[Home]   [Full version]  

Double duty: Loss of protective heart failure protein causes high blood pressure

May 05 ,Medicine & Health


Scientists at the Center for Translational Medicine at Thomas Jefferson University in Philadelphia have found that a protein that appears to have protective and perhaps healing effects for failing hearts also plays a similar role in high blood pressure. They found lower-than-normal levels of the protein S100A1 in cells that line blood vessel walls in animals with high blood pressure.

When the researchers, led by Patrick Most, M.D., assistant professor of Medicine at Jefferson Medical College and former postdoctoral fellow Sven Pleger, M.D., experimentally lowered the amount of S100A1 protein in the animals’ blood vessels, they were able to dramatically increase blood pressure. The preliminary results identified a novel and rather unanticipated biological function of the protein and suggest that S100A1 could be a therapeutic target for blood pressure treatment. The team’s findings appear in the journal Circulation Research.

“S100A1 seems to be a major player in the regulation of blood pressure and vascular function,” says Dr. Most. “The mechanisms by which this works is by producing more nitric oxide (NO) in the endothelial cells that line the vessel walls. A lack of NO enables hypertension.”

According to Dr. Most, S100A1 is an alternative mechanism for increasing heart function. It directly regulates calcium circulation, which drives the contractions in the heart. Dr. Most’s laboratory has been working on S100A1’s role in disease hearts for more than a decade, and together with a group led by Walter Koch, Ph.D, director of the Center for Translational Medicine, they have proven that loss of the protein causes diseased hearts to fail and that the protein is a potential target for gene therapy for heart failure.

S100A1, part of a larger family of proteins called S100, is primarily found at high levels in muscle, particularly the heart. Falling levels of S100A1 are critical in the loss of heart-pumping strength after a heart attack and play an important role in the progression to heart failure. A previous study in 1989 showed that the protein was reduced by as much as 50 percent in patients with heart failure.

In the current work, Dr. Most and colleague Andrea Eckhart, Ph.D., associate professor of Medicine at Jefferson Medical College, and their team found in both laboratory experiments and in animal models that blood vessels that lack S100A1 cannot relax as well as normal vessels. “If the animal doesn’t have S100A1, it has hypertension,” he says. “The mechanism is based more or less on the availability of nitric oxide. It seems that S100A1 also regulates calcium cycling in the endothelial cell, and calcium is needed in the endothelial cell to stimulate NO production. The loss of S100A1 impairs the calcium mobilization of the endothelial cell – that’s the link between less calcium, less NO, hypertension and endothelial dysfunction.

“As a result,” Dr. Most says, “S100A1 might not only be a good therapeutic target for heart failure, but for hypertension as well.” Current projections estimate that 29.2 percent of the adult population worldwide – about 1.56 billion people – will have hypertension by 2025. Hypertension has long been the most common risk factor for the development of congestive heart failure, affecting nearly five million Americans, many of whom have poor long-term prognoses, despite recent therapeutic advances.

The researchers plan to continue to investigate animal models of hypertension, noting that the current work was only possible because of the collaborative efforts of those in the Center for Translational Medicine and also the Department of Physiology. If the scientists find a lack of S100A1 in blood vessels, then they will develop treatments using the Center’s in-house capabilities to generate viral delivery that can be tailored to express genes in endothelial cells. “We will test genetically engineered animals to find out whether or not replacing S100A1 can decrease blood pressure,” he notes.

In addition, the researchers will test a recently developed approach employing only a small fragment of the protein with a similar therapeutic potency. “This fragment,” Dr. Most explains, “is 10 times smaller than the protein and allows a direct application in the bloodstream, almost like a real drug.” The researchers hope that either the small protein fragment itself or a synthetic analogue will enable a novel therapeutic approach to treat both heart failure and hypertensive patients in the near future.

Source: Thomas Jefferson University

Related stories:

Researchers clarify function of glucose transport molecule
Researchers at the David Geffen School of Medicine at UCLA have solved the structure of a class of proteins known as sodium glucose co-transporters (SGLTs), which pump glucose into cells. These transport proteins are used in the treatment of chronic diarrhea via oral rehydration therapy, saving the lives of millions of children each year. The solution of the SGLT structure will accelerate development of new drugs designed to treat patients with diabetes and cancer.
Blood vessel inhibitor shows promise against metastatic thyroid cancer
Thyroid cancer that has spread to distant sites has a poor prognosis, but an experimental drug that inhibits tumor blood vessel formation can slow disease progression in some patients, a research team led by investigators from The University of Texas M. D. Anderson Cancer Center reports in the July 3rd edition of The New England Journal of Medicine.
Circulating tumor cells can reveal genetic signature of dangerous lung cancers
Massachusetts General Hospital (MGH) investigators have shown that an MGH-developed, microchip-based device that detects and analyzes tumor cells in the bloodstream can be used to determine the genetic signature of lung tumors, allowing identification of those appropriate for targeted treatment and monitoring genetic changes that occur during therapy. A pilot study of the device called the CTC-chip will appear in the July 24 New England Journal of Medicine and is receiving early online release.
Gene directs stem cells to build the heart
Researchers have shown that they can put mouse embryonic stem cells to work building the heart, potentially moving medical science a significant step closer to a new generation of heart disease treatments that use human stem cells.
Discovery of gene mechanism could bring about new ways to treat metastatic cancer
Virginia Commonwealth University and VCU Massey Cancer Center researchers have uncovered how a gene, melanoma differentiation associated gene-7/interleukin-24 (mda-7/IL-24), induces a bystander effect that kills cancer cells not directly receiving mda-7/IL-24 without harming healthy ones, a discovery that could lead to new therapeutic strategies to fight metastatic disease.
Post-exercise caffeine helps muscles refuel
Recipe to recover more quickly from exercise: Finish workout, eat pasta, and wash down with five or six cups of strong coffee.
Low levels of good cholesterol linked to memory loss, dementia risk
Low levels of high-density lipoproteins (HDL) — the "good" cholesterol — in middle age may increase the risk of memory loss and lead to dementia later in life, researchers reported in Arteriosclerosis, Thrombosis and Vascular Biology: Journal of the American Heart Association.
A single mechanism for hypertension, insulin resistance and immune suppression
Many of the 75 million Americans with essential hypertension also develop diabetes and other complications in addition to their high blood pressure, and researchers have discovered a common molecular mechanism in a strain of rat that explains why such metabolic disorders arise together in mammals.

News discussion:

Medicine & Health news

[Home]   [Full version]