Wednesday, January 22, 2020

Scientists discover how gene mutation causes autism and intellectual disability

Scientists at Northwestern University near Chicago have made a significant stride in the quest to understand autism and other intellectual disabilities. Researchers at the school published a study in Neuron outlining why a specific gene mutation causes intellectual disability and autism spectrum disorder in children. 

The study identifies a gene called Usp9x. Individuals with mutations in this gene grow fewer synapses in the brain. When fully functional, the gene protects a protein called akyrin-G that is responsible for growing an stabilyzing synapses. These synapses help cells communicate, and are especially important in developing brains in order for children to learn.

When the Usp9x gene is mutated, it can't protect the akyrin-G protein, which degrades and destabilizes. Scientists found that individuals with this specific gene mutation showed "developmental delay, difficulty learning, increased anxiety and hyperactivity."


“We have solved an important piece of the puzzle in understanding how this mutation causes intellectual disabilities and mental illness,” Peter Penzes, lead author for the study and director of Northwestern's Center for Autism and Neurodevelopment said in a statement.

The Usp9x gene also protects several other proteins that may cause intellectual disability and autism when degraded. Less severe mutations of the ankyrin-G protein have also been linked to the development of schizophrenia and bipolar disease.

According to the Centers for Disease Control and Prevention, 1 in 59 children in the U.S. is diagnosed with autism spectrum disorder (ASD). Individuals with ASD may have problems with social, emotional, and communication skills. Boys are four times more likely to be diagnosed than girls, and the disorder occurs across racial, ethnic and socioeconomic groups.

The CDC also says more people than ever are being diagnosed with ASD.  It's unclear whether the increase is due to a broadening definition of the disorder, better efforts in diagnosis or a true increase in the number of people with ASD. The organization believes the increase in diagnosis is due to a combination of the three factors.


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Wednesday, August 28, 2019

Pregnant? A diet with ghee & butter can protect your baby from Alzheimer’s disease

To all the moms to be, here’s some advice: don’t avoid ghee!

The advice given by our elders, especially by our grandparents is not worthless. Rather, it is backed by logic. We all must have seen our grannies suggesting high-fat diets to the pregnant women in the house. Well, scientists have found out the reason behind this.

A study has revealed that a high-fat diet during gestation guards the fetus against changes in the brain that may lead to Alzheimer’s disease later. See how smart our grannies are? Kudos to them!

But before we proceed further, let’s find out what Alzheimer’s exactly is?
Simply put, it’s a form of dementia which ultimately leads to memory loss and other cognitive abilities. The most common symptoms are memory loss, inability to learn new things, problem in writing, reading, calculating, restlessness, anger, depression, hallucination, and inability to combine muscle movements. And there is no cure.

Although the risk of this disease comes in old age, there is no harm in preventive care.

Yes, at an old age this situation can be terrifying. But let’s see what experts have found out.
Recently a study was published and we quote, “In humans, it has been known that individuals whose mothers develop Alzheimer’s disease after the age of 65 are at increased risk of also developing the disease around the same age,” said senior investigator.

Genetic factors transmitted by mothers to their offspring seem like an obvious explanation behind this phenomenon, but so far no genes have been identified that could explain the maternal transmission of Alzheimer’s disease.

To better understand the unique relationship between maternal Alzheimer’s disease and risk in her offspring, researchers looked at maternal fat intake specifically during the gestation period in mice engineered to develop Alzheimer’s disease.

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Pregnant mice were fed a high-fat diet from the beginning until the end of gestation. The moment offspring were born, mothers were switched to a regular diet, which was maintained during the lactation period. Offspring of these mothers were always kept at the same regular or standard diet throughout their life.

At 11 months of age, offspring underwent behavioural tests to assess learning ability and memory. “Surprisingly, we’ve found that animals from mothers fed a high-fat diet during gestation had better learning and memory skills than their counterparts born to mothers fed a regular diet during gestation,” the Dr. said.

The observed improvements in memory and learning were associated with the maintenance of good synaptic integrity. In fact, offspring from mothers exposed to a high-fat diet had significant improvement of synapse function when compared with offspring from mothers on a regular diet. 

Synapses, the places where neurons come together to relay information, play a vital role in learning and memory formation.

If expecting, then don’t hesitate the high-fat intake as it’s not just good for you but for your kid as well.

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Thursday, April 18, 2019

Scientists revive brain funciton in dead pigs

Scientists have managed to restore cell function in the brains of pigs hours after they died, in a breakthrough that experts said threw into question the very notion of what makes animals of even humans--alive.

Authors said their research could one day be used to help treat victims of heart attacks and strokes and unravel the mysteries of brain trauma.


In human and large mammal brains, cells crucial for neural function begin to degrade as soon as blood supply is cut- a process long considered to be irreversible.


But the findings of the trial, show that the brains of pigs can have their blood flow and cell function restored even hours after death.


The team used the brains of 32 pigs that had been slaughtered for food and discarded, without blood or glucose flow for 4 hours each.


Then, using a tissue support system that pumps a liquid designed to mimic blood through organs, they rehydrated the brains for a further 6 hours.


Some brains received the patented life-support solution and others were given a control substance.
The results were astonishing: the brains that recived the artificial blood had basic cell function restored. Their blood vessel structure was revived, and the team even observed some localised processes- including in synapses and immune responses- flickering back to life.


Those that received the control solution turned within hours to what researchers described as something a bit like yoghurt.


I was tremendously surprised, a sresearcher and lead study author said.


We were surprised how well the structure was preserved. We found that cell death is reduced, which is very exciting and promising.


The main conceptual finding is this: cell death in the brain occurs across a longer time period than we previously thought , added the author.


The team stressed that they saw no higher level functional activity, such as electric signalling associated with consciousness in the revived brains.


That is a clinical sign that the brain is alive, and we never found it, he said. This is not a living brain, it is a cellularly active brain.


Had any such activity been detected, the team said they would have had to deliver anaesthetic to the brains to null any pain- despite then having been dead for hours.


If some activity shows up that indicated consciousness, we would have to stop the experiment, said a researcher.


This would be unique: inducing consciousness in an organ that's not connected to any living being.
The findings suggest that scientists may have under appreciated the brain's capacity for self-restoration after a patient is declared brain dead.


But for experts invited to comment on the study, it raised deeper philosophical and ethical questions.
Writing in a linked editorial, a Prof. of law and philosophy said that the study throws into question long-standing assumptions over what makes an animal or a human alive.


She said researchers had inadvertently created an ethical grey area where the pigs used were not alive, but not completely dead.


A Prof. of medical ethics said that the study could have vital implications for future brain research.
This research reminds us that death is less an event, and more of a process that occurs over time, he said.


Cells within the human organism may be alive for some period of time after the person has died.


A researcher said the team planned to use their support system on dead brains for longer periods of time in order to see how the cells react.


We could potentially get some insight into how these brains could be saved, he said.


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Tuesday, January 08, 2019

Hormone released in exercise delay Alzheimer’s

Physical exercise can help counter the loss of memory caused by Alzheimer’s as well as delay the onset of the most common type of dementia.

Researchers  established a link between levels of irisin, a hormone produced by the body during exercise, and the development of the progressive disease.
The tests, carried out on rats with Alzheimer’s, showed low levels of irisin in the brains of Alzheimer’s sufferers, and a reversal in memory loss when irisin levels were boosted through physical exercise.

The study showed that the levels of this hormone are, in fact, decreased in the brains of patients with Alzheimer’s, says a professor.

In addition, the team showed that by boosting the levels of the hormone, memory improves.

By showing that irisin is an important mediator of the beneficial effects of exercise, the findings indicate the hormone can be a novel agent capable of opposing synapse failure and memory impairment, says the study.

The research also reinforces the importance of physical activity in preventing memory loss and brain diseases, including Alzheimer’s, says the report.

Alzheimer’s is a degenerative disease that erodes memory, eventually impairing language, reasoning and other mental functions.

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Thursday, December 06, 2018

Artificial synapses made from nanowires

Scientists have produced a memristive element made from nanowires that functions in much the same way as a biological nerve cell. The component is able to save and process information, as well as receive numerous signals in parallel. The resistive switching cell made from oxide crystal nanowires is thus an ideal candidate for use in building bioinspired "neuromorphic" processors, able to take over the diverse functions of biological synapses and neurons.

Computers have learned a lot in recent years. Thanks to rapid progress in artificial intelligence they are now able to drive cars, translate texts, defeat world champions at chess, and much more besides. In doing so, one of the greatest challenges lies in the attempt to artificially reproduce the signal processing in the human brain. In neural networks, data are stored and processed to a high degree in parallel. Traditional computers, on the other hand, rapidly work through tasks in succession and clearly distinguish between the storing and processing of information. As a rule, neural networks can only be simulated in a very cumbersome and inefficient way using conventional hardware.

Systems with neuromorphic chips that imitate the way the human brain works offer significant advantages. These types of computers work in a decentralised way, having at their disposal a multitude of processors, which, like neurons in the brain, are connected to each other by networks. If a processor breaks down, another can take over its function. What is more, just like in the brain, where practice leads to improved signal transfer, a bioinspired processor should have the capacity to learn.

"With today's semiconductor technology, these functions are to some extent already achievable. These systems are, however, suitable for particular applications and require a lot of space and energy," says a Dr. Our nanowire devices made from zinc oxide crystals can inherently process and even store information, and are extremely small and energy efficient."

For years, memristive cells have been ascribed the best chances of taking over the function of neurons and synapses in bioinspired computers. They alter their electrical resistance depending on the intensity and direction of the electric current flowing through them. In contrast to conventional transistors, their last resistance value remains intact even when the electric current is switched off. Memristors are thus fundamentally capable of learning.

In order to create these properties, scientists used a single zinc oxide nanowire, produced by their colleagues from the polytechnic university. Measuring approximately one 10,000th of a millimeter in size, this type of nanowire is over 1,000 times thinner than a human hair. The resulting memristive component not only takes up a tiny amount of space, but is also able to switch much faster than flash memory.

Nanowires offer promising novel physical properties compared to other solids and are used among other things in the development of new types of solar cells, sensors, batteries and computer chips. Their manufacture is comparatively simple. Nanowires result from the evaporation deposition of specified materials onto a suitable substrate, where they practically grow of their own accord.

In order to create a functioning cell, both ends of the nanowire must be attached to suitable metals, in this case platinum and silver. The metals function as electrodes, and in addition, release ions triggered by an appropriate electric current. The metal ions are able to spread over the surface of the wire and build a bridge to alter its conductivity.

Components made from single nanowires are, however, still too isolated to be of practical use in chips. Consequently, the next step being planned by the  researchers is to produce and study a memristive element, composed of a larger, relatively easy to generate group of several hundred nanowires offering more exciting functionalities.

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n. As a rule, neural networks can only be simulated in a very cumbersome and inefficient way using conventional hardware.
Systems with neuromorphic chips that imitate the way the works offer significant advantages. These types of computers work in a decentralised way, having at their disposal a multitude of processors, which, like neurons in the brain, are connected to each other by networks. If a processor breaks down, another can take over its function. What is more, just like in the brain, where practice leads to improved signal transfer, a bioinspired processor should have the capacity to learn.
"With today's semiconductor technology, these functions are to some extent already achievable. These systems are, however, suitable for particular applications and require a lot of space and energy," says Dr. Ilia Valov from Forschungszentrum Jülich. "Our nanowire devices made from zinc oxide crystals can inherently process and even store information, and are extremely small and energy efficient."
For years, memristive cells have been ascribed the best chances of taking over the function of neurons and synapses in bioinspired computers. They alter their electrical resistance depending on the intensity and direction of the electric current flowing through them. In contrast to conventional transistors, their last resistance value remains intact even when the electric current is switched off. Memristors are thus fundamentally capable of learning.
In order to create these properties, scientists at Forschungszentrum Jülich and RWTH Aachen University used a single zinc oxide nanowire, produced by their colleagues from the polytechnic university in Turin. Measuring approximately one 10,000th of a millimeter in size, this type of nanowire is over 1,000 times thinner than a human hair. The resulting memristive component not only takes up a tiny amount of space, but is also able to switch much faster than flash memory.
Nanowires offer promising novel physical properties compared to other solids and are used among other things in the development of new types of solar cells, sensors, batteries and computer chips. Their manufacture is comparatively simple. Nanowires result from the evaporation deposition of specified materials onto a suitable substrate, where they practically grow of their own accord.
In order to create a functioning cell, both ends of the nanowire must be attached to suitable metals, in this case platinum and silver. The metals function as electrodes, and in addition, release ions triggered by an appropriate electric current. The metal ions are able to spread over the surface of the wire and build a bridge to alter its conductivity.
Components made from single are, however, still too isolated to be of practical use in chips. Consequently, the next step being planned by the Jülich and Turin researchers is to produce and study a memristive element, composed of a larger, relatively easy to generate group of several hundred nanowires offering more exciting functionalities.


Read more at: https://phys.org/news/2018-12-artificial-synapses-nanowires.html#jCp

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Saturday, September 08, 2018

Artificial synaptic device simulating the function of human brain

A research team has succeeded in developing an artificial synaptic device that mimics the function of the nerve cells (neurons) and synapses that are response for memory in human brains.

Synapses are where axons and dendrites meet so that neurons in the human brain can send and receive nerve signals; there are known to be hundreds of trillions of synapses in the human brain.

This chemical synapse information transfer system, which transfers information from the brain, can handle high-level parallel arithmetic with very little energy, so research on artificial synaptic devices, which mimic the biological function of a synapse, is under way worldwide.

The research team developed a high-reliability artificial synaptic device with multiple values by structuring tantalum oxide -- a trans-metallic material -- into two layers of Ta2O5-x and TaO2-x and by controlling its surface.

The artificial synaptic device developed by the research team is an electrical synaptic device that simulates the function of synapses in the brain as the resistance of the tantalum oxide layer gradually increases or decreases depending on the strength of the electric signals. It has succeeded in overcoming durability limitations of current devices by allowing current control only on one layer of Ta2O5-x.

In addition, the research team successfully implemented an experiment that realized synapse plasticity, which is the process of creating, storing, and deleting memories, such as long-term strengthening of memory and long-term suppression of memory deleting by adjusting the strength of the synapse connection between neurons.

The non-volatile multiple-value data storage method applied by the research team has the technological advantage of having a small area of an artificial synaptic device system, reducing circuit connection complexity, and reducing power consumption by more than one-thousandth compared to data storage methods based on digital signals using 0 and 1 such as volatile CMOS (Complementary Metal Oxide Semiconductor).

The high-reliability artificial synaptic device developed by the research team can be used in ultra-low-power devices or circuits for processing massive amounts of big data due to its capability of low-power parallel arithmetic. It is expected to be applied to next-generation intelligent semiconductor device technologies such as development of artificial intelligence (AI) including machine learning and deep learning and brain-mimicking semiconductors.

Dr. said, "This research secured the reliability of existing artificial synaptic devices and improved the areas pointed out as disadvantages. We expect to contribute to the development of AI based on the neuromorphic system that mimics the human brain by creating a circuit that imitates the function of neurons."

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