Saturday, June 20, 2020

New Canadian study investigates how cancer adapts its metabolism to overcome therapies

Knowing what cancer will do next could lessen the likelihood of it becoming resistant to treatment. A new Canadian study investigates how cancer adapts its metabolism to potentially overcome therapies still in development.

"Several clinical trials have failed because metabolism is such an adaptive process by which cancer cells gain drug resistance," says Michael Aregger, a co-lead author and Research Associate working with Jason Moffat, Professor of molecular genetics in the Donnelly Centre for Cellular and Biomolecular Research at the University of Toronto, who co-led the work. "If you know how cells are able to adapt to perturbations, maybe we can target them more specifically to avoid resistance from developing."

The research was also led by Brenda Andrews and Charles Boone, University Professor and Professor of molecular genetics at the Donnelly Centre, respectively, and Chad Myers, a Professor of computer science at the University of Minnesota-Twin Cities.

The study, published in the journal Nature Metabolism, is the first to investigate global changes in cancerous cells as they adapt to a shortfall of critical nutrients such as fat molecules, or lipids, which make up the cell's outer envelope.

When cancer cells are unable to make their own lipids, they gobble them up from their environment to ensure a steady supply of these essential building blocks, the study found. Lipids also serve as fuel and chemical signals for communication between cells, among other roles.

The switch in metabolism could be bad news for drugmakers seeking to target cancer by reducing its lipid reserves. In particular, drugs that inhibit an enzyme called FASN, for fatty acid synthase, involved in an early step of lipid synthesis, are being explored in patient trials. Fatty acids are precursors of larger lipid molecules and their production is increased in many cancers thanks to elevated FASN levels, which are also associated with poor patient prognosis.

The U of T study suggests that the effectiveness of FASN inhibitors could be short-lived owing to cancer's ability to find another way to procure lipids.

Because FASN is upregulated in many cancers, fatty acid synthesis is one of the most promising metabolic pathways to target. Given that we know there is a lot of plasticity in metabolic processes, we wanted to identify and predict ways in which cancer cells can potentially overcome the inhibition of lipid synthesis."

Keith Lawson, a co-lead author and Ph.D. student in Moffat's lab enrolled in the Surgeon-Scientist Program at the Faculty of Medicine

To block fatty acid synthesis, the researchers employed a human cell line from which the FASN coding gene was removed. Using the genome editing tool CRISPR, they deleted from these cells all ~18,000 or so human genes, one by one, to find those that can compensate for the halt in lipid production. Such functional relationships are also referred to as 'genetic interactions'.

Data analysis, performed by Maximilian Billmann, a co-lead author and a postdoctoral fellow in Myers' lab at Minnesota-Twin Cities, revealed hundreds of genes that become essential when cells are starved of fat. Their protein products clustered into well-known metabolic pathways through which cells hoover up dietary cholesterol and other lipids from their surroundings.

Cells' intake of cholesterol has become textbook knowledge since it was discovered half a century ago, winning a Nobel Prize and inspiring the blockbuster drug statin and many others. But the new study found that one component of this process remained overlooked all this time.

The gene encoding it was only known as C12orf49, named after its location on chromosome 12. The researchers re-named the gene LUR1, for lipid uptake regulator 1, and showed that it helps switch on a set of genes directly involved in lipid import.

"This was a big surprise to us that we were able to identify a new component of the process we thought we knew everything about," says Aregger. "It really highlights the power of our global genetic interaction approach that allowed us to identify a new player in lipid uptake in a completely unbiased way."

By a remarkable coincidence, two groups working independently in New York and Amsterdam also linked C12orf49 to lipid metabolism, lending further support for the gene's role in this process. The New York team published their findings in the same journal issue as Moffat and colleagues.

Inhibiting LUR1, or other components of lipid import, along with FASN could lead to more effective cancer treatments. Such combination therapies are thought to be less susceptible to emerging drug resistance because the cells would have to simultaneously overcome two obstacles--blocked lipid production and import--which has a lower probability of occurring.

"Therapeutic context that comes out of our work is that you should be targeting lipid uptake in addition to targeting lipid synthesis and our work highlights some specific genes that could be candidates," says Lawson.

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

Labels: , , , , , , ,

Monday, September 30, 2019

High dose statins can increase osteoporosis risk finds Annals of the Rheumatic Diseases study

A higher dose of statins, the cholesterol-lowering drug, could increase the risk of osteoporosis,  a recent has found. However, at low doses statins provide protection against bone resorption.
According to the study, whether statins decrease or increase the risk of osteoporosis is dependent on their dosage. At low doses, statins provide protection against bone resorption. However, the higher the dosage of statins greater is the risk of osteoporosis. In short, osteoporosis is underrepresented in low-dose and over-represented in high-dose statin treatment. Findings are based on an analysis of millions of patient data.


Osteoporosis is one of the most commonly occurring metabolic bone disorders. It is characterised by decreased bone mineral density (BMD) in which bones become weak and brittle. This increases the bone fragility making it susceptible to fracture.


Statins are cholesterol-lowering drugs that help the heart and brain by preventing artery plaques- buildups of cholesterol, calcium and other substances in blood vessels-- from blocking blood flow and causing a heart attack or stroke. They are among the most prescribed drugs worldwide.


Whether HMG-CoA-reductase inhibition, the main mechanism of statins, plays a role in the pathogenesis of osteoporosis, is not entirely known so far. Researchers conducted the study to investigate the relationship of different kinds and dosages of statins with osteoporosis, hypothesising that the inhibition of the synthesis of cholesterol could influence sex-hormones and therefore the diagnosis of osteoporosis.


Statins inhibit the synthesis of cholesterol from the liver. This lowers blood cholesterol. However, cholesterol is crucially important for many processes in the body. Among other things, it is a basic building block for the production of sex hormones such as estradiol and testosterone.


For the investigation, the researchers used Big Data. They obtained access to the health data of more than 7.9 million Australians between 2006-2007. From this big data set the patients who regularly took statins for at least one year were filtered out. The researchers also calculated the daily dosage of statins and formed different dosage groups. In a further step, the interdisciplinary team filtered out osteoporosis diagnoses.


Key findings of the study include-
* statin treatment was associated with an over-representation of diagnosed osteoporosis compared with controls.
* there was a highly non-trivial dependence of statin dosage with the ORs of osteoporosis.
* Osteoporosis was underrepresented in low-dose statin treatment ) 0-10mg per day) including lovastatin, pravastatin, simvasatin and rosuvastatin.


The exceeding of the 40 mg threshold for simvastatin and the exceeding of a 20 mg threshold for atorastatin and for rosuvastatin was related to an over-representation of osteoporosis.


We know that low concentrations of sex hormones- especially the drop in estrogen levels during menopause-- are the main cause for the increase of osteoporosis in women, explains a Dr.  There is a similar relationship between bone density and testosterone. We were interested in whether the inhibition of cholesterol production by statins has an effect on bone formation and whether there could be a dose-response relationship.


In the lower dose groups, there were fewer osteoporosis cases than expected, points out the Dr. At doses up to 10mg of the statins lovastatin, pravastatin, simvastatin or rosuvastatin, the scientists found fewer osteoporosis diagnoses compared to patients without statin therapy. With doses of 20 mg, and more, however,  this seems to turn. We found more osteoporosis cases in patients treated with simvastatin, atorvastatin and rosuvastatin than expected, explains the Dr. The higher the dosage, the stronger the effect.


In earlier, joint studies we saw how helpful large data sets can be to examine open medical questions, says the leader of the study. The combination of medical expertise with our knowledge in big data analysis makes completely new insights possible. According to the researcher, the newly discovered correlation between statin therapy and osteoporosis risk should now be investigated in clinical studies.


With such results, we're coming closer to truly personalised and individualised medicine, maintains the Dr. We can now advise high-risk osteoporosis patients undergoing statin therapy to have their bone metabolism regularly monitored.


We propose that monitoring high-risk patients, that is postmenopausal female patients under high-dosage statin therapy, might be useful in order to offer individual therapy to prevent or treat osteoporosis. This, larger and prospective studies with a focus on dosages of statins should be conducted in order to clarify the relationship with osteoporosis, concluded the authors.

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
   

Labels: , , , , , , , , , , , ,

Tuesday, September 16, 2014

New type of human stem cell created in lab

Scientists have created a new type of human stem cell in the lab which they believe will be better at making replacement organs than existing stem cells.

In theory stem cells can develop into any kind of cell, so they could be used to repair damaged organs or even build them from scratch. But most stem cells are not that flexible, researchers said.

The best ones are "pluripotent", meaning they can turn into anything. Such cells have to be taken from embryos or made by reverting adult cells to their embryonic state, called induced pluripotent stem cells, 'New Scientist' reported.

But these pluripotent stem cells still carry genetic baggage from their previous existence.

"This [baggage] has been one of the confounding problems in this area," said Austin Smith of the University of Cambridge, who led the team that developed the new cells.

The new cells have had their cellular memories wiped clean. Their genes have been cleansed of most methylation markers, so they behave more predictably and transform more consistently into other tissues.

The team hopes that this will make them a better building block for organs and tissues than existing embryonic stem cells.

"Nothing has been written or drawn on them to tell them what to do or become. These cells could be a better and more pristine starting point," said Smith.

Called naive stem cells, these have long been known in mice and rats, but they have never been found in humans.

To make them, Smith and his colleagues mimicked the process that creates their mouse counterparts.

They gave human embryonic stem cells extra copies of two genes, Nanog and Klf2, which triggered the gene network needed to make the naive cells.

To confirm that the cells were naive stem cells, the team tracked which other genes were switched on.

Two genes called Klf4 and Tfcp2l1, which are active in mouse naive stem cells, were switched on in the human naive cells.

When the team examined human embryos at around 7 days old they found the genes were active, said Smith.

This suggests naive stem cells exist in natural human embryos. In mouse embryos, 10 to 20 naive stem cells appear just before the embryos implant into the uterus, Smith said, adding that the human naive cells may appear at the same time.

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








PS- THOSE INTERESTED IN RECIPES ARE FREE TO VIEW MY BLOG-



HTTP:GSEASYRECIPES.BLOGSPOT.COM/
FOR INFO ABOUT KNEE REPLACEMENT, YOU CAN VIEW MY BLOG-
HTTP://KNEE REPLACEMENT-STICK CLUB.BLOGSPOT.COM/

FOR CROCHET DESIGNS


HTTP://MY CROCHET CREATIONS.BLOGSPOT.COM

Labels: , , , , , , , , , , ,