College of Horticulture, China Agricultural University, Beijing 100193, China.
Plant Cell Physiol. 2020 Apr 1;61(4):699-711. doi: 10.1093/pcp/pcz234.
Iron (Fe) deficiency limits the yield of fruit trees. When subjected to Fe deficiency, H+ secretion increases in the rhizosphere of dicotyledonous plants and pH decreases. This leads to the acidification of the soil and promotes Fe3+ to Fe2+ conversion, which plants can better uptake. This study investigated the relationship between two inhibitory transcription factors (ethylene response factors MbERF4 and MbERF72) and the H+-ATPase gene MbHA2. Two species of apple woody plants were studied: the Fe-inefficient Malus baccata and the Fe-efficient Malus xiaojinensis. Yeast one-hybrid and electrophoretic mobility shift assays showed that both MbERF4 and MbERF72 bind to the GCC cassette (AGCCGCC) of the MbHA2 promoter. Moreover, yeast two-hybrid and bimolecular fluorescence complementation assays showed that MbERF4 interacts with MbERF72. Furthermore, β-glucuronidase and luciferase reporter assays showed that the MbERF4- and MbERF72-induced repression of MbHA2 expression is synergistic. Virus-induced gene silencing of MbERF4 or MbERF72 increased MbHA2 expression, and thus lowered the rhizosphere pH in M. baccata. Consequently, the high expressions of MbERF4 and MbERF72 induced by Fe deficiency contributed to the Fe sensitivity of M. baccata. Moreover, the low expressions of MxERF4 and MxERF72 contributed to the Fe-deficiency tolerance of M. xiaojinensis via different binding conditions to the HA2 promoter. In summary, this study identified the relationship of two inhibitory transcription factors with the H+-ATPase gene and proposed a model in which ERF4 and ERF72 affect the rhizosphere pH in response to Fe deficiency.
缺铁会限制果树的产量。双子叶植物受到缺铁胁迫时,根系分泌质子增加,导致根际 pH 值降低。这会导致土壤酸化,促进三价铁向二价铁的转化,植物可以更好地吸收。本研究探讨了两种抑制性转录因子(乙烯应答因子 MbERF4 和 MbERF72)与 H+-ATPase 基因 MbHA2 之间的关系。研究了两种苹果木本植物:缺铁低效的 Malus baccata 和高效的 Malus xiaojinensis。酵母单杂交和电泳迁移率变动分析表明,MbERF4 和 MbERF72 均与 MbHA2 启动子的 GCC 盒(AGCCGCC)结合。此外,酵母双杂交和双分子荧光互补实验表明,MbERF4 与 MbERF72 相互作用。进一步的β-葡萄糖醛酸酶和荧光素酶报告基因分析表明,MbERF4 和 MbERF72 协同抑制 MbHA2 的表达。MbERF4 或 MbERF72 的病毒诱导基因沉默增加了 MbHA2 的表达,从而降低了 M. baccata 的根际 pH 值。因此,缺铁胁迫下 MbERF4 和 MbERF72 的高表达导致了 M. baccata 的缺铁敏感性。此外,MxERF4 和 MxERF72 的低表达通过与 HA2 启动子的不同结合条件促进了 M. xiaojinensis 的耐缺铁性。综上所述,本研究鉴定了两种抑制性转录因子与 H+-ATPase 基因的关系,并提出了一个模型,即 ERF4 和 ERF72 响应缺铁胁迫影响根际 pH 值。