Gregor Mendel Institute of Molecular Plant Biology, Austrian Academy of Sciences, Dr. Bohr-Gasse 3, 1030 Vienna, Austria.
Nucleic Acids Res. 2012 Jul;40(12):5615-24. doi: 10.1093/nar/gks195. Epub 2012 Feb 29.
Nonsense-mediated RNA decay (NMD) is an evolutionarily conserved RNA quality control mechanism that eliminates transcripts containing nonsense mutations. NMD has also been shown to affect the expression of numerous genes, and inactivation of this pathway is lethal in higher eukaryotes. However, despite relatively detailed knowledge of the molecular basis of NMD, our understanding of its physiological functions is still limited and the underlying causes of lethality are unknown. In this study, we examined the importance of NMD in plants by analyzing an allelic series of Arabidopsis thaliana mutants impaired in the core NMD components SMG7 and UPF1. We found that impaired NMD elicits a pathogen defense response which appears to be proportional to the extent of NMD deficiency. We also demonstrate that developmental aberrations and lethality of the strong smg7 and upf1 alleles are caused by constitutive pathogen response upregulation. Disruption of pathogen signaling suppresses the lethality of the upf1-3 null allele and growth defects associated with SMG7 dysfunction. Interestingly, infertility and abortive meiosis observed in smg7 mutants is not coupled with impaired NMD suggesting a broader function of SMG7 in cellular metabolism. Taken together, our results uncover a major physiological consequence of NMD deficiency in Arabidopsis and revealed multifaceted roles of SMG7 in plant growth and development.
无意义介导的 RNA 衰减(NMD)是一种进化上保守的 RNA 质量控制机制,可消除含有无义突变的转录本。NMD 还被证明会影响许多基因的表达,而该途径的失活在高等真核生物中是致命的。然而,尽管我们对 NMD 的分子基础有相对详细的了解,但我们对其生理功能的理解仍然有限,并且其致死的根本原因尚不清楚。在这项研究中,我们通过分析拟南芥突变体中核心 NMD 成分 SMG7 和 UPF1 的等位系列,研究了 NMD 在植物中的重要性。我们发现,受损的 NMD 会引发一种病原体防御反应,这种反应似乎与 NMD 缺陷的程度成正比。我们还证明,强 smg7 和 upf1 等位基因的发育异常和致死性是由组成性病原体反应的上调引起的。破坏病原体信号通路会抑制 upf1-3 缺失突变体的致死性和与 SMG7 功能障碍相关的生长缺陷。有趣的是,在 smg7 突变体中观察到的不育和异常减数分裂与受损的 NMD 无关,这表明 SMG7 在细胞代谢中具有更广泛的功能。总之,我们的研究结果揭示了 NMD 缺乏在拟南芥中的一个主要生理后果,并揭示了 SMG7 在植物生长和发育中的多方面作用。