Showing posts with label Genetically Modified. Show all posts
Showing posts with label Genetically Modified. Show all posts

Daily Science Journal (Feb. 2, 2008) — While biomedical, electronics, and other branches of research are marching steadily into the realm of the smaller-than-small nanometer scale, building needed materials at this scale has been problematic.

Recently, however, a team from The Scripps Research Institute unveiled a novel approach to the problem that yields a material with novel properties, which some might find reminiscent of Flubber. The material is produced using naturally occurring proteins as templates for uniform, self-assembled, nano-scale construction.

The material, an organic polymer described in today's early, online edition of the Proceedings of the National Academy of Sciences (PNAS), could one day find application in everything from screening for disease to microelectronics.


Using Nature's Tricks

Nature is replete with examples of molecules such as DNA that self-assemble with uniform patterns on the nanoscale, but until now researchers have had limited success duplicating such processes. The new study, however, provides one synthetic method that has effectively mimicked the templating strategy used in nature for nanoscale construction in the lab.

To create the new material, the Scripps Research team, led by Scripps Research President Richard Lerner and Assistant Professor Tobin Dickerson, began with a natural nanoscale product, a bacterial virus or phage. A nanometer is one billionth of a meter, or the width of a few average atoms.

Specifically, the product the team worked with was a phage known as M13. If scaled up, the phage is proportionally equivalent to a 4-foot-long pencil, with the tip and eraser roughly representing the active parts of the phage that infect bacteria. Other proteins that are biologically inert and analogous to the wood body of the pencil provide the filamentous phage's structure.

Having worked with phage extensively in other applications, the team decided to explore the possibility of using those structural proteins as a potential template for nanoscale construction. To do so, the team chemically modified molecular protrusions on the proteins so they would attract and bind with the components needed to form strands of polyacrylamide, a common polymer used to make laboratory gels.

The resulting polymer-phage combination, which twists into helices like DNA and RNA molecules, takes on the shape of a comb with the polymers as the teeth. These teeth in turn interlock to form a strangely resilient, rubbery solid.

Shocking Flexibility

Once the new material, known as a protein-polymer bioconjugate, was created, the group was shocked to find that it was almost impossible to break a sample apart. It could be sliced, but no matter how hard researchers compressed or squeezed it, it always bounced back to its original state, because the stable phage proteins act like rebar in concrete to provide strength.

Further analyses uncovered additional important characteristics. The combs do not grow completely uniformly—some combs grow more teeth than others, for instance, before interlocking with a nearby comb. But the combs can only be a prescribed distance apart for the chemical interlocking to occur, which leads to uniform size for the pores between the comb teeth. The pores proved to be about 4 nanometers wide and greater than 1 micrometer (one millionth of a meter) in length.

This uniformity is in stark contrast with experiments which showed that simply mixing the phages with polymers without the templating procedure produces a chaotic hodge podge at the molecular level.

Interestingly, after creating the material, the group discovered that a British scientist had done theoretical calculations about how flexible rods—like the phages—would pack together using the least amount of energy.

"It was extremely gratifying to see that the mathematics had exactly predicted what we were observing," says Dickerson

Putting It to Use

Although the work was intended mainly as a proof of concept for using the phages as templates, the researchers have a number of potential applications in mind. The phage can be produced easily and cheaply in very large quantities, and the polymer components are readily available and simple to combine to create the final material. These characteristics would make commercial application possible.

"In essence, bacteriophage-derived materials are a renewable resource," says Dickerson.

The defined channels established by the pores in the material might be adapted as pathways for electrons for use in microelectronics. Or, the pores might be used as a filter for certain molecules, for example to test blood samples for proteins whose presence is tied to particular diseases. More complex potential uses might include altering the biologically active portions of the phage to attract specific molecules, forcing them into the polymers' pores, or to block others.

"These tools can be visualized like Tinkertoys ® or Legos ®," says Dickerson of the possibilities. "You can think about this really in engineering terms using macroscopic analogs such as baskets, or lids, or holes."

To add to the list of potential applications, the team has already begun exploring additional materials that might be created using the basic phage construction scheme.

In addition to Dickerson and Lerner, authors on the paper, entitled "Biologically templated organic polymers with nanoscale order," were Bert Willis, Lisa Eubanks, Malcolm Wood, and Kim Janda, all of Scripps Research. See http://www.pnas.org/cgi/content/abstract/0711308105v1.

The work was supported by the Skaggs Institute for Chemical Biology, Worm Institute for Research and Medicine, and a National Institutes of Health Kirschstein National Research Service Award.

Adapted from materials provided by Scripps Research Institute.



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Daily Science Journal (Jan. 29, 2008) — The Fertile Crescent of the Middle East has long been identified as a "cradle of civilization" for humans. In a new genetic study, researchers at the University of California, Davis, have concluded that all ancestral roads for the modern day domestic cat also lead back to the same locale.

Cats, with their penchant for hunting mice, rats and other rodents, became useful companions as people domesticated, grew and stored wild grains and grasses. Eventually, cats also became pets but were never fully domesticated. Even today, most domestic cats remain self-sufficient, if necessary, and continue to be efficient hunters, even when provided with food. (Credit: Michele Hogan)

Findings of the study, involving more than 11,000 cats, are reported in the January issue of the journal Genomics.


"This study confirms earlier research suggesting that the domestication of the cat started in the Fertile Crescent region," said Monika Lipinski, lead researcher on the study and a doctoral candidate in the School of Veterinary Medicine. "It also provides a warning for modern cat fanciers to make sure they maintain a broad genetic base as they further develop their breeds."

Leslie Lyons, an authority on cat genetics and principal investigator on this study, said: "More than 200 genetic disorders have been identified in modern cats, and many are found in pure breeds. We hope that cat breeders will use the genetic information uncovered by this study to develop efficient breed-management plans and avoid introducing genetically linked health problems into their breeds."

History of the modern cat

Earlier archaeological evidence and research on the evolutionary history of cats has suggested that domestication of the cat originated about 5,000 to 8,000 years ago in the Fertile Crescent, a region located today in the Middle East. This is the area around the eastern end of the Mediterranean, stretching from Turkey to northern Africa and eastward to modern day Iraq and Iran. This domestication of the cat occurred as humans transitioned from nomadic herding to raising crops and livestock.

Cats, with their penchant for hunting mice, rats and other rodents, became useful companions as people domesticated, grew and stored wild grains and grasses. Eventually, cats also became pets but were never fully domesticated. Even today, most domestic cats remain self-sufficient, if necessary, and continue to be efficient hunters, even when provided with food.

Cats and their gene pools spread rapidly around the world as ancient civilizations developed trade routes. Unlike other domesticated species, there has been little effort to improve on the cat for functional purposes. Instead, development of cat breeds has been driven more by preferences for certain aesthetic qualities like coat color and color patterns.

Today, there are 50 recognized cat breeds. Of that total, 16 breeds are thought to be "natural breeds" that occurred in specific regions, while the remaining breeds were developed during the past 50 years.

DNA of 11,000 cats

In this study, the UC Davis research team focused on:
  • tracing the movement of the modern cat through the ancient world and to the Americas;
  • measuring changes in genetic diversity as cats dispersed throughout the world; and
  • measuring any loss of genetic diversity that might have occurred in the development of the older or more contemporary breeds.

The researchers collected samples of cheek cells from more than 11,000 cats. These cats represented 17 populations of randomly bred cats from Europe, the Mediterranean, Asia, Africa and the Americas, as well as 22 recognized breeds.

DNA samples of most breeds were obtained at cat shows or were sent in upon the lab's request by cat owners in the United States. The study was assisted by a host of collaborators from throughout the world. DNA, or deoxyribonucleic acid, is the hereditary material in humans, other animals and plants. It carries the instructions or blueprint for making all the structures and materials that the organism needs to function.

Genetic markers called "microsatellite markers," commonly used for DNA profiling, were used to determine the genetic relationships of cat breeds, their geographic origins and the levels of genetic loss that have resulted from inbreeding.

Findings

From the DNA analysis, the researchers found that the cats were genetically clustered in four groups that corresponded with the regions of Europe, the Mediterranean basin, east Africa and Asia.

They discovered that randomly bred cats in the Americas were genetically similar to randomly bred cats from Western Europe. They also found that the Maine coone and American shorthair -- two breeds that originated in the United States -- were genetically similar to the seven Western European breeds. This suggests that cats brought to the New World by European settlers have not had sufficient time to develop significant genetic differentiation from their Western European ancestors.

The study yielded many interesting breed-specific findings. For example, the researchers found that the Persian breed, perhaps the oldest recognized pure breed, was not genetically associated with randomly bred cat populations from the Near East, but rather was more closely associated with randomly bred cats of Western Europe.

In addition, the researchers found that, of the Asian cat breeds, only the Japanese bobtail was genetically clustered with Western cats, although it did retain some Asian influence.

Cats from the Mediterranean region were found to be genetically uniform, perhaps a result of the constant movement of ships and caravans during the early era of the cat's domestication, the researchers suggested.

Lesson for cat breeders

The study found that genetic diversity remained surprisingly broad among cats from various parts of the world. However the data indicated that there was some loss of diversity associated even with the long-term development of foundation cat breeds -- those breeds that provided the genetic basis from which modern pure breeds were developed.

The researchers note that, given the relatively short time span during which modern breeds are emerging, cat breeders should proceed cautiously as they develop their breeds, making sure to maintain a broad genetic base that will minimize introduction of genetically based health problems.

Funding for this study was provided by the National Institutes of Health, the Winn Feline Foundation and the George and Phyllis Miller Feline Health Fund. Also supporting the study were the Center for Companion Animal Health and the Koret Center of Veterinary Genetics, both within the UC Davis School of Veterinary Medicine.

Adapted from materials provided by University of California - Davis.




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