Thursday, January 16, 2020

Using CRISPR to switch off pain gene becomes a possibility with new study

A path-breaking study reports success in disabling an important gene that is responsible for inducing the sensation of pain. This discovery could be of invaluable assistance to millions of patients with chronic pain, helping them to manage their condition better and live with a vastly better quality of life.

The tool - CRISPR

The gene therapy was brought out by scientists from a California startup called Navega Therapeutics. The basis of this technique is gene therapy, making planned and selective alterations in the patient’s DNA to repress the expression of a gene that is responsible for sending the pain signals up the nervous network in the spine.

The tool used to alter the DNA is the powerful CRISPR editor. This has already proved its worth in a host of laboratory gene-editing procedures, but clinically, its use has largely been restricted to rare inherited medical conditions.

For instance, last month, a patient suffering from sickle cell anemia due to the production of abnormal hemoglobin because of a gene defect was successfully reverted to having normal hemoglobin using this method.

CRISPR functions by means of homing molecules that identify and zoom in on a designated or target gene to be edited. Once identified, the target gene is removed neatly, the normal copy is inserted, and the cut ends spliced with the inserted sequence. In effect, a find-and-replace routine has been used.

The study

In the current study, the scientists were able to avoid the potential dangers of cutting out a gene altogether, which include inadvertently removing or interfering with normal neighboring regulatory or coding DNA. This could affect many functions in the body. Instead, they concentrated on regulating the expression of the gene of interest rather than removing it.

To achieve this, they used CRISPR to edit molecules attached to the basic DNA strand, called epigenetic molecules. These molecules are not part of the genetic information in the DNA but have an immense influence on the way the genes are expressed.

This is called epigenome editing and does not carry the same risk of permanently altering the genetic blueprint of the individual. The advantage is that the target gene can be prevented from being activated, or can be activated, according to need, while still remaining intact.

The target

The gene is called SCN9A. It was back in 2006 that certain mutations in this gene were found to deprive the affected individual of the ability to feel pain. This was because the mutated gene down-regulated the passage of the pain signals across the neural pathway, by controlling certain molecules involved in this process, found on the cell surface of the neurons.

The researchers then focused on using this to treat pain without the risks and adverse effects of opioid medication. They tried to edit the epigenetic marker that activated this pathway using CRISPR inserted into a viral vector. The virus used is a harmless one.


These treated viral particles were inserted into the spine so that they can enter the nerve cells there. The scientists hoped that once inside the cell, the virus would release the CRISPR tool as it disassembled itself in preparation for replication. The gene editor would then, presumably, carry out its task of editing the epigenetic marker that activates the SCN9A gene.

The results

The first round of testing of the therapy on mice has successfully concluded, says Moreno. “We are really excited because we have seen, in three different pain models, a decrease in overall pain.” 
Though the researchers found that they could not completely silence the pain because not all nerve cells were penetrated by the viral vector, there was a significant reduction.

Moreover, the degree of pain reduction was tunable, as with conventional pain medication. The more virus they injected, the greater was the pain relief, but it lasted much, much longer than with a painkiller.

The big benefit of the current therapy is that unlike current approaches that focus on relieving pain by administering opioid-based medication, it doesn’t carry the risk of addiction. At present, the US is facing an unprecedented two million-strong caseload of opioid addiction due to improper and over-zealous prescription of opioids for the treatment of pain.

Moreno cites the case of cancer patients who are unable to tolerate chemotherapy because of the intense associated pain, even though they know it could save their lives. The paradox with chemotherapy for cancer is that higher doses of these cytotoxic drugs increase the chances of surviving cancer-free for a longer time – but may leave the survivor with chronic pain.

In many centers, therefore, patients on chemotherapy are given morphine to dull their pain. This may, however, leave them unable to function normally because of the associated somnolence and tiredness.

On the other hand, the effect is reversible, which is important in allowing people treated in this way to feel pain normally once their need for dulled pain is no longer present, such as following the termination of chemotherapy.

The future

The American scientists now want to begin testing it in human patients from the next year. If it is proved to be medically safe and clinically effective, these researchers could have helped to bring about a dramatic reduction in suffering for a vast army of people with terminal painful illnesses and with chronic pain. However, the earliest date at which approval is envisaged is five years from now.

The other side of the discovery was also raised by Urnov: what if people used it to produce humans who could no longer feel pain and could, therefore, fight to the death without fear? In the current world scenario, such a terrifying possibility also needs to be considered for this exciting new discovery– a point not missed by Russian President Vladimir Putin.

This is only for your information, kindly take the advice of your doctor for medicines, exercises and so on.     
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Saturday, September 21, 2019

Gene therapy for sickle cell disease steps closer

Researchers have found a way to repair the faulty gene that causes sickle cell disease, which they suggest is a significant step forward in the search for a viable gene therapy.

 In a study,  they report how - using the CRISPR gene-editing tool - they corrected the gene in stem cells from diseased patients and showed they could make red blood cells capable of making functioning hemoglobin. They also transplanted the stem cells into mice and found them thriving in their bone marrow months later.

Sickle cell disease is a group of inherited disorders where red blood cells form abnormal, hard and sticky, crescent, or sickle shapes instead of normal, flexible, disc-like shapes.

The sickle red blood cells stick to vessel walls and cause blockages, slowing the flow of blood and stopping oxygen reaching nearby tissues. This can cause pain and damage to tissue and organs. Also, sickle cells die faster than normal red blood cells, raising risk of anemia, which can also damage organs.

The disease is caused by a single mutation in a gene that codes for a protein chain in hemoglobin - the molecule in red blood cells that carries oxygen. The faulty hemoglobin forms stiff rods within the red cell, making it crescent-shaped.

Sickle cell disease affects millions of people around the world. The number of Americans living with it is not known, but estimates suggest it is around 100,000.

Children born with sickle cell disease in high-income countries typically survive and can go on to live full lives and enjoy most of the activities that other people do. However, in low-income countries, children born with the disease typically die before they reach their fifth birthday.


Gene therapy and the promise of CRISPR

Since its early beginnings in the 1980s, gene therapy has been a holy grail among researchers looking for ways to cure or treat genetic disorders.

CRISPR is a relatively new gene-editing tool that is said to have "triggered a revolution in genome engineering within living systems." Researchers prefer CRISPR to older methods because it is easier and faster.

The technique is a type of molecular scissors that snip out faulty strips of DNA so they can be replaced with corrected versions using other tools.


The senior author of the new study, has been trying ways to target sickle cell genes with gene-editing technology for several years.

He says with the new CRISPR technology, they can work much faster and more effectively, significantly cutting the time of experiments.

"We spent half a dozen years trying to target the beta globin gene using the old technology," he remarks, adding that within a week of trying CRISPR, they had a gene-editing tool that was much better.

For their new study, Prof. Porteus and his team took hematopoietic stem cells from the blood of patients with sickle cell disease and corrected the faulty gene using CRISPR to remove a strip of DNA and a virus to insert the correct version. Hematopoietic stem cells are stem cells that make blood cells.

They concentrated the human hematopoietic stem cells so that 90 percent carried the corrected sickle cell gene and then injected them into young mice.


Proof of concept that gene-editing can repair sickle cell

Prof. Porteus says that the hematopoietic stem cells have the ability to travel from the bloodstream into the bone marrow, where they then "set up shop and start making other blood cells."

Sixteen weeks after the transplant, the researchers found the stem cells were thriving in the mice's bone marrow.

A gene therapy for sickle cell disease would not have to replace all of a patient's sickle cells Prof.  explains. You just need a sufficient amount of normal cells. Patients whose sickle cells are below 30 percent show no symptoms of disease.

The researchers now need to take their discovery through a series of tests so they can investigate the safety aspects of the new gene editing tool.

This is going to be no mean feat - no CRISPR-edited genes have yet been tested for safety or efficacy in human clinical trials. A particular challenge is how to overcome potential so-called "off-target" effects, where the molecular scissors accidentally cut out the wrong piece of DNA.

Prof. Porteus says Stanford is building the infrastructure so they can start to take their findings out of the lab and scale them up into the types of systems that will be needed to create gene therapy for patients.

For now, he and his team can say that their gene-edited human hematopoietic stem cells appear to behave like normal, healthy human hematopoietic stem cells.

They suggest their findings are proof of concept that using gene-editing can repair sickle cell and other blood-borne genetic diseases, such as thalassemia.

    "What we've finally shown is that we can do it. It's not just on the chalkboard. We can take stem cells from a patient and correct the mutation and show that those stem cells turn into red blood cells that no longer make sickled hemoglobin."



this is only for your information, kindly take the advice of your doctor for medicines, exercises and so on.   
https://gscrochetdesigns.blogspot.com. one can see my crochet creations 
https://gseasyrecipes.blogspot.com. feel free to view for easy, simple and healthy recipes    
https://kneereplacement-stickclub.blogspot.com. for info on knee replacement
 
 

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