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#gene editing Review

Gene Editing in Forest Tree Breeding for Stress Resistance: From Mechanisms to Future Prospects.

Aug 2026 · Plant, Cell and Environment · 0 citations
Medicine

TL;DR

This review synthesises the fundamental principles and limitations of multiple gene-editing technologies, with a particular emphasis on CRISPR systems (Cas9, Cas12, and Cas13), in the specific context of woody perennial biology, and highlights how synergising CRISPR technologies with multi-omics, genomic selection, and high-throughput phenomics can accelerate the development and application of climate-resilient woody perennials.

Abstract

Forest ecosystems face escalating threats from climate change alongside a surging demand for sustainable bioproducts. While conventional tree breeding is inherently constrained by long generation cycles, high heterozygosity, and complex genomes, CRISPR-based genome editing provides a precision framework for targeted genetic improvement. This review synthesises the fundamental principles and limitations of multiple gene-editing technologies, with a particular emphasis on CRISPR systems (Cas9, Cas12, and Cas13), in the specific context of woody perennial biology. Recent applications in key forest genera, including Populus, Pinus, and Eucalyptus, demonstrate the efficacy of these gene-editing tools in manipulating complex traits, such as rewiring phytohormone signalling networks for drought tolerance or remodelling root system architecture to combat abiotic stress. We critically evaluate persistent translational bottlenecks in forest tree genome editing, with a specific focus on recalcitrant, genotype-dependent regeneration and the multifaceted challenges of long-term field validation. Finally, we highlight how synergising CRISPR technologies with multi-omics, genomic selection, and high-throughput phenomics can accelerate the development and application of climate-resilient woody perennials.

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Emerging applications of CRISPR-Cas9 genome editing in horticultural crop improvement

CRISPR/Cas-based genome editing has emerged as a powerful and precise tool for crop improvement, enabling targeted modification of genes associated with agriculturally important traits. In horticultural crops, CRISPR technologies have accelerated the improvement of disease resistance, abiotic stress tolerance, yield, nutritional quality, shelf life, flowering behavior, and ornamental characteristics. Among available genome-editing platforms, CRISPR/Cas9 is the most widely utilized because of its simplicity, efficiency, and versatility. The technology enables precise genome modification through targeted DNA cleavage followed by endogenous repair mechanisms, facilitating gene knockout, insertion, or sequence alteration. Recent advances in genome editing have significantly expanded its applications in vegetable, fruit, and ornamental crops. Successful modifications targeting genes associated with stress tolerance, fruit ripening, pigment biosynthesis, flowering regulation, and pathogen resistance demonstrate the enormous potential of CRISPR-mediated breeding for horticultural improvement. However, several challenges, including low transformation efficiency, genotype-dependent regeneration, prolonged juvenile phases, polyploidy, and regulatory concerns, continue to limit its broader application in many horticultural species. This review summarizes recent progress in CRISPR/Cas-mediated genome editing in horticultural crops, including strategies for guide RNA design, transformation, regeneration, development of transgene-free plants, and regulatory considerations. Furthermore, emerging advances such as precision editing technologies and improved delivery systems are discussed as promising approaches for enhancing editing efficiency and expanding future applications. Overall, CRISPR/Cas technologies hold substantial potential for accelerating the development of climate-resilient, high-quality, and nutritionally improved horticultural crops.

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