The Little Rock Zoo

.The Little Rock Zoo needs to step up and care for the animals better! Please read the several artciles here with deaths, sickness and a bald chimp!
Showing posts with label Monkey Behaviour. Show all posts
Showing posts with label Monkey Behaviour. Show all posts

Friday, April 1, 2011

Studies show Monkeys can count better than originally thought

Researchers, led by Vanessa Schmidt from the German Primate Center in Goettingen, Germany, conducted basic numeracy tests on long-tailed macaques in an effort to show that these primates understand the concept of relative quantity.
In the first experiment, researchers presented the monkeys with two plates of raisins with one having more than the other. The idea being that the monkeys would choose the plate with the larger number of raisins. In this first experiment, the monkeys were then allowed to eat the raisins on the plate they choose. In this experiment, researchers found that the monkeys had a tendency to get this wrong and chose the plate with the smaller amount of raisins.

In the second experiment, the researchers decided to replace the raisins with non-edible objects, in this case pebbles. When presented these plates with pebbles, the monkeys did much better.

The third experiment returned to the plates with raisins, but instead of being rewarded with the raisins on the plate, the monkeys were rewarded with raisins hidden underneath. This experiment showed the same results as the pebbles.

Researchers point out that these natural impulses in the monkeys and their desire to eat the raisins interfered with their judgment in the initial experiment. Similar to young children and the reverse reward paradigm, these monkeys were not able to see past their desire to eat the raisins.

In the reverse reward paradigm, young children are presented with two piles of candies of different sizes. The children will always point to the larger pile and then this pile is given to another child. Children have difficulty understanding that by choosing the smaller pile, they will receive the larger pile. However, if this test is repeated with non-edible objects, the children are able to understand and perform the experiment correctly.

Researchers in this study point to the same interference in judgment by the monkeys when presented with food. Their desire to eat the food gets in the way of the task at hand. These researchers believe that previous studies performed on other primates using food as a test symbol may have impaired results and therefore underestimated the primate’s numeracy abilities.

Information and video here

Wednesday, March 30, 2011

The Proboscis Monkey regurgitates and rechews its food.

The proboscis monkey, nicknamed the “long-nosed monkey” due to its huge, protruding nose, now has another claim to fame: it regularly regurgitates and rechews its food.














Ikki Matsuda

The proboscis monkey demonstrates the first naturally occurring, ongoing instances of this behavior in a primate, conclude the authors of the paper, published in the latest Royal Society Biology Letters.

Gorillas and humans will also sometimes upchuck, rechew, and swallow, but if done on even a semi-regular basis, the actions are considered to be pathological.

“The digestive tract of the proboscis monkey is drastically different from that of humans and great apes,” lead author Ikki Matsuda told Discovery News. “The proboscis monkey has a distinct sacculated (chambered) forestomach where bacterial digestion occurs prior to the glandular stomach.”

Matsuda, a scientist at Kyoto University’s Primate Research Institute, and his colleagues recorded the behaviors of proboscis monkeys living along a tributary of Kinabatangan River, Malaysia. The researchers collected their data from a boat on the river during early mornings and late afternoons from January 2000 to March 2001.

At least 23 different monkeys were videotaped regurgitating and rechewing. When this happened, the monkey’s abdomen would contract and the primate would stick its tongue outside its pursed mouth.

The regurgitated material stayed in the mouth, but could be seen at times on camera. The monkey then puffed out its cheeks as it rechewed and swallowed the food for the second time.

Matsuda said he and his colleagues “speculate that the behavior served to allow for an increased food intake under yet-to-be-specified conditions.”

He explained the behavior likely allows the monkey to digest larger particles of food faster. This, he theorized, “means the monkey can eat more sooner, because the bacteria do not need as long to digest the material.”

The proboscis monkey’s diet consists of various proportions of leaves and fruits. Some can be quite fibrous. The researchers, however, were not able to associate any particular type of food to the regurgitation/rechewing behavior.

Ruminants, such as cows, digest in a similar way all the time. They tear off plant materials and swallow them. After some processing, a contraction sends the cud material back up to the mouth where it is chewed for a long time before being swallowed again.

Peter Langer, a professor in the Institute of Anatomy and Cell Biology at Justus-Liebig University, is one of the world’s leading experts on ruminants and their feeding processes. He is the author of the book “Mammalian Herbivore Stomach: Comparative Anatomy, Function and Evolution.”

Langer told Discovery news that it’s important to make it “clear that rumination in the Artiodactyla (cows and other hoofed animals) and regurgitation and remastication in other mammalian orders, including primates, are different physiological processes.”

Koalas, for example, are not ruminants, but like the proboscis monkey, they too have been observed regurgitating and rechewing their food. They are only believed to do this under certain circumstances, such as when their teeth wear out due to old age, or when lactating females need to consume more food.

Matsuda said that if he and his team had observed the behavior in the monkeys more regularly, “say 10 minutes after waking in the morning, we might have called it rumination.” He added that this study only focused on one population of the monkeys, so the behavior might even be a learned tradition.

He explained, “Traditions, especially related to feeding, have been reported in primates -- like the macaques that wash food and even season it with salt water. We simply cannot exclude such a tradition.”
Story Credit Here

Monday, March 21, 2011

Longleat Safari park gives Monkeys a car to tear up

Monkeys at Longleat Safari Park have been given their own car to play with.

The Monkey Jungle drive-through at the Wiltshire attraction was closed to the public in 2008 after a macaque tested positive for a rare virus.

But last month the monkey enclosure was reopened, and for the first time in two years, cars were allowed back in.
They plainly haven't forgotten their fondness for cars”

Longleat's deputy head warden

"To get them back in training for the new season we decided to give them their very own car," said deputy head warden Ian Turner.

And it's clear to see from our test run, that monkey mischief is still very much front of mind and they plainly haven't forgotten their fondness for cars!"

The old Mercedes equipped with roof rack and suitcases filled with clothes and toys was left by staff in the monkey enclosure last week.

The troop of 100 Rhesus macaques "soon set about tearing it apart with gusto" and even "rifled through luggage" strapped to the top of the car and "tried on human clothes for size".

Mr Turner said the monkey were "one of the key attractions" at the safari park.
Story Credit and a must see video here

Wednesday, March 16, 2011

Love and Trust Hormone found in a monkey species

The so-called "love and trust" hormone called oxytocin, originally discovered in the monogamous prairie vole, has been found in an odd form in a monkey species.

"This is the first time oxytocin has been reported to be different in any mammal ever studied," said researcher Karen Parker at Stanford University."The orthodoxy in the field was that all mammals have one form of oxytocin."

Oxytocin is a brain hormone that regulates parts of mammalian reproduction, including lactation and labor, but also is involved in social behaviors such as bonding between partners and mother-and-child, hence its unofficial "love” hormone moniker.

It is released by a part of the brain called the pituitary gland and travels throughout your system. It was widely thought to be exactly the same in all mammals, since it plays such an important part in reproduction and social bonding.

Social species

When studying her lab monkeys, Parker was having trouble measuring their oxytocin levels. "We had been trying for years to measure oxytocin levels in our monkeys," she told LiveScience. "On a lark, we sequenced the gene."

Surprisingly, the gene for oxytocin was different than any other mammal. They compared this new sequence with several other related species of New World monkey, including lab models like rhesus and capuchins. Many of these New World monkeys have this slightly different copy of the gene, which results in the gene producing a slightly different active protein.

One of the amino acids, the molecules that make up proteins, is different. This amino acid is bigger, which might change the protein's structure or action, though the monkeys display normal social behaviors and have similar reactions to the traditional type of oxytocin as other mammals.

Experimental expectations

Researchers know that the monkeys react to the traditional form of oxytocin because they've studied its effects on these monkeys in the lab. It's possible that both the novel form and the traditional form act the same way in the monkeys, but researchers aren't sure.

"It plays such a critical role in social functioning," Parker said. "It's such a small peptide; any sort of mutation might undermine those critical functions. There is a strongly selected pressure to keep this molecule."

Parker and her team will continue investigating the activity of this new form of oxytocin to determine what kinds of effects it has compared with the original form.

It's important to elucidate these differences in these animals, especially since they include common laboratory species, said Karen Bales, a researcher at UC Davis who wasn't involved in the study. "Dr. Parker's findings are very exciting," she told LiveScience in an e-mail. "They should provide the impetus for future research, including the biological and chemical properties of the structurally different oxytocin."
The study was published today (March 15) in the journal Biology Letters.
Story Credit Here

Monday, February 28, 2011

Snow Macaques find sanctuary in the hot springs

Nagano, Japan (CNN) -- In an outdoor natural hot spring, or onsen, in snow-covered Nagano, Japan, people get a rare up-close view of snow monkeys in their natural habitat.

The monkeys mostly ignore the tourists armed with their cameras and the scientists who've traveled hours to be within centimeters of the crimson-faced creatures.

For 46 years, the Jigokudani Monkey Park has been a sanctuary for these snow monkeys. The monkeys lounge, appearing to almost nod off in the steaming hot bath, almost all of them with hot water up to their shoulders.

"It's pretty incredible," says Kate Bokan-Smith, an American from California teaching English in Japan for a year. "At first, it's a little frightening. But it's special that the monkeys can eat their food, be here without being pestered by humans. And yet we can be this close. I think it's special."

Vince Manna, a nature photographer who has taken pictures of 200 species of monkeys in the Amazon, Africa and Southeast Asia, agreed. He's never seen anything like this sanctuary, he says, as he points his high powered camera lens towards the steaming onsen teeming with monkeys. "This is unique."

Jigokudani Monkey Park's beginnings were borne out of man's frustrations with the snow monkeys, whom Nagano residents considered pests. As Nagano grew deeper into the hills, the monkeys grew less wary of the human invaders. Monkeys regularly broke into shops and homes to steal food, even as people sat nearby, the park said.

Residents had considered culling the animals, who grew emboldened by the year. But the park owners noticed an unusual habit forming among the monkeys: They appeared to enjoy Nagano's main tourist attraction, the outdoor onsens.

The park decided to build a giant outdoor hot spring away from the town and deep in the mountains. Jigokudani Monkey Park also began regular feedings. These incentives drew many monkeys away from Nagano, although to this day, they still wander the town.

Nagano residents have since shifted their feelings toward the monkeys, as tourists started going to the monkey onsen.

French, English and Chinese are just a few of the languages being uttered around the onsen. "It's magical, fabulous!" said Christine Cocks, from Australia. "They're just so cute. You could stand and watch them all day."

Her family member, Jessiah, echoed the sentiments, calling the relationship between the town and the monkeys "symbiotic."

In the freezing snow with little human shelter, the tourists can only really stay for minutes. They'll head back to Nagano and spend money in the restaurants and hotels and talk about the magical monkeys in the hills.
Story Credit and a WONDERFUL Video here

Self awareness is demonstrated by Monkeys

The study was carried out by Professor John David Smith of the Department of Psychology at the State University of New York and Georgia State University’s Dr Michael Beran, and the results were presented at the American Association for the Advancement of Science (AAAS) meeting in Washington DC, at a session organized by the European Science Foundation.

The macaques were taught to decide if the density of a small box on a computer screen was either sparse (S) or dense (D). If they used the joystick to move the box to the correct letter a treat was dispensed, while if they made the incorrect choice they got no treat and the game paused. They could avoid the pause in the game if they instead moved the box to a third option, a question mark, if they were unsure of the density of the box.

The results showed the monkeys preferred to pass and move on by selecting the question mark if they were unsure of the correct answer. This option avoided the pause and allowed them to get to the next treat more quickly but did not result in a treat.

Other studies have shown that human subjects also use the pass option if presented with similar problems they find too difficult.
The results suggest the macaques, which are Old World monkeys, understood when they were uncertain and therefore liable to make an incorrect choice and were aware they did not know the answer. When capuchins, which are New World monkeys, were given the same task they did not take the pass option.

Professor Smith said it is not certain if this kind of thinking ability emerged only once and only in the Old World primates, the line which leads to humans and apes, but that the ability of humans to be aware of our own thinking was “central to every aspect of our comprehension and learning.”
Story Credit Here

Thursday, February 24, 2011

Capuchin Monkeys Urine Bathe

Capuchin monkeys have what at first glance appears to be an odd habit: they urinate onto their hands then rub their urine over their bodies into their fur.

Now scientists think they know why the monkeys "urine wash" in this way.

A new study shows that the brains of female tufted capuchins become more active when they smell the urine of sexually mature adult males.

That suggests males wash with their urine to signal their availability and attractiveness to females.

We reasoned that urine washing by males might provide chemical information to the females

Primatologist Dr Kimberley Phillips

Details of the finding are published in the American Journal of Primatology.

A number of New World monkey species, including mantled howler monkeys, squirrel monkeys and the few species of capuchins, regularly "urine wash", urinating into the palm of the hand, then vigorously rubbing the urine into the feet and hindquarters.

Several hypotheses have been put forward as to why they do it, including that it may somehow help maintain body temperature or allow other monkeys to better identify an individual by smell.

Most studies into the behaviour have been inconclusive.

"But one study reported that when being solicited by a female, adult males increased their rate of urine-washing," said Dr Kimberley Phillips, a primatologist at Trinity University in San Antonio, Texas, US.

"Since female capuchins [when they are most fertile] actively solicit males, we reasoned that urine washing by males might provide chemical information to the females about their sexual or social status," she told BBC News.

To investigate, Dr Phillips and her colleagues scanned the female monkeys' brains while the animals sniffed adult male and juvenile male urine.

These magnetic resonance imaging (MRI) scans revealed that female tufted monkeys' brains became significantly more active when they sniffed the scent of urine produced by adult males compared to that from juveniles.
Since adult males are sexually mature, they excrete higher concentrations of the male sex hormone testosterone in their urine.

The concentration of this testosterone is also linked to their social status; higher status males tend to produce more.

"Female capuchin monkey brains react differently to the urine of adult males than to urine of juvenile males," said Dr Phillips.
"We suggest that this is used as a form of communication to convey social and or sexual status."

She added that it was surprising that capuchin monkeys appeared to respond to these cues, because the species is not known for using communication based on smell.
Information credit here

Friday, February 4, 2011

Mandrills covering their eyes


Monkeys have culture? Resist that eye roll. A group of mandrills at England's Colcester Zoo have been observed covering their eyes, possibly an example of a cultural development.

The "striking" gesture has been observed for at least ten years among the zoo mandrills--the world's largest monkey, according to a new study.

The 23 mandrills in the group all cover their eyes, regardless of age or sex, sometimes for more than 30 minutes and while also raising their elbows in the air.
Laidre and colleagues believe the gesture arose from an individual and was copied by other mandrills, and eventually developed its own meaning.





 
 
 
 
 
 
 
 
 
 
 
 
 
Scientists aren't sure exactly what it means, but the rough translation might be "leave me alone."
According to the study, "the gesture might have a locally respected meaning," possibly to "inhibit interruptions as a 'do not disturb' sign operates."

Because the gesture emerged naturally, independent of human involvement, and has now lasted a full generation, it could be considered a cultural behavior, the authors say.

Mark Laidre, an integrative biologist at the University of California, Berkeley, studied 19 other mandrill communities in North America, Europe, and Africa--the monkey's native continent--and found no other evidence of eye-covering.

Laidre told me by email that he also queried several long-term primate observers, and none have seen the behavior.
"While I imagine that other primate species might occasionally cover their eyes, the behavior does appear fairly unique," he said.

"And at least in mandrills, very few of the hundreds of individuals I have observed around the world do this behavior. So it is obviously special in mandrills, and may not be very common in other species either."

Monkey-gesturing study published February 2 in the journal PLoS ONE.

--Christine Dell'Amore
Photos courtesy Mark Laidre, University of California, Berkeley
Story Credit Here

Tuesday, February 1, 2011

Monkey pushes stone, 1 dies, 2 injured

VARANASI: A vegetable vendor was killed, while two others suffered serious injuries, when a monkey pushed a big stone from the third floor of a house in Chetganj area under the same police station on Monday.

According to reports, Bhanna, a native of Piplani area was running his makeshift vegetable shop outside the house of Mahadeo Sao in Chetganj area. On Monday morning, Bhanna was busy in his works, when a monkey climbed up the terrace of the house and pushed a stone. The stone fell from the third floor of the house. Bhanna suffered serious head injuries in the incident and died on the spot, while two other persons standing at his shop sustained injuries.
Story credit Here

Saturday, January 22, 2011

Monkey's enjoy getting drunk

The physiological and genetic similarities between humans and monkeys make the hairier primates a great stand-in for humans when it comes to understanding the causes and effects of alcohol consumption, scientists say. For years, researchers have studied how monkeys react when introduced to alcohol, how much they drink and more.

1. They Get Hooked Young: Scientists have found that monkeys who are introduced to alcohol in their adolescence are more likely to drink more alcohol when they get older than those who stay dry.
Slaking a Stressed-Out Thirst: Monkeys will drink more heavily when in a stressful situation.

3. Slurring Their Speech: Monkeys' lips droop and their speech patterns are impaired by alcohol use.

4. Social Drinker or Teetotaler? Monkeys can fall into different patterns of drinking, including abstinence, social drinking, heavy drinking, and abusive drinking.

5. Intoxicating Inheritance: As with humans, monkeys can be genetically predisposed to alcoholism.

6. The Hangover: Monkeys don't bounce back after a bender; They get hangovers and those who drink constantly can develop liver disease.

7. Grand Theft Alcohol: Monkeys aren't above stealing when they want to get their drink on -- wild monkeys have been known to swipe cocktails from patrons at tropical resorts.

Story Credit and Video here

Wednesday, January 19, 2011

What do monkeys see when they look into a mirror?

In the popular children’s series, the mischievous monkey Curious George loves to look at himself in the mirror. But do his real-life cousins have the same hobby? Scientific consensus has long been that rhesus monkeys see the monkey in the mirror as a new playmate, not a reflection of their own image. Recent research, however, suggests that monkeys might really be as probing and self-aware as readers of the Curious George books were led to believe.

In 2010, Abigail Rajala, a neuroscience graduate student at the University of Wisconsin-Madison, noticed that rhesus monkeys in the lab seemed to recognize themselves in mirrors, grabbing them and manipulating the mirrors to see their reflected image. When she told lab director Luis Populin of her observations, they worked together to develop an experiment to determine what the monkeys were perceiving, using an adaptation of the “mark test.”

The test, designed to experimentally measure self-awareness in animals, involves a small mark (a dot of dye or a sticker) placed on a sleeping animal’s forehead and ear, both places that an animal can’t normally see. The animal is then woken and placed before a mirror.

Scientists think that what the animal does next reveals whether or not it is self-aware. If the animal touches the marks on its own body and not on the reflection, then it is aware of its embodied self, according to those scientists who endorse the test. Chimpanzees, one of our closest primate relatives, have passed the test. Rhesus monkeys, however, have failed it since the 1960s, when the mark test was developed.

In their experiment, Populin and his team placed full-length mirrors within reach of the monkeys, so they could move them. Surprisingly, the monkeys reacted to the mirrors, using them to touch their genitals and the medical implants on their heads, both of which are not normally seen without the aid of a mirror and aren’t usually examined. From this, Populin concluded that the monkeys recognized themselves in the mirrors. He and Rajala published their results on September 29 in the journal PLoS ONE.

But not everyone agrees that the rhesus monkeys knew they were looking at their own mirror images. “I think there’s better evidence for recognition in magpies than in these monkeys,” says Daniel Povinelli, a primatologist at the University of Louisiana-Lafayette.

Magpies pass the mark test with flying colors; they recognize and pick at stickers placed on their bodies. Povinelli believes that rhesus monkeys, in contrast, are simply engaging in normal behaviors like grooming and attempting to socialize with the mirror monkeys. He also maintains that the monkeys have not passed the mark test because they still have not recognized a traditional mark of dye or a sticker.

But Populin counters that it’s a matter of having a “salient mark”—a mark interesting enough for a monkey to notice in its reflection. Monkeys find the implants to be more interesting than traditional marks, he believes. Populin hopes to conduct further studies with the rhesus monkeys, using them to examine human conditions like gaze aversion, in which one person avoids eye contact with another, even during a conversation.
The argument over whether monkeys really recognize their mirror images is not just a narrow debate among primatologists. It also has broad implications for evolutionary theory. “There is a huge ideological clash in the field of cognitive evolution,” explains psychologist Phillipe Rochat of Emory University in Georgia, who has researched mirrors and their role in the human psyche. The clash is over how self-awareness evolved: either as a distinct evolutionary jump, or as something that evolved gradually and continuously along the evolutionary ladder. The ability of monkeys to recognize themselves in a mirror might indicate a level of self-awareness that supports the idea of a gradual development of that ability along the evolutionary tree.

Rochat added a caveat, saying that while we may think we know what is going on in an animal’s head during a mark test, we do not know for sure, in part because human interpretations are biased by our own perceptions of self in a mirror. “We see not just ourselves, but what we project to the outside world,” Rochat says. “There is no other animal that shows such a compulsive propensity to self-present.”
Story Credit here

Sunday, January 16, 2011

Spider Monkeys and Woolly Monkeys Frolic with each other

Anthony Di Fiore, a primate biologist at New York University, writes from Ecuador, where he is using GPS technology and camera traps to study the behavior of male spider monkeys.

Monday, Jan. 10
Here at the station they are saying that we brought the rain with us. After two virtually bone-dry weeks in late December and early January, it has been alternating between drizzle and full-on downpour since we arrived, punctuated by just a few hours of sun here and there. At night, lying in the cabins, we can hear rain rattling for hours on the corrugated aluminum roofs, drowning out the typical nighttime chorus of frogs and insects.
Despite the rain, it’s been a great three days of monkey follows. We’ve checked in on radio-collared groups of woolly monkeys, sakis and titis. But most of our time has been spent making sure that all of the spider monkeys in our main study group (called MQ-1) are all still around. MQ is our abbreviation for maquisapa, the word in the Indian language Quichua for spider monkey that translates (appropriately!) as “big hand.”
Although spider monkeys live in large social groups, you only rarely see more than a handful of animals at a time traveling or hanging out together. Instead, you run into subgroups consisting of one or few females and their offspring, a set of patrolling males or a male-female consorting pair. Subgroups join together and split apart frequently, leading researchers to describe the pattern as “fission-fusion” sociality. This kind of social system is rare among primates — indeed, it’s rare among mammals generally. A short list of mammals that live in fission-fusion groups would include chimpanzees, muriquis, elephants, some social carnivores and a few cetaceans.

A Long Journey Into the Ecuadorean Forest

.In three days, we’ve already found about half of the individuals in our group, including three of the six adult males and six of 11 adult females. MQ-1 contains about 32 individuals, counting the kids, and occupies a home range of about 600 hectares. Each hectare is 100 meters square, or roughly the equivalent of two American football fields laid next to each other, so this is a huge area to explore. But we’ve become pretty good at thinking like the monkeys over the past few years, so we can narrow our search by focusing on the routes that the monkeys commonly use to travel their range and by checking out the feeding trees that we know they like and that are currently fruiting.

Today, we checked out a huge Clarisia racemosa tree in the heart of the group’s range. Clarisia, from the same family as figs, produces fleshy, scarlet-colored fruits with a single large seed. It’s a favorite of the spider monkeys, which will pick and swallow dozens in a single feeding session. Sure enough, 30 meters up in its spreading crown we found the female Sofia (named after my older daughter), who was the first spider we learned to recognize. Sofia was with her latest two kids, Silvi (a female, born in late 2005 and now an impish adolescent) and Summer (a tiny male, born in the summer of 2009). Also nearby was a large group of woolly monkeys that soon began feeding on the Clarisia, too. With the woollies in the tree, we had to move back to avoid the fusillade of half-eaten strawberry-size fruits raining down from 30-plus meters.

The high point of the morning’s observations came a few minutes later when the feeding frenzy ended and both species of monkeys retired to the surrounding trees to rest and digest. With her mother and brother resting in the crook of a tree above her, Silvi approached and began bouncing around a couple of smaller woolly monkey juveniles. They responded by getting up and following Silvi as she scrambled up some lianas (woody vines), threw herself into the thin crown of a subcanopy tree, and then clambered back to repeat the whole process. It turned into a rare, long bout of interspecies play, with Silvi and the woollies chasing one another back and forth for 15 minutes or so until the woolly group moved off.
Story Credit Here and Video

Wednesday, January 5, 2011

Capuchin Monkeys are selective in how they crack a nut

Wild capuchin monkeys are very selective about the best way to crack a nut, according to scientists.
Researchers from the University of Georgia, US, filmed the wild monkeys selecting the correct anvil and hammer for the job.
The footage reveals that the animals are "selective about the materials they use in tool use", say the scientists.
The research team have reported their findings in the journal Animal Behaviour.
The monkeys use pits in logs as anvils, to lodge the nuts in place while they use large stones as hammers to bash through the shells.

In the footage, the monkey can be seen "weighing up" the most appropriately sized pit.

Qing Liu, who led the study, said it was the first demonstration of the animals' ability to "measure" how appropriate a tool was for a specific job.

"They are good at [working out] the most effective anvil surface to crack nuts, even when [this] is not something visible," said Ms Liu.

"The effectiveness is equivalent to the number of strikes needed to crack a nut in that pit - the lower the better."

"The detection of such a complex property has not been demonstrated in animal tool use before, as far as I know."in monkeys are social animals, they are also likely to watch and learn from other monkeys attempting the same task.

But if the pit they start with is ineffective, the animals usually "self-correct", evaluating their success and making an independent choice.
Story Credit Here and video

Thursday, December 30, 2010

Great Videos of Gorillas and Monkeys

Here is a good website for visual information in regards to Gorillas and Monkeys, done by Ape Alliance.
Click Here

Saturday, December 25, 2010

Chimpanzee-Baboon Differences

When wild chimpanzees want a protein snack, they may choose to go after termites. The apes’ method of termite-hunting is cultural—that is, dependent on ape-to-ape learning in the specific population in which they live. Chimpanzees in Gombe, Tanzania, for instance, “fish” for termites by making a wand tool and then sticking it down into the termite mound. Chimpanzees in the Nouabalé-Ndoki National Park in the Republic of Congo, by contrast, first push a puncturing tool with their feet into the mound and only then use finer manual skills to probe with tools into the termite chambers.

Baboons supplement their diet with termites, too. Watching them leap into the air when the termites fly out of the mound shows they’re enthusiastic termite consumers. But the baboons don’t use tools to hunt these insects. In fact, they’re stuck waiting around for the termites’ seasonal flights from the mound, and then catch the insects by hand. In other words, the monkeys’ diet is constrained by the termites’ reproductive biology, and the chimpanzees play an active role, aided by technology, in tapping into a nutritious food source on their own schedule.

This chimpanzee-baboon difference illustrates what some primatologists call the “cognitive watershed”: the idea that, as a pattern, our closest living relatives, the great apes (chimpanzees, bonobos, gorillas, and orangutans), are more highly skilled at problem solving and complex thinking than are the monkeys (baboons, macaques, howler monkeys, squirrel monkeys, and their relatives).

The cognitive watershed idea is best considered a hypothesis rather than a robust conclusion. After all, monkeys, like baboons—and vervets and macaques—show keen intelligence in their own ways. When vervet monkey A aggresses against vervet monkey B, B will be highly likely to carry out what’s called “kin-based redirected aggression.” That is, B may soon go after A’s relative and punish the relative for A’s transgression. That shows abstract thinking about monkey relatedness.

But the great apes seem to go even further than this. They show evidence of an elaborated theory of mind—an ability to take into account that their social partners may have access to different stores of knowledge than they themselves do. Ape tool behavior once again provides a good example. In Cote d’Ivoire, a mother chimpanzee is likely to facilitate her youngster’s learning of nut-cracking in a number of ways directly related to what that youngster does or doesn’t already know about bringing together nuts, hammers, and anvils. The mother adjusts her behavior to the visible skill level of the child, implicitly recognizing that she herself knows more than the youngster and that the youngster’s abilities shift over time.

Capuchin monkeys of South America push against the cognitive watershed idea quite directly because they forage aided by tools in complex ways that are quite unusual for monkeys. Of course, caution is required on the part of scientists who compare the cognition of two groups of nonhuman primates like this—especially because we humans may tend to rate apparently humanlike thinking as the most complicated of all.

Still, the cognitive watershed is a useful perspective because it helps primatologists think up experiments and predictions to test, and helps us organize how we approach potentially key distinctions within the primate order.

Barbara King is a professor of anthropology at The College of William & Mary and the author of Being With Animals and the Friday Animal Blog.

Story Credit Here

Monday, January 11, 2010

Primates Use Caves To Escape The Heat

Chimpanzees in a West African republic of Senegal take preserve from a boiling feverishness in caves, researchers
have found.
The find has lifted gibberish between monkey researchers, who contend it's a initial well well well known box of unchanging cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of by an ape species.
The surprising function is shown by a same chimpanzees not long ago found to track tiny mammals regulating sensory sticks.
Jill Pruetz, an anthropologist during Iowa State University, led a investigate group during a back of a brand brand brand new discoveries. Hers is a initial long-term observational investigate of a savanna-dwelling chimpanzee population.
Pruetz pronounced which when she began fieldwork in 2001, during a site well well well known as Fongoli, internal Malinke people showed her a caves as well as told her they were mostly assigned by chimpanzees during a hottest partial of a year.
She was intrigued by a claim, though watching a chimpanzee function valid difficult.
"It took years as well as years for a chimpanzees to get hooked [to a researchers' presence]," Pruetz said. "As shortly as you would travel anywhere close, it would shock them out of a caves."
Even with couple of approach observations, Pruetz's group was means to consider a border of cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of regulating clues left during a back of upon sandy cavern floors: tracks, droppings, as well as food remains.
The investigate showed which cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of was strong during a finish of a dry deteriorate in May as well as June.
"The function appears to be an composition to feverishness stress," Pruetz said.
"No a single has ever prior to published reports of apes in caves," remarkable William McGrew of Cambridge University in England.
"This is a single of those cases in which a apes honestly warn us, surpassing a expectations as well as imaginations."
Pruetz's paper upon cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of by a Fongoli chimpanzees will be published in a stirring emanate of a biography Primates.
Dry Country Apes
Much of what is well well well known about furious chimpanzee function comes from studies conducted in forests.
But in Senegal chimpanzees take up dull savanna medium dominated by open grassland as well as meagre woodland. Chimpanzees in these areas vaunt a operation of behaviors not found elsewhere.
Pruetz remarkable which cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of is only a single of multiform strategies a chimpanzees have make have make have make have make make make make make make use of of of of of of of of of of of of of to cope with their formidable environment, where both shade as well as H2O have been vicious resources.
In Apr as well as May limit temperatures in open grassland circuitously a caves can strech 107.6 degrees Fahrenheit (42 degrees Celsius). Temperatures in a largest of a 3 tiny caves used by a chimpanzees never exceeded 84.2 degrees Fahrenheit (29 degrees Celsius).
Lack of a circuitously H2O source progressing in a dry deteriorate might have prevented a caves from being used some-more during length via a year.
Pruetz pronounced which whilst her brand brand brand new paper is formed only upon interpretation picked up during a Fongoli investigate site, her group has additionally celebrated cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of in alternative circuitously chimpanzee populations.
At a place called Baniomba, she said, "[chimpanzees] appear to have make have make have make have make make make make make make use of of of of of of of of of of of of of caves even some-more than during Fongoli. But you don't nonetheless have any a single after another data."
Pruetz's connoisseur tyro Peter Stirling reported which a deeper Baniomba caves appeared to be assigned upon a every day basement over a two-week duration in a summer.

"It's roughly identical to they're regulating a caves there as a home base," Pruetz said.
Give Me Shelter
The adaptations of savanna chimpanzees have been quite engaging to researchers since early humans have been suspicion to have assigned identical environments.
"The anticipating would be important in itself, though a implications for reconstructing a evolutionary origins of preserve in a ancestors have it even some-more so," pronounced Cambridge's McGrew.
Some monkeys have make have make have make have make make make make make make use of of of of of of of of of of of of of caves to stay comfortable during night, he noted. What is appealing about a brand brand brand new investigate is which it shows "not a nightly have make have make have make have make make make make make make use of of of of of of of of of of of of of of caves for overnight sleeping though rsther than [daytime use] for siestas, socializing, as well as picnicking. No a single approaching this."
University of California San Diego anthropologist Jim Moore pronounced which whilst cavern have make have make have make have make make make make make make use of of of of of of of of of of of of of might appear to be an viewable plan for avoiding a midday sun, a function documented by Pruetz's group is unusual.
"Primates really mostly don't have make have make have make have make make make make make make use of of of of of of of of of of of of of accessible shelter, even to get out of a rain," Moore said.
"The anticipating opens up a total set of questions, since which this function isn't seen in alternative regions of Africa," he continued.
"Are they right during a corner of what chimpanzees can hoop in conditions of heat … or is it a informative thing?"

Long-term studies of timberland chimpanzee populations have shown which "historical as well as fine-scale ecological differences can outcome in really opposite cultures," Moore noted.
"There have been a series of attempts to investigate savanna chimpanzees," he said, "but [Pruetz's study] is a initial to get sufficient close-up observations to begin saying things identical to this.
"By office building up a bargain of how such environments figure [modern tellurian relatives], you can improved indication a early ancestors," Moore added.

Source

Sunday, December 20, 2009

Vervet Monkeys In The Caribbean Have a Great Taste For Alcohol

In the Caribbean, Vervet Monkeys have developed a taste for alcohol and can regularly be spotted stealing cocktails from humans on the beach.

Video

Saturday, December 12, 2009

Listen To The Monkey's Language

Scientists may be a step closer to understanding the origins of human language.

Two studies suggest that the ability to combine sounds and words to alter meaning may be rooted in a species of monkey.

A team found the Campbell's monkey can add a simple sound to its alarm calls to create new ones and then combine them to convey even more information.

The research is published in the journals Plos One and PNAS.

'Krak-oo'

Human language is incredibly complex, but one commonly used feature is the process of adding another unit - a prefix or suffix - to a word to change its meaning. For example, adding "hood" to the word "brother" to form "brotherhood".

team looking at Campbell's monkeys (Cercopithecus campbelli campbelli) in the Ivory Coast's Tai National Park found that these primates do a similar thing. The researchers studied alpha males in six wild groups. These monkeys do not play a very social role but are alert to potential threats and disturbances and use their calls to highlight them.

The researchers discovered that the monkeys made several distinct alarm cries, among them calls described as "boom", "krak" and "hok".

The team found that booms were sounded when a falling branch had been spotted or to initiate group travel.

Kraks were only given after a leopard had been sighted. While hoks were almost exclusively sounded when a crowned eagle swooped above the canopy.

ut further analysis revealed that while booms were always unaltered, the monkeys sometimes added an "oo" to their kraks and hoks - and this transformed the information they were conveying.

Klaus Zuberbuehler, an author of the paper from the University of St Andrews, Scotland, said: "If you add this subtle additional oo unit to turn krak into krak-oo, then that call can be given to a whole range of other contexts. If you take the suffix away then it is almost exclusively a leopard alarm call."

While krak-oo appeared to be a general alarm call given to almost any disturbance, hok-oo was used for commotion specifically in the canopy, from the presence of neighbouring groups of monkeys to a glimpse of other flying animals.

Professor Zuberbuehler added: "What is interesting is that the same acoustic modifier is being used for these calls and that is really analogous to using a suffix in human language."

'Boom, boom'

A second study focused on how Campbell monkeys combined their alarm calls, as they were more likely to use a longer sequence of calls than voice individual ones.

rofessor Zuberbuehler said: "Sometimes the monkey can give 10, 15 or even 20 calls, and typically different types of calls can appear in these sequences... So we tried to understand what particular context would trigger these sequences."

The scientists found that a sequence made up only of booms was used to prompt the group to travel.

If a pair of booms was followed by some krak-oos, it was almost exclusively given when falling trees or branches had been seen.

But if two booms were followed by a mix of krak-oos and hok-oos, then that seemed to signal the presence of a neighbouring group of Campbell's monkeys or another lone male.

Professor Zuberbuehler said: "These are three different events that are nothing to do with each other, but they are basically made of the same call types."

He added: "This is the first time that we can demonstrate that these sequences convey something about the environment or an event the monkey has witnessed."

The researchers say that while the monkey's linguistic talents may be unique amongst primate species, if the findings prove to be more widespread then they could help to reveal more about the origins of language.

Professor Zuberbueler said: "Campbell's monkeys and humans separated from a common ancestor about 30 million years ago.

"This set of papers shows that in terms of the call morphology, there seem to be ancestral traits floating around the primate lineage that haven't been known before."


Source and to listen to sound bites


Friday, December 4, 2009

Monkeys Can Recognize Photographs Of Other Monkeys They Know

This is the first indication they understand what 2-D images represent, researchers say

Posted December 4, 2009

FRIDAY, Dec. 4 (HealthDay News) -- Monkeys can recognize photographs of other monkeys they know, proving that they can both detect differences in faces and figure out if they've seen them before, researchers report.

The study also shows that capuchin monkeys can decipher the two-dimensional nature of a photograph, the scientists authors noted.

The findings, reported by researchers at the Yerkes National Primate Research Center at Emory University in Atlanta, are published the week of Dec. 4 in the online early edition of the Proceedings of the National Academy of Sciences.

In the study, the monkeys looked at four photos, including one of a monkey they knew. They also looked at another four monkey photos, including one of a monkey they didn't know.

"This required monkeys to look at similar-looking faces and use their personal knowledge of group mates to solve the task," lead researcher Jennifer Pokorny, said in a university news release. "They readily performed the task and continued to do well when shown new pictures in color and in grayscale, as well as when presented with individuals they had never before seen in pictures, though with whom they were personally familiar."

According to the researchers, previously, there hasn't been evidence that nonhuman primates can look at two-dimensional images and understand they represent things and animals

from real life.

More information

Learn more about the capuchin monkey from the Rainforest Alliance.

Source

Wednesday, December 2, 2009

Evolution: Humans The Naked Apes Walking on Two Legs











Scientists find it easy to explain why we resemble the African apes so closely by pointing out that gorillas, chimpanzees and humans share a common ancestor. It is much harder to explain why we differ from the gorilla and the chimpanzee much more markedly than they differ from one another. Something must have happened to cause one section of the ancestral ape population to proceed along an entirely different evolutionary path.

By Elaine Morgan

The most widely held theory, still taught in schools and universities, is that we are descended from apes which moved out of the forests onto the grasslands of the open savannah. The distinctly human features are thus supposed to be adaptations to a savannah environment.

In that case, we would expect to find at least some of these adaptations to be paralleled in other savannah mammals. But there is not a single instance of this, not even among species like baboons and vervets, which are descended from forest- dwelling ancestors.

This awkward fact has not caused savannah theorists to abandon their hypothesis, but it leaves a lot of problems unanswered. For example, on the question of why humans lost their body hair, it has been argued at various times that no explanation is called for, or that we may never know the reason, or even that there may not be a reason. These attitudes seem to be not merely defeatist, but fundamentally unscientific.

The Aquatic Ape Theory (AAT) offers an alternative scenario. It suggests that when our ancestors moved onto the savannah they were already different from the apes; that nakedness, bipedalism, and other modifications had begun to evolve much earlier, when the ape and human lines first diverged.

AAT points out that most of the “enigmatic” features of human physiology, though rare or even unique among land mammals, are common in aquatic ones. If we postulate that our earliest ancestors had found themselves living for a prolonged period in a flooded, semi-aquatic habitat, most of the unsolved problems become much easier to unravel.

There is powerful geological evidence to support this hypothesis, and nothing in the fossil record that is inconsistent with it. Some of the issues it raises are briefly outlined in the following pages.

The naked ape

Humans are classed anatomically among the primates, the order of which includes apes, monkeys and lemurs. Among the hundreds of living primate species, only humans are naked.

Two kinds of habitat are known to give rise to naked mammals – a subterranean one or a wet one. There is a naked Somalian mole rat which never ventures above ground. All other non-human mammals which have lost all or most of their fur are either swimmers like whales and dolphins and walruses and manatees, or wallowers like hippopotamuses and pigs and tapirs. The rhinoceros and the elephant, though found on land since Africa became drier, bear traces of a more watery past and seize every opportunity of wallowing in mud or water.

It has been suggested that humans became hairless “to prevent overheating in the savannah”. But no other mammal has ever resorted to this strategy. A covering of hair acts as a defense against the heat of the sun: that is why even the desert- dwelling camel retains its fur. Another version is “to facilitate sweat-cooling”. But again many species resort to sweat-cooling quite effectively without needing to lose their hair.

There is no known reason why an ape should suffer more from overheating than the savannah baboon. And, especially for a savannah primate, there would be a high price to pay for hairlessness. Primate infants are carried around clinging to their mothers’ fur; the females would be severely hampered in their foraging when that no longer became possible.

One general conclusion seems undeniable from an overall survey of mammalian species: that while a coat of fur provides the best insulation for land mammals the best insulation in water is not fur, but a layer of fat.

Fat

Humans are by far the fattest primates; we have ten times as many fat cells in our bodies as would be expected in an animal of our size.

There are two kinds of animals which tend to acquire large deposits of fat – hibernating ones and aquatic ones. In hibernating mammals the fat is seasonal; in most aquatic ones, as in humans it is present all the year round. Also, in land mammals fat tends to be stored internally, especially around the kidneys and intestines; in aquatic mammals and in humans a higher proportion is deposited under the skin.

It is unlikely that early man would have evolved this feature after moving to the plains and becoming a hunter, because it would have slowed him down. No land-based predator can afford to get fat. Our tendency to put on fat is likelier to be an inheritance from an earlier aquatic phase of our evolution. It is true that some apes, especially in captivity, may put on weight, but we still differ from them in two important ways. One is that they are never born fat. All infant primates except our own are slender; their lives may depend on their ability to cling to their mothers and support their whole weight with their fingers. Our own babies accumulate fat even before birth and continue to grow fatter for several months afterwards. Some of this fat is white fat, and that is extremely rare in new-born mammals. White fat is not much good for supplying instant heat and energy. It is good for insulation in water, and for giving buoyancy.

The other difference is that in our case the subcutaneous fat is bonded to the skin. When an anatomist skins a cat or rabbit or chimpanzee, any superficial fat deposits remain attached to the underlying tissues. In the case of humans, the fat comes away with the skin, just as it does in aquatic species like dolphins, seals, hippos and manatees.

Walking on two legs

Human beings are the only mammals in the world that habitually walk on two legs. (The only other creature with a perpendicular gait is an aquatic bird, the penguin.)

It is not surprising bipedalism is so rare. Compared with running or walking on four legs it has many disadvantages. It is slower; it is relatively unstable; it is a skill that takes many years to learn, and it exposes vulnerable organs to attack.

We have been doing it for five million years and in that time our bodies have been drastically remoulded to make it easier, but it is still the direct cause of many discomforts and ailments such as back pains, varicose veins, haemorrhoids, hernias and problems in childbirth. It would have been far more difficult and laborious for our ape-like ancestors; only some powerful pressure could have induced them to adopt a way of walking for which they were initially so ill suited.

One hypothesis used to be that they first developed big brains and began to make tools, and finally walked on their hind legs to free their hands for carrying weapons. But we now know that it was bipedalism that came first, before the big brain and tool-making.

However, if their habitat had become flooded, they would have been forced to walk on their hind legs whenever they came down to the ground in order to keep their heads above water. The only animal which has ever evolved a pelvis like ours, suitable for bipedalism, was the long-extinct _Oreopithecus_, known as the swamp ape.

Today, two primates when on the ground stand and walk erect somewhat more readily than most other species. One, the proboscis monkey, lives in the mangrove swamps of Borneo. The other is the bonobo or pygmy chimpanzee; its habitat includes a large tract of seasonally flooded forest, which would have covered an even more extensive area before the African climate became drier.

Both of these species enjoy the water. It is interesting that the bonobos often mate face-to-face as humans do; in our case it is explained as a consequence of bipedalism. This mode of mating is another characteristic very rare among land animals, which we share with a wide range of aquatic mammals such as dolphins, beavers and sea otters. What we have in common with them is a mode of locomotion in which the spine and the hind limbs are in a straight line, and that affects the position of the sex organs.

Breathing

The human respiratory system is unlike any other land mammal’s in two respects.

The first is that we have conscious control of our breathing. In most mammals these actions are involuntary, like the heart beat or the processes of digestion.

Voluntary breath control appears to be an aquatic adaptation because, apart from ourselves, it is found only in aquatic mammals like seals and dolphins. When they decide how deep they are going to dive, they can estimate how much air they need to inhale. Without voluntary breath control it is very unlikely that we could have learned to speak.

The other human peculiarity is called “the descended larynx”. A land mammal is normally obliged to breathe through its nose most of the time, because its windpipe passes up through the back of the throat and the top end of it (the larynx) is situated in the back of its nasal passages. A dog, for example, has to make a special effort to bring its larynx down into its throat in order to bark or to pant; when it relaxes, the larynx goes back up again. Even our own babies are born like that.

A few months after birth the human larynx descends into the throat, right down below the back of the tongue. Darwin found that very puzzling because it means that the opening to the lungs lies side by side with the opening to the stomach. That is why in our species food and drink may sometimes go “down the wrong way”. If we had not evolved an elaborate swallowing mechanism it would happen every time.

This arrangement means that we can breathe through our mouths as easily as through our noses. It is probable that this is an aquatic adaptation, because a swimmer needing to gulp air quickly can inhale more of it through the mouth than through the nostrils. And we do know that the only birds which are obligatory mouth breathers are diving birds like penguins, pelicans and gannets. As for mammals, the only ones with a descended larynx, apart from ourselves, are aquatic ones – the sea lion and the dugong.

Other differences

It is impossible in a brief outline to discuss all the physical features distinguishing us from the apes, but a few are worth mentioning.

For example, we have a different way of sweating from other mammals, using different skin glands. It is very wasteful of the body’s essential resources of water and salt. It is therefore unlikely that we acquired it on the savannah, where water and salt are both in short supply.

We weep tears of emotion, controlled by different nerves from the ones that cause our eyes to water in response to smoke or dust. No other land animal does this. There are marine birds, marine reptiles and marine mammals which shed water through their eyes, or through special nasal glands, when they have swallowed too much seawater. This process may also be triggered in them by an emotional excitement caused by feeding or fighting or frustration. Weeping animals, apart from ourselves, include the walrus, the seal and the sea otter.

We have millions of sebaceous glands which exude oil over head, face and torso, and in young adults often causes acne. The chimpanzee’s sebaceous glands are described as “vestigial” whereas ours are described as “enormous”. Their purpose is obscure. In other animals the only known function of sebum is that of waterproofing the skin or the fur.

The most widely discussed contrast between ourselves and the apes is that we have bigger brains. A bigger brain may well have been an advantage to early man, but it would have been equally of advantage to a chimpanzee: the question is why one of them acquired it.

One factor may have been nutritional. The building of brain tissue, unlike other body tissues, is dependent on an adequate supply of Omega-3 fatty acids, which are abundant in the marine food chain but relatively scarce in the land food chain.

AAT is the only theory which logically connects all these and other enigmatic features and relates them to a single well attested historical event.

The time and the place

It is now generally agreed that the man/ape split occurred in Africa between 7 and 5 million years ago, during a period known as the fossil gap.

Before it there was an animal which was the common ancestor of human and African apes. After it, there emerged a creature smaller than ourselves, but bearing the unmistakable hallmark of the first shift towards human status: it walked on two legs.

This poses two questions: “Where were the earliest fossils found?” and “Do we know of anything happening in that place at that time that might have caused apes and humans to evolve along separate lines?”

The oldest pre-human fossils (including the best known one, “Lucy”) are called australopithecus afarensis because their bones were discovered in the afar triangle, and area of low lying land near the Red Sea. About 7 million years ago that area was flooded by the sea and became the Sea of Afar.

Part of the ape population living there at the time would have found themselves living in a radically changed habitat. Some may have been marooned on off-shore islands – the present day Danakil Alps were once surrounded by water. Others may have lived in flooded forests, salt marshes, mangrove swamps, lagoons or on the shores of the new sea, and they would all have had to adapt or die.

AAT suggests that some of them survived, and began to adapt to their watery environment. Much later, when the Sea of Afar became landlocked and finally evaporated, their descendants returned to the mainland of Africa and began to migrate southwards, following the waterways of the Rift Valley upstream.

There is nothing in the fossil record to invalidate this scenario, and much to sustain it. Lucy’s bones were found at Afar lying among crocodile and turtle eggs and crab claws at the edge of a flood plain near what would then have been the coast of Africa.

Other fossils of Australopithecus, dated later, were found further south, almost invariably in the immediate vicinity of ancient lakes and rivers.

We now know that the change from the ape into Australopithecus took place in a short space of time, by evolutionary standards. Such rapid speciation is almost invariably a sign that one population of a species has become isolated by a geographical barrier such as a stretch of water.

Aquatic Ape Table

The Aquatic phase took place more than 5 million years ago. Since then, Homo has had five million years to re-adapt to terrestrial life. It is not surprising that the traces of aquatic adaptation have become partially obliterated and have gone unrecognized for so long.

Source, please visit