Ji Dehua, Zhang Yichi, Zhang Bao, Xu Yan, Xu Kai, Chen Changsheng, Xie Chaotian
Fisheries College, Jimei University, Xiamen 361021, China.
Fujian Engineering Research Center of Aquatic Breeding and Healthy Aquaculture, Xiamen 361021, China.
Life (Basel). 2023 Feb 9;13(2):481. doi: 10.3390/life13020481.
, one of the most economically and ecologically important seaweed species, is often exposed to persistent or transient low irradiance (LI), resulting in limited yield and quality. However, the mechanisms mediating responses to LI are largely unknown. In this study, LI-tolerant (LIT) and LI-sensitive (LIS) strains were compared regarding their physiological and transcriptomic changes induced by 1 and 4 days of LI (5 μmol photons/m·s). The results indicated that the inhibition of photomorphogenesis and decreases in photosynthesis and photosynthetic carbon fixation as the duration of LI increased are the key reasons for retarded blade growth under LI conditions. A potential self-amplifying loop involving calcium signaling, phosphatidylinositol signaling, reactive oxygen species signaling, and MAPK signaling may be triggered in blades in response to LI stress. These signaling pathways might activate various downstream responses, including improving light energy use, maintaining cell membrane stability, mitigating oxidative damage, to resist LI stress. Additionally, the LIT strain maintained transcriptional homeostasis better than the LIS strain under LI stress. Specifically, photosynthesis and energy production were relatively stable in the LIT strain, which may help to explain why the LIT strain was more tolerant to LI stress than the LIS strain. The findings of this study provide the basis for future investigations on the precise mechanisms underlying the LI stress tolerance of .
作为经济和生态方面最重要的海藻物种之一,常常会受到持续或短暂的低光照(LI)影响,导致产量和品质受限。然而,介导对低光照响应的机制在很大程度上尚不清楚。在本研究中,比较了耐低光照(LIT)和低光照敏感(LIS)品系在1天和4天低光照(5 μmol光子/平方米·秒)处理下所诱导的生理和转录组变化。结果表明,随着低光照持续时间增加,光形态建成受到抑制以及光合作用和光合碳固定下降,是低光照条件下叶片生长受阻的关键原因。响应低光照胁迫,叶片中可能会触发一个涉及钙信号、磷脂酰肌醇信号、活性氧信号和丝裂原活化蛋白激酶(MAPK)信号的潜在自我放大环。这些信号通路可能会激活各种下游反应,包括提高光能利用、维持细胞膜稳定性、减轻氧化损伤,以抵抗低光照胁迫。此外,在低光照胁迫下,耐低光照品系比低光照敏感品系更好地维持了转录稳态。具体而言,耐低光照品系中的光合作用和能量产生相对稳定,这可能有助于解释为什么耐低光照品系比低光照敏感品系对低光照胁迫更具耐受性。本研究结果为未来深入研究该物种耐低光照胁迫的确切机制提供了基础。