Showing posts with label bats. Show all posts
Showing posts with label bats. Show all posts

Friday, December 5, 2014

Bat Navigation Revealed

reposted from


Bat Navigation Revealed

As the flying mammals navigate complex environments, they make use of specialized brain cells that cooperate to build a coordinate system that works in three dimensions.
By  | December 4, 2014
  • Link this
  • Stumble
An Egyptian fruit bat (Rousettus aegyptiacus), the species in which Finkelstein et al. discovered new head-direction neurons that form 3-D neural compasses used to represent spatial orientation.YOSSI YOVELBats possess a complex neural compass that tracks their movements as they expertly crawl or fly through their environment, according to a study published this week (December 3) in NatureArseny Finkelstein, a PhD student at the Weizmann Institute of Science in Rehovot, and colleagues used a newly developed tracking device to monitor the head angles of naturally behaving Egyptian fruit bats (Rousettus aegyptiacus) while recording electrical impulses from single brain cells.
Finkelstein told The Scientist that acrobatic bats were ideal models to examine in search of a complex, mental compass. “Because there are such masters of 3-D space, we saw that if we want to start understanding and try to analyze the neural components of the 3-D compass, we should start with animals that we know for sure have it.”
The researchers discovered that the bats have the head-direction sensing cells—which respond to directionality in the horizontal plane, or azimuth—scientists discovered three decades ago in rodents. But the team also found new types orientation cells: ones that responded to pitch, or vertical orientation, roll, or tilt to the left or right, plus cells that responded to combinations of those orientations. All of these cells combine to encode a doughnut-shape—or toroidal—compass within bats’ neural substrates that help them orient themselves in space as they perform impressive aerial feats, often in dim or lightless conditions.
“We’re extremely high on this study,” said David Rowland, a postdoc in the lab of May-Britt and Edvard Moser at the Kavli Institute for Systems Neuroscience at the Norwegian University of Science and Technology. The Mosers shared a Nobel Prize this year recognizing their contributions toward the discovery of “grid cells,” neurons that help mammals generate a coordinate system to navigate their surroundings. Unlike bats, rodents tend to operate in more two-dimensional space. “[Finkelstein et al.] opened up this head direction system from two to three dimensions, which is obviously a huge step forward for our field,” Rowland added.
Finkelstein and his colleagues determined that the bats they studied had neurons in the hippocampal–parahippocampal region of the brain that work together to form a representation of 3-D space that the animal then uses to sense where and how its body is positioned within that space. Implanting miniature electrodes thinner than human hairs into the brains of bats who were allowed to crawl or fly through experimental arenas, the researchers recorded nervous impulses from new components—pitch cells, roll cells, and cells that respond to combinations of orientation information—used to build this mental compass. And the picture of that compass that emerged looked more toroidal—or doughnut-shaped—than spherical. Combining inputs from all the different types of cells, bats maintain a toroidal representation of 3-D space, allowing them to more accurately track their position as they flip, spin, and bank through their habitats. This more intricate 3-D compass may set bats apart from rodents, which tend to become more disoriented when flipped upside down, for example. “[Bats] are more similar to primates than to rodents,” Finkelstein said.
The results serve to supplement researchers’ growing understanding of how the mammalian brain integrates complex packets of information about the world. “A 3-D compass is a difficult thing to construct because movements in 3-D are complicated to process—rotations in the different planes interact and it matters in which order the rotations occur and are processed,” wrote behavioral neuroscientist Kate Jeffery of University College London in an e-mail to The Scientist. “This is a complicated integration problem and we have no idea yet where or how this occurs. Finding out could shed light on a number of important areas in neuroscience—how  sense of orientation is maintained through complex 3-D movements, how sensory signals are integrated (which may have more general applicability), how inertial signals are integrated with spatial signals, and how a 3-D spatial map can be built up.”
Meanwhile, in a Current Biology paper published today (December 4), researchers from Tel Aviv University show that three species of fruit bats that were once considered to rely primarily on vision and not echolocation for navigation do produce clicks from their wings that they use to perform a more rudimentary version of echolocation.
“It’s really interesting,” said Nancy Simmons, a bat evolutionary biologist at the American Museum of Natural History in New York who reviewed the paper prior to publication but was not involved in the study. “More or less it’s been assumed that the whole family were not echolocating bats.”
When neuroecologist Yossi Yovel and his postdoc Arjan Boonman trained sophisticated recording equipment on fruit bats released in a completely darkened room, they heard audible clicks from the wings of the flying animals. “When we released these bats in this really dark room, they did something I had never heard before,” Boonman said. What’s more, Eonicturis major, the cave-dwelling species the researchers observed, clicked its wings louder and more than the species in their study that frequent forests and other comparatively more well-lit environs.
To show that the bats were actually using the audible wing clicks to echolocate, the researchers trained the animals to land on a solid surface and not on a less-firm surface constructed of cloth. The bats could accurately discern, even in a dark room, the nature of the two surfaces and used their wing clicks to navigate to the appropriate perch. Yovel and Boonman also excluded other modes of producing the clicks—such as with the larynx or tongue—by running trials in which the bats’ mouths were sealed, and ones in which their tongues were anaesthetized. The only way the scientists were able to limit the clicks coming from the fruit bats was to in some way impair their wing beats.
The findings indicate that echolocation, long considered to be a highly complex physiological trait, may have some more rudimentary precursors. While a solid model for the evolution of the sophisticated laryngeal echolocation employed by microbats remains elusive, this research adds a new piece to the puzzle by indicating that simpler echolocation may play a role in that evolution. In addition, the three species observed by Yovel and Boonman are a good evolutionary representation of the 59 or so species that make up the family of Old World fruit bats, indicating that the tactic is likely used widely throughout the family. Brock Fenton, a bat biologist at Western University in Ontario who wasn't involved with the research, said that the findings may add echolocation to the list of widespread adaptations that were evolved many times in several different groups. “Echolocation, now we know, is sort of like venom,” saidBrock Fenton, a bat biologist at Western University in Ontario. “It crops up all over the place.”
Yovel and Boonman said that they are still surprised to have found that bats typically considered to be non-echolocators actually do employ the strategy. At the outset of their study, the researchers even placed a wager about the outcomes, Yovel betting that the bats did produce wing clicks and that the sounds were functional. “[Boonman] still owes me a very expensive dinner,” he said.
Both the study on bats’ 3-D mental compass and the fruit bat paper raise intriguing questions about the somewhat mysterious animals. Do different bats encode 3-D space in different ways? Is the compass hard wired or built and refined through development? How do fruit bat wings produce clicks? How do their brains sense and process those sounds?  How did echolocation evolve in bats? As these questions remain for future work to answer, Yovel is wagering that there will be some crossover between the two lines of inquiry. “I’m quite sure that the cells described by Finkelstein exist in our bats too,” he said. “I’m willing to bet an expensive meal on that, too.”
A. Boonman et al., “Nonecholocating fruit bats produce biosonar clicks with their wings,” Current Biology, doi:10.1016/j.cub.2014.10.077, 2014.
A. Finkelstein et al., “Three-dimensional head-direction coding in the bat brain,” Nature, doi:10.1038/nature14031, 2014.

Monday, April 14, 2014

Three new species of yellow-shouldered bats discovered in museum collections

reposted from

[ Back to EurekAlert! ]
PUBLIC RELEASE DATE:
14-Apr-2014
Print | E-mail ] Share Share  Close Window ] 

Contact: Nancy O'Shea
noshea@fieldmuseum.org
312-665-7103
Field Museum 

Three new species of yellow-shouldered bats discovered in museum collections

Scientists at Chicago's Field Museum and international collaborators have reconstructed the phylogeny and biological history for the Yellow-shouldered bats in the New World tropics, the region of the Earth surrounding the equator. In-depth analysis of mitochondrial and nuclear DNA sequences uncovered three species new to science, each having previously been confused with another species. Since 1960, when modern studies on this group began, Sturnira has grown from eight species to 22. The newest additions were described in a new study, published online in ZooKeys.
The New World tropics have long been recognized as a region teeming with some of the richest biodiversity on Earth. It is home to a group of small, fruit-eating bats ranging from half-an-ounce to three ounces in size. The bats belong to the genus Sturnira, commonly named yellow-shouldered bats, which are found from northern Mexico to northern Argentina. One species in particular, Sturnira lilium, has figured among the most widespread and locally abundant bats of the New World topics.
"A curator's job is to bring order out of chaos," said Bruce Patterson, PhD, MacArthur Curator of Mammals at The Field Museum. "This group of bats offered an excellent opportunity study the process of species formation across the entire New World tropics."
Paúl Velazco, PhD, who formerly worked at The Field Museum and now is with the American Museum of Natural History in New York, is the lead author on the new study. Velazco and Patterson began their endeavor by collecting 38 samples of six species from three countries. They also borrowed 94 samples from 24 countries from museums around the world in order to complete the project, highlighting the importance of museum collections for the growing body of scientific knowledge.
The researchers isolated DNA from a small portion of liver or muscle samples that had been frozen or preserved from each specimen. They then amplified and sequenced two nuclear and three mitochondrial genes from each tissue, amounting to nearly 5,000 base pairs of DNA, from over 120 individuals.
"We chose these genes because they have proven useful for classification of related groups of bats," said Velazco. "Mitochondrial sequences tend to be fast-evolving and informative about very recent evolutionary splits, while nuclear genes tend to be slow-evolving and shed light on more ancient divergence events."
By sequencing both classes of DNA, the researchers could recover the group's entire history, which stretches back about 8 million years.
Every museum specimen that was sequenced already had both a name and a geographic distribution. However, the sequence analysis led the investigators to believe that some of the branch labels were incorrect. Indeed, after re-examining the museum specimens associated with each sample, they found that nearly 20 percent of the specimens had been incorrectly labeled!
How could so many individual animals have been misidentified? The answer lies within technology.
"The differences between species are often subtle, and difficult to describe in writing. The historic literature lacked access to the visual documentation that we rely on today, such as color photography and digital libraries," said Patterson. "For this reason, small and imprecisely described morphological differences were often overlooked during the original identification of the specimens. This type of error pervades all biological collections."
Their results identified three species entirely new to science, and provided evidence for the elevation of three subspecies to the species level. Two of the new species are described in the ZooKeys article.
In the process, Velazco and Patterson were able to revise the supposed geographic range of Sturnira lilium. Instead of extending from Mexico to Argentina, the real Sturnira lilium is limited to Bolivia, Brazil, Paraguay, Uruguay, and northern Argentina. The rest of its presumed range is occupied by six other close relatives that replace one another in jigsaw-like fashion across the Neotropics.
The distribution of Sturnira species across most of the New World tropics and its diversification throughout its eight-million-year existence make it informative for other sorts of biological reconstructions, such as the seed plants upon which it feeds.
In addition to its scientific usefulness, this study demonstrates the need for the ongoing revision of the Earth's biological history, and highlights the immense value of museum collections in uncovering new knowledge.
"For this particular group of mammals, we are much closer that we were in framing their diversity, although there may be additional Sturnira out there," said Patterson. "Over the years, I've learned that no one has the last word in science."
###
Contact information for Paúl M. Velazco:
(212) 313-7920
pvelazco@amnh.org


[ Back to EurekAlert! ]Print | E-mail Share Share Close Window ] 

 

AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert! system.