Ecosustainable Marine Biotechnology Department, Stazione Zoologica Anton Dohrn, Via Acton, 80133 Naples, Italy.
Research Infrastructure for Marine Biological Resources Department, Stazione Zoologica Anton Dohrn, Villa Comunale, 80121 Naples, Italy.
Mar Drugs. 2024 Jul 29;22(8):351. doi: 10.3390/md22080351.
Climate changes may include variations in salinity concentrations at sea by changing ocean dynamics. These variations may be especially challenging for marine photosynthetic organisms, affecting their growth and distribution. spp. are ubiquitous and are often found in extreme salinity conditions. For this reason, they are considered good model species to study salinity adaptation strategies. In the current study, we used an integrated approach to study the sp. CCMP225 response to salinities of 20‱ and 70‱, by combining physiological, morphological, and transcriptomic analyses, and comparing differentially expressed genes in the exponential and stationary growth phases under the two salinity conditions. The results showed that the strain is able to grow under all tested salinity conditions and maintains a surprisingly high photosynthetic efficiency even under high salinities. However, at the highest salinity condition, the cells lose their flagella. The transcriptomic analysis highlighted the up- or down-regulation of specific gene categories, helping to identify key genes responding to salinity stress. Overall, the findings may be of interest to the marine biology, ecology, and biotechnology communities, to better understand species adaptation mechanisms under possible global change scenarios and the potential activation of enzymes involved in the synthesis of bioactive molecules.
气候变化可能通过改变海洋动力学导致海洋盐度浓度发生变化。这些变化可能对海洋光合生物尤其具有挑战性,影响其生长和分布。 spp. 无处不在,通常在极端盐度条件下发现。出于这个原因,它们被认为是研究盐度适应策略的良好模式生物。在当前的研究中,我们采用了一种综合方法来研究 sp. CCMP225 对 20‱ 和 70‱ 盐度的反应,通过结合生理、形态和转录组分析,并比较在两种盐度条件下指数和稳定生长阶段差异表达的基因。结果表明,该菌株能够在所有测试的盐度条件下生长,并在高盐度下保持惊人的高光合效率。然而,在最高盐度条件下,细胞失去了鞭毛。转录组分析强调了特定基因类别上调或下调,有助于确定响应盐度胁迫的关键基因。总的来说,这些发现可能引起海洋生物学、生态学和生物技术界的兴趣,以更好地了解可能的全球变化情景下物种适应机制以及参与生物活性分子合成的酶的潜在激活。