Kollath-Leiß K, Bönniger C, Sardar P, Kempken F
Abteilung Botanische Genetik und Molekularbiologie, Botanisches Institut und Botanischer Garten, Christian-Albrechts-Universität zu Kiel, Kiel, Germany.
Abteilung Botanische Genetik und Molekularbiologie, Botanisches Institut und Botanischer Garten, Christian-Albrechts-Universität zu Kiel, Kiel, Germany
Eukaryot Cell. 2014 Aug;13(8):1051-63. doi: 10.1128/EC.00061-14. Epub 2014 Jun 13.
BEM46 proteins are evolutionarily conserved, but their functions remain elusive. We reported previously that the BEM46 protein in Neurospora crassa is targeted to the endoplasmic reticulum (ER) and is essential for ascospore germination. In the present study, we established a bem46 knockout strain of N. crassa. This Δbem46 mutant exhibited a level of ascospore germination lower than that of the wild type but much higher than those of the previously characterized bem46-overexpressing and RNA interference (RNAi) lines. Reinvestigation of the RNAi transformants revealed two types of alternatively spliced bem46 mRNA; expression of either type led to a loss of ascospore germination. Our results indicated that the phenotype was not due to bem46 mRNA downregulation or loss but was caused by the alternatively spliced mRNAs and the peptides they encoded. Using the N. crassa ortholog of the eisosomal protein PILA from Aspergillus nidulans, we further demonstrated the colocalization of BEM46 with eisosomes. Employing the yeast two-hybrid system, we identified a single interaction partner: anthranilate synthase component II (encoded by trp-1). This interaction was confirmed in vivo by a split-YFP (yellow fluorescent protein) approach. The Δtrp-1 mutant showed reduced ascospore germination and increased indole production, and we used bioinformatic tools to identify a putative auxin biosynthetic pathway. The genes involved exhibited various levels of transcriptional regulation in the different bem46 transformant and mutant strains. We also investigated the indole production of the strains in different developmental stages. Our findings suggested that the regulation of indole biosynthesis genes was influenced by bem46 overexpression. Furthermore, we uncovered evidence of colocalization of BEM46 with the neutral amino acid transporter MTR.
BEM46蛋白在进化上是保守的,但其功能仍不清楚。我们之前报道过,粗糙脉孢菌中的BEM46蛋白定位于内质网(ER),并且对于子囊孢子萌发至关重要。在本研究中,我们构建了粗糙脉孢菌的bem46基因敲除菌株。这个Δbem46突变体表现出的子囊孢子萌发水平低于野生型,但远高于之前鉴定的bem46过表达和RNA干扰(RNAi)株系。对RNAi转化体的重新研究揭示了两种选择性剪接的bem46 mRNA;任何一种类型的表达都会导致子囊孢子萌发丧失。我们的结果表明,该表型不是由于bem46 mRNA下调或缺失,而是由选择性剪接的mRNA及其编码的肽引起的。利用构巢曲霉的胞膜窖蛋白PILA在粗糙脉孢菌中的直系同源物,我们进一步证明了BEM46与胞膜窖共定位。利用酵母双杂交系统,我们鉴定出一个单一的相互作用伴侣:邻氨基苯甲酸合酶组分II(由trp - 1编码)。这种相互作用通过分裂黄色荧光蛋白(split - YFP)方法在体内得到证实。Δtrp - 1突变体显示子囊孢子萌发减少且吲哚产量增加,并且我们使用生物信息学工具鉴定出一条假定的生长素生物合成途径。所涉及的基因在不同的bem46转化体和突变体菌株中表现出不同水平的转录调控。我们还研究了不同发育阶段菌株的吲哚产量。我们的发现表明吲哚生物合成基因的调控受到bem46过表达的影响。此外,我们发现了BEM46与中性氨基酸转运蛋白MTR共定位的证据。