Showing posts with label Science News. Show all posts
Showing posts with label Science News. Show all posts

Monday, February 29, 2016

Ocean acidification already slowing coral reef growth

Science News
from research organizations

Ocean acidification already slowing coral reef growth

Date:
February 24, 2016
Source:
Carnegie Institution
Summary:
A team of scientists performed the first-ever experiment that manipulated seawater chemistry in a natural coral reef community in order to determine the effect that excess carbon dioxide released by human activity is having on coral reefs. Their results provide evidence that ocean acidification is already slowing coral reef growth. 
 
Doing fieldwork at One Tree Island in Australia's Great Barrier Reef, a team led by Carnegie's Ken Caldeira pumps alkalinity across a reef flat to measure the effects on community calcification. Caldeira has done extensive work at One Tree Island, where he studies ocean acidification, marine biogeochemisty, and chemical oceanography, all related to reef decline and the perilous situation of the world's coral reefs today. Reefs are havens for marine biodiversity and underpin the economies of many coastal communities. But they are at risk thanks to changes in ocean chemistry due to greenhouse gas emissions, pollution, warming waters, overdevelopment, and overfishing.
Credit: Lester Kwiatkowski.
A team of scientists led by Carnegie's Rebecca Albright and Ken Caldeira performed the first-ever experiment that manipulated seawater chemistry in a natural coral reef community in order to determine the effect that excess carbon dioxide released by human activity is having on coral reefs. Their results provide evidence that ocean acidification is already slowing coral reef growth. Their work is published in Nature.
When we burn coal, oil, or gas, the resulting carbon dioxide is released into the atmosphere where it acts as a greenhouse gas. Greenhouse gases emitted by human activity don't just affect the atmosphere; they also have a negative impact on the world's oceans. This is partially due to overall warming caused by climate change. But also, over time, most of the carbon dioxide in the atmosphere is absorbed by the ocean, where it reacts with seawater to form an acid that is corrosive to coral reefs, shellfish, and other marine life. This process is known as 'ocean acidification'.
Coral reefs are particularly vulnerable to the ocean acidification process, because reef architecture is built by the accretion of calcium carbonate, called calcification, which becomes increasingly difficult as acid concentrations increase and the surrounding water's pH decreases. Scientists predict that reefs could switch from carbonate accretion to dissolution within the century due to this acidification process.
Previous studies have demonstrated large-scale declines in coral reefs over recent decades. Work from another team led by Caldeira found that rates of reef calcification were 40 percent lower in 2008 and 2009 than they were during the same season in 1975 and 1976. But it has been hard to pinpoint exactly how much of the decline is due to acidification and how much is caused by warming, pollution, and over-fishing.
The team manipulated the alkalinity of seawater flowing over a reef flat off Australia's One Tree Island in the southern Great Barrier Reef. They brought the reef's pH closer to what it would have been in the pre-industrial period based on estimates of atmospheric carbon dioxide from the era. They then measured the reef's calcification in response to this pH increase. They found that calcification rates under these manipulated pre-industrial conditions were higher than they are today.
"Our work provides the first strong evidence from experiments on a natural ecosystem that ocean acidification is already slowing coral reef growth," Albright said. "Ocean acidification is already taking its toll on coral reef communities. This is no longer a fear for the future; it is the reality of today."
Increasing the alkalinity of ocean water around coral reefs has been proposed as a geoengineering measure to save shallow marine ecosystems. These results show that this idea could be effective. However, the practicality of implementing such measures would be almost impossible at all but the smallest scales.
"The only real, lasting way to protect coral reefs is to make deep cuts in our carbon dioxide emissions," Caldeira said. "If we don't take action on this issue very rapidly, coral reefs--and everything that depends on them, including both wildlife and local communities--will not survive into the next century."
Albright will be presenting this research Monday Feb. 22 at the 2016 Ocean Sciences Meeting co-sponsored by the Association for the Sciences of Limnology and Oceanography, The Oceanography Society and the American Geophysical Union.
Other members of the team include: Carnegie's Lilian Caldeira, Lester Kwiatkowski, Jana Maclaren (also of Stanford University), Yana Nebuchina, Julia Pongratz (now at Max Planck Institute for Meteorology), Katharine Ricke, Kenny Schneider (now at The Hebrew University of Jerusalem), Marine Sesboue, and Kai Zhu (now at RiceUniversity); as well as Jessica Hosfelt and Aaron Ninokawa of University of California Davis, Benjamin Mason of Stanford University, Tanya Rivlin of The Hebrew University of Jerusalem, Kathryn Shamberger of Woods Hole Oceanographic Institution and Texas A&M University, and Kennedy Wolfe of The University Sydney.
This work was supported by the Carnegie Institution for Science and the Fund for Innovative Climate and Energy Research.

Story Source:
The above post is reprinted from materials provided by Carnegie Institution. Note: Materials may be edited for content and length.

Journal Reference:
  1. Rebecca Albright, Lilian Caldeira, Jessica Hosfelt, Lester Kwiatkowski, Jana K. Maclaren, Benjamin M. Mason, Yana Nebuchina, Aaron Ninokawa, Julia Pongratz, Katharine L. Ricke, Tanya Rivlin, Kenneth Schneider, Marine Sesboüé, Kathryn Shamberger, Jacob Silverman, Kennedy Wolfe, Kai Zhu, Ken Caldeira. Reversal of ocean acidification enhances net coral reef calcification. Nature, 2016; DOI: 10.1038/nature17155

Magnetoreception molecule found in the eyes of dogs, primates

Science News
from research organizations

Magnetoreception molecule found in the eyes of dogs, primates

Dog-like carnivores, some primate species may have a magnetic compass similar to that of birds

Date:
February 25, 2016
Source:
Max-Planck-Gesellschaft
Summary:
The magnetic sense in migratory birds has been studied in considerable detail: unlike a boy scout's compass, which shows the compass direction, a bird's compass recognizes the inclination of the magnetic field lines relative to Earth's surface. Now scientists report that dog-like carnivores and some primate species may have a magnetic compass similar to that of birds. 

The perception of Earth's magnetic field is used by many animal species for orientation and navigation. A magnetic sense is found in some insects, fish, reptiles, birds and mammals, whereas humans do not appear to be able to perceive Earth's magnetic field.
The magnetic sense in migratory birds has been studied in considerable detail: unlike a boy scout's compass, which shows the compass direction, a bird's compass recognizes the inclination of the magnetic field lines relative to Earth's surface. Surprisingly, this inclination compass in birds is linked to the visual system as the magnetic field activates the light-sensitive molecule cryptochrome 1a in the retina of the bird's eye. Cryptochrome 1a is located in the blue- to UV-sensitive cone photoreceptors and only reacts to the magnetic field if it is simultaneously excited by light.
Cryptochrome-distribution among mammals
Together with colleagues from the Ludwig-Maximilians-University Munich, the Goethe University Frankfurt, and the Universities of Duisburg-Essen and Göttingen, Christine Nießner and Leo Peichl from the Max Planck Institute for Brain Research in Frankfurt investigated the presence of cryptochrome 1 in the retinas of 90 species of mammal. Mammalian cryptochrome 1 is the equivalent of bird cryptochrome 1a. With the help of antibodies against the light-activated form of the molecule, the scientists found cryptochrome 1 only in a few species from the carnivore and primate groups. As is the case in birds, it is found in the blue-sensitive cones in these animals. The molecule is present in dog-like carnivores such as dogs, wolves, bears, foxes and badgers, but is not found in cat-like carnivores such as cats, lions and tigers. Among the primates, cryptochrome 1 is found in the orang-utan, for example. In all tested species of the other 16 mammalian orders, the researchers found no active cryptochrome 1 in the cone cells of the retina.
The active cryptochrome 1 is found in the light-sensitive outer segments of the cone cells. It is therefore unlikely that it controls the animals' circadian rhythms from there, as this control occurs in the cell nucleus which is located a considerable distance away. It is also unlikely that cryptochrome 1 acts as an additional visual pigment for colour perception. The researchers thus suspect that some mammals may use the cryptochrome 1 to perceive Earth's magnetic field. In evolutionary terms, the blue cones in mammals correspond to the blue-to UV-sensitive cones in birds. It is therefore entirely possible that the cryptochrome 1 in mammals has a comparable function.
Observations of foxes, dogs and even humans actually indicate that they can perceive Earth's magnetic field. For example, foxes are more successful at catching mice when they pounce on them in a north-east direction. "Nevertheless, we were very surprised to find active cryptochrome 1 in the cone cells of only two mammalian groups, as species whose cones do not contain active cryptochrome 1, for example some rodents and bats, also react to the magnetic field," says Christine Nießner.
Particle-based magnetic compass
One possible explanation for this is that animals can also perceive the magnetic field in a different way: for example, with the help of magnetite, microscopic ferrous particles in cells. A magnetite-based magnetic sense functions like a pocket compass and does not require any light. Mole rats, which live in lightless tunnel systems, orient using this kind of compass. Birds also have an additional orientation mechanism based on magnetite, which they use to determine their position.
Many fundamental questions remain open in the research on the magnetic sense. Future studies will have to reveal whether the cryptochrome 1 in the blue cones is also part of a magnetic sense in mammals or whether it fulfils other tasks in the retina.
Cryptochromes are light-sensitive molecules that exist in bacteria, plants and animals. In animals, they are involved in the control of the body's circadian rhythms. In birds, cryptochromes are also involved in the light-dependent magnetic orientation response based on Earth's magnetic field: cryptochrome 1a is located in photoreceptors in birds' eyes and is activated by the magnetic field. Now researchers from the Max Planck Institute for Brain Research in Frankfurt have also detected cryptochrome 1 in photoreceptors in several mammalian species. Therefore, it is possible that these animals also have a magnetic sense that is linked to their visual system.
The perception of Earth's magnetic field is used by many animal species for orientation and navigation. A magnetic sense is found in some insects, fish, reptiles, birds and mammals, whereas humans do not appear to be able to perceive Earth's magnetic field.
The magnetic sense in migratory birds has been studied in considerable detail: unlike a boy scout's compass, which shows the compass direction, a bird's compass recognizes the inclination of the magnetic field lines relative to Earth's surface. Surprisingly, this inclination compass in birds is linked to the visual system as the magnetic field activates the light-sensitive molecule cryptochrome 1a in the retina of the bird's eye. Cryptochrome 1a is located in the blue- to UV-sensitive cone photoreceptors and only reacts to the magnetic field if it is simultaneously excited by light.
Cryptochrome-distribution among mammals
Together with colleagues from the Ludwig-Maximilians-University Munich, the Goethe University Frankfurt, and the Universities of Duisburg-Essen and Göttingen, Christine Nießner and Leo Peichl from the Max Planck Institute for Brain Research in Frankfurt investigated the presence of cryptochrome 1 in the retinas of 90 species of mammal. Mammalian cryptochrome 1 is the equivalent of bird cryptochrome 1a. With the help of antibodies against the light-activated form of the molecule, the scientists found cryptochrome 1 only in a few species from the carnivore and primate groups. As is the case in birds, it is found in the blue-sensitive cones in these animals. The molecule is present in dog-like carnivores such as dogs, wolves, bears, foxes and badgers, but is not found in cat-like carnivores such as cats, lions and tigers. Among the primates, cryptochrome 1 is found in the orang-utan, for example. In all tested species of the other 16 mammalian orders, the researchers found no active cryptochrome 1 in the cone cells of the retina.
The active cryptochrome 1 is found in the light-sensitive outer segments of the cone cells. It is therefore unlikely that it controls the animals' circadian rhythms from there, as this control occurs in the cell nucleus which is located a considerable distance away. It is also unlikely that cryptochrome 1 acts as an additional visual pigment for colour perception. The researchers thus suspect that some mammals may use the cryptochrome 1 to perceive Earth's magnetic field. In evolutionary terms, the blue cones in mammals correspond to the blue-to UV-sensitive cones in birds. It is therefore entirely possible that the cryptochrome 1 in mammals has a comparable function.
Observations of foxes, dogs and even humans actually indicate that they can perceive Earth's magnetic field. For example, foxes are more successful at catching mice when they pounce on them in a north-east direction. "Nevertheless, we were very surprised to find active cryptochrome 1 in the cone cells of only two mammalian groups, as species whose cones do not contain active cryptochrome 1, for example some rodents and bats, also react to the magnetic field," says Christine Nießner.
Particle-based magnetic compass
One possible explanation for this is that animals can also perceive the magnetic field in a different way: for example, with the help of magnetite, microscopic ferrous particles in cells. A magnetite-based magnetic sense functions like a pocket compass and does not require any light. Mole rats, which live in lightless tunnel systems, orient using this kind of compass. Birds also have an additional orientation mechanism based on magnetite, which they use to determine their position.
Many fundamental questions remain open in the research on the magnetic sense. Future studies will have to reveal whether the cryptochrome 1 in the blue cones is also part of a magnetic sense in mammals or whether it fulfils other tasks in the retina.

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