Queensland Alliance for Agriculture and Food Innovation, The University of Queensland, Brisbane, QLD, Australia.
Black Mountain Science and Innovation Park, CSIRO Agriculture and Food, Canberra, ACT, Australia.
Essays Biochem. 2022 Sep 30;66(5):571-580. doi: 10.1042/EBC20210096.
Adult-plant resistance (APR) is a type of genetic resistance in cereals that is effective during the later growth stages and can protect plants from a range of disease-causing pathogens. Our understanding of the functions of APR-associated genes stems from the well-studied wheat-rust pathosystem. Genes conferring APR can offer pathogen-specific resistance or multi-pathogen resistance, whereby resistance is activated following a molecular recognition event. The breeding community prefers APR to other types of resistance because it offers broad-spectrum protection that has proven to be more durable. In practice, however, deployment of new cultivars incorporating APR is challenging because there is a lack of well-characterised APRs in elite germplasm and multiple loci must be combined to achieve high levels of resistance. Genebanks provide an excellent source of genetic diversity that can be used to diversify resistance factors, but introgression of novel alleles into elite germplasm is a lengthy and challenging process. To overcome this bottleneck, new tools in breeding for resistance must be integrated to fast-track the discovery, introgression and pyramiding of APR genes. This review highlights recent advances in understanding the functions of APR genes in the well-studied wheat-rust pathosystem, the opportunities to adopt APR genes in other crops and the technology that can speed up the utilisation of new sources of APR in genebank accessions.
成株抗性 (APR) 是谷类作物中的一种遗传抗性,在后期生长阶段有效,可以保护植物免受多种病原体的侵害。我们对 APR 相关基因功能的理解源于研究充分的小麦-锈病病理系统。赋予 APR 的基因可以提供针对病原体的抗性或多病原体抗性,即抗性在分子识别事件发生后被激活。与其他类型的抗性相比,育种界更喜欢 APR,因为它提供广谱保护,且已被证明更持久。然而,在实践中,由于在优秀种质中缺乏特征良好的 APR,并且必须组合多个位点才能达到高水平的抗性,因此,将 APR 纳入新的品种的部署具有挑战性。基因库是遗传多样性的极好来源,可用于多样化抗性因素,但将新的等位基因导入优秀种质是一个漫长而具有挑战性的过程。为了克服这一瓶颈,必须整合新的抗性育种工具,以加速 APR 基因的发现、导入和聚合。本文综述了在研究充分的小麦-锈病病理系统中理解 APR 基因功能的最新进展,以及在其他作物中采用 APR 基因的机会,以及可以加速利用基因库资源中 APR 新来源的技术。