Wednesday, September 03, 2008

Moths Remember Lessons Learned While Caterpillars





John Roach
for National Geographic News
March 5, 2008
 
Adult moths can remember their "childhoods" as caterpillars, a new study has found. 

Recently scientists trained tobacco hornworm caterpillars in the lab to avoid a nail polish-like odor delivered in association with a mild shock. 

These bugs then entered the pupal stage and metamorphosed into moths. As adults, they also avoided the nail-polish odor—showing that they had retained their larval memory. 

"We concluded that indeed the association does persist and is accessible to the adults in this artificial scenario," said study senior author Martha Weiss, a biologist at Georgetown University in Washington, D.C. 

The finding also supports the idea that a piece of the caterpillar brain persists through metamorphosis, she added. 

(Related: "Scientists Rethinking Nature of Animal Memory" [August 22, 2003].) 

Weiss and colleagues report their research today in the Public Library of Science journal PLoS ONE. 

Memory and Metamorphosis 

Scientists have long wondered whether memory could survive the dramatic reorganization of the moth brain during metamorphosis, Weiss noted. 

"The transition from a caterpillar to a moth or butterfly is really very dramatic," she said. 

(See a picture of caterpillar larvae that look like bird poop.) 

For example, caterpillars and moths move, eat, and sense the world differently—not to mention appear nothing alike. 

The study also showed that memory retention depends on the maturity of the developing caterpillars' brains. 

Caterpillars younger than three weeks old learned to avoid the nail-polish odor but could not recall the information as adults. 

However caterpillars conditioned to avoid the odor in the final larval stage before pupation, called the fifth instar, retained the lessons. 

Larvae trained during the third-instar stage also demonstrated an aversion to odor as fifth instars, but they did not avoid the odor as adults, the authors said. 

The findings jibe with the idea that memories are retained in one lobe of a mushroom-shaped part of a caterpillar's brain that forms during the late stages of larval development and survives metamorphosis. 

"Basically, the brain is not completely taken apart and rebuilt from scratch," Weiss said. 

Reinhard Stocker, a biologist at the University of Fribourg in Switzerland, studies the nervous system of fruit flies. 

In an email, he noted that Weiss team's data appear strong, but he said that the moths' memory retention only after the fifth instar was perplexing.

"Metamorphic rewiring of the brain is generally thought to be completed only in later stages of metamorphosis, which for the moth would be well after the fifth instar," said Stocker, who was not involved in the new research.

"Thus it should essentially not make any difference if one trains third- or fourth-instar larvae. I don't have any simple clue to interpret such an observation."

Shock and Odor 

The research may help explain how adult female moths that can eat a variety of food choose to lay their eggs on the same type of plant they fed on as larvae. 

Study author Weiss describes it as an "if it was good enough for me, it's good enough for my kids" type of selection. 

If the moths retain some memories from their larval stage, as this research shows, then they could remember what they ate as "kids." 

Other researchers have theorized that moths have what's called a chemical legacy from their larval stage that could cue them what to eat. 

"That could look like the larva is actually remembering something," Weiss noted. 

Her research team was careful to show that larval memory was based on the formation of an association between a shock and an odor—not a chemical legacy, she said. 

"For me, it is exciting to think that a learned association really can be transferred from one phase to another through this very radical transition." 

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Bug's "Bird Poop" Disguise Decoded


caterpillar picture

February 21, 2007—This larval swallowtail butterfly's clever disguise (left) is literally a load of crap.

In its larval stages, the Asian swallowtail—also known as the Chinese or Japanese yellow swallowtail—mimics the appearance of bird droppings to prevent predators from gobbling it up.

In its last phase of development, the insect turns green (right) to blend into the leaves on which it lives.

A new study shows that a single juvenile hormone is responsible for switching on and off the "spectacular diversity" of the caterpillar's colors, Japanese researchers say.

"[Juvenile hormone] has been known to be involved in molt, metamorphosis, and some other events," study co-author Haruhiko Fujiwara of the University of Tokyo told National Geographic News in an email.

"But in this report, we found that [the hormone] regulates pattern change, which is an original finding."

Hormone levels drop when the caterpillar leaves the bird-droppings stage and begins its green color transformation.

The substance also has the power to shape the caterpillar's texture and pigment distribution, enhancing its disguise.

The study, conducted by Fujiwara and Ryo Futahashi, also of the University of Toyko, appears tomorrow in the journal Science.

—Christine Dell'Amore

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Thursday, July 31, 2008

Milkweed counters caterpillars' appetite with fast repair

23 Jul, 2008, 1352 hrs IST, ANI

WASHINGTON: Indian-origin Cornell University researcher Anurag Agrawal says that milkweed plants seem to be shifting away from elaborate defences against caterpillars, and adopting a more energy-efficient approach.

He has observed that a monarch butterfly caterpillar, when about to devour a milkweed leaf, first disarms the plant's natural defence system by cutting its veins that deliver a toxic and sticky latex.

According to him, as the caterpillar has evolved specialised strategies to feed on the plant, milkweeds have started to put in more efforts into repairing themselves faster rather than resisting their predators.

"An important question with co-evolution is where does it end? One answer is when it becomes too costly. Some plants seem to have shifted away from resisting herbivory (plant eating) and have taken that same energy and used it to repair themselves," said Agrawal, Cornell associate professor of ecology and evolutionary biology, and lead author of a paper in the current issue of the Proceedings of the National Academy of Sciences.

The researcher says that his study sheds light on key theories of co-evolution, and shows that pressure by foraging insects makes plants diversify as they evolve new defensive strategies, and that such diversification follows trends in one direction or another.

During the study, he observed that some caterpillars cut a leaf's veins in a circle, and then eat it in the middle where the latex does not flow.

He also found that the monarch caterpillar had become immune to the heart poisons called cardenolides in the plant's tissues.

Using DNA sequence data to look at relationships between 38 species of milkweed, Agrawal and his colleagues found evolutionary declines in the plants' three most important resistance traits -- hairs on their leaves, cardenolides and latex -- and an escalation in their ability to re-grow.

Agrawal said that he was surprised to find that the plant became more tolerant rather than more diverse in its defences.

He speculated the reason could be because as its predators have become so specialized, the plant was better off choosing a new defensive tactic "to tolerate the herbivory damage instead of resisting it."

He, however, added that it was yet unknown whether such strategies had also evolved in animals trying to evade parasites.

He said that his study, funded by the National Science Foundation, might give plant scientists clues about profitable pest control strategies.

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