Park Jihwan, Morinaga Kyo, Houki Yuma, Tsushima Ayako, Aoki Koh
Graduate School of Agriculture, Osaka Metropolitan University, 1-1 Gakuen-Cho, Naka-Ku, Sakai, Osaka 599-8531, Japan.
College of Life and Environmental Sciences, Osaka Prefecture University, 1-1 Gakuen-Cho, Naka-Ku, Sakai, Osaka 599-8531, Japan.
Plant Cell Physiol. 2025 Mar 31;66(3):400-410. doi: 10.1093/pcp/pcaf009.
Parasitic plants pose a substantial threat to agriculture as they attack economically important crops. The stem parasitic plant Cuscuta campestris invades the host's stem with a specialized organ referred to as the haustorium, which absorbs nutrients and water from the host. Initiation of the parasitic process in C. campestris requires mechanical stimuli to its stem. However, the mechanisms by which C. campestris perceives mechanical stimuli are largely unknown. Previous studies have shown that mechanosensitive ion channels (MSCs) are involved in the perception of mechanical stimuli. To examine if MSCs are involved in prehaustorium development upon tactile stimuli, we treated C. campestris plants with an MSC inhibitor, GsMTx-4, which resulted in a reduced density of prehaustoria. To identify the specific MSC gene involved in prehaustorium development, we analyzed the known functions and expression patterns of Arabidopsis MSC genes and selected MID1-COMPLEMENTING ACTIVITY 1 (MCA1) as a primary candidate. The MSC activity of CcMCA1 was confirmed by its ability to complement the phenotype of a yeast mid1 mutant. To evaluate the effect of CcMCA1 silencing on prehaustorium development, we performed host-induced gene silencing using Nicotiana tabacum plants that express an artificial microRNA-targeting CcMCA1. In the CcMCA1-silenced C. campestris, the number of prehaustoria per millimeter of stem length decreased, and the interval length between prehaustoria increased. Additionally, the expression levels of known genes involved in prehaustorium development, such as CcLBD25, decreased significantly in the CcMCA1-silenced plants. The results suggest that CcMCA1 is involved in prehaustorium development in C. campestris.
寄生植物对农业构成了重大威胁,因为它们会侵袭具有重要经济价值的作物。茎寄生植物田野菟丝子通过一种被称为吸器的特殊器官侵入宿主茎部,该吸器从宿主那里吸收养分和水分。田野菟丝子寄生过程的启动需要对其茎部施加机械刺激。然而,田野菟丝子感知机械刺激的机制在很大程度上尚不清楚。先前的研究表明,机械敏感离子通道(MSCs)参与了机械刺激的感知。为了研究MSCs是否参与触觉刺激后吸器前体的发育,我们用一种MSCs抑制剂GsMTx - 4处理田野菟丝子植株,结果导致吸器前体的密度降低。为了鉴定参与吸器前体发育的特定MSCs基因,我们分析了拟南芥MSCs基因的已知功能和表达模式,并选择了MID1互补活性1(MCA1)作为主要候选基因。CcMCA1的MSCs活性通过其互补酵母mid1突变体表型的能力得到证实。为了评估CcMCA1沉默对吸器前体发育的影响,我们利用表达靶向CcMCA1的人工微小RNA的烟草植株进行宿主诱导基因沉默。在CcMCA1沉默的田野菟丝子中,每毫米茎长的吸器前体数量减少,吸器前体之间的间隔长度增加。此外,在CcMCA1沉默的植株中,参与吸器前体发育的已知基因(如CcLBD25)的表达水平显著降低。结果表明,CcMCA1参与了田野菟丝子吸器前体的发育。