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Mora-Garcia, M.

Publications and source records attributed to Mora-Garcia, M..

2 recordsLinked to original sources

Transcriptomic Illuminations: How light intensity reshapes the Chlamydomonas reinhardtii cell cycle

The unicellular algae cell cycle can be divided into several phases, including the commitment point (CP), a point-of-no-return where the cell decides to divide, presumably based on reaching a critical cell size. Light plays a crucial role in the fitness of photosynthetic algal cells, affecting both CP timing and the number of daughter cells produced. So far, only few genes involved in CP have been described, and the presumed sizer and its signal(s) remain unidentified. Using synchronized cells and varying light intensities as a proxy, we explored the effects of light intensity in Chlamydomonas reinhardtii and observed both physiological and transcriptional changes occurring before and after CP under low light (LL) (100 {micro}mol m-{superscript 2} s-{superscript 1}) and optimal light (OL) (500 {micro}mol m-{superscript 2} s-{superscript 1}) conditions. Although CP was delayed by approximately 6 hours in LL, resulting in smaller mother cells and fewer daughter cells, the cells divided at the same time in both conditions. Overall, nucleic acid, protein, and energy reserve levels were lower in LL, with almost no starch produced. RNA-seq analysis identified several core genes shared between both conditions, with 201 genes expressed only in pre-CP1, 161 genes specific to post-CP1, and 582 shared across different phases. In LL, RNA-seq analysis showed an increase in differentially expressed genes (DEGs) in pre-CP1 compared to post-CP1, with an emphasis on photosynthesis, RNA metabolism, and organelle production before commitment, and cell division-related pathways (microtubules, DNA recombination) after CP1. In OL, the number of DEGs increased in post-CP1 by approximately 41% compared to pre-CP1, with a strong emphasis on protein production throughout the cell cycle.

cell biology↗

From Light to Acetate: How Trophic Conditions Shape Growth and Cell Cycle Progression in Chlamydomonas reinhardtii

The unicellular green alga Chlamydomonas reinhardtii provides a tractable model for investigating how carbon availability influences metabolic organization and cell-cycle control in photosynthetic eukaryotes. Its capacity for autotrophic (light, CO), mixotrophic (light, CO, acetate), and heterotrophic (acetate, dark) growth enables systematic analysis of trophic-state-dependent regulation. We performed comparative transcriptomic analyses of strain 21gr grown under these three regimes at 30 {degrees}C. Mixotrophy resulted in the highest biomass accumulation and was associated with earlier cell-cycle commitment compared with autotrophy, whereas heterotrophy displayed delayed commitment and reduced growth. Transcriptomic profiling revealed coordinated upregulation of central carbon metabolic pathways under mixotrophy, including photorespiration, glycolysis, the oxidative pentose phosphate pathway, and tricarboxylic acid cycle functions, consistent with enhanced carbon flux and biosynthetic capacity. In contrast, heterotrophy preferentially induced acetate assimilation and glyoxylate cycle genes and was accompanied by elevated expression of cell-cycle regulators, including the CDK-inhibitory kinase WEE1. Together, these findings indicate that trophic mode modulates the coupling between carbon metabolism and cell-cycle progression, with mixotrophy supporting integrated metabolic and proliferative activity, whereas heterotrophy is associated with delayed cell-cycle timing and transcriptional signatures of metabolic adjustment.

plant biology↗