July 17, 2017 Credit: The District
Gene editing using 'molecular scissors' that snip out and replace faulty DNA could provide an almost unimaginable future for some patients: a complete cure. Cambridge researchers are working towards making the technology cheap and safe, as well as examining the ethical and legal issues surrounding one of the most exciting medical advances of recent times.
Dr James Thaventhiran points to a diagram of a 14-year-old boy's family tree. Some of the symbols are shaded black.
"These family members have a very severe form of immunodeficiency. The children get infections and chest problems, the adults have bowel problems, and the father died from cancer during the study. The boy himself had a donor bone marrow transplant when he was a teenager, but he remains very unwell, with limited treatment options."
To understand the cause of the immunodeficiency, Thaventhiran, a clinical immunologist in Cambridge's Department of Medicine, has been working with colleagues at the Great Northern Children's Hospital in Newcastle, where the family is being treated.
Theirs is a rare disease, which means the condition affects fewer than 1 in 2,000 people. Most rare diseases are caused by a defect in the genetic blueprint that carries the instruction manual for life. Sometimes the mistake can be as small as a single letter in the three billion letters that make up the genome, yet it can have devastating consequences.
When Thaventhiran and colleagues carried out whole genome sequencing on the boy's DNA, they discovered a defect that could explain the immunodeficiency. "We believe that just one wrong letter causes a malfunction in an immune cell called a dendritic cell, which is needed to detect infections and cancerous cells."
Now, hope for an eventual cure for family members affected by the faulty gene is taking shape in the form of 'molecular scissors' called CRISPR-Cas9. Discovered in bacteria, the CRISPR-Cas9 system is part of the armoury that bacteria use to protect themselves from the harmful effects of viruses. Today it is being co-opted by scientists worldwide as a way of removing and replacing gene defects.
One part of the CRISPR-Cas9 system acts like a GPS locator that can be programmed to go to an exact place in the genome. The other part the 'molecular scissors' cuts both strands of the faulty DNA and replaces it with DNA that doesn't have the defect.
The video will load shortly
"It's like rewriting DNA with precision," explains Dr Alasdair Russell. "Unlike other forms of gene therapy, in which cells are given a new working gene but without being able to direct where it ends up in the genome, this technology changes just the faulty gene. It's precise and it's 'scarless' in that no evidence of the therapy is left within the repaired genome."
Russell heads up a specialised team in the Cancer Research UK Cambridge Institute to provide a centralised hub for state-of-the-art genome-editing technologies.
"By concentrating skills in one area, it means scientists in different labs don't reinvent the wheel each time and can keep pace with the field," he explains. "At full capacity, we aim to be capable of running up to 30 gene-editing projects in parallel.
"What I find amazing about the technology is that it's tearing down traditional barriers between different disciplines, allowing us to collaborate with clinicians, synthetic biologists, physicists, engineers, computational analysts and industry, on a global scale. The technology gives you the opportunity to innovate, rather than imitate. I tell my wife I sometimes feel like Q in James Bond and she laughs."
Russell's team is using the technology both to understand disease and to treat it. Together with Cambridge spin-out DefiniGEN, they are rewriting the DNA of a very special type of cell called an induced pluripotent stem cell (iPSC). These are cells that are taken from the skin of a patient and 'reprogrammed' to act like one of the body's stem cells, which have the capacity to develop into almost any other cell of the body.
In this case, they are turning the boy's skin cells into iPSCs, using CRISPR-Cas9 to correct the defect, and then allowing these corrected cells to develop into the cell type that is affected by the disease the dendritic cell. "It's a patient-specific model of the cure in a Petri dish," says Russell.
The boy's family members are among a handful of patients worldwide who are reported to have the same condition and among around 3,500 in the UK who have similar types of immunodeficiency caused by other gene defects. With such a rare group of diseases, explains Thaventhiran, it's important to locate other patients to increase the chance of understanding what happens and how to treat it.
He and Professor Ken Smith in the Department of Medicine lead a programme to find, sequence, research and provide diagnostic services to these patients. So far, 2,000 patients (around 60% of the total affected in the UK) have been recruited, making it the largest worldwide cohort of patients with primary immunodeficiency.
The video will load shortly
"We've now made 12 iPSC lines from different patients with immunodeficiency," adds Thaventhiran, who has started a programme for gene editing all of the lines. "This means that for the first time we'll be able to investigate whether correcting the mutation corrects the defect it'll open up new avenues of research into the mechanisms underlying these diseases."
But it's the possibility of using the gene-edited cells to cure patients that excites Thaventhiran and Russell. They explain that one option might be to give a patient repeated treatments of their own gene-edited iPSCs. Another would be to take the patient's blood stem cells, edit them and then return them to the patient.
The researchers are quick to point out that although the technologies are converging on this possibility of truly personalised medicine, there are still many issues to consider in the fields of ethics, regulation and law.
Dr Kathy Liddell, who leads the Cambridge Centre for Law, Medicine and Life Sciences, agrees: "It's easy to see the appeal of using gene editing to help patients with serious illnesses. However, new techniques could be used for many purposes, some of which are contentious. For example, the same technique that edits a disease in a child could be applied to an embryo to stop a disease being inherited, or to 'design' babies. This raises concerns about eugenics.
"The challenge is to find systems of governance that facilitate important purposes, while limiting, and preferably preventing, unethical purposes. It's actually very difficult. Rules not only have to be designed, but implemented and enforced. Meanwhile, powerful social drivers push hard against ethical boundaries, and scientific information and ideas travel easily often too easily across national borders to unregulated states."
A further challenge is the business case for carrying out these types of treatments, which are potentially curative but are costly and benefit few patients. One reason why rare diseases are also known as orphan diseases is because in the past they have rarely been adopted by drug companies.
Liddell adds: "CRISPR-Cas9 patent wars are just warming up, demonstrating some of the economic issues at stake. Two US institutions are vigorously prosecuting their own patents, and trying to overturn the others. There will also be cross-licensing battles to follow."
"The obvious place to start is by correcting diseases caused by just one gene; however, the technology allows us to scale up to several genes, making it something that could benefit many, many different diseases," adds Russell. "At the moment, the field as a whole is focused on ensuring the technology is safe before it moves into the clinic. But the advantage of it being cheap, precise and scalable should make CRISPR attractive to industry."
In ten years or so, speculates Russell, we might see bedside 'CRISPR on a chip' devices that screen for mutations and 'edit on the fly'. "I'm really excited by the frontierness of it all," says Russell. "We feel that we're right on the precipice of a new personalised medical future."
Explore further: Testing the efficacy of new gene therapies more efficiently
Using a new cellular model, innovative gene therapy approaches for the hereditary immunodeficiency Chronic Granulomatous Disease can be tested faster and cost-effectively in the lab for their efficacy. A team of researchers ...
Scientists have developed a new approach to repair a defective gene in blood-forming stem cells from patients with a rare genetic immunodeficiency disorder called X-linked chronic granulomatous disease (X-CGD). After transplant ...
Researchers at Queen's University have published new findings, providing a proof-of-concept use of genetic editing tools to treat genetic diseases. The study, published in Nature Scientific Reports, offers an important first ...
A team from the Center for Genome Engineering, within the Institute for Basic Research (IBS), succeeded in editing two genes that contribute to the fat contents of soybean oil using the new CRISPR-Cpf1 technology: an alternative ...
In recent years, science and the media have been buzzing with the term CRISPR. From speculation around reviving the woolly mammoth to promises of distant cures for cancer, the unproven potential for this genome editing tool ...
Researchers from Memorial Sloan Kettering Cancer Center (MSK) have harnessed the power of CRISPR/Cas9 to create more-potent chimeric antigen receptor (CAR) T cells that enhance tumor rejection in mice. The unexpected findings, ...
Large tubeworms living in the cold depths of the Gulf of Mexico may be among the longest living animals in the world. This is revealed in a study in Springer's journal The Science of Nature. According to lead author Alanna ...
Scientists at the University of Washington have discovered a simple way to raise the accuracy of diagnostic tests for medicine and common assays for laboratory research. By adding polydopaminea material that was first ...
It's not quite E=mc2, but scientists unveiled Monday a simple, powerful formula that explains why some animals run, fly and swim faster than all others.
The red algae called Porphyra and its ancestors have thrived for millions of years in the harsh habitat of the intertidal zoneexposed to fluctuating temperatures, high UV radiation, severe salt stress, and desiccation.
Invasive plant species can be a source of valuable ecosystem functions where native coastal habitats such as salt marshes and oyster reefs have severely declined, a new study by scientists at Duke University and the University ...
In zebra finches, sperm velocity and morphology and hence reproductive success strongly depend on a specific mutation (an inversion) on one of the sex chromosomes, called Z. This was discovered by scientists of the Max Planck ...
Please sign in to add a comment. Registration is free, and takes less than a minute. Read more
Read the rest here:
Snip, snip, curecorrecting defects in the genetic blueprint - Phys.Org
- New gene offers hope for preventive medicine against fractures [Last Updated On: September 18th, 2012] [Originally Added On: September 18th, 2012]
- Colon Cancer Gene Database May Assist Research Efforts [Last Updated On: September 30th, 2012] [Originally Added On: September 30th, 2012]
- Researchers discover gene that causes deafness [Last Updated On: September 30th, 2012] [Originally Added On: September 30th, 2012]
- Gene Study Yields New Clues to Breast Cancer [Last Updated On: September 30th, 2012] [Originally Added On: September 30th, 2012]
- Gene key to chemotherapy efficacy [Last Updated On: September 30th, 2012] [Originally Added On: September 30th, 2012]
- Gene clues offer new hope for treating breast cancer [Last Updated On: September 30th, 2012] [Originally Added On: September 30th, 2012]
- Gene that causes deafness pinpointed [Last Updated On: October 1st, 2012] [Originally Added On: October 1st, 2012]
- Gene that causes a form of deafness discovered [Last Updated On: October 1st, 2012] [Originally Added On: October 1st, 2012]
- Novel gene associated with Usher syndrome identified [Last Updated On: October 2nd, 2012] [Originally Added On: October 2nd, 2012]
- Translational Regenerative Medicine: Market Prospects 2012-2022 [Last Updated On: October 2nd, 2012] [Originally Added On: October 2nd, 2012]
- Two-day test can spot gene diseases in newborns [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Fast Gene Screen May Help Sick Babies [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Gene therapies need new development models [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Rapid gene machines used to find cause of newborn illnesses [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Gene behind many spontaneous breast cancers identified [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Gene responsible for many spontaneous breast cancers identified [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Two-day test can spot gene diseases in newborns - Wed, 03 Oct 2012 PST [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Researchers Discover Gene Defect Linked to Deafness [Last Updated On: October 3rd, 2012] [Originally Added On: October 3rd, 2012]
- Gene diseases in newborns unveiled quicker [Last Updated On: October 4th, 2012] [Originally Added On: October 4th, 2012]
- Quicker gene test may help babies - Thu, 04 Oct 2012 PST [Last Updated On: October 4th, 2012] [Originally Added On: October 4th, 2012]
- Rapid gene-mapping test may diagnose disease in newborns [Last Updated On: October 5th, 2012] [Originally Added On: October 5th, 2012]
- 2-day test can spot gene diseases in newborns [Last Updated On: October 5th, 2012] [Originally Added On: October 5th, 2012]
- Gene diseases in newborns spotted with 2-day test [Last Updated On: October 5th, 2012] [Originally Added On: October 5th, 2012]
- Rare Gene Deletion Tied To Psychiatric Disease And Obesity [Last Updated On: October 10th, 2012] [Originally Added On: October 10th, 2012]
- Mount Sinai researchers discover gene signature that predicts prostate cancer survival [Last Updated On: October 10th, 2012] [Originally Added On: October 10th, 2012]
- Test Spots Newborn Gene Disease [Last Updated On: October 10th, 2012] [Originally Added On: October 10th, 2012]
- Gene signature predicts prostate cancer survival [Last Updated On: October 11th, 2012] [Originally Added On: October 11th, 2012]
- Researchers Discover Gene Signature that Predicts Prostate Cancer Survival [Last Updated On: October 11th, 2012] [Originally Added On: October 11th, 2012]
- Bioethics Panel Urges More Gene Privacy Protection [Last Updated On: October 11th, 2012] [Originally Added On: October 11th, 2012]
- High Levels of Blood-Based Protein Specific to Mesothelioma [Last Updated On: October 11th, 2012] [Originally Added On: October 11th, 2012]
- Gene clues to help tackle skin disease [Last Updated On: October 15th, 2012] [Originally Added On: October 15th, 2012]
- Additive effect of small gene variations can increase risk of autism spectrum disorders [Last Updated On: October 15th, 2012] [Originally Added On: October 15th, 2012]
- 2-gene test predicts which patients with heart failure respond best to beta-blocker drug [Last Updated On: October 16th, 2012] [Originally Added On: October 16th, 2012]
- Two-gene test predicts which patients with heart failure respond best to beta-blocker drug [Last Updated On: October 16th, 2012] [Originally Added On: October 16th, 2012]
- Gene Linked to Kidney Failure [Last Updated On: October 17th, 2012] [Originally Added On: October 17th, 2012]
- Nanoparticles seen as gene therapy advance [Last Updated On: October 17th, 2012] [Originally Added On: October 17th, 2012]
- Stem Cell Therapy for Sickle Cell Anemia - Video [Last Updated On: October 31st, 2012] [Originally Added On: October 31st, 2012]
- Sickle Cell Anemia: Stem Cell Gene Therapy - Donald Kohn - Video [Last Updated On: October 31st, 2012] [Originally Added On: October 31st, 2012]
- Finding A Cure For Cancer with Dr. Aaron Rapoport - Video [Last Updated On: October 31st, 2012] [Originally Added On: October 31st, 2012]
- First gene therapy to go on sale in Europe in 2013: company [Last Updated On: November 7th, 2012] [Originally Added On: November 7th, 2012]
- Nanomedicine: Infectious Diseases, Immunotherapy, Diagnostics, Antifibrotics, Toxicology And Gene Me - Video [Last Updated On: November 14th, 2012] [Originally Added On: November 14th, 2012]
- Stress gene linked to heart attack – Study [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- Why not gift yourself with gene test this Christmas? [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- "Stress gene" may raise heart attack risk in healthy people [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- 'Stress Gene' Ups Heart Attack, Death Risk [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- Common disorders: It's not the genes themselves, but how they are controlled [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- What is a gene? - Genetics Home Reference [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- Gene Medicine | Business Outline | About Us | TAKARA BIO INC. [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- Gene Therapy Clinical Trials Worldwide [Last Updated On: December 20th, 2013] [Originally Added On: December 20th, 2013]
- Genentech - Official Site [Last Updated On: December 21st, 2013] [Originally Added On: December 21st, 2013]
- Gene Therapy - American Medical Association [Last Updated On: December 23rd, 2013] [Originally Added On: December 23rd, 2013]
- Researchers identify gene that influences the ability to remember faces [Last Updated On: December 24th, 2013] [Originally Added On: December 24th, 2013]
- Gene That Influences Bonding Also Found To Impact Facial Recognition [Last Updated On: December 24th, 2013] [Originally Added On: December 24th, 2013]
- Gene Therapy Method Targets Tumor Blood Vessels [Last Updated On: December 24th, 2013] [Originally Added On: December 24th, 2013]
- Latin Americans inherited diabetes gene risk from Neanderthals [Last Updated On: December 26th, 2013] [Originally Added On: December 26th, 2013]
- Gene that influences the ability to remember faces identified [Last Updated On: December 30th, 2013] [Originally Added On: December 30th, 2013]
- Study supports a causal role in narcolepsy for a common genetic variant [Last Updated On: January 2nd, 2014] [Originally Added On: January 2nd, 2014]
- Increasing Investments in Molecular Biology Research Drives the Market for DNA Gene Chips, According to a New Trend ... [Last Updated On: January 2nd, 2014] [Originally Added On: January 2nd, 2014]
- Loss of Function of a Single Gene Linked to Diabetes in Mice [Last Updated On: January 3rd, 2014] [Originally Added On: January 3rd, 2014]
- Gene Medicine and Health [Last Updated On: January 3rd, 2014] [Originally Added On: January 3rd, 2014]
- Gene Therapy - Nature [Last Updated On: January 5th, 2014] [Originally Added On: January 5th, 2014]
- KidsHealth for Parents - Gene Therapy and Children [Last Updated On: January 5th, 2014] [Originally Added On: January 5th, 2014]
- Gene Patent Case Fuels U.S. Court Test of Stem Cell Right [Last Updated On: January 6th, 2014] [Originally Added On: January 6th, 2014]
- Gene Mutation Increases Certain Health Risks For Blacks, Study Finds [Last Updated On: January 6th, 2014] [Originally Added On: January 6th, 2014]
- Single faulty gene causes major type 2 diabetes symptom in mice [Last Updated On: January 6th, 2014] [Originally Added On: January 6th, 2014]
- No 'brakes' -- Study finds mechanism for increased activity of oncogene in certain cancers [Last Updated On: January 6th, 2014] [Originally Added On: January 6th, 2014]
- AML score that combines genetic and epigenetic changes might help guide therapy [Last Updated On: January 9th, 2014] [Originally Added On: January 9th, 2014]
- Stem cell research identifies new gene targets in patients with Alzheimer's disease [Last Updated On: January 9th, 2014] [Originally Added On: January 9th, 2014]
- 14 new gene targets in Alzheimer’s identified [Last Updated On: January 10th, 2014] [Originally Added On: January 10th, 2014]
- Scientists uncover new target for brain cancer treatment [Last Updated On: January 11th, 2014] [Originally Added On: January 11th, 2014]
- Tweaking MRI to Track Creatine May Spot Heart Problems Earlier, Penn Medicine Study Suggests [Last Updated On: January 13th, 2014] [Originally Added On: January 13th, 2014]
- RSNA: Gene Variation Associated with Brain Atrophy in Mild Cognitive Impairment [Last Updated On: January 14th, 2014] [Originally Added On: January 14th, 2014]
- Keeping Stem Cells Pluripotent [Last Updated On: January 14th, 2014] [Originally Added On: January 14th, 2014]
- Gene variation associated with brain atrophy in mild cognitive impairment [Last Updated On: January 14th, 2014] [Originally Added On: January 14th, 2014]
- Genes: MedlinePlus Medical Encyclopedia - National Library of ... [Last Updated On: January 15th, 2014] [Originally Added On: January 15th, 2014]
- Gene Therapy May Restore Sight in People With Rare Blinding Disease [Last Updated On: January 16th, 2014] [Originally Added On: January 16th, 2014]
- Gene therapy treats blindness [Last Updated On: January 16th, 2014] [Originally Added On: January 16th, 2014]
- New Genetic Clue to Lupus Is Found [Last Updated On: January 17th, 2014] [Originally Added On: January 17th, 2014]
- New Gene Machine Could Mean More Accurate Diagnosis [Last Updated On: January 18th, 2014] [Originally Added On: January 18th, 2014]
- Same cell death pathway involved in three forms of blindness, study finds [Last Updated On: January 18th, 2014] [Originally Added On: January 18th, 2014]