Michigan State University-United States Department of Energy Plant Research Laboratory, Michigan State University, East Lansing, Michigan 48824.
Great Lakes Bioenergy Center, Michigan State University, East Lansing, Michigan 48824.
Plant Physiol. 2020 Feb;182(2):819-839. doi: 10.1104/pp.19.00854. Epub 2019 Nov 18.
The marine microalgae (CCMP1779) is a prolific producer of oil and is considered a viable and sustainable resource for biofuel feedstocks. Nitrogen (N) availability has a strong impact on the physiological status and metabolism of microalgal cells, but the exact nature of this response is poorly understood. To fill this gap we performed transcriptomic profiling combined with cellular and molecular analyses of CCMP1779 during the transition from quiescence to autotrophy. N deprivation-induced quiescence was accompanied by a strong reorganization of the photosynthetic apparatus and changes in the lipid homeostasis, leading to accumulation of triacylglycerol. Cell cycle activation and re-establishment of photosynthetic activity observed in response to resupply of the growth medium with N were accompanied by a rapid degradation of triacylglycerol stored in lipid droplets (LDs). Besides observing LD translocation into vacuoles, we also provide evidence for direct interaction between the LD surface protein (LDSP) and AUTOPHAGY-RELATED8 (ATG8) protein and show a role of microlipophagy in LD turnover in CCMP1779. This knowledge is crucial not only for understanding the fundamental mechanisms controlling the cellular energy homeostasis in microalgal cells but also for development of efficient strategies to achieve higher algal biomass and better microalgal lipid productivity.
海洋微藻 (CCMP1779) 是一种高产油的生物,被认为是生物燃料原料的可行和可持续资源。氮 (N) 的可利用性对微藻细胞的生理状态和代谢有很强的影响,但这种反应的确切性质还不清楚。为了填补这一空白,我们对 CCMP1779 在从静止到自养的过渡过程中进行了转录组谱分析,并结合细胞和分子分析。氮饥饿诱导的静止伴随着光合作用装置的强烈重组和脂质动态平衡的变化,导致三酰基甘油的积累。在生长培养基中补充氮时观察到的细胞周期激活和光合作用的重新建立,伴随着储存在脂滴 (LDs) 中的三酰基甘油的快速降解。除了观察到 LD 向液泡的易位外,我们还提供了 LD 表面蛋白 (LDSP) 和自噬相关 8 (ATG8) 蛋白之间直接相互作用的证据,并表明在 CCMP1779 中,微噬脂作用在 LD 周转中起作用。这些知识不仅对理解控制微藻细胞细胞能量动态平衡的基本机制至关重要,而且对开发提高藻类生物量和更好的微藻脂质生产力的有效策略也至关重要。