Friday, February 21, 2020

Scientists find a way to block the growth of kidney cancer

Scientists at the MDC have discovered stem cells responsible for the most common form of kidney cancer. The team of Walter Birchmeier has found a way to block the growth of these tumors in three models of the disease.

Not all cancer cells are equal. Tumors contain potent cancer stem cells which produce metastases and can regenerate the disease if they escape a treatment. This makes them vital targets for therapies - if scientists can isolate them and probe their weaknesses. But the cells are often so rare that for many types of cancer, they have yet to be found.

Professor Walter Birchmeier's lab at the Max Delbrueck Centrum for Molecular Medicine in the Helmholtz Association (MDC), in a collaboration with the Urology Department of the Charite, has now discovered cancer stem cells responsible for the most common form of kidney cancer: clear cell renal cell carcinoma, or ccRCC. In a Berlin-wide collaboration, the scientists found a weakness. The cells depend on two critical biochemical signals. Blocking them both hinders the growth of tumors in several laboratory models of the disease, suggesting a promising new approach to treating human patients. The work also emphasizes the continued importance of mice in medical research. The study appears in the current issue of Nature Communications and includes authors from the MDC, the Urology Department of the Charite Berlin, the Berlin Institute of Health (BIH), the Screening Unit of the Leibniz Institute FMP, the company EPO, and other partners.

Two biochemical weaknesses

Identifying ccRCC cancer stem cells was crucial to the project. Dr. Annika Fendler, a postdoc in the Birchmeier group and a member of the Charite Urology Department, was first author on the paper. She identified three proteins on the surfaces of the cells that enabled them to be tagged and then isolated. This permitted Dr. Hans-Peter Rahn to isolate the cells using fluorescence-activated cell sorting (FACS). The scientists found that cancer stem cells accounted for only about two percent of the total found in the human tumors.

"Our analysis of these cells shows that they depend on signals passed along two biochemical networks called WNT and NOTCH," Fendler says. Because these networks were known to play roles in other types of cancer, the lab has learned to disrupt them. They had already developed a potent inhibitor of WNT signals with the FMP, their partner institute on campus.

Previously a role for WNT and NOTCH had not been suspected in kidney tumors; mutations in these networks are rarely found in the disease. Both signals are, however, linked to a tumor suppressor gene called VHL, which is strongly associated with ccRCC. The new findings suggested that blocking WNT, NOTCH or both signals might target the cancer stem cells and interfere with the most aggressive components of the tumors.

In the clinic, inhibitors against various biochemical pathways are increasingly replacing chemotherapy in treatments for cancer patients. "But you have to know what pathways to target," Fendler says, "and not enough was known about the biology of ccRCC."

The promise of multiple model systems

Initial tests of the new inhibitors were promising. "Remarkably, three quarters of cell cultures derived from the patients responded to at least one type of inhibitor, and 50 percent of the rest were inhibited in the presence of the two inhibitors," Birchmeier says.

But here the lab confronted one of the main challenges of cancer research. "What we learn in the lab is usually very difficult to translate into the real context of a patient," Birchmeier says. "Regular cell line cultures and animal models obtained from other labs don't reflect the complexity of a disease in a person's body." A solution is to develop more types of models which are closer to the human disease.

Birchmeier and his colleagues were already proficient at extracting cancer stem cells from patients, growing them in cultures and challenging them with a huge palette of drugs. In collaborations with the company EPO on the Berlin-Buch campus, they have also transplanted patients' cancer stem cells into mice, which develop tumors virtually identical to those of their human counterparts. These animals are essential in the search for therapies: what cures a human tumor in mice might also work in a patient. In the current project, EPO injected WNT and NOTCH inhibitors, singly and and combinations, into tumor-bearing mice and observed what happened. Blocking both signals turned out to be the most effective strategy. But would it work equally well in humans?


A new type of model

Very recently scientists have learned to use patient cells to generate organoids: miniature versions of organs, containing many types of cells. They are composed of human tissue, but can be used without the ethical problems of testing drugs on human patients. Organoids had already been created for healthy kidneys, various organs, and tumors such as colon cancer.

    Other groups had tried with ccRCC, but had been less successful. The tissue didn't grow very well or did not produce organoids. Both of these factors are important in developing models for drug testing and treatments. A patient with the disease needs fast and reliable models on which treatment responses can be tested."

    Dr. Annika Fendler, postdoc in the Birchmeier group and a member of the Charite Urology Department, first author on the paper

Different models, similar results

"The most crucial finding from the study," Birchmeier says, "is to have identified the essential roles of WNT and NOTCH signaling systems in ccRCC, and to show that inhibiting them has an impact on the tumors." There remain subtle differences between the model systems that still need to be explored; at the moment, studies of mice are still needed.

In the meantime, the work provides important new experimental systems for scientists working on the disease. Annika Fendler has moved on to the Francis Crick Institute in London, where she continues to work on models of kidney cancer. Ultimately, the scientists hope, the strategy developed in the models will make the jump to the clinic, in custom-designed therapies that target the most dangerous cells in the tumors.

 
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Sunday, April 21, 2019

Do You Know Why Apples Are Good For You

Of course, you'll remember the good old saying " an apple a day, keeps the doctor and dentist away too". I'm sure not many know about apples keeping away the dentist. Eating apples can help cleanse and clean teeth, and fight bad breath. The fibrous content of apples cleans teeth by acting as a toothbrush and scrubbing away plaque from teeth, and removing other food debris. The acidity in an apple helps kill off bad bacteria that encourages bad breath. Be sure to leave the skin on the apple, since it is full of the mouth-healthy fiber that helps keep teeth and gums clean.
From strengthening the immune system, to preventing cancerous growths and losing weight, say hello to your apple a day!
 
How do apples help us?
Important research published in 2008 by the German cancer researchers showed that apples offer a significant health advantage. Those that ate one or more apples each day were shown to be healthier than those in the control group that ate no apples at all. They were found to have less risk of mouth cancer, larynx cancer, breast cancer, intestinal cancer, kidney cancer and ovarian cancer.
 

These findings corroborate new research, which showed that apple peel has strong antioxidant properties. These properties mean that apple peel is a powerful inhibitor of breast cancer cells. Researchers found that the higher the concentration of apples, the lower the concentration of cancerous cells.
 

Cancerous growths are uncontrollable cell growths that independently spread throughout the body. The growths are based on three principle levels. The first stage causes mutations in cell DNA. The second is when the growth becomes malignant and grows faster. And, in third, it metastasizes and spreads throughout the body.
 

In the event of a cancerous growth, apples aren't only used as antioxidants - they also improve immune system function, which helps clean out the growths in their early stages.
 

In addition to boosting the immune system and fighting cancerous growths, apples also help control the levels of cholesterol and sugar in the blood, prevent heart disease and improve mouth hygiene. The fact that they contain more than 80% water and a long line of essential vitamins, makes them one of the healthiest foods available.
Nutritional Fiber
Apples are considered a vital source of nutritional fiber. Eating one apple a day (with peel) can award us about 4.4 grams of nutritional fiber, which is a fifth of our recommended daily amount.
 

Nutritional fibers are nutrients found in foods that come from plants, and have a very important role in stimulating digestive system function. Since they are not digested and taken apart in the body, they sate our hunger for a longer period of time. Extensive research has shown that those that do not get their recommended daily amount (at least 25 grams a day), deny themselves a host of health benefits.

In addition, the researchers found that consuming these fibers is quite an effective method of losing weight.
 

The secret is in the chewing. Drinking apple juice will not give you the same health benefits as eating an apple will. A study conducted in China found that chewing can help the body regulate the amount of calories it absorbs from food.
What does this have to do with apples?
Everything. Apples are a terrific source of nutritional fiber, especially a group of fibers called Pectin. This is a group of complex carbohydrates that regulates our bowels, improves good cholesterol and has powerful antioxidant and antibacterial properties. 
 

Researchers have shown that consuming pectin instead of regular fiber doubles the time it takes the stomach to empty from one hour to two, meaning that we don't feel hungry for a longer time. In fact, a recent research paper titled: "Weight Loss Associated with a Daily Intake of Three Apples or Three Pears among Overweight Women", showed that women who were overweight and were instructed to eat an apple or pear before each meal lost significant weight just by doing so.

The women in the experiment were asked to eat regularly and just add the apple before the meal. What happened was that the apples and fibers crowded the stomach, increased the feeling of being full, and made the body absorb less calories.
 

Other sources of nutritional fiber are: pears, peaches, peas, carrots, seeds, nuts, peel of fruits and vegetables, legumes, whole grains, oats and whole wheat. But apples offer many more advantages.
 

So if you want to:
Lose weight, eat one apple a day.
Strengthen your immune system, eat one apple a day.
Control the level of cholesterol, eat one apple a day.
Prevent the spread of cancerous cells, eat one apple a day!
Good for teeth, prevents bad breath 

 

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Friday, February 08, 2019

Cancer growth in the body could originate from a single cell – target it to revolutionise treatment

Cancer remains a frightening and largely incurable disease. The toxic side effects of chemotherapy and radiation make the cure often seem as bad as the ailment, and there is also the threat of recurrence and tumour spread.

Cancer treatment still follows a practically medieval method of cut, burn or poison. If the growth can’t be cut out through surgery, it may be burnt away with radiation or poisoned by chemotherapy. As a result, cancer therapy remains a daunting diagnosis for patients and treatment options seem limited for a disease which causes one in 6 deaths globally.

The failure to innovate in cancer treatment may lie in the very poor success rate of clinical trials. Approximately 95%-98% of new anti-cancer drugs actually fail phase III clinical trials, the phase in which new treatments are compared with existing therapy options. This is a staggering statistic. No other business could possibly survive with such an abysmal success rate.

Most drugs are made to target “bulk” cancer cells, but not the root cause: the cancer stem cell. Cancer stem cells, also known as “tumour-initiating cells”, are the only cells in the tumour that can make a new tumour. New therapies that specifically target and eradicate these cancer stem cells are needed to prevent tumours growing and spreading, but for that there needs to be more clarity around the target.

Our new research may have discovered such a target. We have identified and isolated cells within different cancerous growths which we call the “cell of origin”. Our experiments on cancer cells derived from a human breast tumour found that stem cells – representing 0.2% of the cancer cell population – have special characteristics.

They generate vast amounts of energy and proliferate rapidly. We believe that they resemble the cancer cell of origin that has escaped senescence – the natural process of cell ageing and “death” which concludes a healthy cell life cycle. These are thought to be the first cancer cells which start the process of uncontrolled cell multiplication and cause tumours to form.

These cancer stem cells undergo anchorage-independent growth, also known as growth in suspension, without any tissue attachment. This is how metastasis occurs – spreading via the blood vessels and lymphatic vessels. These features put them front and centre as a new target for anti-cancer therapy.

With astonishing luck, these energetic cancer stem cells are colour-coded which means they have a natural phosphorescent glow, making them easy to identify and target.

Now that we have found them and we know how they behave, it should be relatively simple to find drugs to target cancer stem cells. In our new paper we have already shown that they are easily targeted with a mitochondrial inhibitor or a cell cycle inhibitor such as Ribociclib, an FDA-approved drug in the US which would prevent their proliferation. 

Ultimately, this means that if we focus on energetic cancer stem cells, we may be able to directly hit the target. We might be able to turn cancer into a manageable chronic disease, like diabetes. We believe that we have arrived at the start of a new, more fruitful, road in cancer therapy. As a consequence, “big pharma” drug screening should actually focus on cancer stem cells and their relevant targets.

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Monday, April 02, 2018

New cancer drug for children safe, effective

A first-of-its-kind drug targeting a fused gene found in many types of cancer has been found to be effective in 93 per cent of paediatric patients tested, scientists say.
Most cancer drugs are targeted to specific organs or locations in the body.
 

Larotrectinib is the first cancer drug to receive government approval,breakthrough therapy designation for patients with a specific fusion of two genes in the cancer cell, no matter what cancer type.
"In some cancers, a part of the TRK gene has become attached to another gene, which is called a fusion," said an assistant professor.


"When this occurs, it leads to the TRK gene being turned on when it's not supposed to be and that causes the cells to grow uncontrollably.

"What is unique about the drug is it is very selective; it only blocks TRK receptors," said the lead author of the research.

Larotrectinib, targets TRK fusions, which can occur in many types of cancer.

While the TRK fusions occur in only a small percentage of common adult cancers, they occur frequently in some rare paediatric cancers, such as infantile fibrosarcoma, cellular congenital mesoblastic nephroma, and papillary thyroid cancer.

"Every patient with a TRK fusion-positive solid tumour treated on this study had their tumour shrink. The nearly universal response rate seen with larotrectinib is unprecedented," the author said.


TRK, short for tropomyosin receptor kinase, is a gene that plays a key role in brain and nervous system development and has a limited role in nervous system functions such as regulating pain in later life.

Larotrectinib belongs to a class of molecules known as kinase inhibitors, which work by cutting back on the enzymatic activity of a key cellular reaction, researchers said.

The selectivity of the drug means it does not cause the severe side effects associated with many traditional cancer treatments, and none of the patients with TRK fusions had to quit the study because of a drug-induced side effect, they said. 


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Saturday, May 31, 2014

Green tea could reduce pancreatic cancer risk

Scientists say they are one step closer to proving green tea's cancer-busting potential.

A study recently published online by the journal, Metabolomics, offers an explanation that researchers say could open a new area of cancer-fighting research. The study reports that EGCG, the active biologic constituent in green tea, changed the metabolism of pancreatic cancer cells by suppressing the expression of an enzyme associated with cancer.

The researchers also found that an enzyme inhibitor disrupted the pancreatic cancer cells' metabolic system.

"Scientists had believed they needed a molecular mechanism to treat cancer, but this study shows that they can change the metabolic system and have an impact on cancer," Dr. Wai-Nang Lee, one of the study's authors, said. "By explaining how green tea's active component could prevent cancer, this study will open the door to a whole new area of cancer research and help us understand how other foods can prevent cancer or slow the growth of cancerous cells.

"This is an entirely new way of looking at metabolism," Lee added. "It is no longer a case of glucose goes in and energy comes out. Now we understand how cancer cell metabolism can be disrupted, and we can examine how we can use this knowledge to try to alter the course of cancer or prevent cancer."


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