Centre for Environmental Sciences, Hasselt University, Agoralaan building D, 3590 Diepenbeek, Belgium.
Laboratory of Environmental Chemistry and Environmental Microbiology, Edaphology, Colegio de Postgraduados, Campus Montecillo, Carretera Mexico-Texcoco km 36.5, Montecillo 56230, Mexico.
Int J Mol Sci. 2018 Jan 19;19(1):291. doi: 10.3390/ijms19010291.
Metal contaminated soils are increasing worldwide. Metal-tolerant plants growing on metalliferous soils are fascinating genetic and microbial resources. Seeds can vertically transmit endophytic microorganisms that can assist next generations to cope with environmental stresses, through yet poorly understood mechanisms. The aims of this study were to identify the core seed endophyte microbiome of the pioneer metallophyte throughout three generations, and to better understand the plant colonisation of the seed endophyte sp. Cp3. Strain Cp3 was detected in seeds across three successive generations and showed the most dominant community member. When inoculated in the soil at the time of flowering, strain Cp3 migrated from soil to seeds. Using confocal microscopy, Cp3-mCherry was demonstrated to colonise the root cortex cells and xylem vessels of the stem under metal stress. Moreover, strain Cp3 showed genetic and potential to promote seed germination and seedling development. We revealed, for the first time, that the seed microbiome of a pioneer plant growing in its natural environment, and the colonisation behaviour of an important plant growth promoting systemic seed endophyte. Future characterization of seed microbiota will lead to a better understanding of their functional contribution and the potential use for seed-fortification applications.
金属污染土壤在全球范围内不断增加。在含金属土壤上生长的耐金属植物是令人着迷的遗传和微生物资源。种子可以通过垂直传播内生微生物,通过尚未完全理解的机制,帮助下一代应对环境压力。本研究的目的是鉴定先锋金属植物的核心种子内生微生物组,跨越三代,并更好地了解植物对内生菌的定殖。Cp3 菌株在连续三代的种子中均被检测到,并表现出最主要的群落成员。当在开花时接种到土壤中时,Cp3 菌株从土壤迁移到种子。使用共聚焦显微镜,在金属胁迫下,Cp3-mCherry 被证明可以定植根皮层细胞和茎的木质部导管。此外,Cp3 菌株表现出促进种子萌发和幼苗生长的遗传和潜力。我们首次揭示了在自然环境中生长的先锋植物的种子微生物组,以及重要的植物促生系统种子内生菌的定殖行为。对种子微生物组的进一步研究将有助于更好地理解它们的功能贡献,以及在种子强化应用中的潜在用途。