State Key Laboratory of Agrobiotechnology, China Agricultural University, Beijing, PR China.
Departments of Bacteriology and Genetics, University of Wisconsin, Madison, WI 53706, USA.
Microbiology (Reading). 2011 Feb;157(Pt 2):313-326. doi: 10.1099/mic.0.044271-0. Epub 2010 Oct 21.
The opportunistic human pathogen Aspergillus fumigatus produces a massive number of asexual spores (conidia) as the primary means of dispersal, survival, genome protection and infection of hosts. In this report, we investigate the functions of two developmental regulators, AfuAbaA and AfuWetA, in A. fumigatus. The AfuabaA gene is predicted to encode an ATTS/TEA DNA-binding domain protein and is activated by AfuBrlA during the middle stage of A. fumigatus asexual development (conidiation). The deletion of AfuabaA results in the formation of aberrant conidiophores exhibiting reiterated cylinder-like terminal cells lacking spores. Furthermore, the absence of AfuabaA causes delayed autolysis and cell death, whereas the overexpression of AfuabaA accelerates these processes, indicating an additional role for AfuAbaA. The AfuwetA gene is sequentially activated by AfuAbaA in the late phase of conidiation. The deletion of AfuwetA causes the formation of defective spore walls and a lack of trehalose biogenesis, leading to a rapid loss of spore viability and reduced tolerance to various stresses. This is the first report to demonstrate that WetA is essential for trehalose biogenesis in conidia. Moreover, the absence of AfuwetA causes delayed germ-tube formation and reduced hyphal branching, suggesting a role of AfuWetA in the early phase of fungal growth. A genetic model depicting the regulation of conidiation in A. fumigatus is proposed.
机会致病真菌烟曲霉产生大量无性孢子(分生孢子),作为传播、生存、基因组保护和宿主感染的主要手段。在本报告中,我们研究了两个发育调节剂,AfuAbaA 和 AfuWetA,在烟曲霉中的功能。AfuabaA 基因预计编码一个 ATTS/TEA DNA 结合域蛋白,并在烟曲霉无性发育(分生孢子形成)的中期被 AfuBrlA 激活。AfuabaA 的缺失导致异常分生孢子梗的形成,表现为缺乏孢子的反复出现的圆柱形末端细胞。此外,AfuabaA 的缺失导致自溶和细胞死亡延迟,而过表达 AfuabaA 则加速了这些过程,表明 AfuabaA 具有额外的作用。AfuwetA 基因在分生孢子形成的晚期依次被 AfuabaA 激活。AfuwetA 的缺失导致孢子壁缺陷和海藻糖生物合成缺乏,导致孢子活力迅速丧失和对各种应激的耐受性降低。这是第一个证明 WetA 对分生孢子中海藻糖生物合成至关重要的报告。此外,AfuwetA 的缺失导致芽管形成延迟和菌丝分支减少,表明 AfuWetA 在真菌生长的早期阶段发挥作用。提出了一个描述烟曲霉分生孢子形成调控的遗传模型。