Protostar Blazes Bright, Reshaping its Stellar Nursery

Inside the Cats's Paw Nebula as seen in an infrared image from NASA's Spitzer Space Telescope (left), ALMA discovered that an infant star is undergoing an intense growth spurt, shining nearly 100 brighter than before and reshaping its stellar nursery (right). Credit: ALMA (ESO/NAOJ/NRAO), T. Hunter; C. Brogan, B. Saxton (NRAO/AUI/NSF); GLIMPSE, NASA/JPL-Caltech

Inside the Cats’s Paw Nebula as seen in an infrared image from NASA’s Spitzer Space Telescope (left), ALMA discovered that an infant star is undergoing an intense growth spurt, shining nearly 100 brighter than before and reshaping its stellar nursery (right). Credit: ALMA (ESO/NAOJ/NRAO), T. Hunter; C. Brogan, B. Saxton (NRAO/AUI/NSF); GLIMPSE, NASA/JPL-Caltech

A massive protostar, deeply nestled in its dust-filled stellar nursery, recently roared to life, shining nearly 100 times brighter than before. This outburst, apparently triggered by an avalanche of star-forming gas crashing onto the surface of the star, supports the theory that young stars can undergo intense growth spurts that reshape their surroundings...

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Brain-Aging Gene discovered

Stock image credit: Getty Images

Asa Abeliovich, Herve Rhinn et al. Genetic determinants of aging in human brain. Cell Systems, 2017 DOI: 10.1016/j.cels.2017.02.009 Stock image credit: Getty Images

Genetic variant accelerates normal brain aging in older people by up to 12 years. Columbia University Medical Center (CUMC) researchers have discovered a common genetic variant that greatly impacts normal brain aging, starting at around age 65, and may modify the risk for neurodegenerative diseases. The findings could point toward a novel biomarker for the evaluation of anti-aging interventions and highlight potential new targets for the prevention or treatment of age-associated brain disorders such as Alzheimer’s disease.

“If you look at a group of seniors, some will look older than their peers and some will look younger,” sai...

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The Genes, Neural Circuits behind Autism’s Impaired Sociability: ‘toggle switch’

The trans-synaptic GluRδ2-Cbln1-neurexin triad is essential for synapse formation

The trans-synaptic GluRδ2-Cbln1-neurexin triad is essential for synapse formation

BIDMC scientists determined how a gene linked to one common form of autism works in a specific population of brain cells to impair sociability. The research, published in the journal Nature, reveals the neurobiological control of sociability and could represent important first steps toward interventions for patients with autism. Anderson and colleagues focused on gene UBE3A, multiple copies of which causes a form of autism in humans (called isodicentric chromosome 15q).Conversely, the lack of this same gene in humans leads to a developmental disorder called Angelman’s syndrome, characterized by increased sociability...

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Imaging at the Speed of Light

lasers configured on a tabletop

Researchers at the University’s Institute of Optics developed a technique that uses lasers to render materials hydrophobic—extremely water repellant. (University photo / Matthew Mann)

Tiny micro- and nanoscale structures within a material’s surface are invisible to the naked eye, but play a big role in determining a material’s physical, chemical, and biomedical properties. Over the past few years, Chunlei Guo and his University of Rochester team found ways to manipulate those structures by irradiating laser pulses to a material’s surface. They altered materials to make them repel water, attract water, and absorb great amounts of light – all without any type of coating. Now, Guo, Anatoliy Vorobyev, and Ranran Fang at University’s Institute of Optics, have advanced the research...

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