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Open access Sep 2026

Growth-Phase-Dependent Shift in GABA Biosynthetic Pathways Under Temperature Stress in Isochrysis zhanjiangensis

Temperature stress is a major constraint on the productivity of microalgae used in aquaculture. γ-Aminobutyric acid (GABA) is well-established as a key player in the stress tolerance of higher plants, yet its role in microalgae remains largely unexplored. Here, we examined the effects of low (15 °C), optimal (25 °C), and high (35 °C) temperatures on the GABA shunt in Isochrysis zhanjiangensis during the initial and mid-exponential growth phases. The results demonstrated that temperature stress significantly inhibited cell growth and photosynthetic efficiency (assessed by Fv/Fm and Fv’/Fm’), with soluble protein decreasing and soluble sugar accumulating. During the initial exponential phase, both low and high temperature stress triggered marked GABA accumulation, accompanied by coordinated increases in glutamate decarboxylase (GAD) and diamine oxidase (DAO) activities. Interestingly, the transcript levels of IzGAD and IzDAO decreased under these conditions, suggesting that GABA accumulation at this stage is predominantly governed by post-translational activation rather than transcriptional upregulation. Upon entry into the mid-exponential phase, a distinct phase-dependent shift in GABA biosynthetic regulation emerged. Under low temperature stress, GAD activity and IzGAD expression were both suppressed, whereas DAO activity and IzDAO transcripts increased significantly, indicating the transition to DAO-mediated GABA production as the dominant route. Under high temperature stress, both GAD and DAO activities increased, yet their corresponding gene transcription remained repressed, revealing a persistent asynchrony between enzyme activities and gene expression across both phases. Meanwhile, the expression of catabolic genes (IzGABA-T, IzSSADH1, and IzSSADH2) was consistently downregulated, further facilitating the net accumulation of GABA. Promoter analysis revealed multiple stress- and hormone-responsive cis-elements in these genes, implying a complex regulatory network. Collectively, our findings uncover a growth-phase-dependent reconfiguration of GABA biosynthetic pathways in I. zhanjiangensis under temperature stress. These insights provide a mechanistic basis for strain-specific temperature management in aquaculture applications.

Jian-Sen Luo, Lin Zhang, Ji-Chang Han et al. · 0 citations
Open access Jul 2026

Nudix Hydrolase as a Target for Regulating High Temperature Tolerance in Marine Diatoms

Diatoms, as a vital component of marine ecosystems, face severe threats to their productivity and species composition due to increasing ocean temperatures. Although the effects of high temperatures on diatom growth and physiology have been thoroughly studied, the regulatory mechanisms in response to high temperature are still poorly understood. In this study, we identified Nudix hydrolases (Nudix) from the marine model diatom Phaeodactylum tricornutum as a key regulator of high temperature tolerance. We discovered that Nudix is a temperature-sensitive gene and its expression is induced by high-temperature. Under high-temperature stress, overexpression of Nudix markedly reduces reactive oxygen species (ROS) production and enhances ROS scavenging capacity, thereby decreasing lipid peroxidation and cell death rate to improve the high-temperature tolerance of P. tricornutum. Conversely, the silencing of Nudix induces excessive ROS production in P. tricornutum and reduces its high-temperature tolerance. Subcellular localization combined with the photosynthetic activity analyses further demonstrated that Nudix, localized in the chloroplast, prevents energetic electron accumulation and excessive reduction in the photosynthetic electron transport chain by increasing the electron transport rate, thereby suppressing ROS production at high-temperature stress. Collectively, our findings highlight the importance of Nudix in high-temperature tolerance of diatoms and provide insights into how marine diatoms acclimate to high temperature.

Ruihao Zhang, Yongliang Liu, Qi An et al. · 0 citations

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