Friday, June 30, 2017

Researchers Have Identified Why Our Bodies Reject Transplanted Organs

Researchers have identified a previously hidden link between our immune system and the activation of cells that lead to organ rejection.

The discovery opens the way for scientists to develop new forms of treatment that could prevent immune responses from attacking life-saving tissue transplants without leaving the body so open to infection or cancer.

A type of receptor on bone marrow cells called signal regulatory protein alpha  (SIRPα) has been identified by scientists, as the body's watchdog responsible for dispatching the lymphocytes that target and destroy foreign cells.

In simple terms, whenever we take cells from another person's body and put them into our own, white blood cells see them as foreign and attempt to break them apart.

Not only is this bad news for the transplanted tissues, the swelling and fever that comes with the immune response isn't exactly a picnic either.

The mechanisms behind the white blood cell assault are fairly well understood – molecules on the outside of the cells belonging to what's called the major histocompatibility complex (MHC) identify them as different.

A type of white blood cell called a T lymphocyte has receptors on its surface capable of recognising unknown MHC proteins and responds by attempting to break up the foreign material they're attached to.

Lymphocytes aren't born knowing what's foreign and what's not; they need to be taught. Which is the job of another part of the immune system called a dendritic cell. 

Dendritic cells chew up foreign proteins and weave them into their own MHC before displaying them on their surface like a microscopic 'wanted' poster. They then migrate into the body's lymph nodes where they interact with the gun-slinging T lymphocytes.

Exactly how dendritic cells identify foreign materials, however, has been something of a mystery.

To learn more, the researchers studied the transplanted tissues in mice engineered to lack certain white blood cells such as their T lymphocytes.

They found that differences between the mice donor's and recipient's SIRPα gene correlated with the recipient's immune responses.

SIRPα isn't an unknown protein, already understood to bind to another protein called CD47 that triggers a range of immune responses in different white blood cells.

Joining the dots, the researchers believe CD47 on monocytes – the white blood cells that grow into dendritic cells – interact with SIRPα receptors on foreign tissues, setting off the entire ID check process.

"Once these cells are activated, then they turn around and activate the rest of the immune system, and that leads to the full-blown rejection of the organ," lead researcher.

"What we would like to do is sequence the SIRP-alpha gene in many humans who are donors and recipients of organ or bone marrow, and then ask whether a mismatch affects the outcome after transplantation."

A better match between the donor's and recipient's SIRPα genes could help reduce the risk of the immune response being sparked in the first place.



Even when organs are chosen to have closely matching MHC proteins, subtle differences can still produce immune responses. For example, one in 10 hearts and nearly one in 20 kidneys will show signs of being rejected by the body within the first year in spite of being declared compatible.

To avoid rejection, organ recipients need to be on treatments that suppress the immune system, not only making them prone to infection and cancer but often raising the risk of heart attacks and strokes by increasing blood pressure.

New treatments focusing on SIRPα might help reduce the doses or types of medications, and possibly help prolong the organ's life.

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Friday, February 19, 2016

THIS IS ONLY FOR INFORMATION, ALWAYS CONSULT YOUR PHYSICIAN BEFORE HAVING ANY PARTICULAR FOOD/ MEDICATION/EXERCISE/OTHER REMEDIES.

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If there's one fruit that can bear water better than all the rest, it's the coconut. Not only could this fruit save your life when stranded on an island (though, you'll likely never come to that), it could wonderfully sustain your body with some essential nutrients as well. The liquid found beneath its thick shell is pure, potable water we can easily get our hands on from most supermarkets today. It's tastier than regular water, and it comes with these amazing health benefits too:

1. Supports weight-Loss
Despite being tasty, coconut water is extremely low in fat, meaning that you can consume as much of it as you want, guilt-free. It will also make you feel fuller than the water you normally drink, because of its rich mineral content.

2. Improves your skin's health
Coconut water is one of the best things you could ever give to your skin, especially if you have acne or other blemishes. In fact, we come across various skin care products that contain extracts of coconut, and now we see why. To clear up and tone your skin, simply apply some coconut water. It can even show improvements in the skin if ingested orally, as it moisturizes it from within and eliminates excessive oils.

3. Helps in hangover recovery
If you've been out all night and have overdone it with alcohol, you'll find it relieving to know that you have a stock of coconut water handy in your home the next morning. It's the ultimate hangover remedy that will help settle your stomach and replace the essential electrolytes you lost in urination or vomiting.

4. Aids digestion
Coconut water is also helpful when it comes to the digestion process. If you occasionally feel that you're having difficulty digesting certain foods, you're likely to feel better by drinking this water. It prevents indigestion while also reducing the occurrence of acid reflux, due to its high concentration of fiber.
 
5. Promotes hydration
Not even sports and energy drinks are quite as good as coconut water in this regard. Compared to these popular drinks, coconut water contains double the amount of potassium (294 mg) and five times less the amount of sugar (5 mg natural sugar), per glass. Sodium count is only 25 mg, which is lower compared to the 41 mg found in sports drinks.

6. Controls blood pressure
Electrolytes in food may trigger high blood pressure if found in disproportionate amounts. Coconut water contains a balanced amount of these, making it a perfect natural controller of the body's blood pressure. A good way to reap this great benefit is to drink from this water every morning.

7. A rich source of nutrients
The most nutrient-rich water has got to be coconut water. The aforementioned electrolytes present in this water include calcium, magnesium, phosphorus, potassium and sodium - all of which are essential to the human body. It is also suitable for people with varying medical conditions.

8. Compatible with human blood
Its incomparable taste and superb health benefits aren't the only reasons why coconut water is so widely sought after. This amazing natural beverage can be used in emergencies, as a fast way of re-hydration. It is also commonly used in poorer, third-world countries as an exceptional life-saver.

What's the recommended healthy dosage?
According to experts from the Mayo Clinic, it is recommended that consuming large amounts of coconut water should be accompanied by an active lifestyle, since each eight-ounce serving contains 45 to 60 calories. While it's good to take this advice, there's no strict rule about its consumption.
Coconut water can be enjoyed as a stand-alone beverage or even combined with other liquid products. If you're extracting it from fresh coconuts, be sure to go for the ones that are young and green, rather than the mature ones with a hard brown shell. The more mature a coconut is, the less the supply of coconut water substance it will have. To test this, you can simply shake the fruit to find out how much liquid it contains.

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Wednesday, August 27, 2014

Radiation treatment of eye cancers using iodine-125

Generally, public believe that scientific and technological developments in the field of nuclear energy in India are mostly confined to the strategic area and to nuclear power generation. Medical, industrial and research uses of ionising radiation, which rose manifold over the past few decades have not got due recognition. 

At any moment, hospitals in many parts of the country are carrying out radiation treatment in one form or other on many thousands of cancer patients. 

BARC-made ‘BARC I-125 Ocu-Prosta seed’ is an ideal choice to treat retinoblastoma and uveal tract melanoma, two forms of rare eye cancers. 

Unlike conventional treatment which involves removal of eyes with the tumour to save the patient, successful radiation treatment saves the eye and retains vision. 

Since iodine -125 ( I-125) has a half life of about 60 days, scientists have enough time to transport the sources from its production site at BARC laboratories to the treatment centres at different parts of the country. 

Half life is the period in which radioactivity of a source reduces to half its original value. 

Modelling the eye

Specialists model the affected eye of each patient by using computerised tomography (CT) or magnetic resonance imaging (MRI) procedures. They identify the orientation of tumour borders relative to the surrounding healthy structures such as the optic nerve, centre of the eye etc by using ultrasound. 

Using the imaging data in a dedicated software programme, they arrive at the number of radioactive seeds, their activity and their placement on the plaque to produce the ideal dose distribution.
Physicians use this information to fix appropriate number of I-125 seeds on a plaque of suitable size using a tissue compatible auto-polymerising glue. 

By accurately positioning the plaque, they restrict irradiation to the tissue where it is needed.
I-125 which emits low energy gamma rays helps to spare healthy tissues; it reduces side effects and related morbidity. Generally, physicians carry out the treatment in 5 to 10 consecutive days.
BARC scientists have independently measured the dose distribution around I-125 seeds. 

It was truly a multidisciplinary programme. Radiopharmaceuticals Division, Laser Processing and Advanced Welding Section, Centre for Design and Manufacture, Radio metallurgy Division, Radiological Physics and Advisory Division and external agencies such as Hindustan Machine Tools Limited, Bangalore and Titan Industries Limited, Hosur, collaborated in many areas to prepare the seeds. 

Batch process

BARC scientists produce Iodine 125 in a batch process by irradiating 4 gramme of xenon-124 gas in the Dhruva reactor for a period of 15 days. Xenon -125 produced by the neutron interaction decays into I-125. 

After removing from the reactor, they keep each sample for 50 days to ensure that I-126, an unwanted radioisotope which is also produced during neutron irradiation decays to negligible values.
“The need for technically intense operations in the handling of gaseous targets in hostile radiation environments, the transformation of I-125 into a chemical form within acceptable radionuclide impurities, and adherence to radioactive concentrations of the final I-125 solution are some of the key technical challenges during the production of I-125,” BARC scientists wrote in Industrial & Engineering Chemistry Research (2012, 51, 8575-8582), a journal of the American Chemical Society. This paper vividly describes the marvellous engineering and design procedures and production processes. 

BARC-produced I-125 seeds are available in 50 micrometre thick titanium (titanium is bio-compatible) capsules of diameter 0.8mm and length 4.75 mm. Scientists subject these tiny seeds to a variety of tests mandated by the Atomic Energy Regulatory Board to ensure safety.
In September 2003, BARC supplied the first batch of I-125 seeds to Sankara Nethralaya to treat a four-year-old child suffering from retinoblastoma. 

As on May 31, 2014, BARC supplied 1124 seeds to treat 95 patients from India and neighbouring countries. Sankara Nethralaya, Chennai, PD Hinduja National Hospital, Shri Ramakrishna Institute of Oncology Research/Arvind Eye Hospital, Coimbatore are collaborating in the programme
The patients treated so far are too few to estimate cure rates, eye salvation rates etc, though some preliminary results amply demonstrate the potential value of this treatment modality.
I-125 seeds are also useful in treating prostate cancer. BARC supplied so far 370 I-125 seeds to PD Hinduja Hospital, Mumbai to treat five patients. For treating prostate cancer, physicians implant I-125 seeds permanently in patients. 

BARC's achievement

In spite of extensive demand for I-125 seeds worldwide, only a few companies produce I-125 seeds, as the manufacturing processes are too complicated. BARC has developed the technology from scratch. The Board of Radiation and Isotope Technology (BRIT) has plans to produce I-125 seeds commercially. It has great potential for internal use and hopefully for export. 

 THIS IS ONLY FOR INFORMATION, ALWAYS CONSULT YOU PHYSICIAN BEFORE HAVING ANY PARTICULAR FOOD/ MEDICATION/EXERCISE/OTHER REMEDIES.











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