Subscribe free to our newsletters via your
. 24/7 Space News .




EARLY EARTH
Biologists replicate key evolutionary step
by Staff Writers
Minneapolis MI (SPX) Jan 18, 2012


File image: yeast cells.

More than 500 million years ago, single-celled organisms on the Earth's surface began forming multicellular clusters that ultimately became plants and animals. Just how that happened is a question that has eluded evolutionary biologists.

But scientists in the University of Minnesota's College of Biological Sciences have replicated that key step in the laboratory using natural selection and common brewer's yeast, which are single-celled organisms. The yeast "evolved" into multicellular clusters that work together cooperatively, reproduce and adapt to their environment - in essence, precursors to life on Earth as it is today.

Their achievement is published in the January 16 issue of Proceedings of the National Academy of Sciences.

It all started about two years ago with a casual comment over coffee that bridging the famous multi-cellularity gap would be "just about the coolest thing we could do," recall postdoctoral researcher Will Ratcliff and associate professor Michael Travisano, both from the Department of Ecology, Evolution and Behavior.

So they decided to give it a try. Then came the big surprise. It wasn't actually that difficult. Using yeast cells, culture media and a centrifuge, it only took them one experiment conducted over about 60 days, says Travisano, who is senior author on the PNAS paper.

"I don't think anyone had ever tried it before," says lead author Ratcliff. "There aren't many scientists doing experimental evolution, and they're trying to answer questions about evolution, not recreate it."

Despite their modesty, the achievement has earned praise and admiration from evolutionary biologists around the world.

"To understand why the world is full of plants and animals, including humans, we need to know how one-celled organisms made the switch to living as a group, as multicelled organisms," said Sam Scheiner, program director in the National Science Foundation (NSF)'s Division of Environmental Biology.

"This study is the first to experimentally observe that transition, providing a look at an event that took place hundreds of millions of years ago."

Funding for the research was obtained in February 2011, with coauthors R. Ford Denison and Mark Borrello, adjunct and associate professors, respectively, in the Department of Ecology, Evolution and Behavior.

Ratcliff and Travisano gave the scientific community a glimpse of their discovery at a conference last summer and have subsequently been invited to talk about it at other meetings. The PNAS article represents the first time full details about the research have been disclosed. "The article provides us with the first opportunity to show the breadth of evolutionary change that we've observed," Travisano says.

In essence, here's how the experiments worked. The two chose brewer's yeast or Saccharomyces cerevisiae, a species of yeast used since ancient times to make bread and beer, because it is abundant in nature and grows easily. They added it to a nutrient-rich culture media and allowed the cells to grow for a day in test tubes.

Then they used a centrifuge to stratify the contents by weight. As the mixture settled, cell clusters landed on the bottom of the tubes faster because they are heavier. They removed the clusters, transferred them to fresh media, and grew them up again. Sixty cycles later, the clusters - now hundreds of cells - looked roughly like spherical snowflakes.

Analysis showed that the clusters were not just groups of random cells that adhered to each other, but related cells that remained attached following cell division. That was significant because it meant they were genetically similar, which promotes cooperation. When the clusters reached a critical size, some cells essentially committed suicide (apoptosis) to allow offspring to separate. The offspring reproduced only after they attained the size of their parents.

"A cluster alone isn't multiellular," Ratcliff said. "But when cells in a cluster cooperate, make sacrifices for the common good, and adapt to change, that's an evolutionary transition to multicellularity."

In order for multicellular organisms to form, most cells need to sacrifice their ability to reproduce, an altruistic action that favors the whole but not the individual, Ratcliff said.

For example, all cells in the human body are essentially a support system that allows sperm and eggs to pass DNA along to the next generation. Thus, multicellularity is by its nature extremely cooperative. "Some of the best competitors in nature are those that engage in cooperation, and our experiment bears that out," said Travisano.

Evolutionary biologists have estimated that multicellularity evolved independently in about 25 groups. Travisano and Ratcliff wonder why it didn't evolve more often in nature, since it's not that difficult to recreate it in a lab. Considering that trillions of one-celled organisms lived on the Earth for millions of years, it seems as if it should have, Ratcliff said.

Maybe that's a question they will answer in the future, using the fossil record for thousands of generations of their multicellular clusters, which is stored in a freezer in Travisano's lab. Since the frozen samples contain multiple lines that independently became multicellular, they can compare them to learn if similar or different mechanisms and genes were responsible in each case, Travisano said.

The research duo's next steps will be to look at the role of multicellularity in cancer, aging and other critical areas of biology.

"Our multicellular yeast are a valuable resource for investigating a wide variety of medically and biologically important topics," Travisano said. "Cancer was recently described as a fossil from the origin of multicellularity, which can be directly investigated with the yeast system. Similarly the origins of aging, development, and the evolution of complex morphologies are open to direct experimental investigation that would otherwise be difficult or impossible."

Travisano joined the College of Biological Sciences faculty in 2007. The multicellularity discovery adds to his record of "firsts" in experimental evolution over the past 25 years. Before joining the Travisano lab group, Ratcliff earned his Ph.D. at the College of Biological Sciences, with Denison as his adviser. Ratcliff has become something of a rock star on the academic conference circuit, and he won the W.D. Hamilton Award for best student presentation at Evolution 2011, the premier conference for evolutionary biologists.

.


Related Links
University of Minnesota
Explore The Early Earth at TerraDaily.com






Comment on this article via your Facebook, Yahoo, AOL, Hotmail login.

Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle








EARLY EARTH
New insights into an ancient mechanism of mammalian evolution
London, UK (SPX) Jan 16, 2012
A team of geneticists and computational biologists in the UK have revealed how an ancient mechanism is involved in gene control and continues to drive genome evolution. The new study is published in the journal Cell. To function properly, mammalian tissues require the protein CTCF, which has several key activities including the regulation of genes and interaction with proteins in the cell' ... read more


EARLY EARTH
Montana Students Pick Winning Names for Moon Craft

Students rename NASA moon probes Ebb and Flow

Lunar Reconnaissance Orbiter's LAMP reveals lunar surface features

Lunar orbiter spots moisture locations

EARLY EARTH
US may be behind Mars probe failure: Russia

Opportunity Targets Amboy Rock For Extra Study Ahead of Winter

Mars Express spots wrinkle ridges and grabens in Tempe Terra

Mars Science Lab Completes Biggest Maneuver On Route To Mars

EARLY EARTH
The gadgets which stood out at CES

Smart appliances set to transform the home

Boeing begins NASA solar electric propulsion study

Solid state Swiss Army Knife can save digital lives

EARLY EARTH
China launches Ziyuan III satellite

Spying on Tiangong

China's space ambitions ally glory with pragmatism

Why The X-37B Is Not Spying On Tiangong

EARLY EARTH
ISS Team Undertakes 'EPIC' Event

Photographing the International Space Station from Your Own Backyard

New crew arrives at international space station

NASA 'Smart SPHERES' Tested on ISS

EARLY EARTH
SpaceX delays February flight to space stationl

Canaveral has busy 2012 launch schedule

China to launch Bolivian satellite in 2013: Chinese Ambassador

Ariane 5, Soyuz, Vega: Three world-changing launch vehicles

EARLY EARTH
Re-thinking an Alien World

Scientists Discover a Saturn-like Ring System Eclipsing a Sun-like Star

Planets around stars are the rule rather than the exception

Milky Way teaming with 'billions' of planets: study

EARLY EARTH
Russian Scientists Mock U.S. Radar Theory on Mars Probe

Russia to Test if US Radar Caused Failed Space Probe

Lynas rare earth facility awaits approval

Space station to dodge superfast debris




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA Portal Reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. Advertising does not imply endorsement,agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. Privacy Statement