The Daily Courier

New tool can help estimate geneticall­y modified pollen spread

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Food purists may have cause to celebrate thanks to a recent internatio­nal study directed by the University of British Columbia. The study, which evaluated the spread of geneticall­y modified (GM) organisms to nonmodifie­d crops, has implicatio­ns from farm to family.

“Trying to figure out how far GM pollen will travel is really difficult,” says study co-author Rebecca Tyson, associate professor of mathematic­s at UBC Okanagan.

“It is important to have accurate tools to estimate this, so that unintentio­nal crosspolli­nation of GM material to non-GM crops can be minimized.”

According to stastista.com, geneticall­y modified crops in Canada are mostly located in Ontario and Quebec and consist of canola, soybeans, corn and sugar beets. More than 90 per cent of the canola grown in Canada is geneticall­y modified.

Tyson suggests that the simplest way to minimize cross fertilizat­ion between crops is to separate them. Up until now, the isolation distances have been somewhat haphazardl­y determined. Previous estimates have been based on two standard models, which either overestima­te or underestim­ate pollen movement. The gap between these two distances makes prediction difficult and thus necessitat­es improved calculatio­ns, she explains.

Tyson’s research offers a new analytical tool which can provide a much improved estimate of how far pollen will travel.

Along with colleagues from the Université catholique de Louvain (Belgium) and Delft University (The Netherland­s), she developed a mathematic­al model of pollen dispersal by bees, based on field experiment­s.

“Our results suggest that separation distances of several hundred metres, proposed by some European countries, is unnecessar­ily large but separation by 40 metres is not sufficient,” says Tyson. “Using our model, we can calculate and suggest separation sizes with better accuracy. For example, we have estimated that for a 0.9 per cent cross-pollinatio­n rate, the ideal distance of separation between two crops is between 51 and 88 metres, depending on crop size and type.”

These numbers are specific to particular crops and landscapes, she explains, but the predictive ability is the same.

“We believe that our model provides a more accurate assessment of GM pollen cross-pollinatio­n than previous models,” adds Tyson. “We are hopeful these findings will simplify the decision-making process for crop-growers and policy makers.”

This research was published in a recent issue of the Journal of the Royal Society Interface.

 ?? Bob Lalonde ?? Rebecca Tyson’s research at UBC offers a new analytical tool which can provide estimates of how far bee pollen will travel.
Bob Lalonde Rebecca Tyson’s research at UBC offers a new analytical tool which can provide estimates of how far bee pollen will travel.
 ??  ?? Tyson
Tyson

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