. Space Travel News .




.
FARM NEWS
Plant genomes may help next generation respond to climate change
by Staff Writers
Providence RI (SPX) Oct 12, 2011

Laura J. Martin, a Brown graduate now a Ph.D candidate at Cornell, takes a census of surviving Arabidopsis plants at the field site in Norwich, England. Harvested plants were shipped to Brown for analysis. Credit: Judith Roe.

In the face of climate change, animals have an advantage over plants: They can move. But a new study led by Brown University researchers shows that plants may have some tricks of their own.

In a paper published in Science, the research team identifies the genetic signature in the common European plant Arabidopsis thaliana that governs the plant's fitness - its ability to survive and reproduce - in different climates. The researchers further find that climate in large measure influences the suite of genes passed on to Arabidopsis to optimize its survival and reproduction.

The set of genes determining fitness varies, the team reports, depending on the climate conditions in the plant's region - cold, warm, dry, wet, or otherwise.

"This is the first study to show evolutionary adaptation for Arabidopsis thaliana on a broad geographical scale and to link it to molecular underpinnings," said Johanna Schmitt, director of the Environmental Change Initiative at Brown and an author on the paper. "Climate is the selective agent."

The researchers believe that by identifying the genetic signatures that mark Arabidopsis' response to changing climate, scientists may understand how climate may cause the re-engineering of the genetic profiles of other plants.

"There is still evolutionary flexibility to help plants take one direction or another," said Alexandre Fournier-Level, a postdoctoral researcher at Brown and the paper's first author. "It gives us good hope to see, yes, it's adapting."

The researchers planted Arabidopsis, a small flowering plant popular with plant biologists because its genome is relatively small, at four locations across its native range in Europe - Valencia, Spain; Halle, Germany; Norwich, United Kingdom; and Oulu, Finland.

At each field site, genetic strains were planted, originating from across the species' native climate range - from cold (Finland) to warm (Spain), with oceanic (United Kingdom) and continental (Germany) variables mixed in.

That way, the researchers could compare local strains with representatives from the other regions and search for signs of "home court advantage," Schmitt said.

"This was a truly massive undertaking, tracking more than 75,000 plants in the field, from near the arctic circle to the Mediterranean coast," said Amity Wilczek, a former postdoctoral researcher in Schmitt's lab now on the faculty at Deep Springs College.

"Arabidopsis is an annual plant, so we could measure total lifetime success of an individual within a single year. We gathered plants from a variety of native climates and grew some of each in our four widely distributed European garden sites.

"We shipped our harvested plants back to Brown and began the laborious task of counting fruits on these plants. In the end, we were able to assemble a very large and comprehensive dataset that gives us new insight into what it takes for a plant to be succesful in nature under a broad range of climate conditions."

The team then burrowed into the Arabidopsis genome to find the molecular mechanisms that might give the plant genetic flexibility to roll with climate punches.

To identify variations in the genome among the regional representatives, the researchers carried out a genome-wide association study for survival and fruiting comprising more than 213,000 single-nucleotide polymorphisms.

These SNPs, Fournier-Level explained, are like signposts pointing to areas in the genome where survival and reproduction may be emphasized and areas that show variations in the regional representatives' genetic makeup.

From the experiments, the team discovered that the SNPs that determined fitness for Arabidopsis in one region are surprisingly different from those associated with the plant's fitness in another region.

The team also learned from the experiments that SNP variants - "alleles" - associated with high fitness within each field site were locally abundant in that region, demonstrating a kind of home court advantage at the genomic level.

In addition, certain climate variables seemed to control the geographic distribution of fitness-associated SNPs. For example, fitness SNPs in Finland, at the northern range limit, were limited by temperature. In one example presented in the paper, the researchers identify a SNP allele in a water-stress tolerance gene, called SAG21.

This allele was common in Arabidopsis's Spanish populations, but not in the cool climate of Finland where tests showed plants carrying that allele fared poorly.

"Climate explains the distribution of locally favorable alleles," Fournier-Level explained. "This helps explain how climate shapes distribution."

"We found that the genetic basis of survival and reproduction is almost entirely different in different regions, which suggests that evolutionary adaptation to one climate may not always result in a tradeoff of poor performance in another climate," said Schmitt, the Stephen T. Olney Professor of Natural History and professor of biology and environmental studies.

"Thus, the Arabidopsis genome may contain evolutionary flexibility to respond to climate change."

Martha Cooper, lab manager in Schmitt's lab, and Magnus Nordborg and Arthur Korte from the Gregor Mendel Institute in Austria contributed to the paper.

The National Science Foundation and the Alexander von Humboldt Foundation funded the work.

Another study of genetic adaptations to climate
In another study published in the same issue of Science, a team led by Joy Bergelson, professor and chair of Ecology and Evolution at the University of Chicago, identified genetic loci associated with adaptations to climate change in A. thaliana.

Genes involved in processes such as photosynthesis and energy metabolism were more common among genes associated with climate adaptation, the researchers discovered.

Many of these gene loci also showed evidence of evolving through selective sweeps, where a new mutation appears and spreads through a population - a strategy that may not be effective during rapid changes in climate.

"The contribution of selective sweeps suggests that there will be limits on the rate at which this plant can adapt to climate change," Bergelson said. (Bergelson is a 1984 Brown graduate with an Sc.B. in biology.)

Related Links
Brown University
Farming Today - Suppliers and Technology




.
.
Get Our Free Newsletters Via Email
...
Buy Advertising Editorial Enquiries






.

. 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



FARM NEWS
Rethinking connection between soil as a carbon reservoir and global warming
Zurich, Switzerland (SPX) Oct 11, 2011
Soils store three times as much carbon as plants and the atmosphere. Soil organic matter such as humus plays a key role in the global carbon cycle as it stores huge amounts of carbon and thus counters global warming. Consequently, the Kyoto Protocol permits the signatory countries to count soils and forests against greenhouse gas emissions as so-called carbon sinks. Exactly why some ... read more


FARM NEWS
Indian-French satellite put into orbit

Chinese rocket sends French telecom satellite into space

On-time preparations continue for Soyuz' milestone mission from French Guiana

US telecoms satellite reaches designated orbit

FARM NEWS
Video Documents Three-Year Trek on Mars by NASA Rover

Mars Express: Current flows and 'islands' in Ares Vallis

Opportunity is on the Move Again

Tracing the Canals of Mars

FARM NEWS
Subtly Shaded Map of Moon Reveals Titanium Treasure Troves

NASA's Moon Twins Going Their Own Way

Titanium treasure found on Moon

NASA Invites Students to Name Moon-Bound Spacecraft

FARM NEWS
Series of bumps sent Uranus into its sideways spin

Mission to Mysterious Uranus

Spinning hourglass object may be the first of many to be discovered in the Kuiper belt

Dwarf Planet Mysteries Beckon to New Horizons

FARM NEWS
Astronomers Find Elusive Planets in Decade-Old Hubble Data

University of Texas-led Team Discovers Unusual Multi-Planet System with NASA's Kepler Spacecraft

Heavy Metal Stars Produce Earth-Like Planets

Doubts Over Fomalhaut b

FARM NEWS
Russia puts new Rus-M carrier rocket project on hold

Russia to abandon rocket booster work

Pee power: Urine-loving bug churns out space fuel

NASA Tests Deep Space J-2X Rocket Engine at Stennis

FARM NEWS
China's first space lab module in good condition

Takeoff For Tiangong

Snafu as China space launch set to US patriotic song

Civilians given chance to reach for the stars

FARM NEWS
New View of Vesta Mountain From NASA's Dawn Mission

Almahata Sitta Meteorites Could Come From Triple Asteroid Mash-Up

Hyperactive Hartley 2 has a split history

The Secrets of Asteroid Minerva and its Two Moons


.

The content herein, unless otherwise known to be public domain, are Copyright 1995-2011 - Space Media Network. AFP and UPI Wire Stories are copyright Agence France-Presse and United Press International. 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