Department of Plant Physiology and Biochemistry, University of Hohenheim, Stuttgart, 70599, Germany.
Core Facility Hohenheim, Mass Spectrometry Unit, University of Hohenheim, Stuttgart, 70599, Germany.
New Phytol. 2021 Nov;232(4):1582-1590. doi: 10.1111/nph.17615. Epub 2021 Aug 19.
The hemiparasitic plant Phtheirospermum japonicum (Phtheirospermum) is a nutritional specialist that supplements its nutrient requirements by parasitizing other plants through haustoria. During parasitism, the Phtheirospermum haustorium transfers hypertrophy-inducing cytokinins (CKs) to the infected host root. The CK biosynthesis genes required for haustorium-derived CKs and the induction of hypertrophy are still unknown. We searched for haustorium-expressed isopentenyltransferases (IPTs) that catalyze the first step of CK biosynthesis, confirmed the specific expression by in vivo imaging of a promoter-reporter, and further analyzed the subcellular localization, the enzymatic function and contribution to inducing hypertrophy by studying CRISPR-Cas9-induced Phtheirospermum mutants. PjIPT1a was expressed in intrusive cells of the haustorium close to the host vasculature. PjIPT1a and its closest homolog PjIPT1b located to the cytosol and showed IPT activity in vitro with differences in substrate specificity. Mutating PjIPT1a abolished parasite-induced CK responses in the host. A homolog of PjIPT1a also was identified in the related weed Striga hermonthica. With PjIPT1a, we identified the IPT enzyme that induces CK responses in Phtheirospermum japonicum-infected Arabidopsis roots. We propose that PjIPT1a exemplifies how parasitism-related functions evolve through gene duplications and neofunctionalization.
半寄生植物鹿蹄草(鹿蹄草)是一种营养专家,通过吸器寄生其他植物来补充其营养需求。在寄生过程中,鹿蹄草吸器将促进肥大的细胞分裂素(CKs)转移到受感染的宿主根中。用于吸器衍生 CKs 和诱导肥大的 CK 生物合成基因仍不清楚。我们搜索了吸器表达的异戊烯基转移酶(IPTs),这些酶催化 CK 生物合成的第一步,通过启动子报告物的体内成像证实了其特异性表达,进一步通过研究 CRISPR-Cas9 诱导的鹿蹄草突变体分析了其亚细胞定位、酶功能和对诱导肥大的贡献。PjIPT1a 在靠近宿主脉管系统的吸器侵入细胞中表达。PjIPT1a 和其最接近的同源物 PjIPT1b 位于细胞质中,在体外具有不同的底物特异性表现出 IPT 活性。突变 PjIPT1a 使寄生虫在宿主中诱导 CK 反应失效。PjIPT1a 的同源物也在相关杂草列当中被鉴定出来。通过 PjIPT1a,我们鉴定了在鹿蹄草感染拟南芥根中诱导 CK 反应的 IPT 酶。我们提出 PjIPT1a 是寄生相关功能通过基因复制和新功能化进化的范例。