Sunday, January 26, 2020

Scientists Have Created an Artificial Retina Implant That Could Restore Vision to Millions

Scientists have developed a retinal implant that can restore lost vision in rats, and are planning to trial the procedure in humans later this year.

The implant, which converts light into an electrical signal that stimulates retinal neurons, could give hope to millions who experience retinal degeneration – including retinitis pigmentosa – in which photoreceptor cells in the eye begin to break down, leading to blindness.


The retina is located at the back of the eye, and is made up of millions of these light-sensitive photoreceptors. But mutations in any one of the 240 identified genes can lead to retinal degeneration, where these photoreceptor cells die off, even while the retinal neurons around them are unaffected.

Because the retinal nerves remain intact and functional, previous research has looked at treating retinitis pigmentosa with bionic eye devices that stimulate the neurons with lights, while other scientists have investigated using CRISPR gene editing to repair the mutations that cause blindness.

Now, a team led by the Italian Institute of Technology has developed a new approach, with a prosthesis implanted into the eye that serves as a working replacement for a damaged retina.

The implant is made from a thin layer of conductive polymer, placed on a silk-based substrate and covered with a semiconducting polymer.

The semiconducting polymer acts as a photovoltaic material, absorbing photons when light enters the lens of the eye. When this happens, electricity stimulates retinal neurons, filling in the gap left by the eye's natural but damaged photoreceptors.


To test the device, the researchers implanted the artificial retina into the eyes of rats bred to develop a rodent model of retinal degeneration – called Royal College of Surgeons (RCS) rats.

After the rats had healed from the operation 30 days later, the researchers tested how sensitive they were to light – called the pupillary reflex – compared to healthy rats and untreated RCS rats.

At the low intensity of 1 lux – a bit brighter than the light from a full moon – the treated rats weren't much more responsive than untreated RCS rats.

But as the light increased to around 4–5 lux – about the same as a dark twilight sky – the pupillary response of treated rats was largely indistinguishable from healthy animals.

When they retested the rats at six and 10 months after surgery, the implant was still effective in the rats – although all the rats in the tests (including the treated rats, the healthy animals, and the RCS controls) had suffered minor vision impairment due to being older.

Using positron emission tomography (PET) to monitor the rats' brain activity during the light sensitivity tests, the researchers saw an increase in the activity of the primary visual cortex, which processes visual information.

Based on the results, the team concludes that the implant directly activates "residual neuronal circuitries in the degenerate retina", but further research will be required to explain exactly how the stimulation works on a biological level.

"[T]he detailed principle of operation of the prosthesis remains uncertain," they explain in their paper.

While there are no guarantees that the results seen in rats will translate to people, the team is hopeful that it will – and from the sounds of things, it won't be too long until we find out.

"We hope to replicate in humans the excellent results obtained in animal models," says one of the researchers, ophthalmologist Grazia Pertile from the Sacred Heart Don Calabria in Negrar, Italy.

"We plan to carry out the first human trials in the second half of this year and gather preliminary results during 2018. This [implant] could be a turning point in the treatment of extremely debilitating retinal diseases."

The findings are reported in Nature Materials.

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Friday, February 08, 2019

Novel pill could replace injections to deliver insulin

Researchers have developed a drug capsule that could be used to deliver oral doses of insulin, potentially replacing injections for patients with Type-2 diabetes, says a new study.
About the size of a blueberry, the capsule contains a single and small needle made of compressed insulin, which is injected after the capsule reaches the stomach. 

The study showed that the capsule could deliver enough insulin to lower blood sugar to levels comparable to those produced by injections given through skin. They also demonstrated that the device can be adapted to deliver other protein drugs.

"We are really hopeful that this new type of capsule could someday help diabetic patients and perhaps anyone who requires therapies that can now only be given by injection or infusion," said a researcher.

The tip of the needle is made of nearly 100 per cent compressed, freeze-dried insulin. 

When the capsule is swallowed, water in the stomach dissolves the sugar disk, releasing the spring and injecting the needle into the stomach wall.

The stomach wall has no pain receptors, so the patients would not be able to feel the prick of the injection. To ensure that the drug is injected into the stomach wall, the researchers designed their system so that no matter how the capsule lands in the stomach, it can orient itself so the needle is in contact with the lining of the stomach.

The findings, published in the journal, showed that the researchers could successfully deliver up to 300 micrograms of insulin. 

More recently, they have been able to increase the dose to 5 milligrams, which is comparable to the amount that a patient with Type-2 diabetes would need to inject.

Furthermore, no adverse effects from the capsule was found, which is made from biodegradable polymer and stainless steel components.

Importantly, this type of drug delivery could be useful for any protein drug that normally has to be injected, such as immuno-suppressants used to treat rheumatoid arthritis or inflammatory bowel disease and may also work for nucleic acids such as DNA and RNA, according to the researchers.


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Friday, September 29, 2017

Why The Science World Is Freaking Out Over This Answer to Antibiotic Resistance

A 25-year-old student has come up with a way to fight drug-resistant superbugs without antibiotics.

The new approach has so far only been tested in the lab and on mice, but it could offer a potential solution to antibiotic resistance, which is now getting so bad that the United Nations recently declared it a "fundamental health" to global health.

Antibiotic-resistant bacteria already kill around 700,000 people each year, but a recent study suggests that number could rise to around 10 million by 2050. 

In addition to common hospital superbug, methicillin-resistant Staphylococcus aureus (MRSA), scientists are now also concerned that gonorrhoea is about to become resistant to all remaining drugs.  

But  a 25-year-old PhD student  has developed a star-shaped polymer that can kill six different superbug strains without antibiotics, simply by ripping apart their cell walls.

"We've discovered that [the polymers] actually target the bacteria and kill it in multiple ways,". "One method is by physically disrupting or breaking apart the cell wall of the bacteria. This creates a lot of stress on the bacteria and causes it to start killing itself."

The research has been hailed by scientists in the field as a breakthrough that cold change the face of modern medicine.

Before we get too carried away, it's still very early days. So far, she has only tested her star-shaped polymers on six strains of drug-resistant bacteria in the lab, and on one superbug in live mice.

But in all experiments, they've been able to kill their targeted bacteria - and generation after generation don't seem to develop resistance to the polymers.

The polymers - which they call SNAPPs, or structurally nano-engineered antimicrobial peptide polymers - work by directly attacking, penetrating, and then de-stabilising the cell membrane of bacteria.

Unlike antibiotics, which 'poison' bacteria, and can also affect healthy cells in the area, the SNAPPs that Lam has designed are so large that they don't seem to affect healthy cells at all. 

"With this polymerised peptide we are talking the difference in scale between a mouse and an elephant,""The large peptide molecules can't enter the [healthy] cells."

While the results are positive so far, it's too early to get excited about what this could mean for humans, says Cyrille Boyer from the University of New South Wales in Australia, who wasn't involved in the research. 

"The main advantage seems to be they can kill bacteria more effectively and selectively [than other peptides]", before adding that the team is a long way off clinical applications.

But what's awesome about the new project is that, while other teams are looking for new antibiotics,  she has found a completely different approach. And it could make all the different in the coming post-antibiotic world. That's what she's hoping, anyway. 

"For a time, I had to come in at 4am in the morning to look after my mice and my cells," she told. "I wanted to be involved in some kind of research that would help solve problems ... I really hope that the polymers we are trying to develop here could eventually be a solution."

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Friday, May 23, 2014

Nasal spray may deliver drugs to brain

Researchers have said that when it comes to brain diseases pills are actually an extremely ineffecient way to deliver drugs to the brain.

Massimiliano Di Cagno, assistant professor at the Department of Physics, Chemistry and Pharmacy, University of Southern Denmark, said people with brain diseases are often given huge amounts of unnecessary drugs. During a long life, or if you have a chronic disease, this may become problematic for your health.

He and his colleagues at University of Southern Denmark and Aalborg University have turned their attention to the nose - specifically the nasal wall and the slimy mucosa that covers it.

As we know from e.g. cocaine addicts, substances can be assimilated extremely quickly and directly through the nose. But many medical substances, however, need help to be transported through the nasal wall and further on to the relevant places in the brain.

The vehicles for drug delivery through the nose are typically made of so called polymers. A polymer is a large molecule composed of a large number of repeats of one or more types of atoms or groups of atoms bound to each other. Polymers can be natural or synthetic, simple or complex.

The study has been published in the International Journal of Pharmaceutics.
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Friday, May 03, 2013

Now, `oil for the joints` to help soothe joint pain

A new joint lubricant could bring longer lasting relief to millions of osteoarthritis sufferers, say researchers who developed it.

The new synthetic polymer supplements synovial fluid, the natural lubricant in joints, and works better than comparable treatments currently available.

According to the team, the best fluid supplement now available offers temporary symptom relief but provides inadequate lubrication to prevent further degradation of the cartilage surfaces that cushion the joint.

To achieve both objectives, an orthopedic surgeon  and a team of  chemistry and engineering students, fellows and clinicians have advanced the first synthetic synovial fluid.

The most common form of joint disease and a leading cause of disability in the elderly, osteoarthritis (OA) affects about 200 million people worldwide.

Characterized by pain and swelling, the disease emerges in hand, hip, knee and other commonly used joints where degradation of cartilage and synovial fluid results in bone-on-bone abrasion. Treatments range from anti-inflammatory drugs to total joint replacement.

While there`s no cure for OA, one treatment-injection of a polymer to supplement synovial fluid in the joint-promises to relieve symptoms and slow the disease`s progression by reducing wear on cartilage surfaces.

From our studies, we know our biopolymer is a superior lubricant in the joint, much better than the leading synovial fluid supplement, and similar to healthy synovial fluid.

When we used this new polymer, the friction between the two cartilage surfaces was lower, resulting in less wear and surface-to-surface interaction. It`s like oil for the joints.

Originally produced last year for another study, the new polymer mimics some of the properties of natural polysaccharides, large compounds that link repetitive sequences of sugar molecules in a chainlike pattern.


Another advantage of the biopolymer is its large molecular weight or size, which prevents it from seeping out of the joint, enabling longer lasting cartilage protection. Unlike the leading synovial fluid supplement, which lasts one or two days, the new polymer remains in the joint for more than two weeks.

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