Monday, November 11, 2019

Study finds way to make medical equipment infection-free

Researchers used nanoparticles to identify the presence of deadly microbes present on medical devices, like catheters and make them infection-free.This study was conducted as an interdisciplinary collaboration between microbiologists, immunologists and engineers led by  a Dr.

Candida albicans, a commonly found microbe, can turn deadly when it colonises on devices such as catheters implanted in the human body.


While commonly found in healthy people, this microbe can become a serious problem for those who are seriously ill or immune-suppressed.


The microbe forms a biofilm when it colonises using for e.g., a catheter as a source of infection. It then spreads into the bloodstream to infect internal organs.


The mortality rate in some patients populations can be as high as 30-40 % even if you treat people. When it colonises, its highly resistant to anti-fungal treatments, he said.


The idea is that if you can diagnose this infection early, then you can have a much bigger chance of treating it successfully with current anti-fungal drugs and stopping a full-blown systemic infection, but our current diagnostic methods are backing. A biosensor to detect early stages of colonisation would be highly beneficial, added the Prof.


The researchers investigated the effects of organosilica nanoparticles of different sizes, concentrations and surface coatings to see whether and how they interacted with both C. Albicans and with immune cells in the blood.


They found that the nanoparticles bound to fungal cells, but were non-toxic to them.


They don't kill the microbe, but we can make an anti-fungal particle by binding them to a known anti-fungal drug, the Prof. said.


The researchers also demonstrated that the particles associated with neutrophils-human white blood cells in a similar way as they did with C. Albicans, remaining noncytotoxic towards them.


We've identified that these nanoparticles and by inference a number of different types of nanoparticles can be made to be interactive with cells of interest, the Dr. said.


We can actually change the surface properties by attaching different things, thereby we can really change the interactions they have with these cells- that's quite significant, added the Dr.


The Dr. said while nanoparticles were being investigated in the treatment of cancer, the use of nano-particle-based technologies in infectious diseases lags behind the cancer nano-medicine field, despite the great potential for new treatments and diagnostics.


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Monday, July 29, 2019

Pain sensing nerves help fight skin infection

A recent discovery revealed that pain-sensing nerves help fight skin infections and prevent its spread, suggesting a new type of immunity. "These pain-sensing nerves can detect pathogens, and for the first time, we've shown that they activate an immune response and also signal protective immunity in sites adjacent to the infection. This demonstrates that the immune and nervous systems work synergistically for host defence. These findings also could have important implications for developing more specific therapies for autoimmune skin diseases like psoriasis," said the senior author of the study.

Until about a decade ago, the pain was thought to have evolved as a way for your body to tell you to stay away from a particular stimulus or to signal a problem with its function, like an injury. More recently, however, researchers have shown that it may play an important role in immunity against some pathogens.

In the study, the first author collaborated with neurobiology professors and pain experts, to develop an optogenetic mouse model where pain-sensing neurons in the skin could be activated by shining blue light.

They first showed that just activating these neurons released a small protein called CGRP, which recruited different types of immune cells to the site. This suggested that neurons detecting skin pathogens on their own kickstart an immune response even before sentry immune cells could.

Then in the same mouse model, they infected the animals with either Candida albicans, a fungus that causes candidiasis, commonly known as thrush, or Staphylococcus aureus, a common bacterium that can turn deadly under certain conditions.

Using optogenetics and chemical nerve blockers, the researchers showed through a series of elegant experiments that when the fungus infected the skin at one location, the nerves not only detected and initiated an immune response to fight the infection but also sent a signal toward the spinal cord.
The researchers called this new nerve-driven protective mechanism "anticipatory immunity."

"The advantage of involving the nervous system is that it can communicate information across space in a span of milliseconds, compared to hours or days for the immune cells to do the same function. It's the difference between sending Paul Revere to warn of the British advance and sending a telegram to do the same," said the first author of the study.

He said that while it remains to be seen how the findings translate to humans, they have interesting implications for autoimmune diseases of barrier tissues like the skin or gut.

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