Cassini gets Close-up view of Saturn moon Atlas

Unprocessed image of Saturn's moon Atlas was taken on April 12, 2017, by NASA's Cassini spacecraft. Credit: NASA/JPL-Caltech/Space Science Institute

Unprocessed images of Saturn’s moon Atlas was taken on April 12, 2017, by NASA’s Cassini spacecraft. Credit: NASA/JPL-Caltech/Space Science Institute

These raw, unprocessed images of Saturn’s moon, Atlas, were taken on April 12, 2017, by NASA’s Cassini spacecraft. The flyby had a close-approach distance of about 7,000 miles (11,000 kilometers). These images are the closest ever taken of Atlas and will help to characterize its shape and geology. Atlas (19 miles, or 30 kilometers across) orbits Saturn just outside the A ring—the outermost of the planet’s bright, main rings.

https://www.nasa.gov/feature/jpl/cassini-sees-flying-saucer-moon-atlas-up-close

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Hubble sees Starbursts in Virgo

Although galaxy formation and evolution are still far from being fully understood, the conditions we see within certain galaxies -- such as so-called starburst galaxies -- can tell us a lot about how they have evolved over time. Starburst galaxies contain a region (or many regions) where stars are forming at such a breakneck rate that the galaxy is eating up its gas supply faster than it can be replenished! Credit: ESA/Hubble & NASA

Although galaxy formation and evolution are still far from being fully understood, the conditions we see within certain galaxies — such as so-called starburst galaxies — can tell us a lot about how they have evolved over time. Starburst galaxies contain a region (or many regions) where stars are forming at such a breakneck rate that the galaxy is eating up its gas supply faster than it can be replenished! Credit: ESA/Hubble & NASA

Although galaxy formation and evolution are still far from being fully understood, the conditions we see within certain galaxies – such as starburst galaxies – can tell us a lot about how they have evolved over time...

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3D-Printed Patch can help Mend a ‘Broken’ Heart

A team of biomedical engineering researchers has created a revolutionary 3D-bioprinted patch that can help heal scarred heart tissue after a heart attack. Two of the researchers involved are biomedical engineering Associate Professor Brenda Ogle (right) and Ph.D. student Molly Kupfer (left). Credit: Patrick O’Leary, University of Minnesota

A team of biomedical engineering researchers has created a revolutionary 3D-bioprinted patch that can help heal scarred heart tissue after a heart attack. Two of the researchers involved are biomedical engineering Associate Professor Brenda Ogle (right) and Ph.D. student Molly Kupfer (left). Credit: Patrick O’Leary, University of Minnesota

A team of biomedical engineering researchers, led by the University of Minnesota, has created a revolutionary 3D-bioprinted patch that can help heal scarred heart tissue after a heart attack. The discovery is a major step forward in treating patients with tissue damage after a heart attack. The research study is published in Circulation Research, a journal published by the American Heart Association. Researchers have filed a patent on the discovery.

Ac...

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Harnessing CRISPR for Rapid Detection of Viral and Bacterial Infection

The Cas13a enzyme causes collateral RNA damage that is the heart of a new diagnostic system, SHERLOCK, that can detect minute quantities of virus and much more

The Cas13a enzyme causes collateral RNA damage that is the heart of a new diagnostic system, SHERLOCK, that can detect minute quantities of virus and much more

Researchers have created a version of CRISPR-Cas that can be used to diagnose infections, such as Zika and dengue, with a high level of sensitivity. The advancement could help facilitate rapid detection and diagnosis of many other pathogens, too. While some methods exist for detecting genetic sequences, they have trade-offs among sensitivity, specificity, simplicity, cost, and speed. In the search for a more effective method, Feng Zhang, Jonathan S. Gootenberg and colleagues turned to a CRISPR-Cas system that targets RNA.

Binding the target RNA activates this particular Cas enzyme to promiscuously cleave nearby RNA...

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