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How Many Cows Does It Take To String A Tennis Racquet?

How many cows does it take to string a tennis racquet? According to Professor Rod Cross of the University of Sydney, an expert on the physics and technology of tennis, the answer is 3. Many top professional tennis players still prefer to string their racquets with natural gut instead of synthetics due to natural gut's soft feel, high elasticity and ...

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TennisRacquet
Biology

The Razor-sharp Surgeonfish

As any diver can tell you, the waters under the sea can be beautiful and dangerous. The oceans are full of venemous fish, sharks, stinging jellies, manta rays and an assortment of spiny urchins and ... Continue reading

RazorsharpSurgeonfish
Geology

All That Glitters

Gold is called a 'noble' metal because it does not oxidize under ordinary conditions. Its chemical symbol Au is derived from the Latin word 'aurum.' In pure form gold has a metallic luster and is sun ... Continue reading

AllThatGlitters
Biology

Genome Mapping: A Guide To The Genetic Highway We Call The Human Genome

Imagine you're in a car driving down the highway to visit an old friend who has just moved to Los Angeles. Your favorite tunes are playing on the radio, and you haven't a care in the world. You stop ... Continue reading

GenomeMappingHumanGenome
Biology

What Are Stem Cells?

When an egg is fertilized by a sperm cell, it quickly becomes a single cell from which all cells of the body-to-be will be created. This 'mother of all cells' is what biologists call a totipotent stem ... Continue reading

StemCells

Tobacco Mosaic Virus

TobaccoMosaicVirusWe all know that AIDS, SARS and flu are all caused by viruses. Most people, however, don't realize that some of the earliest work on viruses was done on a common plant virus, Tobacco mosaic virus (TMV). Over 100 years ago, Martinus Beijerinck described a 'mosaic disease of tobacco' in which sick plants developed a yellow-green 'mosaic' symptom on their leaves. Beijerinck passed sap of infected leaves through porcelain filters and showed that the filtered sap was infectious. He concluded that something smaller than bacteria caused the disease and used the term virus to describe this unusual agent of disease.

Wendell Stanley used TMV to demonstrate the 'non-living' nature of viruses. He showed that TMV could be crystallized and that virus crystals were still infectious when placed back in tobacco. For this revolutionary work, he received a Nobel Prize in Chemistry in 1946. Viruses are composed mostly of a nucleic acid (DNA or RNA) and coat protein that covers the nucleic acid. Ten years later, Heinz Frankel-Conrat used TMV to show that the genetic material was nucleic acid (RNA), and not protein, when he proved that TMV nucleic acid was infectious. He took the virus apart, and using only its nucleic acid, was able to infect plants that went on to produce complete viruses.

Today, TMV remains both an important source of disease for a wide variety of plants and an essential tool for the advanced study of viruses. It was the first virus for which the entire nucleic acid was sequenced and the first virus for which plants were genetically engineered to create TMV-resistant plants.