World-leading gene editing researchFriday 23 May 2025
The Crown Research Institute has developed and implemented an advanced gene-editing technique known as CRISPR that lets scientists turn off a specific gene within the pine’s complex genome. This helps them understand what that gene does – which in turn builds understanding of how wood develops. Two sets of trees have been planted, each with a separate gene turned off. This aims to enhance timber quality and improve the process of converting wood into fibre (pulping) and sustainable chemical feedstocks for the bioeconomy. One of these genes is involved in the synthesis of hemicellulose, a renewable biopolymer The other is involved in the development of compression wood, which forms on leaning or bent stems to straighten them up. Compression wood behaves differently from normal wood during timber processing, leading to issues such as warping and reduced strength, as well as making the extraction of fibre and chemicals more difficult. The trees in this trial were initially cultivated in a contained greenhouse, where their wood underwent a comprehensive analysis. This research yielded unique and fundamental insights into the mechanisms of cell wall formation. The trees have subsequently been planted in Scion’s Environment Protection Agency-approved GMO field test containment facility to help scientists better understand how they perform under real-world conditions and to collect sufficient wood for relevant biomechanical experiments. Scion senior scientist Glenn Thorlby says the trees’ growth and development continue to be meticulously monitored. “This research will allow us to produce trees that, with optimised wood properties, will support the export of high-value timber and the biomass needed to replace petrochemicals as New Zealand transitions to a low-emissions sustainable bioeconomy. Additionally, Scion has also developed gene-edited Douglas-fir to create sterile trees that could be planted without the risk of exacerbating New Zealand’s wilding pine issue. These sterile trees would potentially act as a form of biocontrol for future genetically modified trees. “This will enable Douglas-fir to grow normally but not reproduce, helping limit its spread,” Glenn says. “By targeting reproductive genes, we offer a potential solution to New Zealand’s wilding pine problem.” Wilding pines occur when forest species such as Douglas-fir spread beyond planted areas, impacting native ecosystems and landscapes across New Zealand. More >> Source & image credit: Scion | ||
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