Genetic Markers for Tracking Species

Biologists now want to use a similar procedure for identifying domestic animal and plant species more efficiently. German Barcode of Life (GBOL) is the name of an initiative on which zoologists and botanists are collaborating in Germany. Botanists from the University of Bonn have taken the lead for the flora. The overall coordination of the GBOL Project lies with the Zoological Research Museum Alexander Koenig in Bonn.

“In the DNA of living beings, we have identified sections as »DNA barcodes« that, while being almost identical within a certain species, differ among the various species,” explained Prof. Dr. Dietmar Quandt from the Nees Institute for Biodiversity of Plants at the University of Bonn. “Based on these markers, we can then identify species unambiguously and relatively fast.” The result of this analysis resembles a barcode at the supermarket; only that it does not come in black and white, but in four colors, with each one corresponding to one of the four letters of the genetic code.

What counts is only (the genetic) make-up

In classical biological taxonomy, animals and plants are identified by their external characteristics. “It is in species of a genus that resemble each other very closely, such as sedges, that definite identification can be a very long process,” reported Prof. Quandt, Speaker for the botanical project within the GBOL Initiative. “In addition, we have to rely on competent experts here, who unfortunately are a dying breed nationally.” Fully automated sequencing of DNA, however, allows identifying plants much faster. “Besides, we do not need flowering and complete plants,” added Stefanie Winter, one of Prof. Quandt's doctoral candidates. “A tiny fragment, e.g., from a leaf, is sufficient for identifying the species based on its genetic markers.”

More than 5,000 plant species to be collected

In the GBOL Project, the scientists first want to create a library of sample material for classifying the species. In a concerted initiative with the natural history museums, nature conservancy organizations and proven experts, specific plant samples will be catalogued throughout Germany. “For this purpose, the natural history collections have proven to be invaluable treasure troves since they are providing us with some of their priceless samples,” said Prof. Quandt. The challenge is enormous: There are about 4,000 flowering plants in Germany, as well as 1,300 species of mosses and ferns.

Project to Improve Monitoring of the Environment
Capturing our flora by means of DNA barcodes is intended to make monitoring environmental effects easier: How do individual species respond to climate change? Are certain species being replaced by living organisms that have been imported from other countries? Which species are threatened with extinction? “Given the many threats for life on Earth, environmental monitoring is becoming more important,” said Prof. Quandt. “The DNA barcodes can simplify and accelerate such studies considerably.”

Botanical Project Supported with 850,000 Euros

The German Federal Ministry for Education and Research (BMBF) is supporting the collection of plant DNA barcodes in Germany with approximately 850,000 Euros. This botanical research network also includes the Botanical Garden Berlin (BGBM, Freie Universität Berlin), the Institute for Evolution and Biodiversity (University of Münster), the Stuttgart State Museum of Natural History, as well as the Albrecht-von-Haller-Institut für Pflanzenwissenschaften (University of Göttingen). Overall coordination of the GBOL Project lies with the Zoological Research Museum Alexander Koenig in Bonn.

Contact:

Prof. Dr. Dietmar Quandt
University of Bonn
Nees Institute for Biodiversity of Plants
Ph.: +49 228/733315
Email: quandt@uni-bonn.de

Dr. Stephanie Pietsch
Zoological Research Museum Alexander Koenig
Museumsmeile Bonn
Adenauerallee 160
D-53113 Bonn
Email: info@bol-germany.de

Media Contact

Johannes Seiler idw

All latest news from the category: Life Sciences and Chemistry

Articles and reports from the Life Sciences and chemistry area deal with applied and basic research into modern biology, chemistry and human medicine.

Valuable information can be found on a range of life sciences fields including bacteriology, biochemistry, bionics, bioinformatics, biophysics, biotechnology, genetics, geobotany, human biology, marine biology, microbiology, molecular biology, cellular biology, zoology, bioinorganic chemistry, microchemistry and environmental chemistry.

Back to home

Comments (0)

Write a comment

Newest articles

Sea slugs inspire highly stretchable biomedical sensor

USC Viterbi School of Engineering researcher Hangbo Zhao presents findings on highly stretchable and customizable microneedles for application in fields including neuroscience, tissue engineering, and wearable bioelectronics. The revolution in…

Twisting and binding matter waves with photons in a cavity

Precisely measuring the energy states of individual atoms has been a historical challenge for physicists due to atomic recoil. When an atom interacts with a photon, the atom “recoils” in…

Nanotubes, nanoparticles, and antibodies detect tiny amounts of fentanyl

New sensor is six orders of magnitude more sensitive than the next best thing. A research team at Pitt led by Alexander Star, a chemistry professor in the Kenneth P. Dietrich…

Partners & Sponsors