New ads.

Showing posts with label drugs. Show all posts
Showing posts with label drugs. Show all posts

Friday, January 24, 2020

Dozens of non-oncology drugs can kill cancer cells

Cancer treatment concept (stock image). | Credit: (c) tashatuvango / stock.adobe.com
Cancer treatment concept (stock image).

Drugs for diabetes, inflammation, alcoholism -- and even for treating arthritis in dogs -- can also kill cancer cells in the lab, according to a study by scientists at the Broad Institute of MIT and Harvard and Dana-Farber Cancer Institute. The researchers systematically analyzed thousands of already developed drug compounds and found nearly 50 that have previously unrecognized anti-cancer activity. The surprising findings, which also revealed novel drug mechanisms and targets, suggest a possible way to accelerate the development of new cancer drugs or repurpose existing drugs to treat cancer.
"We thought we'd be lucky if we found even a single compound with anti-cancer properties, but we were surprised to find so many," said Todd Golub, chief scientific officer and director of the Cancer Program at the Broad, Charles A. Dana Investigator in Human Cancer Genetics at Dana-Farber, and professor of pediatrics at Harvard Medical School.
The new work appears in the journal Nature Cancer. It is the largest study yet to employ the Broad's Drug Repurposing Hub, a collection that currently comprises more than 6,000 existing drugs and compounds that are either FDA-approved or have been proven safe in clinical trials (at the time of the study, the Hub contained 4,518 drugs). The study also marks the first time researchers screened the entire collection of mostly non-cancer drugs for their anti-cancer capabilities.
Historically, scientists have stumbled upon new uses for a few existing medicines, such as the discovery of aspirin's cardiovascular benefits. "We created the repurposing hub to enable researchers to make these kinds of serendipitous discoveries in a more deliberate way," said study first author Steven Corsello, an oncologist at Dana-Farber, a member of the Golub lab, and founder of the Drug Repurposing Hub.
The researchers tested all the compounds in the Drug Repurposing Hub on 578 human cancer cell lines from the Broad's Cancer Cell Line Encyclopedia (CCLE). Using a molecular barcoding method known as PRISM, which was developed in the Golub lab, the researchers tagged each cell line with a DNA barcode, allowing them to pool several cell lines together in each dish and more quickly conduct a larger experiment. The team then exposed each pool of barcoded cells to a single compound from the repurposing library, and measured the survival rate of the cancer cells.
They found nearly 50 non-cancer drugs -- including those initially developed to lower cholesterol or reduce inflammation -- that killed some cancer cells while leaving others alone.
Some of the compounds killed cancer cells in unexpected ways. "Most existing cancer drugs work by blocking proteins, but we're finding that compounds can act through other mechanisms," said Corsello. Some of the four-dozen drugs he and his colleagues identified appear to act not by inhibiting a protein but by activating a protein or stabilizing a protein-protein interaction. For example, the team found that nearly a dozen non-oncology drugs killed cancer cells that express a protein called PDE3A by stabilizing the interaction between PDE3A and another protein called SLFN12 -- a previously unknown mechanism for some of these drugs.
These unexpected drug mechanisms were easier to find using the study's cell-based approach, which measures cell survival, than through traditional non-cell-based high-throughput screening methods, Corsello said.
Most of the non-oncology drugs that killed cancer cells in the study did so by interacting with a previously unrecognized molecular target. For example, the anti-inflammatory drug tepoxalin, originally developed for use in people but approved for treating osteoarthritis in dogs, killed cancer cells by hitting an unknown target in cells that overexpress the protein MDR1, which commonly drives resistance to chemotherapy drugs.
The researchers were also able to predict whether certain drugs could kill each cell line by looking at the cell line's genomic features, such as mutations and methylation levels, which were included in the CCLE database. This suggests that these features could one day be used as biomarkers to identify patients who will most likely benefit from certain drugs. For example, the alcohol dependence drug disulfiram (Antabuse) killed cell lines carrying mutations that cause depletion of metallothionein proteins. Compounds containing vanadium, originally developed to treat diabetes, killed cancer cells that expressed the sulfate transporter SLC26A2.
"The genomic features gave us some initial hypotheses about how the drugs could be acting, which we can then take back to study in the lab," said Corsello. "Our understanding of how these drugs kill cancer cells gives us a starting point for developing new therapies."
The researchers hope to study the repurposing library compounds in more cancer cell lines and to grow the hub to include even more compounds that have been tested in humans. The team will also continue to analyze the trove of data from this study, which have been shared openly (https://depmap.org) with the scientific community, to better understand what's driving the compounds' selective activity.
"This is a great initial dataset, but certainly there will be a great benefit to expanding this approach in the future," said Corsello.
This collaboration involved the Broad's Center for the Development of Therapeutics, the PRISM team, the Cancer Data Sciences team, and the labs of Todd Golub and Matthew Meyerson. The work was funded in part by SIGMA (Carlos Slim Foundation, Slim Initiative in Genomic Medicine for the Americas), the National Institutes of Health, and an anonymous donor.

Story Source:
Materials provided by Broad Institute of MIT and Harvard. Original written by Leah Eisenstadt. Note: Content may be edited for style and length.

Saturday, November 30, 2019

Using fungi to search for medical drugs

Wild mushrooms

An enormous library of products derived from more than ten thousand fungi could help us find new drugs. Researchers from the group of Jeroen den Hertog at the Hubrecht Institute, in collaboration with researchers from the Westerdijk Institute and Utrecht University, have set up this library and screened it for biologically active compounds. They tested the biological activity of these fungal products first using zebrafish embryos. The researchers chose to use zebrafish embryos, because it allows the analysis of effects on many cell types at the same time, in a working body, and because zebrafish are physiologically very similar to humans. They have already found various known compounds, among which the cholesterol lowering drug lovastatin. The library of fungal products offers ample opportunity to search for new drugs.
The results of this research were published on the 26th of November in the scientific journal Scientific Reports.
Fungal products
We constantly need new therapeutic compounds in the clinic for various reasons, including our increasing age, with corresponding illnesses, and resistance to existing drugs. Fungi are an excellent, but underexplored source of these kinds of compounds, such as lovastatin, a compound produced by the fungus Aspergillus terreus and that is used as a cholesterol lowering drug. Jelmer Hoeksma, one of the researchers at the Hubrecht Institute, explains: "Every year new compounds produced by fungi are identified, but so far we have only investigated a very small subset of all existing fungi. This suggests that many more biologically active compounds remain to be discovered."
Ten thousand fungi
The collaboration with the Westerdijk Fungal Biodiversity Institute, home to the largest collection of live fungi in the world, enabled the researchers to set up a large library of filtrates derived from more than ten thousand different fungi. A filtrate contains all the products that the fungus excretes. To search for therapeutic compounds, the researchers investigated the effects of this large library of fungal products first on zebrafish embryos. The zebrafish embryos enabled the researchers to study effects on the whole body during development. Zebrafish are vertebrates that are physiologically very similar to humans and are often used to test drugs for a variety of disorders. Within a few days these embryos develop most of their organs, making biological activity of the fungal compounds readily detectable. In addition, comparison to known drugs may result in identification of new drugs and also point towards the underlying mechanisms of action of these compounds.
Pigmentation
The researchers found 1526 filtrates that contain biologically active compounds with an effect on zebrafish embryos, from which they selected 150 filtrates for further analysis. From these, they isolated 34 known compounds, including the cholesterol lowering drug lovastatin, which was produced by the fungus Resinicium furfuraceum. Until now it was unknown that this fungus produces lovastatin. In addition, the researchers found filtrates that affect pigmentation in zebrafish embryos. Other studies have shown that factors involved in pigmentation can also play a crucial role in the development of skin cancer. The researchers are currently isolating the active compounds that cause pigmentation defects in zebrafish embryos from the filtrates.
Tip of the iceberg
This study underlines the large variety of biologically active compounds that are produced by fungi and the importance of further investigating these compounds in the search for new drugs. Hoeksma: "The large library of fungal filtrates that we have set up can also be tested in many other systems, such as models for antibiotic resistance in bacteria and tumor development, making this study only the tip of the iceberg."

Story Source:
Materials provided by Hubrecht InstituteNote: Content may be edited for style and length.

Tuesday, November 26, 2019

Industry executives: Profits drive rising prices for MS drugs

Industry executives: Profits drive rising prices for MS drugs

U.S. Medicare patients with multiple sclerosis often pay, on average, nearly $7,000 out of pocket to treat their condition each year. And, even though drug companies have provided no new treatment breakthroughs, the price of these disease-modifying medications is rising by 10% to 15% each year for the past decade.
To find out why, a team of researchers at Oregon Health & Science University and the OHSU/Oregon State University College of Pharmacy recruited four pharmaceutical industry executives to speak confidentiality. In a study published today in the journal Neurology, the executives painted a frank picture of the rationale behind the price of medication available to people with MS.
"I would say the rationales for the price increases are purely what can maximize profit," one executive said. "There's no other rationale for it, because costs [of producing the drug] have not gone up by 10% or 15%; you know, the costs have probably gone down."
The executives acknowledged their companies' unique societal position in delivering medications to improve human health. However, each executive pointed out that their business model depends on generating a profitable return on investment to shareholders.
"The most surprising thing was how unsurprising it was," said lead author Daniel Hartung, Pharm.D., M.P.H., associate professor in the OHSU/OSU College of Pharmacy. "There was not this secret, complicated algorithm that these companies used to drive up prices."
The researchers did find some key themes.
Start high and go higher
The researchers noted that the U.S. health care system appears to be unique in its capacity to absorb continual price increases. Executives noted that in the world's second-biggest market -- Europe -- the price of a drug is typically highest when it launches and then declines over time.
The opposite appears to be the case in the U.S.
"When you're making these decisions you're looking at the whole world," one executive said. "And it is only in the United States, really, that you can take price increases. You can't do it in the rest of the world. In the rest of the world, prices decline with duration in the marketplace."
American consumers foot the bill
Prices outside the U.S. not only drop due to market considerations, but they're held in check by single-payer health systems with fixed resources. In this way, one participant suggested that American patients ultimately make up for potential losses in other markets around the world.
"The rest of the developed world is subsidized by the U.S. consumer," the executive said.
High price says "quality"
The price of a new drug reflected the price already set by competitors selling existing drugs that treated similar conditions, regardless of the cost of research and development. In fact, executives feared that undercutting competitors with a lower price -- a hallmark of a free market -- would instead undermine the attractiveness of their product.
"We can't come in at less," one of the executives said. "That would mean we're less effective, we think less of our product, so we have to go more."
Co-author Dennis Bourdette, M.D., chair of neurology in the OHSU School of Medicine, said the study provides a new perspective to public discourse around pharmaceutical pricing.
"The frank information provided by these executives pulls back the curtain of secrecy on how drug price decisions are made," said Bourdette, who also directs the OHSU Multiple Sclerosis Center. "We see that it is indeed the race to make more money that is driving up drug prices and nothing more."
The study was supported by the National Multiple Sclerosis Society, grant HC-1510-06870.

Story Source:
Materials provided by Oregon Health & Science UniversityNote: Content may be edited for style and length.

Using fungi to search for medical drugs

Using fungi to search for medical drugs

An enormous library of products derived from more than ten thousand fungi could help us find new drugs. Researchers from the group of Jeroen den Hertog at the Hubrecht Institute, in collaboration with researchers from the Westerdijk Institute and Utrecht University, have set up this library and screened it for biologically active compounds. They tested the biological activity of these fungal products first using zebrafish embryos. The researchers chose to use zebrafish embryos, because it allows the analysis of effects on many cell types at the same time, in a working body, and because zebrafish are physiologically very similar to humans. They have already found various known compounds, among which the cholesterol lowering drug lovastatin. The library of fungal products offers ample opportunity to search for new drugs. The results of this research were published on the 26th of November in the scientific journal Scientific Reports.
Fungal products
We constantly need new therapeutic compounds in the clinic for various reasons, including our increasing age, with corresponding illnesses, and resistance to existing drugs. Fungi are an excellent, but underexplored source of these kinds of compounds, such as lovastatin, a compound produced by the fungus Aspergillus terreus and that is used as a cholesterol lowering drug. Jelmer Hoeksma, one of the researchers at the Hubrecht Institute, explains: "Every year new compounds produced by fungi are identified, but so far we have only investigated a very small subset of all existing fungi. This suggests that many more biologically active compounds remain to be discovered."
Ten thousand fungi
The collaboration with the Westerdijk Fungal Biodiversity Institute, home to the largest collection of live fungi in the world, enabled the researchers to set up a large library of filtrates derived from more than ten thousand different fungi. A filtrate contains all the products that the fungus excretes. To search for therapeutic compounds, the researchers investigated the effects of this large library of fungal products first on zebrafish embryos. The zebrafish embryos enabled the researchers to study effects on the whole body during development. Zebrafish are vertebrates that are physiologically very similar to humans and are often used to test drugs for a variety of disorders. Within a few days these embryos develop most of their organs, making biological activity of the fungal compounds readily detectable. In addition, comparison to known drugs may result in identification of new drugs and also point towards the underlying mechanisms of action of these compounds.
Pigmentation
The researchers found 1526 filtrates that contain biologically active compounds with an effect on zebrafish embryos, from which they selected 150 filtrates for further analysis. From these, they isolated 34 known compounds, including the cholesterol lowering drug lovastatin, which was produced by the fungus Resinicium furfuraceum. Until now it was unknown that this fungus produces lovastatin. In addition, the researchers found filtrates that affect pigmentation in zebrafish embryos. Other studies have shown that factors involved in pigmentation can also play a crucial role in the development of skin cancer. The researchers are currently isolating the active compounds that cause pigmentation defects in zebrafish embryos from the filtrates.
Tip of the iceberg
This study underlines the large variety of biologically active compounds that are produced by fungi and the importance of further investigating these compounds in the search for new drugs. Hoeksma: "The large library of fungal filtrates that we have set up can also be tested in many other systems, such as models for antibiotic resistance in bacteria and tumor development, making this study only the tip of the iceberg."

Story Source:
Materials provided by Hubrecht InstituteNote: Content may be edited for style and length.