Showing posts with label baby gist. Show all posts
Showing posts with label baby gist. Show all posts

Saturday, August 11, 2012

Babies born naturally 'have higher IQs than those delivered by caesarean section'

Babies born naturally may have higher IQs than those delivered by caesarean section, new research claims. According to scientists, when women give birth naturally there are higher levels of a special protein in babies’ brains that helps boost intelligence levels as they develop. 

Scientists at Yale University in the US say the increased levels of the protein, called UCP2, in babies born naturally could help foster their short and long term memories – key components of the human IQ – as they grow up. 

They made the discovery after studying the hippocampal region in the brains of mice born naturally and by caesarean. Mice born by C-section were found to have lower levels of UCP2 and, as a result, suffered 'impaired adult behaviours'. 

UCP2 has already been credited with helping to improve the chances of newborns breastfeeding. The findings come at a time when a deal of controversy surrounds C-sections. Critics have said that C-sections can increase the risk of internal bleeding and can lead to problems to do with fertility in the future.

 They think that celebrity mothers, such as Victoria Beckham and Zoe Ball, are to blame for more women opting for them. Around one quarter of babies in NHS hospitals are delivered by caesarean, although the figure is thought to be as high as 60 per cent in private clinics. 

 Study author Dr Tamas Horvath, whose findings are published in journal PLoS ONE said: 'These results reveal a potentially critical role of UCP2 in the proper development of brain circuits and related behaviours. 'The increasing prevalence of C-sections driven by convenience rather than medical necessity may have a previously unsuspected lasting effect on brain development and function in humans as well.'

 She added: 'We found that natural birth triggered UCP2 expression in the neurons located in the hippocampal region of the brain. 'This was diminished in the brains of mice born via C-section. Knocking out the UCP2 gene or chemically inhibiting UCP2 function interfered with the differentiation of hippocampal neurons and circuits, and impaired adult behaviours related to hippocampal functions.'

Thursday, May 31, 2012

The Same Gene That Makes Kids Grow Too Fast Can Also Cause Stunted Growth

UCLA geneticists have identified the mutation responsible for IMAGe syndrome, a rare disorder that stunts infants' growth. The twist? The mutation occurs on the same gene that causes Beckwith-Wiedemann syndrome, which makes cells grow too fast, leading to very large children. Published in the journal Nature Genetics, the UCLA findings could lead to new ways of blocking the rapid cell division that allows tumors to grow unchecked. 

The discovery also offers a new tool for diagnosing children with IMAGe syndrome, which until now has been difficult to identify accurately. The discovery holds special significance for principal investigator Dr. Eric Vilain, a professor of human genetics, pediatrics and urology at the David Geffen School of Medicine at UCLA. Nearly 20 years ago, as a medical resident in his native France, Vilain cared for two boys, ages 3 and 6, who were dramatically short for their ages. 

Though unrelated, the children shared a mysterious malady marked by minimal fetal development, stunted bone growth, sluggish adrenal glands, and undersized organs and genitals. "I never found a reason to explain these patients' unusual set of symptoms," said Vilain, who also directs the UCLA Institute for Society and Genetics. 

"I've been searching for the cause of their disease since 1993." When Vilain joined UCLA as a genetics fellow, the two cases continued to intrigue him. His UCLA mentor at the time, geneticist Dr. Edward McCabe, recalled a similar case from his previous post at Baylor College of Medicine. The two of them obtained blood samples from the three cases and analyzed the patients' DNA for mutations in suspect genes but uncovered nothing. 

 Vilain and McCabe approached the Journal of Clinical Endocrinology and Metabolism and in 1999 published the first description of the syndrome, which they dubbed IMAGe, an acronym of sorts for the condition's symptoms: intrauterine growth restriction, metaphyseal dysplasia, adrenal hypoplasia and genital anomalies. 

 Over the next decade, about 20 cases were reported around the world. But the cause of IMAGe syndrome remained a mystery. Help arrived unexpectedly last year, when Vilain received an email from Argentinian physician Dr. Ignacio Bergada, who had unearthed the 1999 journal article. He told Vilain about a large family he was treating in which eight members suffered the same symptoms described in the study.

 All of the family members agreed to send their DNA samples to UCLA for study. Vilain realized that he had stumbled across the scientific equivalent of winning the lottery. He assembled a team of UCLA researchers to partner with Bergada and London endocrinologist Dr. John Achermann. "At last, we had enough samples to help us zero in on the gene responsible for the syndrome," Vilain said. "Sequencing technology had also advanced in sophistication over the past two decades, allowing us to quickly analyze the entire family's DNA samples." 

 Vilain's team performed a linkage study, which identifies disease-related genetic markers passed down from one generation to another. The results steered Vilain to a huge swath of Chromosome 11. The UCLA Clinical Genomics Center performed next-generation sequencing, a powerful new technique that enabled the scientists to scour the enormous area in just two weeks and tease out a slender stretch that held the culprit mutation.

 The team also uncovered the same mutation in the original three cases described by Vilain and McCabe in 1999. A word of explanation: Located on 23 pairs of chromosomes, human genes hold the codes for making cellular proteins, the building blocks for our bodies. Most of the human diseases resulting from mutations in a single gene can be blamed on changes in a protein-coding sequence. By scanning the entire exome, or protein-coding factory of the genome, clinical geneticists can interpret every gene variant to track down the mutations that produce a patient's disease and rapidly reach a clear-cut diagnosis.

 UCLA is one of only three academic centers in the nation that offers next-generation sequencing to the public for clinical use. "We discovered a mutation in a tiny sliver of the chromosome that appeared in every family member affected by IMAGe syndrome," Vilain said. "This was a big step forward. Now we can use gene sequencing as a tool to screen for the disease and diagnose children early enough for them to benefit from medical intervention.

 "We were a little surprised, because the mutation was located on a famous gene recognized for causing Beckwith-Wiedemann syndrome," he added. "The two diseases are polar opposites of each other." Children born with Beckwith-Wiedemann syndrome - named for the two doctors who discovered it - grow very large, with big adrenal glands, elongated bones and oversized internal organs. Because their cells grow so fast, one in five children with the disorder die of cancer at a young age. 

The disease appears in approximately one out of 15,000 births. "Finding opposite functions in the same gene is a rare biological phenomenon," Vilain emphasized. "When the mutation appeared in the slim section we identified, the infant developed IMAGe syndrome. If the mutation fell anywhere else in the gene, the child was born with Beckwith-Wiedemann. That's really quite remarkable." IMAGe syndrome patients also tend to die young, due to poor adrenal activity, which physicians treat with hormone-replacement therapy.

 The findings proved that Vilain and his colleagues had identified the correct mutation, bringing his 20-year odyssey to a successful end. "Our findings leave no doubt that this set of symptoms is a true syndrome and not just a figment of my imagination," Vilain said. "What makes this special for me is finally being able to unravel what caused the life-threatening disease in the two patients I saw nearly 20 years ago," he added. "As a clinical scientist, the reward for successful research is uncovering new clues that allow us to help patients feel better by improving their medical care."

Tuesday, April 3, 2012

Ghost white: Baby born with 'no blood'




Smiling, healthy and six months old, Olivia Norton is understandably the apple of her mother’s eye.

Yet when she was born doctors were stunned by her ‘snow-white’ appearance – because she had no blood in her body.

A rare condition meant her blood had run directly back into her mother’s circulatory system.

The newborn had such a low count of haemoglobin – the chemical which carries oxygen in red blood cells – that it could not officially be classed as blood.

She was given less than two hours to live but survived thanks to emergency transfusions which transformed her skin to pink.


Yesterday her mother told of her shock at a condition so unusual that it will be written into medical text books. ‘Olivia was my first baby, so I didn’t really know what to expect – but I certainly didn’t think she’d be that colour,’ said 31-year-old Louise Bearman, a barrister’s clerk from Witham, Ess*x.

‘I’ll never forget what the doctor’s notes said – “white and floppy”.’

Miss Bearman said she and her partner Paul Norton, 36, noticed Olivia had abruptly stopped kicking six weeks before she was due to be born.

After three days without movement they went to Broomfield Hospital, in Chelmsford, where doctors ordered an emergency caesarean.

The 5lb 3oz infant had blood haemoglobin levels of only three, compared with a normal 18. She was given two transfusions in the special care baby unit.


The condition is known as a fetomaternal haemorrhage, with severe cases occurring in one in 5,000 pregnancies. It can be spontaneous or as a result of trauma.

Neonatal nurse Sharon Pilgrim said she had never heard of such low haemoglobin levels. ‘It was a miracle Olivia survived. She was incredibly pale and had difficulties breathing.’

Miss Bearman added: ‘It was amazing when they put the blood in Olivia and she slowly turned pink. The hospital staff were amazing. They called Olivia the “miracle baby” and said if I hadn’t come in for treatment she would not have survived.

‘I want mums to realise how important a baby’s movement is in checking they are healthy. You have to trust your maternal instinct.’


Sunday, November 27, 2011

Why fish makes the best baby food - it halves wheezing in young children

Eating salmon and cod could prevent the onset of breathing problems among young children according to scientists.

A study revealed that babies who were fed fish before they were nine months old were half as likely to report wheezing later in life compared to those who weren't.

It is hoped the findings will encourage parents to reassess their children's eating habits.

Each child's diet was assessed along with their health at six months, 12 months and four and a half years.

This is the latest piece of research, set to be published in the December issue of the Acta Paediatrica journal, lauding the positive effects of fish for children.

The NHS recommends that adults should include at least two portions of fish in their diet a week as it is a good source of protein, vitamins and rich in omega-3 fatty acids that can benefit the heart.
In 2009 another team of Swedish researchers discovered that babies whose mothers consumed fish oil during pregnancy were 16 per cent less likely to develop eczema and a 13 per cent less likely to develop food allergies.

In the UK, 5.4 million people are currently receiving treatment for asthma - a condition more common in women than men.


 
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