Key Laboratory of Molecular Microbiology and Technology of the Ministry of Education, Department of Microbiology, College of Life Sciences, Nankai University, Tianjin 300071, China.
School of Food and Biology Engineering, Xuzhou University of Technology, Xuzhou 221000, China.
Molecules. 2022 Jan 21;27(3):686. doi: 10.3390/molecules27030686.
Phosphorus in the form of phosphate (Pi) is an essential element for metabolic processes, including lipid metabolism. In yeast, the inositol polyphosphate kinase mediated synthesis of inositol heptakisphosphate (IP) regulates the phosphate-responsive (PHO) signaling pathway, which plays an important role in response to Pi stress. The role of in Pi stress and lipid metabolism of has not yet been studied. We found that when Δ/Δ was grown in glucose medium, if Pi was supplemented in the medium or mitochondrial Pi transporter was overexpressed in the strain, the lipid droplet (LD) content was reduced and membrane damage was alleviated. However, further studies showed that neither the addition of Pi nor the overexpression of the Pi transporter affected the energy balance of Δ/Δ. In addition, the LD content of Δ/Δ grown in Pi limitation medium PNMC was lower than that grown in SC, and the metabolic activity of Δ/Δ grown in PNMC was also lower than that grown in SC medium. This suggests that the increase in Pi demand by a high energy metabolic rate is the cause of LD accumulation in Δ/Δ. In addition, in the Δ/Δ strains, the core transcription factor in the PHO pathway was transported to the vacuole and degraded, which reduced the pathway activity. However, this does not mean that knocking out completely blocks the activation of the PHO pathway, because the LD content of Δ/Δ grown in the medium with β-glycerol phosphate as the Pi source was significantly reduced. In summary, the increased Pi demand and the decreased PHO pathway activity in Δ/Δ ultimately lead to LD accumulation and cell membrane damage.
磷以磷酸盐(Pi)的形式是代谢过程的必需元素,包括脂质代谢。在酵母中,肌醇多磷酸盐激酶介导的肌醇七磷酸(IP)的合成调节磷酸响应(PHO)信号通路,该信号通路在应对 Pi 应激中起着重要作用。 在 Pi 应激和脂质代谢中的作用尚未得到研究。我们发现,当Δ/Δ在葡萄糖培养基中生长时,如果培养基中补充 Pi 或过表达该菌株中的线粒体 Pi 转运蛋白,则脂滴(LD)含量降低,膜损伤减轻。然而,进一步的研究表明,添加 Pi 或过表达 Pi 转运蛋白都不会影响Δ/Δ的能量平衡。此外,Δ/Δ在 Pi 限制培养基 PNMC 中生长的 LD 含量低于在 SC 中生长的 LD 含量,并且在 PNMC 中生长的Δ/Δ的代谢活性也低于在 SC 培养基中生长的 LD 含量。这表明高能量代谢率对 Pi 的需求增加是Δ/Δ中 LD 积累的原因。此外,在Δ/Δ菌株中,PHO 途径的核心转录因子被转运到液泡中并降解,从而降低了途径活性。然而,这并不意味着敲除完全阻断了 PHO 途径的激活,因为以β-甘油磷酸为 Pi 源的培养基中Δ/Δ的 LD 含量显著降低。总之,Δ/Δ中增加的 Pi 需求和降低的 PHO 途径活性最终导致 LD 积累和细胞膜损伤。