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Monday, September 30, 2013

You can reduce the life-style obesity-related cancer.

It is one-third of new cancers are expected to happen in the United States in 2013, if related to overweight or obesity, physical inactivity and estimate the malnutrition. New York University, New York University Cancer Institute (home) by appearing the journal cancer epidemiology, biomarkers and prevention, researchers from study of insulin and glucose levels, specifically on the long term disturbances of the exposures to increased risk for clinicians to screen these disturbances to help prevent cancer these obesity-related cancer and offer suggestions for associated exit.

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On the other side of the cancer genome benefits

Cancer is not single entity rather it asks complex diseases over a hundred distinct and unique treatment strategies and types of cancer. Pan TCGA researchers have developed a formal analysis of cancer is called cross-project. Whose goal is assembled of TCGA data beyond the type of tumor and interpret their data and analysis, at the end, both the analysis and data freely available.

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Combining Chinese, Western medicine could lead to new cancer treatments

Sep. 28, 2013 — Combining traditional forms of Chinese and Western medicine could offer new hope for developing new treatments for liver, lung, colorectal cancers and osteosarcoma of the bones.

Experts from Cardiff University's School of Medicine have joined forces with Peking University in China to test the health benefits of a traditional Chinese medicine.

The team also set-out to examine how by combining it with more traditional methods like Chemotherapy could improve patient outcomes and potentially lead to the development of new cancer treatments and therapies.

"Traditional Chinese medicine where compounds are extracted from natural products or herbs has been practised for centuries in China, Korea, Japan and other countries in Asia," according to Professor Wen Jiang from Cardiff University's School of Medicine, who is the director of the Cardiff University-Peking University Joint Cancer Institute at Cardiff and led the research as part of a collaboration between Cardiff University and Peking University.

"Although a few successes, most of the traditional remedies are short of scientific explanation which has inevitably led to scepticism -- especially amongst traditionalists in the West.

"As a result, we set out to test the success of a Chinese medicine and then consider how combining it alongside traditional methods like Chemotherapy could result in positive outcome for patients," he adds.

Yangzheng Xiaoji is a traditional Chinese formula consisting of 14 herbs. The formula has been shown to be beneficial to cancer patients -- however, until now how it works has remained unknown.

Since 2012 the Team have investigated how the formula works, discovering that it works by blocking a pathway which stops the spread of cancer cells in the body.

"The formula has been shown to be beneficial to patients with certain solid tumours, when used alone and in conventional therapies, such as Chemotherapy.

"It suggests that combining the formula with conventional as well as new therapies could hold the key to developing new treatments for cancer patients.

"We are already looking to clinical trials in treatment of lung and other cancer types."


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Insight: How new cancer drugs can skip randomized trials

By Julie Steenhuysen and Ben Hirschler

CHICAGO/LONDON (Reuters) - In 2006 when doctors started testing a melanoma treatment made by Roche Holding AG on patients, they were used to facing slim odds - about one in eight - that the tumors would shrink on chemotherapy. This time, they couldn't believe their eyes.

With Zelboraf, a drug that targets specific mutations in cancer cells, eight out of 10 patients in an early-stage trial experienced significant tumor shrinkage. Roche clearly had a remarkable drug, though it only worked for people with a specific genetic makeup.

Research like the Zelboraf tests, that fine-tune treatments to the genetic profile of patients, is fuelling a rethink over how new cancer drugs are tested. The promise: medicines that, in theory at least, can win approval more easily and cheaply.

That also raises ethical questions. If you know a certain treatment is genetically bound to work much better on some people than on others, is it right to conduct randomized trials to see which works best? Zelboraf led some doctors to question whether to go ahead with the trials they had planned, trials that would pit Zelboraf against the standard treatment, a chemotherapy developed in 1975 called dacarbazine.

Some doctors believed that would risk patients' lives unnecessarily. U.S. Food and Drug Administration cancer drug czar Dr. Richard Pazdur pushed for changes to shorten the trial. Others, such as Dr. Patrick Hwu of MD Anderson Cancer Center in Texas, refused to participate in a study that seemed bound to disadvantage some patients.

Ultimately, the trial proceeded and the drug won U.S. approval in 2011. But experts say the controversy over Zelboraf broke the mould, potentially pointing the way to lower-cost drug development.

At least one company has already indicated it will cut prices. Earlier this year, GlaxoSmithKline Plc won approval from the U.S. Food and Drug Administration for Tafinlar, a drug targeting the same mutant genes as Zelboraf, based on a single clinical trial of just 250 patients. It said the drug would cost $7,600 a month, 30 percent less than Zelboraf.

Whether others follow suit in cutting prices will depend on a host of issues, perhaps the biggest of which is the vast difference in the way the United States and Europe regulate drugs.

Pressure is mounting. A new and highly promising class of immunotherapy drugs - which some analysts see as a potential $35 billion a year market - may force companies' hands. These therapies will come to market just as more people are asking if health insurers and governments will keep paying sky-high prices.

Dr. Alexander Eggermont, chief executive of Institut Gustave-Roussy, France's largest cancer center, was one of those who held a hard line on Zelboraf testing, insisting on a randomized trial. But Eggermont now says the standard of proof has changed and he believes immunotherapies - which he calls the "biggest game changer we have ever seen" - will cement the new approach to testing.

"We won't have to do those dinosaur trials," he said. "It will change the whole attitude in drug development."

BETTER SCIENCE

Randomized controlled trials - where some patients are given the treatment that is being tested and others get a "control" substance for comparison - became known as the gold standard of drug testing because they were the most effective way of seeing if a drug worked. But for patients whose cancers are driven by specific genetic mutations, some argue that randomized approach could become obsolete.

"The types of drugs that we're seeing now are different. They are just simply better in terms of efficacy," says Pazdur, the FDA expert who wanted to shorten the Zelboraf trial.

The new drugs are born out of a better understanding of the molecular changes that fuel cancer growth. For example, an estimated 50 to 60 percent of melanoma patients have a specific genetic mutation. Zelboraf and Tafinlar target these people. By testing such treatments only on people with a specific mutation, researchers can work out more quickly, and with fewer patients, if a treatment is effective.

Zelboraf represented a watershed in treating melanoma, a notoriously deadly cancer, although it is not a cure: Most patients eventually develop resistance to the drug. The Zelboraf trial fuelled support for a new "breakthrough therapy" regulatory pathway that was signed into U.S. law last year. It could shave years off the traditional drug approval process.

To qualify, a drug must show remarkable clinical activity in early stages of testing. The FDA's Pazdur, who has spent the past 14 years overseeing cancer drug approvals, calls them "knock-your-socks-off" treatments.

He says the FDA has already become more flexible in the kinds of evidence it will accept to speed new cancer drugs to patients.

For example, Stivarga is a pill from Bayer AG for some advanced gastrointestinal tumors. It was approved in February, just three years after the first patient with the condition received it in clinical tests. That's nearly twice as fast as Zelboraf. "That was like a land-speed record," says Dr. George Demetri of the Dana Farber Cancer Institute in Boston, who worked to develop the medicine.

The drug was reviewed under another FDA scheme called the priority review program, which provides an expedited six-month process.

The step-change in the pace of cancer drug development has helped drive a recent improvement in overall pharmaceutical industry productivity. New cancer medicines are the main driver of a pick-up in the number of products coming to market. Since the start of 2012, one third of the 54 drugs approved by the FDA across all diseases areas have been for cancer.

PRICING BACKLASH

But despite the faster approval times, the impact on drug prices so far has been limited.

Clinical trials are the biggest single cost in drug company R&D, accounting for 36 percent of total research expenditure in 2012, according to Thomson Reuters CMR International. Drugmakers traditionally argue that it is only by ploughing an average of a $1 billion-plus into each new medicine that treatments can be improved.

"The costs should be coming down tremendously," said Paul Workman, head of drug discovery at Britain's Institute of Cancer Research. "What's disappointing is that we haven't seen it happen yet. We are in a fascinating but frustrating period of transition."

Don Light, a Harvard professor who is a long-time critic of the drugs industry, is more blunt. He says companies are deliberately clinging to the notion of huge research costs despite the advantages of smaller trials in cancer.

"Claimed high costs are like bragging rights - the higher companies say they are, the more they create the impression of heroism and financial suffering," Light says.

Still, not everyone in the industry is toeing the line. GSK Chief Executive Andrew Witty startled a number of his peers earlier this year by telling a British National Health Service conference that the $1 billion price tag was "one of the great myths of the industry." Since the figure includes the cost of failures, any drug company that can improve its success rate should be able to charge less for new medicines.

"For the first time in my career, pricing is becoming a really interesting piece of the dynamic," Witty said in an interview. "If you believe you have a sustainable model that can churn out more product than anybody else, why wouldn't you do this?"

That could be particularly important as drug companies begin to combine treatments in hopes of achieving longer-lasting benefits. GSK, for instance, has a second melanoma drug called Mekinist that it plans to combine with Tafinlar. Both are cheaper than existing drugs, though combined, of course, they will still cost many thousands of dollars a year.

Doctors are getting restive. In April, more than 100 leukemia specialists from around the world took the unusual step of complaining publicly in the American Society of Hematology's journal Blood that cancer drug prices were "too high, unsustainable, may compromise access of needy patients to highly effective therapy, and are harmful to the sustainability of our national healthcare systems."

With 11 of the 12 cancer drugs launched in the United States last year costing more than $100,000 a year per patient, according to the paper, the debate is not going away.

UNITED STATES VS. EUROPE

But faster trials in the United States won't always translate into cheaper drug development for companies that do business globally, in part because European authorities may not be willing to accept products based on the FDA's more flexible clinical trial standards.

Dr. Eric Rubin, head of oncology clinical development at Merck & Co Inc., said the FDA's willingness to allow accelerated approval based upon single-arm studies - without the traditional control group - is "a big step forward, but it's not universally agreed upon," especially in Europe.

Part of the issue is not with drug safety regulators but with government funding agencies, such as the National Institute for Health and Clinical Excellence, or NICE, Britain's health cost watchdog. It decides whether the state-run health system will pay for a new treatment or drug. It often knocks back expensive drugs as not cost-effective.

"In Europe, it's a different world because you can get a drug approved by the European regulatory agencies - but if the governments won't approve funding for it, people can't access it," Demetri said.

As a result, companies may be forced to into longer, larger trials just to satisfy cost regulators.

"POSITIVE RESULTS"

It's a problem that Merck and other companies developing new immunotherapy drugs will have to solve. The drugs, including Merck's MK-3475 and Bristol-Myers' nivolumab, help the immune system fight cancer cells by disabling a protein called "programmed death 1" or PD-1 that acts as a brake on the body's ability to detect them.

Andrew Baum, an analyst at Citi, estimates treatments that coax the immune system to target cancer will become the backbone therapy for up to 60 percent of cancers over the next decade, generating $35 billion in annual sales.

Dr. Antoni Ribas at the University of California, Los Angeles says the immunotherapies are showing so much promise that they, like Zelboraf, raise doubts over whether randomized trials are needed. He believes they could be approved in the United States on the basis of a single-arm trial. Yet Merck has started enrolling patients in a study where patients will be randomized to get the new treatment or existing chemotherapy.

One patient who has already put himself forward for MK-3475 is Stew Scannell, 65, head of operations at global defense company Northrop Grumman in Oklahoma City. Scannell, who served a couple of tours in Vietnam and spent several years in various deserts testing helicopters, figures his melanoma may be the result of cumulative sun damage.

When his doctors were talking about buying him another couple of months, he decided to do his own research. He started MK-3475 shortly after his first meeting with Ribas, in April 2012.

Several of his tumors have disappeared. At his last scan in April, there was no sign of any tumor in his brain. In Merck's trial, the most common side effects of the drug include fatigue, fevers, skin rash, loss of skin color and muscle weakness. But so far, Scannell has had none. "I really haven't missed a step. I've continued working. The radiation was difficult. But the marvelous thing about the immunotherapy is no side effects. No lethargy. No loss of appetite. No anything."

South African melanoma patient Christina Chrysostomou, 45, would be more than happy to see the end of randomized trials when a treatment has shown early promise.

After her cancer got worse on Bristol-Myers' immunotherapy Yervoy, she and her husband and 8-year-old son headed for the United States in the hopes of trying one of the new anti-PD-1 drugs.

But when she arrived in late June, Merck's Phase I trial had closed, and she was told she would have to take her chances in a randomized test. Luckily for her, a spot opened up in a non-randomized Phase I study and she is now getting MK-3475 - but she feels for others less fortunate.

"It's really hard knowing there is something out there that could possibly help and having to go through a gamble and maybe not even get that," she said.

(Edited by Sara Ledwith, Richard Woods and Simon Robinson)


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Pesticide ban cuts South Korea's high suicide rate - a bit

By Ju-min Park

SEOUL (Reuters) - Jang Chang-yoon was drunk and weepy one rainy night, troubled by debts from his divorce. On a dark impulse, the South Korean waiter bought a bottle of pesticide to end it all with a few toxic swigs.

At the last minute, he changed his mind when his young daughter grabbed his arm and begged him: "Daddy, don't die."

Unlike Jang, many people do not pull back from the brink in South Korea, which has had the highest suicide rate in the developed world for nine straight years, often drinking pesticide as their way out.

But a decade after Jang's brush with death, a ban on fatal pesticides is credited with cutting the number of suicides by 11 percent last year, the first drop in six years. The government restricted production of Gramoxone, a herbicide linked to suicides, in 2011 and outlawed its sale and storage last year.

"The number of suicides by poisoning including Gramoxone fell by 477, which accounts for about 27 percent of the total decrease in the number of people committing suicide," Lee Jae-won, an official at Statistics Korea, said last week after the government released the latest figures.

Pesticide was the method of choice for almost a quarter of the South Koreans who killed themselves between 2006 and 2010, according to a government report to parliament.

In the highly competitive society of Asia's fourth-largest economy, experts say people who end up alone battling pressure for good school grades or from financial burdens have little in the way of a safety net.

Despite the improvement in the suicide rate, more than 14,000 South Koreans killed themselves last year. Elderly people living in rural areas are a particularly high-risk group.

Since the 1950s, older generations have been fixated on South Korea becoming more competitive and productive, a side effect of rapid industrialisation that turned a war-damaged country into one of the richest in the world.

STIGMAS AND PAIN

Kim Hyun-chung, a psychiatrist at the Korean Association for Suicide Prevention, sees social stigmas as a major reason for the high suicide rate. Many South Koreans who are depressed or under heavy stress are reluctant to bring up issues like mental illness or an inability to cope, he said.

"The ban on toxic pesticides obviously led to the decline in the suicide rate because that is the easiest means of suicide for elderly people in rural towns," Kim said. "But we still have bridges and charcoal briquettes."

To help limit access to lethal chemicals, the Life Insurance Philanthropy Foundation launched a campaign to provide pesticide lockers to farming towns with high rates of depression.

The foundation, set up by private insurance firms, says no one from the villages with the lockers has committed suicide over the past three years, compared with one or two people from each village who had killed themselves in past years.

"The lockers help reduce the impulse to get hold of pesticides because they have to find keys to open them," Chung Bong-eun, an official at the foundation, told Reuters.

The 2012 figures may offer a glimmer of hope, but the latest comparisons by the Organisation for Economic Co-operation and Development showed South Korea was by far the most suicidal society, followed by Hungary, Russia and Japan.

For Jang, working two jobs is still tough, but he regrets trying to kill himself and is happy to have his life to share with his two daughters. While he sees the ban on pesticides as a positive step, he feels for others who are under duress.

"Old and young people have their own pain from either quick economic development or unemployment," he said. "I hope the government will care more about people's health."

(Editing by John O'Callaghan and Ron Popeski)


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Eilat's corals stand better chance of resilience than other sites

Sep. 29, 2013 — Israel's southern Red Sea resort of Eilat, one of whose prime attractions is its colorful and multi-shaped underwater coral reefs, may have a clear advantage in the future over rival coral-viewing sites around the world, scientists at the Hebrew University of Jerusalem and Bar-Ilan University have found.

Coral reefs, earth's richest and most diverse ecosystem, are deteriorating rapidly. One of the most devastating causes for that deterioration is coral bleaching, which typically occurs when seawater temperatures exceed the local summer maximum by one-half to one and half degrees Celsius. At those higher temperatures, the coral's symbiotic algae are lost, leading to the coral's bleaching and eventually its death.

But, while the frequency of coral bleaching is globally increasing, no bleaching event has been observed in the Gulf of Eilat/Aqaba (Eilat sits at the northern end of the gulf), even when nominally bleaching conditions prevail.

The Israeli scientists explain the enigmatic lack of bleaching in the Gulf by the existence of a "warm-water barrier" at the southern Red Sea, allowing only heat-tolerant genotypes of corals to enter the Red Sea from the Gulf of Aden. This occurred following the disappearance of corals from the Red Sea during the last glacial period, some 15,000 years ago. The scientists predict that no bleaching is likely to occur in the Gulf of Eilat/Aqaba in the next 100 years, making it a unique refuge for coral reefs in the world's warming oceans.

The findings of the Israeli researchers, entitled "A Coral Reef Refuge in the Red Sea," was published on Sept. 23 in the journal Global Change Biology." The paper is the outcome of a joint study by Prof. Amatzia Genin of the Alexander Silberman Institute of Life Sciences at the Hebrew University; Dr. Hezi Gildor of the The Fredy & Nadine Herrmann Institute of Earth Sciences at the Hebrew University; and Dr. Maoz Fine of the Mina and Everard Goodman Faculty of Life Sciences at Bar-Ilan University. The work was carried out at the Interuniversity Institute for Marine Sciences in Eilat.

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The above story is based on materials provided by Hebrew University of Jerusalem, via AlphaGalileo.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.


Journal Reference:

  1. Maoz Fine, Hezi Gildor, Amatzia Genin. A coral reef refuge in the Red Sea. Global Change Biology, 2013; DOI: 10.1111/gcb.12356

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Wagon-wheel pasta shape for better LED lights

Sep. 29, 2013 — One problem in developing more efficient organic LED light bulbs and displays for TVs and phones is that much of the light is polarized in one direction and thus trapped within the light-emitting diode, or LED. University of Utah physicists believe they have solved the problem by creating a new organic molecule that is shaped like rotelle -- wagon-wheel pasta -- rather than spaghetti.

The rotelle-shaped molecule -- known as a "pi-conjugated spoked-wheel macrocycle" -- acts the opposite of polarizing sunglasses, which screen out glare reflected off water and other surfaces and allow only direct sunlight to enter the eyes.

The new study showed wagon-wheel molecules emit light randomly in all directions -- a necessary feature for a more efficient OLED, or organic LED. Existing OLEDs now in some smart phones and TVs use spaghetti-shaped polymers -- chains of repeating molecular units -- that emit only polarized light.

"This work shows it is possible to scramble the polarization of light from OLEDs and thereby build displays where light doesn't get trapped inside the OLED," says University of Utah physicist John Lupton, lead author of a study of the spoked-wheel-shaped molecules published online Sunday, Sept. 29 in the journal Nature Chemistry.

"We made a molecule that is perfectly symmetrical, and that makes the light it generates perfectly random," he adds. "It can generate light more efficiently because it is scrambling the polarization. That holds promise for future OLEDs that would use less electricity and thus increase battery life for phones, and for OLED light bulbs that are more efficient and cheaper to operate."

Lupton emphasizes the study is basic science, and new OLEDs based on the rotelle-shaped molecules are "quite a way down the road."

He says OLEDs now are used in smart phones, particularly the Samsung Galaxy series; in pricey new super-thin TVs being introduced by Sony, Samsung, LG and others; and in lighting.

"OLEDs in smart phones have caught on because they are somewhat more efficient than conventional liquid-crystal displays like those used in the iPhone," he says. "That means longer battery life. Samsung has already demonstrated flexible, full-color OLED displays for future roll-up smart phones." Lupton says smart phones could produce light more efficiently using molecules that don't trap as much light.

The large rotelle-shaped molecules also can "catch" other molecules and thus would make effective biological sensors; they also have potential use in solar cells and switches, he adds.

The study was funded by the Volkswagen Foundation, the German Chemical Industry Fund, the David and Lucille Packard Foundation and the European Research Council.

Lupton is a research professor of physics and astronomy at the University of Utah and also on the faculty of the University of Regensburg, Germany. He conducted the study with Utah physics graduate student Alexander Thiessen; Sigurd Hoger, Vikas Aggarwal, Alissa Idelson, Daniel Kalle and Stefan-S. Jester of the University of Bonn; and Dominik Wursch, Thomas Stangl, Florian Steiner and Jan Vogelsang of the University of Regensburg.

Freeing Trapped Light

While conventional LEDs use silicon semiconductors, OLEDs in some of the latest cell phones and TVs are made with "pi-conjugated polymers," which are plastic-like, organic semiconductors made of a chain of repeating molecular units.

"Conjugated polymers are a terrible mess," Lupton says. "They now make only mediocre OLEDs, although people like to claim the opposite."

For one thing, three-quarters of the light energy is in a state that normally is inaccessible -- a problem addressed by another recent University of Utah study of OLEDs. Lupton says his study deals with another problem, which exists even if the other problem is overcome: the polarization of light in pi-conjugated polymers that leads to the "trapping" or loss of up to 80 percent of the light generated.

"Light is an oscillating field like a wave, and a wave moves in a certain direction," Lupton says. "We call this direction of oscillation a polarization."

Because polymers are long molecules like spaghetti, when an electrical current is applied to a polymer, "the electrons can only flow in one direction and that generates the light waves," Lupton says. "Because those light waves only oscillate in one direction, the light can get trapped inside the OLED, which is a little bit like an optical fiber."

That, he adds, is why even with the latest OLED smart phones, "your battery is dead in two days because the display uses a lot of the electricity."

"The rotelle -- technically called oligomers -- are basically wrapped-up polymers," Lupton says. "They all have the same shape, but they do not emit polarized light because they are round. They generate waves that vibrate in all directions. The light doesn't have a fixed polarization; it doesn't vibrate in a fixed direction. It always can get out."

Lupton compares the ability of the wagon-wheel molecules to emit unpolarized light in all directions to what happens when a pencil is balanced perfectly on its tip and falls in a different, random direction each time.

Cooking up a Wagon Wheel-Shaped Molecule

The international team of physicists and chemists set out to make molecules that generate light waves in all directions rather than in a fixed direction. In the new study, they report how the created the spoked-wheel molecules, made images of them and did single-molecule experiments, including looking at photons, or light particles, emitted one at a time from a single molecule. In those experiments, they shined an ultraviolet light on the rotelle-shaped molecules to generate visible light photons.

"We showed that every photon that comes out has a scrambled polarization, the polarization changes randomly from photon to photon," Lupton says.

The emitted light is blue-green, Lupton says, but images accompanying the paper -- taken with a scanning tunneling electron microscope -- show the rotelle- and spaghetti-shaped molecules with a false yellow-brown color to provide good contrast.

Each wagon-wheel molecule measures only six nanometers wide, which is large for a molecule but tiny compared with the 100,000 nanometer width of a human hair.

Using rotelle-shaped oligomers instead of spaghetti-shaped polymers, "in principle, we should be able to double the efficiency of getting the light out" -- although that remains to be proved, Lupton says.

"Even if we scramble the polarization, we're always going to have a bit of light trapped in the OLED," he says. "Those losses are now 80 percent, and we probably could get down to 50 or 60 percent."


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India seeks to regulate its booming 'rent-a-womb' industry

By Nita Bhalla and Mansi Thapliyal

ANAND, India, Sept 30 (Thomson Reuters Foundation) - Dressed in a green surgical gown and cap, British restaurateur Rekha Patel cradled her newborn daughter at the Akanksha clinic in northwestern India as her husband Daniel smiled warmly, peering in through a glass door.

"I can't believe we have our own child at last," said Patel, 42, gazing in wonderment at five-day-old Gabrielle.

"We are really grateful to our surrogate mother who managed to get pregnant and kept our little daughter healthy. She gave nine months of her life to give us a child."

It is the perfect promotion for India's booming surrogacy industry that sees thousands of infertile couples, many from overseas, hiring the wombs of local women to carry their embryos through to birth.

But a debate over whether the unregulated industry exploits poor women prompted authorities to draft a law that could make it tougher for foreigners seeking babies made in India.

"There is a need to regulate the sector," said Dr. Sudhir Ajja of Surrogacy India, a Mumbai-based fertility bank that has produced 295 surrogate babies - 90 percent for overseas clients and 40 percent for same-sex couples - since it opened in 2007.

"But if the new law tightens rules as suggested by the ministry of home affairs, which disallows surrogacy for same-sex couples and single parents, then it will clearly impact the industry and put off clients coming from overseas."

BIRTH OF A MARKET

India opened up to commercial surrogacy in 2002. It is among just a handful of countries - including Georgia, Russia, Thailand and Ukraine - and a few U.S. states where women can be paid to carry another's genetic child through a process of in-vitro fertilisation (IVF) and embryo transfer.

The low-cost technology, skilled doctors, scant bureaucracy and a plentiful supply of surrogates have made India a preferred destination for fertility tourism, attracting nationals from Britain, the United States, Australia and Japan, to name a few.

There are no official figures on how large the fertility industry is in India. A U.N.-backed study in July 2012 estimated the surrogacy business at more than $400 million a year, with over 3,000 fertility clinics across India.

The Akanksha clinic in Anand is the best-known at home and abroad, giving the small town in Gujarat state the reputation as India's "surrogacy capital".

"The surrogates in Anand have become empowered through giving this beautiful gift to others," says Akanksha's owner, IVF specialist Nayana Patel, who shot to fame in 2004 after she helped a patient have a baby by using the woman's mother - the child's grandmother - as a surrogate.

"With the money, they are able to buy a house, educate their children and even start a small business. These are things they could only dream of before. It's a win-win situation."

Patel, who appeared on U.S. celebrity Oprah Winfrey's talk show in 2007, has produced more than 500 surrogate babies - two-thirds of them for foreigners and people of Indian origin living in over 30 countries.

Charging couples like Rekha and Daniel an average of $25,000 to $30,000, a fraction of the cost in the United States, Patel pays her surrogates around 400,000 rupees ($6,500).

For 33-year-old Naina Patel, who gave birth to Gabrielle, the compensation outweighs the downside. The wife of an auto-rickshaw driver with three daughters of her own, she had to live in a hostel for nine months with 60 other surrogates so the clinic could monitor her health.

Like most surrogates, she kept her pregnancy a secret due to the social stigma in India's conservative society.

"I was happy to do it but it was not really out of choice because we needed the money," she said in a hospital bed as she recovered from the Caesarean operation for Gabrielle's birth.

"BABY FACTORIES"

India's surrogacy industry is vilified by women's rights groups who say fertility clinics are nothing more than "baby factories" for the rich. In the absence of regulation, they say many poor and uneducated women are lured by agents, hired by clinics, into signing contracts they do not fully understand.

In May last year, surrogate mother Premila Vaghela, 30, died days after delivering a child for an American couple at a clinic in Gujarat. It was recorded as an "accidental death" by police.

A recent government-funded study of 100 surrogate mothers in Delhi and Mumbai found there was "no fixed rule" related to compensation and no insurance for post-delivery healthcare. It cited cases where surrogates were implanted with embryos multiple times to raise the chances of success.

"In most of these cases, the surrogate mothers are being exploited," said Ranjana Kumari, director of the Centre for Social Research that conducted the study.

Moves to introduce a law - the Assisted Reproductive Technologies Bill (ART) - to protect surrogates, the children and the commissioning parents is long overdue, Kumari said.

Revised visa requirements introduced in July have already resulted in foreign same-sex couples and individuals being prohibited from surrogacy in India. The ART bill, expected to come before parliament next year, will tighten things further.

Under the current draft, all fertility clinics must be registered and monitored by a regulatory authority. Surrogates must be between 21 and 35 years old, they will be provided with insurance and notarised contracts must be signed between the women and the commissioning parents.

"Legislation should be there so that this wonderful procedure can be supervised and it is being done by the right people for the right people," said Akanksha's Patel.

"But more bureaucracy will make it difficult for everyone. It will not only mean less commissioning parents from overseas but it will also impact surrogates, who will lose out on the only chance they have to change their lives for the better."

(Editing by John O'Callaghan and Ron Popeski)


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Cancer cells are controlled by epigenetic processes, new research shows

First time USC Norris Comprehensive Cancer Center (home) of Keck new research from medicine, according to epigenetics in the description of the human body a natural killer (NK) cells, kill can contain viruses and cancerous tumors can be manipulated. Opens the way to develop a National Science Academy of advanced discovery more effective cancer drugs.

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Largest, most accurate list of RNA editing sites

Sep. 29, 2013 — Researchers have compiled the largest and most rigorously validated list to date of genetic sites in fruit flies where the RNA transcribed from DNA is then edited by an enzyme to affect a wide variety of fundamental biological functions. The list yielded several biological insights and can aid further research on RNA transcription because flies are a common model in that work.

A research team centered at Brown University has compiled the largest and most stringently validated list of RNA editing sites in the fruit fly Drosophila melanogaster, a stalwart of biological research. Their research, which yielded several insights into the model organism's fundamental biology, appears Sept. 29 in Nature Structural & Molecular Biology.

The "master list" totals 3,581 sites in which the enzyme ADAR might swap an "A" nucleotide for a "G" in an RNA molecule. Such a seemingly small tweak means a lot because it changes how genetic instructions in DNA are put into action in the fly body, affecting many fundamental functions including proper neural and gender development. In humans, perturbed RNA editing has been strongly implicated in the diseases ALS and Acardi-Gutieres disease.

The new list of editing sites could therefore help thousands of researchers studying the RNA molecules that are transcribed from DNA, the so-called "transcriptome," by providing reliable information about the thousands of editing changes that can occur.

"Drosophila serves as a model for all the organisms where people are studying transcriptomes," said the paper's corresponding author Robert Reenan, professor of biology in the Department of Molecular Biology, Cell Biology, and Biochemistry at Brown. "But in the early days of RNA editing research, the catalog of these sites was determined completely by chance -- people working on genes of interest would discover a site. The number of sites grew slowly."

In fact, Reenan was co-author of a paper in Science 10 years ago that made a splash with only 56 new editing sites which at the time, more than doubled the number of known sites in the entire field.

Validation means accuracy

Several more recent attempts to catalog RNA editing sites have yielded larger catalogs, but those contained many errors (the paper provides a comparison between the new list and previous efforts such as ModENCODE).

To avoid such mistakes, Reenan and colleagues, including lead author and graduate student Georges St. Laurent, painstakingly validated 1,799 of the sites. They worked with Charles Lawrence, professor of applied mathematics and the paper's co-senior author, to predict another 1,782 sites and validated a statistically rigorous sampling of those.

In all, the team's methodology allowed them to estimate that the combined list of 3,581 directly observed and predicted sites is 87 percent accurate.

"The sites that we validated, for anyone who wants to do the same experiment under the same conditions, the sites should be there," said co-author and postdoctoral researcher Yiannis Savva. "In other papers, they just did sequencing to say there is an editing site there, but when you check, it's not there."

The researchers used the tried-and-true, decades-old Sanger method of sequencing to double-check all the candidate editing sites that they had found using the high-throughput technology called single molecule sequencing. They compared the sequenced RNA of a population of fruit flies to their sequenced DNA and to the RNA of another population of flies engineered to lack the ADAR editing enzyme. By comparing these three sequences they were able to see the A-to-G changes that could not be attributed to anomalies in DNA (i.e., mutations, or single-nucleotide polymorphisms) and that never occurred in flies incapable of editing.

As they conducted their validations, they fed the results back into their prediction algorithm. Over several iterations, that computer model "learned" to make better and better predictions. They ultimately found 77 different variables that helped them to distinguish real editing sites from nucleotides that were conclusively not editing sites.

Biological insights

The researchers then examined the implications of the patterns they saw in their data and gained several insights.

One was that a considerable amount of editing occurs in sections of RNA that do not code for making proteins. Editing is concentrated in a small number of RNAs, raising the question, Lawrence said, of what accounts for that selectivity.

"How does the cell go about choosing which ones are going to get edited and which aren't is an interesting question this opens," he said.

Where editing is found, the researchers discovered, there is usually more alternative splicing, which means the body is more often assembling a different recipe from its genetic instructions to make certain proteins.

The researchers also found that the RNAs that are most heavily edited tend to be expressed to a lesser extent, decreasing how often they are put into action in the body.

RNA editing helps explain why organisms are even more different from each other -- and from themselves at different times -- than DNA differences alone would suggest.

"RNA editing has emerged as a way to diversify not just the proteome but the transcriptome overall," Reenan said.

In addition to Reenan, Lawrence, Savva, and St. Laurent, who is also affiliated with the St. Laurent Institute in Cambridge, Mass., the paper's other authors are Michael Tackett, Sergey Nechkin, Dimitry Shtokalo, and Philipp Kapranov of the St. Lawernce Institute, Denis Antonets of the State Research Center of Virology and Biotechnology in Russia, and Rachael Maloney, a Brown graduate now at the University of Massachusetts Medical School.

Reenan received funding from the Ellison Medical Research Foundation.


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