Department of Plant Biology, Carnegie Institution for Science, Stanford, CA 94305, USA.
Department of Chemistry, Colorado School of Mines, Golden, CO 80401, USA.
Plant Cell. 2023 Jun 26;35(7):2592-2614. doi: 10.1093/plcell/koad095.
Modulation of photoassimilate export from the chloroplast is essential for controlling the distribution of fixed carbon in the cell and maintaining optimum photosynthetic rates. In this study, we identified chloroplast TRIOSE PHOSPHATE/PHOSPHATE TRANSLOCATOR 2 (CreTPT2) and CreTPT3 in the green alga Chlamydomonas (Chlamydomonas reinhardtii), which exhibit similar substrate specificities but whose encoding genes are differentially expressed over the diurnal cycle. We focused mostly on CreTPT3 because of its high level of expression and the severe phenotype exhibited by tpt3 relative to tpt2 mutants. Null mutants for CreTPT3 had a pleiotropic phenotype that affected growth, photosynthetic activities, metabolite profiles, carbon partitioning, and organelle-specific accumulation of H2O2. These analyses demonstrated that CreTPT3 is a dominant conduit on the chloroplast envelope for the transport of photoassimilates. In addition, CreTPT3 can serve as a safety valve that moves excess reductant out of the chloroplast and appears to be essential for preventing cells from experiencing oxidative stress and accumulating reactive oxygen species, even under low/moderate light intensities. Finally, our studies indicate subfunctionalization of the TRIOSE PHOSPHATE/PHOSPHATE TRANSLOCATOR (CreTPT) transporters and suggest that there are differences in managing the export of photoassimilates from the chloroplasts of Chlamydomonas and vascular plants.
从叶绿体中输出光同化产物的调节对于控制细胞中固定碳的分布和维持最佳光合速率至关重要。在这项研究中,我们在绿藻衣藻(Chlamydomonas reinhardtii)中鉴定了叶绿体三磷酸甘油/磷酸转运蛋白 2(CreTPT2)和 CreTPT3,它们表现出相似的底物特异性,但编码基因在昼夜周期中差异表达。我们主要关注 CreTPT3,因为它的表达水平较高,并且相对于 tpt2 突变体,tpt3 表现出严重的表型。CreTPT3 的 null 突变体表现出多种表型,影响生长、光合活性、代谢物谱、碳分配以及 H2O2 在细胞器中的特异性积累。这些分析表明 CreTPT3 是叶绿体被膜上光同化产物运输的主要通道。此外,CreTPT3 可以作为一种安全阀,将过量的还原剂移出叶绿体,并且对于防止细胞经历氧化应激和积累活性氧似乎是必不可少的,即使在低/中等光强度下也是如此。最后,我们的研究表明三磷酸甘油/磷酸转运蛋白(CreTPT)转运蛋白的功能亚化,并表明在管理衣藻和维管束植物叶绿体中光同化产物的输出方面存在差异。