Showing posts with label healthier. Show all posts
Showing posts with label healthier. Show all posts

Sunday, April 1, 2012

New antibiotic could make food safer and cows healthier

The antibiotic nisin occurs naturally in milk, a product of bacteria resident in the cow's udder. It helps keep milk from spoiling and kills a of bacteria that cause , most notably listeria and . It was approved as a in 1969, and since then has become prevalent in the food industry in more than 50 countries.

"It's good to know that there are natural products added to our food that protect us from diseases," said lead researcher Wilfred van der Donk, a chemistry professor at Illinois. "Many people probably don't even realize that, or think it's some kind of a non-natural chemical. Last summer we had the listeria outbreak, and that's a good example of people dying from pathogens in food. You don't hear of such outbreaks often, and that's in part because of the compounds that are added to food to kill the ."

Nisin also shows promise as a treatment for , an infection in cows that costs the billions each year since milk produced during and shortly after has to be thrown out. Since nisin already is present in low levels in milk, farmers using nisin to treat mastitis may not need to discard milk or meat from recently treated animals.

However, for all its utility, nisin has drawbacks. It's produced in an , but it becomes unstable at the neutral needed for many foods or pharmaceuticals. It also becomes unstable at higher temperatures, limiting its uses.

While studying the genome of another that lives at , van der Donk's group found genes to make a molecule with a similar structure and function to nisin, known as an analog. They isolated the genes and inserted them into E. coli so they could produce the new antibiotic, dubbed geobacillin, in large enough quantities to study its structure and function.

"As it turns out, geobacillin is more stable, both in respect to pH and temperature," van der Donk said. "We think this is good news for potential use of geobacillin in food."

Nisin, and presumably geobacillin, work by binding to a molecule the pathogen needs to build its cell wall and then poking holes in the bacterial cell's membrane, a one-two punch that quickly kills the invader. However, the two antibiotics have slight structural differences. Nisin's structure has five looped regions, formed by cross-links in the protein chain. Geobacillin has seven loops thanks to two additional cross-links, which give the protein added stability.

The team tested geobacillin against several foodborne and disease-causing bacteria and found it similarly effective or more effective than nisin, depending on the bacteria. Most significantly, it was three times more active against the main contagious bacteria responsible for bovine mastitis. Contagious mastitis is devastating for dairy farmers, as the bacteria can quickly spread throughout a herd. In addition, since mastitis could be caused by a number of different infections, geobacillin's broad-spectrum activity makes it a very attractive treatment option.

Next, the researchers plan to test geobacillin against a wider spectrum of disease-causing bacteria. Many tests of safety, efficacy and economic production lie ahead, although geobacillin has shown great promise in tests to date. The researchers hope that its greater stability will enable medicinal applications for geobacillin that nisin could not realize, both for bovine mastitis and possibly for human disease.

"Nisin was very promising in early preclinical trials in that it was very effective in killing multidrug-resistant bacteria in mouse models," said van der Donk, "but because of its instability, it has a very short half-life in blood. So we're looking to see whether geobacillin has greater serum stability."

The researchers published their findings in the Proceedings of the National Academy of Sciences. The National Institutes of Health supported this work. Van der Donk is also a Howard Hughes Medical Investigator.

More information: The paper, "Geobacillins, lantibiotics from Geobacillus thermodenitrificans," is published in PNAS.

Provided by University of Illinois at Urbana-Champaign (news : web)

Wednesday, December 21, 2011

Shedding light on why it is so 'tough' to make healthier hot dogs

Anna M. Herrero and colleagues explain that some brands of sausage (frankfurters) have been reformulated with olive oil-in-water emulsion as a source of more healthful fat. With consumers gobbling up tens of billions of hot dogs annually, and the typical frankfurter packing 80 percent of its calories from fat, hot dogs have become a prime candidate for reformulation. Some hot dogs reformulated with vegetable oil develop an unpleasant chewy texture. Herrero's team set out to uncover the chemistry behind that change with an eye to guiding food companies to optimize low-fat sausage manufacture.

Using a laboratory instrument called an (IR spectrometer) they verified that sausages made with heart-healthy olive oil-in-water emulsion stabilized with casein were slightly tougher. However, when frankfurters were elaborated with an emulsion stabilized with a combination of casein and microbial transglutaminase (to help the oil blend in better) the sausage became much tougher. The IR spectrometer revealed that the proteins and fats in low-fat cooked derivates formulated with this stabilizer system as animal fat replacer showed weak lipid-protein interactions, which implies more physical entrapment of the emulsion within the meat matrix. This fact could explain why those sausages are tougher than the others.

More information: Infrared Study of Structural Characteristics of Frankfurters Formulated with Olive Oil-in-Water Emulsions Stabilized with Casein As Pork Backfat Replacer, J. Agric. Food Chem., Article ASAP. DOI: 10.1021/jf203941b

Abstract
This article reports an infrared spectroscopic (FT-IR) study on lipids and protein structural characteristics in frankfurters as affected by an emulsified olive oil stabilizing system used as a pork backfat replacer. The oil-in-water emulsions were stabilized with sodium caseinate, without (F/SC) and with microbial transglutaminase (F/SC+MTG). Proximate composition and textural characteristics were also evaluated. Frankfurters F/SC+MTG showed the highest (P < 0.05) hardness and lowest (P < 0.05) adhesiveness. These products also showed the lowest (P < 0.05) half-bandwidth of the 2922 cm–1 band, which could be related to the fact that the lipid chain was more orderly than that in the frankfurters formulated with animal fat and F/SC. The spectral results revealed modifications in the amide I band profile when the olive oil-in-water emulsion replaced animal fat. This fact is indicative of a greater content of aggregated intermolecular ß-sheets. Structural characteristics in both proteins and lipids could be associated with the specific textural properties of frankfurters.

Provided by American Chemical Society (news : web)