seeing the world through their ears: the exotic world of bats · seeing the world through their...
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Produced by and for Hot Science - Cool Talks by the Environmental Science Institute. We request that
the use of these materials include an acknowledgement of the presenter and Hot Science - Cool Talks
by the Environmental Science Institute at UT Austin. We hope you find these materials educational
and enjoyable.
Dr. George Pollack
October 22, 2004
Seeing the World Through
Their Ears: The Exotic
World of Bats
# 32
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Seeing the World Through Their Ears:
The Exotic World of Bats
George D. Pollak
Section of Neurobiology
School of Biological Sciences
The University of Texas at Austin
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My field is neurophysiology, the mechanism by which the brain works. I study
how sensory information is processed by the brain, and my focus is on how the
auditory system processes and represents features of the external world.
George Pollak in his lab
Brain of a Bat
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• But, objects have no inherent color.
The brain creates color using input
from the photoreceptors in your retina
(red, green & blue cones). If you had
different photoreceptors, you would see
different colors or no color at all.
Our sensory receptors and brain
create the world we know
• Example of neural construction: color vision.
We think of colors as an inherent attribute of objects:
daffodils are yellow, your eyes are blue or brown or even
green.
• If your brain could not create color, you
would not see colors, even if your
retina were normal!
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eye
pit
Rattlesnakes have two kinds of
eyes: one just like ours, and one
that sees heat (infrared
wavelengths) They see body heat,
even in the dark!
Bees can see ultraviolet wavelengths,
which we cannot. We see flowers as
having certain colors, but the same
flowers look entirely different to bees!
The electric fish of South America
and Africa emit a weak electric field.
They “see” their world through
distortions in the field created by
nearby objects.
Rattlesnakes(Pit Vipers)
Bees Electric Fish
Many animals are able to sense
energies that we cannot
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This is how a dog appears to us or
to a rattlesnake in daylight
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This is how a dog appears to
us in the dark
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Somebody was
Sitting here!
This is how a dog appears
to a rattlesnake at night
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This is how a bee
sees the same
yellow butterfly
This is how we
see a yellow
butterfly
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I have not the slightest inkling of
how electric fish perceive their world
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The Exotic World of Bats
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In the late 1800s the great Italian natural scientist, Lazzaro
Spallanzani, was the first to study how bats could fly and
avoid objects in the dark, where vision was of no use.Lazzaro Spallanzani
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In 1939 two young graduate students at Harvard, Donald Griffin
and Robert Galambos, conducted a series of experiments which
showed that bats navigate in the dark and avoid obstacles by
emitting loud, ultra-sonic sounds and listening to the echoes that
bounce off of nearby objects.
In 1942 Griffin coined the term, echolocation, to describe
this form of biological sonar.
Rediscovery of Echolocation
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Donald Griffin at his laboratory at Harvard
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Bats use a form of biological sonar
called echolocation to see their world
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A mealworm is flipped in the air and a little brown bat
tracks the mealworm with its echolocation calls and
scoops it out of the air with its wing! This video
segment was made at Harvard by Don Griffin and his
colleagues more than 40 years ago. It is shown in
slow motion.
Watch Echolocation in Action
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It is not echolocation but rather the ability to fly that
distinguishes bats from all other mammals. Bats fly
with their hands!
These are their fingers
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Bats Populate the Entire Planet
and Eat Everything Available
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A horseshoe bat detects a moth and
begins to home in on its target
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The bat uses its wing to scoop the moth out of the
air and then eats the moth while still in flight
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Returning home with a large insect
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The elegant fishing bat emits
echolocation calls and detects a fish
on the surface of the water
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These claws are used to gaff
fish on the surface
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Skimming the water
to gaff a fish
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A fishing bat gaffs a fish!
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Oh, what big ears you have.
All the better to hear you with!
This bat can actually hear the beetle’s footsteps!
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The frog-eating bat specializes on tungara frogs.
This little tungara frog is in big trouble!
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An unfortunate tungara frog provides this
frog-eating bat with a late night snack
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Dining on the nectar offered
by a night flowering plant
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A sugar treat is offered by a
night flowering plant
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A bat returns to its cave with some ripe fruit
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These are the infamous vampire bats
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Although he looks goofy,
those incisors are razor sharp!
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Specialized for
lapping blood
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Bats often live in caves where they form colonies
that can number in the millions. They establish and
maintain their social structure through vocal
communication.
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Your eyes are not deceiving you.
The walls are covered with bats.
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A large colony of Mexican free-tailed bats
live under the Congress Avenue Bridge in
Downtown Austin
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We study the vocal communication calls of
bats in the colony that Barbara French
established and maintains in Austin
Barbara French at work
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This is Sid, one of the dominant males in
Barbara’s colony
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Joshua
Intruder
A female in Joshua’s harem
Joshua is another dominant male in
Barbara’s colony. Here Joshua is defending
his territory and harem against an intruder.
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Joshua warns an intruder not to enter his
territory by singing his territorial call
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I hope you have enjoyed this brief tour of the Exotic
World of Bats. Check them out for yourself. The exodus
happens every night and can be seen at the Congress
Avenue Bridge in downtown Austin.
The End
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Dr. George PollackGeorge Pollak received his Ph.D. in Physiology from the University
of Maryland Medical School in1970. After completing his
postdoctoral work in the Department of Biology at Yale University,
he joined the faculty at the University of Texas in 1973. Dr. Pollak
has had extensive collaborations with scientists both in the U.S. and
in Europe. He was a Visiting Scholar at the University of Frankfurt,
the University of Munich, the Neuroscience Institute of Salamanca
University in Spain, and at the Virginia Merrill Bloedel Hearing
Research Center at the University of Washington Medical School.
His research has earned numerous awards, including a Research
Career Development Award from the National Institutes of Health, a
prestigious Alexander Von Humboldt Award, and a Claude Pepper
Award from National Institute of Deafness and Other
Communicative Disorders in recognition of his contributions to
auditory neuroscience. Dr. Pollak also received a President's
Associates Teaching Excellence Award from the University of Texas
at Austin. He currently serves on the Executive Committee of the
Institute for Neuroscience at the University of Texas and is
Professor of Neurobiology there.