New Lab Test Detecting Early Stage of Breast Cancer

What would it mean to women to know that a lab test was available to detect early breast cancer in conjunction with a mammogram?  This would definitely give them confidence that the report is very accurate.


Breast cancer is the fear of most women because it is the number one cause of cancer death in this population

Great news has opened up for detecting a protein that is on the surface of breast cancer cells. The name of the protein is Nodal.

In the new research, the scientists monitored a group of laboratory mice that were designed to serve as models of breast cancer. Once the disease manifested itself, the researchers experimented by turning off expression of Nodal, a protein that is normally found on stem cells but also exists on the surface of breast cancer cells. Shutting down this protein caused the blood vessels that nourished the tumors to collapse, depriving the malignant tissue of the resources it needs to survive.

"Ultimately it would be nice to target Nodal in patients who already have quite advanced, well-vascularized tumors as a new option for therapy," said lead study author Daniela Quail. "Currently, patients like this don't have many options."

In the U.S., more than 228,000 individuals will be diagnosed with breast cancer in 2012, according to the National Cancer Institute. A lab test may help with early detection.


This video above explains the new Nodal discovery and how this information will be used to shut down aggressive breast cancer.
Platinum-Over-Silver Breast Cancer Awareness Ribbon Charm Bracelet (Google Affiliate Ad)

Wednesday, June 13, 2012

What is Happening Now In Cancer Research

Research for a cure for cancer is moving at a rapid pace. Labs are thinking outside the box and finding ways to kill cancer cells of one's type of cancer. . Areas of active basic cancer research in the Department of Molecular and Cell Biology include tumor cell biology; the use of model systems to discover novel genes involved in carcinogenesis; tumor immunology and immunotherapeutics; and structural biology of protein targets for cancer therapeutics.


Cancer arises by a multi-step involving the accumulation of activating mutations in proto-oncogenes and inactivating mutations in tumor suppressor genes. The process is accelerated by the genetic instability of cancer cells, which is believed to result from passage through “telomere crisis.” Thus, cancer cells may contain many – perhaps hundreds – of genetic changes. One of the challenges we now face is to be able to develop a complete description of the genetic changes that have taken place in each individual tumor, so that therapies can be targeted that are specific for the tumors of each individual patient.
                                                       Tumor Genetics-Sloan Kettering


Below is a chart of Tumor Immunology








                                        

Prof. Ofer Mandelboim, IMRIC Researcher - General and Tumour Immunology - 1 of 3


Thursday, April 26, 2012

Large Alcohol Consumption is a Risk Factor for Breast Cancer.

Researchers have recently discovered that the large consumption of alcohol is broken down by proteins that are produced by breast cells. This could result by patients having a positive lab test for breast cancer.

However, researchers were not exactly sure why this association exists. Now, a team of Mexican researchers may have explained the problem.

The researchers, who hailed from the Autonomous University of Morelos, showed that a protein that is present in all breast cells breaks down alcohol. During this process, unstable molecules known as free radicals are produced. These molecules damage breast cells, causing the cells to start proliferation processes as a way to avoid tissue damage. Unfortunately, the rapid cell proliferation is a major cause of tumor growth.

Not all women are equally affected by this problem. The researchers found that some breast cells produce less of the protein that breaks down alcohol. These cells are more or less protected from the negative effects of alcohol consumption.

The researchers said they hope to develop a test that would tell women how much of the protein their breast cells produce. This could give individuals early warning that may enable them to avoid alcohol consumption entirely and significantly reduce their chances of developing breast cancer in the future. ADNFCR-2248-ID-800760039-ADNFCR

http://www.privatemdlabs.com/blood-testing-news/Breast/Researchers-explain-why-alcohol-is-a-risk-factor-for-breast-cancer---$800760039.php

Wednesday, April 11, 2012

Dedicated Reseachers Are Committed to Tackling Liver Cancer

There are researchers that have dedicated their careers to finding cures for certain cancers. The following news story is one of hope for those persons who have liver cancer.



Ulla Hansen is a scientist who fell in love with a protein. She began studying it nearly three decades ago as a postdoctoral fellow at MIT because of its potential to solve the mystery of how cells grow. She continued those studies as a faculty member at the Dana-Farber Cancer Institute and Harvard Medical School. And now the College of Arts & Sciences biology professor has discovered that this same protein, transcription factor LSF, also referred to as late SV40 factor, appears to play a role in the growth of liver cancers. Understanding that role could be the key to a treatment for the deadly disease.

It’s incredibly gratifying personally that all of our basic science all these years has come to a position now where we may be able to translate it into the clinics,” says Hansen, director of BU’s program in molecular biology, cell biology, and biochemistry.

Liver cancer may not garner the media attention that other cancers do, but it is the fifth most common cancer and the world’s third leading cause of death from cancer. And while the rate of diagnosis for other cancers in the United States is declining, diagnosis of liver cancer is rising, largely because of its connection to an increasing incidence of hepatitis C.

“We’re still trying to figure out all the genes that LSF targets and turns on and off,” she says. “Most transcription factors target at least hundreds of genes, if not thousands.”
For many years, Hansen’s laboratory was the only one in the world to focus on LSF’s role in cell growth and division. It wasn’t unusual for her to get phone calls from scientists around the world wanting to share their own LSF-related discovery.
Devanand Sarkar was one. He called from the Virginia Commonwealth University Institute of Molecular Medicine to tell Hansen that he had found higher levels of LSF in cells after his lab turned on a gene that causes metastasis. “Usually there’s a few thousand LSF entities per cell, but this went up tenfold or twenty-fold,” Hansen says. And when Sarkar looked specifically at liver cancer cells, he saw that the more advanced the cancer had become, the more LSF was present. The two concluded that LSF not only encourages normal cell growth, but also liver cancer cell growth.

What she really needed, she decided, were some small-molecule inhibitors, or chemical torpedoes, that specifically targeted LSF and disabled it. She found a source in a Nevada company, Sierra Sciences. Researchers there have spent years working on a way to prevent aging (the company motto: Cure Aging or Die Trying) and had toyed with the idea that controlling LSF was key. They had screened 110,000 small-molecule inhibitors and found 80 strong candidates, none of which worked. So they put their work on ice, literally.
When Hansen got in touch with the company about a possible collaboration, the chief scientific officer offered to just send her everything they had.
“I couldn’t believe it,” Hansen says. “This is not the way companies usually act. But they’re not interested in money. They were happy to help.”
After plugging the compounds into liver cancer cells to see if they turned off LSF, Hansen and her team found several encouraging candidates. But they needed more of each compound. Sierra Sciences had included the chemical structures for each compound, but she had no idea how to buy more.
“I decided the best option in this nice interdisciplinary building,” Hansen says, referring to BU’s Life Sciences and Engineering Building, “was to go upstairs to ask some nice synthetic organic chemists how they would go about ordering more of these things.”

So she walked up to the chemistry department and started knocking on doors. Scott Schaus’ was the first to open. The two chatted about her research briefly as Schaus typed away on his computer. Then, Hansen recalls, he looked up and asked, “Do you want us to synthesize it for you?”
She accepted the offer immediately.
Schaus, a CAS associate professor of chemistry and bioinformatics, recruited two graduate students to work on the project. One synthesized compounds, the other tested them to see which were most effective at knocking down LSF. Those compounds were then passed along to Hansen’s team, which tested them in liver cancer cells. Together the labs have identified at least three highly effective small-molecule inhibitors, with FQI2 (dubbed “Ficky 2” by the graduate students) the most promising.
Hansen has since tested the compounds in mice with liver cancer cells and seen impressive results. “Our small-molecule inhibitors are in fact knocking LSF down to nothing,” she says. But that’s not the only good news. “We see absolutely no side effects in the mice.”
It now seems that liver cancer cells need LSF to grow, divide, and multiply. Normal cells do not, or at least have found other ways to work around the protein. Hansen is now trying to figure out why.

http://www.bu.edu/today/2012/taking-on-cancer-tackling-liver-cancer-in-the-lab/




Monday, April 2, 2012

A Gene Predicts Recurrence In Squamous Cell Carcinoma

Researchers identify a gene that predicts recurrence in squamous cell carcinoma of the head and neck.

Squamous cell carcinoma of the head and neck—which typically arises from thin, flat cells that line moist surfaces inside the mouth, nose and throat—is the sixth most common type of cancer worldwide, and it has a relatively low five-year survival rate and a high recurrence rate. Recently, the disease has become even more prevalent among adults 40 years of age or younger. These statistics underscore the need for a greater understanding of the molecular underpinnings of this form of cancer. Toward this goal, Fox Chase Cancer Center researchers have identified a gene that predicts disease recurrence in individuals with squamous cell carcinoma of the head and neck.

The new findings, which will be presented at the AACR Annual Meeting 2012 on Monday, April 2, show that patients with one common variant of a gene which encodes the cytochrome P450 (CYP1B1) protein are likely to have a longer time-to-recurrence than those with the more typical form of the gene.
"This is the first study to look at the association between CYP1B1 variants and time-to-recurrence in head and neck cancer, and the findings could lead to personalized treatment strategies for patients with this type of cancer," says Fox Chase study author Ekaterina Shatalova, Ph.D., research associate in the lab of Margie L. Clapper, Ph.D., also senior investigator on the study.
Shatalova, Clapper and their colleagues focused on CYP1B1 because this enzyme is known to produce carcinogens by metabolizing tobacco smoke and alcohol—substances that increase the risk of of the head and neck. This protein is also abundant in tumor tissue from a wide range of organs, including the breast and lung.

The results could have important implications for the treatment of patients with squamous cell of the head and neck. Clinicians could use information about variations in the CYP1B1 gene to identify individuals who are at risk for faster recurrence. That subset of patients could receive "a treatment regimen that is tailored to be more aggressive," Clapper says. "Using a personalized medicine approach, we could impact the duration of the disease-free interval for these individuals if we knew ahead of time which ones were more likely to experience recurrence at a faster rate."

To read the complete article: http://medicalxpress.com/news/2012-04-gene-recurrence-squamous-cell-carcinoma.html