Mostrando entradas con la etiqueta Imagen. Mostrar todas las entradas
Mostrando entradas con la etiqueta Imagen. Mostrar todas las entradas

viernes, 28 de marzo de 2014

Wow...This 3200 Year Old Tree Is So Huge It's Never Been Captured In A Single Image. Until Now.

It takes a special kind of tree to have a nickname.

"The President" is one of those trees. The giant sequoia stands 247 feet tall, measures 45,000 cubic feet in volume, and is an estimated 3,200 years old.


The trunk is 27 feet wide and the his mighty branches hold 2 billion needles, the most of any tree on the planet.


Source: YouTube
On top of that, he still adds one cubic meter of wood per year - making him one of the fastest growing trees in the world.

Giant sequoias exist in only one place, where The President and smaller trees that make up his "House" and "Senate", reside.

On the western slope of the Sierra Nevadas in California, at 5000-8000 ft above sea level.
Until now, the tree had never been photographed in its entirety.

A team of photographers from National Geographic worked with scientists from the park to be the first.

Source: YouTube
It took an intricate set of pulleys and levers to scale the tree, which some argue is the largest in the world (taking width into account).


After 32 days and stitching together 126 separate photos, we are left with this breathtaking portrait of The President.

Absolutely incredible. To see how it was done, check out this video: Source: YouTube

Although we like to think humans are greatest species on earth, The President gives us a stoic reality check by dwarfing these scientists with his enormous trunk. In his 3200 years, he has seen a hundred generations of humans come and go. He has weathered thousands of storms, fires, harsh winters, earthquakes, and even climate change - but is growing even faster than ever before.

To visit the "Giant Forest" at Sequoia National Park and witness the majesty in person, more info here. Share his story with others by clicking below!

ORIGINAL: Distractify
March 4, 2014

martes, 11 de marzo de 2014

Scientists capture first super-res X-rays of living cells

While lower-energy "soft" X-rays can already image living cells, the higher-energy "hard" ones that can view objects as small as a few nanometers haven't been able to -- until now.

 
To avoid damaging the cells, the researchers exposed them for only 0.05 seconds at a time, but still managed to image nanometer-scale structures. Britta Weinhausen/University of Göttingen

Typically, to view super small objects like molecules, the samples must first be dipped in a chemical preservative bath of death that keeps all parts entirely locked in place and thus viewable via very sophisticated tech such as X-ray devices and electron microscopes. The problem, of course, is that those molecules don't behave the same in death as they do in life, so while our current views of life at the nanoscale level are extremely detailed, they're technically speaking views of death, or at the very least, life frozen.

Now scientists at the University of Göttingen in Germany say that, using a new approach with one of the world's most sophisticated X-ray machines, the Petra III, they've been able to view -- however briefly -- actual living cells in their natural environment.

Reporting in the journal Physical Review Letters, the researchers say they grew cancer cells from the adrenal cortex on a silicon nitrate substance that is nearly transparent to X-rays. They then fed those cells nutrients and pumped away their metabolic products so that they could keep the cells alive in as close to a natural environment as possible while still being viewable by the higher-energy (aka "hard" X-ray) Petra III. While lower-energy "soft" X-rays can already image living cells, the resolution isn't as good.

Related stories
3D X-ray provides window into heart health
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Researchers accelerate proton cancer treatment

To avoid killing the cells with the powerful X-ray beams, they exposed the sample in a series of frames that each lasted a mere 0.05 seconds. They then used this same nanodiffraction approach on chemically fixed cells for comparison and found that their cellular structures were noticeably different when viewed on a scale of 30 to 50 nanometers (that is, millionths of a millimeter).

While this initial test was performed using extremely brief and powerful blasts on petri dish cancer cells, the researchers say it offers evidence that we should be able to study living cells at super high resolution without first having to change their molecular behavior -- which could dramatically improve our understanding of life, including diseases and treatments, at the nanoscale level.

ORIGINAL: CNet

martes, 4 de febrero de 2014

Secrets of the Brain. How the human mind really works.

Photograph by Robert Clark; brain preparation performed at Allen Institute for Brain Science
Centuries of study have provided increasingly detailed understanding of human brain anatomy.

Mind Machine. Photograph by Robert Clark

An engineer wears a helmet of sensors at the Martinos Center for Biomedical Imaging—part of a brain scanner requiring almost as much power as a nuclear submarine. Antennas pick up signals produced when the scanner’s magnetic field excites water molecules in the brain. Computers convert this data into brain maps like the one in the following image.



The Color of Thought. Image by Van Weeden and L. L. Wald, Martinos Center for Biomedical Imaging, Human Connectome Project

Scientists are turning their attention to the complex circuits that connect the brain’s many regions—some 100,000 miles of fibers called white matter, enough to circle the Earth four times. In this image taken at the Martinos Center, pink and orange bundles transmit signals critical for language.


Anatomy of a Mystery Image by Van Weeden and L. L. Wald, Martinos Center for Biomedical Imaging, Human Connectome Project

New technologies let scientists peer deep into the hidden structure of the brain. A high-resolution view of the image above reveals white matter fibers arranged in a mysterious grid structure, like longitude and latitude lines on a map.


The Glow of Memory Image by Garrett Gross and Don Arnold, University of Southern California

When you form a memory, “there’s a physical change in the brain, says Don Arnold, of the University of Southern California. Red and green dots on the branches extending from this rat neuron show where it contacts other neurons. As the rat forms new memories, new dots appear and old ones vanish.

Intimate View Photograph by Robert Clark Two hundred sections of a piece of mouse brain, each less than 1/1,000 the thickness of a human hair, are readied to be imaged by an electron microscope. Arranged in stacks, 10,000 such photomicrographs form a 3-D model no larger than a grain of salt (in tweezers).

Intimate View Image by Josh L. Morgan, Harvard University; Arthur Wetzel, Pittsburgh Supercomputing Center Arranged in stacks, 10,000 photomicrographs form a 3-D model no larger than a grain of salt. A human brain visualized at this level of detail would require an amount of data equal to all the written material in all the libraries of the world.



Jennifer on the Brain Caltech and UCLA scientists use pictures of celebrities to study how the brain processes what the eyes see. In 2005 they found an individual nerve cell that fired only when subjects were shown pictures of Jennifer Aniston. Another neuron responded only to pictures of Halle Berry—even when she was masked as Catwoman. Follow-up studies suggest that relatively few neurons are involved in representing any given person, place, or concept, making the brain staggeringly efficient at storing information.

TOP ROW (from left): Landov; Universal Pictures/Entertainment Pictures/Zuma Press; Kevin Dietsch, UPI/Landov; Universal Pictures/Entertainment Pictures/Zuma Press; Rune Hellestad, UPI/Landov; Tschiponnique Skupin, Future-Image/Zuma Press; Dan Steinberg, AP Images; Stephen Hird, Reuters; Ash Knotek, Snappers, Zuma Press; Lisa O'Connor, Zuma Press. SECOND ROW (from left): Franziska Krug, Action Press/Zuma Press; Sharkpixs/Zuma Press; D. Long, Globe Photos/Zuma Press; AJ Sokalner, UPPA/Zuma Press; Jordan Strauss, Invision/AP Images; Globe Photos/Zuma Press; Universal Pictures/Entertainment Pictures/Zuma Press; Universal Pictures/Entertainment Pictures/Zuma Press; ZBP/Zuma Press; Sharkpixs/Zuma Press; Henry McGee, Globe Photos/Zuma Press. THIRD ROW (from left): Fox Searchlight Pictures/Entertainment Pictures/Zuma Press; Clasos/Splash News/Corbis; Fox/Entertainment Pictures/Zuma Press; Graham Whitby Boot, Allstar/UPPA/Zuma Press; Paul Schmulbach, Globe Photos/Zuma Press; Ash Knotek, Snappers/ZUMA Press; Nancy Kaszerman, Zuma Press; NBC/NBCU Photo Bank/Getty Images; Paul Smith, Featureflash/Shutterstock. FOURTH ROW (from left): Kristin Callahan, Ace Pictures/Zuma Press; Globe Photos/Zuma Press; Lisa O'Connor, Zuma Press; EFE/Zuma Press; Mario Anzuoni, Reuters; Zuma Press; Jim Ruymen, UPI/Landov; Brian Kersey, UPI/Landov; Zuma Press; Jason Merritt, Getty Images. FIFTH ROW (from left): Graham Whitby, Globe Photos/Zuma Press; Morris Mac Matzen, AP Images; Chris Pizzello, AP Images; PA Photos/Landov; Globe Photos/Zuma Press; Nancy Kaszerman, Zuma Press; Mario Guzman, EFE/Zuma Press; Dave Longendyke, Globe Photos/Zuma Press. SIXTH ROW (from left): MWP/Zuma Press; Universal Pictures/Entertainment Pictures/Zuma Press; Paul Schmulbach, Globe Photos/Zuma Press; Nancy Kaszerman, Zuma Press; Landov; Columbia Pictures/Entertainment Pictures/Zuma Press; Armando Gallo, Retna Ltd./Corbis; Kristin Callahan, Ace Pictures/Zuma Press. SEVENTH ROW (from left): Chris Pizzello, AP Images; Kristin Callahan, Ace Pictures/Zuma Press; Dan Herrick, Zuma Press; Universal Studios/Entertainment Pictures/Zuma Press; Mario Anzuoni, Reuters; James Warren, UPPA/Zuma Press; Fox/Entertainment Pictures/Zuma Press; Danny Moloshok, AP Images; Nancy Rivera, Ace Pictures/Zuma Press



ORIGINAL: NatGeo

lunes, 3 de febrero de 2014

Global Forest Change






Results from time-series analysis of 654,178 Landsat images in characterizing forest extent and change, 2000–2012.

Trees are defined as all vegetation taller than 5m in height and are expressed as a percentage per output grid cell as ‘2000 Percent Tree Cover’. ‘Forest Loss’ is defined as a stand-replacement disturbance, or a change from a forest to non-forest state. ‘Forest Gain’ is defined as the inverse of loss, or a non-forest to forest change entirely within the study period.Forest Loss Year’ is a disaggregation of total ‘Forest Loss’ to annual time scales.

Reference 2000 and 2012 imagery are median observations from a set of quality assessment-passed growing season observations.

ORIGINAL: Earth Engine Partners

by Hansen, Potapov, Moore, Hancher et al.

martes, 7 de enero de 2014

Researchers Japan find damage-free way to observe internal cell structures

Japanese scientists say they have developed the world’s first method to observe a live cell without damaging its internal structure.

The researchers said the procedure, using free-electron X-ray laser technology, will help advance an understanding of intracellular phenomena, such as the mechanism of cell division.

By further improving performance, we will be able to take a look at smaller objects, as well as make closer observations of them,” said Yoshinori Nishino, an electronic science professor at Hokkaido University, who led the research team.

The team used the SACLA state-of-the-art X-ray facility in Hyogo Prefecture to expose bacteria, each 600 nanometers long, to a single dose of X-ray for 100-trillionth of a second. A nanometer is one-billionth of a meter.
An image taken at the SACLA X-ray facility in Hyogo Prefecture reveals a living cell’s internal structures. (Provided by Yoshinori Nishino)
An image taken at the SACLA X-ray facility in Hyogo Prefecture reveals a live cell’s internal structures. (Provided by Yoshinori Nishino)

It has been impossible to observe live cells using a conventional X-ray device because they become severely damaged. The new method also eliminates the need to fix cells’ internal structures with resin and stain them when using electron microscopy techniques.

The SACLA facility, set up by the RIKEN research institute and others at a cost of 39 billion yen ($372 million), enabled Nishino’s team to capture an image of bacteria almost free from damage.

According to the scientists, substances that appeared to be a gathering of DNA, the molecule that encodes genetic information, could be observed in the cells.

The findings were published in the British scientific journal Nature Communications on Jan. 7.

ORIGINAL: AJW
By JIN NISHIKAWA/ Staff Writer
January 08, 2014

miércoles, 1 de enero de 2014

3D Brain Maps Guide Doctors — via iPhone



Here, the brain has been neatly sliced in half.
Credit: Albert L. Rhoton Jr., MD, 2007.


Far from the state-of-the-art medical facilities available in the United States, many brain surgeons in developing countries look to their smartphones for guidance. The phones have started to fulfill this role, in part, thanks to the thousands of 3D brain images, produced by Dr. Albert Rhoton at the University of Florida, that are freely available online.

"I've had young surgeons from Africa, Brazil and other countries tell me they're pulling the images into the operating room" and using them during surgery, said Rhoton, head of the Neuro-Microanatomy Lab at the University of Florida's McKnight Brain Institute.

From its beginnings as a training tool for surgical residents, the doctor's image library has grown into the world's largest collection of 3D brain images. Physicians across the globe now use the detailed anatomical images to train residents, prepare for surgeries and even guide them when performing surgery. [Gallery: See the Amazing 3D Images of the Human Brain]

Human Brain
Neural Connections
Brain Atlas
Brain Blueprint
Brain Blocks
Neurocortex

The images are "our small contribution to making what is a delicate, awesome experience for neurosurgery patients more accurate, gentler and safer," Rhoton told LiveScience.

Rhoton has collected images of brain anatomy for as long as he's been teaching surgery — 50 years — and began moving to 3D technology 25 years ago. Only recently, however, did he realize how smartphones and online download venues could expand the reach of his educational tools. Two and a half years ago, Rhoton and his colleagues began working with the American Association of Neurological Surgeons (AANS) to make the brain images and videos available on iTunes University — all at no cost.

Even before the iTunes U venture, Rhoton had shared his brain images with hospitals and universities as a visiting instructor. "I've always given these images to those who wanted to use them," he said, "in the hopes that they would help some patient I'll never know and never meet."

  The big blue structure here (dyed by Rhoton for easy viewing) shows where the great cerebral vein drains blood from the cerebrum. Credit: Albert L. Rhoton Jr., MD, 2007.

The guides show the detailed structures of various sections of the brain, with blood vessels and nerves color-coded in bright red and blue. The colors make the details of neural anatomy much clearer than in the normal, grayish brain matter.

Rhoton and the residents he instructs have built up the library over decades, performing careful dissections and transferring the images they obtain to 3D photography and video. The iTunes U content is engineered to be usable across device platforms, from iPhones to laptops to 3D television.

Having images in 3D provides advantages over 2D images for brain surgeons, Rhoton said. For instance, two-dimensional content tends to flatten brain anatomy, obscuring the way nerves, veins and other structures traverse the brain matter, he said. Surgeons viewing the 3D images, in contrast, can plan a precise surgical path, avoiding delicate structures whose damage would have dire consequences.

With 3D images, "the anatomy is displayed in such a way that you can orient the images to the direction of approach the surgeon is using in the OR [operating room]," Rhoton said. "You can see where the nerves and structures are that need to be protected in that particular area, using that specific approach, in that specific direction."

Rhoton and AANS have formatted the images with a menu, so that users can control the angle and area of the brain they want to view; users can even click links to call up medical literature related to the portion of the brain they're viewing.

Rhoton's work earned him the 2011 Surgeon of the Year award from the journal World Neurosurgery. His images and educational efforts have helped "several thousands of neurosurgeons scattered across the planet to save millions of lives," Dr. Hildo Azevedo-Filho, chairman of neurological surgery at the University of Pernambuco in Brazil, wrote in recognizing the award.

After seeing how surgeons have used his images during actual surgeries, Rhoton and the AANS next hope to feed the brain maps directly into endoscope screens used in surgery. They're developing technology that would split that screen to show Rhoton's images side by side with the live feed from cameras inserted into the patient's brain.

Moreover, Rhoton said the library of images and videos will only continue to grow. "We've just scratched the surface on the number of images," he said.

Follow Michael Dhar @michaeldhar. Follow us @livescience, Facebook& Google+.

ORIGINAL: Live Science
By Michael Dhar, LiveScience Contributor
December 30, 2013

viernes, 27 de diciembre de 2013

Olympus BioScapes 2013 Winners Gallery

Thumbnail images of the Olympus BioScapes 2013 winners and honorable mentions are displayed in this gallery. In order to view a larger version of the images (or to play videos), please click on the individual thumbnails.

2013 Winning Entries
The Olympus BioScapes 2013 winners, honorable mentions, and technical merit awards are displayed in this gallery. In order to view the images, please click on the individual links.
Specimen: Carnivorous U. gibba plant
HHMI Janelia Farm Research Campus
Ashburn, Virginia, United States
Specimen: Open trap of aquatic carnivorous plant, humped bladderwort Utricularia gibba, with single-cell organisms inside.
Technique: Confocal imaging, 100x
2nd Prize - Miss Dorit Hockman Specimen: Molossus rufus embry
Miss Dorit Hockman
University of Oxford
Oxfordshire, United Kingdom
Specimen: Embryo of black mastiff bat Molossus rufus.
Technique: Stereo microscopy
3rd Prize - Dr. Igor Siwanowicz Specimen: Desmids
Dr. Igor Siwanowicz
HHMI Janelia Farm Research Campus
Ashburn, Virginia, United States
Specimen: Single-cell fresh water algae (desmids). Composite image including, concentric from the outside: Micrasterias rotata, Micrasterias sp., M. furcata, M. americana, 2x M. truncata, Euastrum sp. and Cosmarium sp.
Technique: Confocal imaging, 400x
4th Prize - Mr. Spike Walker Specimen: Lily flower bud
Staffordshire, United Kingdom
Specimen: Lily flower bud, transverse section.
Technique: Darkfield illumination, stitched images
5th Prize - Dr. Dylan Burnette Specimen: Mouse fibroblasts
Dr. Dylan Burnette
National Institutes of Health
Bethesda, Maryland, United States
Specimen: Mouse embryonic fibroblasts showing actin filaments (red), mitochondria (green) and DNA (blue).
Technique: Structured illumination microscopy (SIM) fluorescence, acquired with a 60x objective
6th Prize - Mr. Kurt Wirz Specimen: Gonocerus acuteangulatus
Mr. Kurt Wirz
Basel, Switzerland
Specimen: "Brother bugs." Gonocerus acuteangulatus, two hours old. Size 3mm.
7th Prize - Mr. Charles Krebs Specimen: Phantom Midge larva
Mr. Charles Krebs
Issaquah, Washington, United States
Specimen: Phantom midge larva (Chaoborus) "Glassworm." Birefringent musculature that is usually clear and colorless is made visible here by specialized illumination.
Technique: Polarized light, 100X

8th Prize - Dr. Yaron Fuchs Specimen: Mouse tail with stem cells
Dr. Yaron Fuchs
Howard Hughes Medical Institute/The Rockefeller University
New York, NY USA
Specimen: Mouse tail whole mounts showing hair follicle stem cells and proliferating cells.
Technique: Confocal imaging
9th Prize - Mr. Fabrice Parais Specimen: Sericostoma sp.
Mr. Fabrice Parais
DREAL (Regional Directorate of Environment, Planning and Housing) of Basse-Normandie
Caen, France
Specimen: Head and legs of a caddisfly larva: Sericostoma sp., a benthic macroinvertebrate that can be used for freshwater biomonitoring; because it is relatively sensitive to organic pollution and dies if water is dirty, it is a good indicator of water quality.
Technique: Stereo microscopy, 15x
10th Prize - Mr. Ralph Grimm Specimen: Video: Paramecium
Mr. Ralph Grimm
Jimboomba Queensland, Australia
Specimen: Paramecium, showing contractile vacuole and ciliary motion.
Technique: Differential interference contrast, 350x-1000x


2013 Honorable Mentions


C. Barros

M. Boyle

T. Burns

M. Clarke

M. Crutchley

N. Cuenca

S. Di Talia

J. Dolan

G. Drange

J. Ducharme

A. Dumitrache

A. Ertürk

A. Ferrand

M. Ghabril and C. Babbey

M. Gibson

M. Gibson

G. Günther

J. Hallfeldt

T. Hickman

P. Honkakoski

C. Jackson

M. Kandasamy

M. Khodaverdi

M. Klinghardt

L. Knight

L. Knight

A. Kobitski et al.

A. Kohn and J. Kubo

C. Krebs

C. Krebs

M. Lehnert and C. Mulvane

N. Lindström

X. Lu and C. Bolt

G. Luna

D. Maitland

J. Michels

J. Michels

D. Millard

M. Miś

D. Moore

R. Moreno Gill

S. Mouchet

J. Myslowski

W. Nell

J. Nicholson

S. Nishimura

A. Pan

J. Petersen

J. Petersen

A. Phillips-Yzaguirre

C. Pintér

C. Pintér

P. Ray

G. Rouse

A. Salehi

A. Singh

I. Siwanowicz

V. Sýkora

E. Tabdanov

R. Taiariol

V. Tobias Santos

M. Turzańska

M. Turzańska

W. van Egmond

P. Verrees

D. von Wangenheim

L. Windus

K. Wirz

A. Woolley and A. Gilmour

All image copyrights belong to the individual contestants.
For image use permissions, contact ilene@olympusbioscapes.com

ORIGINAL: Olympus Bioscapes