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Schmidt Kjolner Hansen, S.

Publications and source records attributed to Schmidt Kjolner Hansen, S..

2 recordsLinked to original sources

Beyond the phloem: A general role of the Arabidopsis OCTOPUS gene family in controlling plant growth vigour

OCTOPUS (OPS) and OCTOPUS-LIKE 2 (OPL2), two homologous genes, were previously identified as important regulators of phloem differentiation in Arabidopsis roots, impacting root growth when their function is lost. Here, we investigated the roles of the other three OPS homologs in Arabidopsis, OPL1, OPL3, and OPL4. We employed promoter activity analyses, protein localisation studies, functional complementation assays, analysis of single and multiple mutant combinations, and growth assays, including exposure to CLE45 and brassinosteroid pathway modulators. The OPS/OPL genes exhibit overlapping expression patterns and functions. Multiple mutant combinations revealed a high degree of redundancy, with OPS and the phloem domain playing a major role in controlling plant growth. While phloem phenotypes are not exacerbated in higher-order mutants, plant growth vigour is nevertheless more severely impacted than in ops opl2. Our results suggest a novel role of the OPS/OPL genes in broadly controlling plant growth and development, potentially through the modulation of meristematic activity via brassinosteroid pathways.

plant biology↗

Pulmonary maternal immune activation does not extend through the placenta but leads to fetal metabolic adaptation

Maternal immune system activation (MIA) during pregnancy can disrupt the fetal environment, causing postnatal susceptibility to disorders. How the placenta and the fetus respond to acute MIA over time is unknown. Here, we characterized the response to acute maternal pulmonary inflammation across time in maternal and fetal organs using multi-omics. Unlike maternal organs which mounted strong innate immune responses, the placenta upregulated tissue-integrity genes, likely to prevent fetal exposure to infections, and downregulated growth-associated genes. Subsequently, the placenta upregulated biosynthesis and endoplasmic reticulum stress genes in order to return to homeostasis. These responses likely protected the fetus, since we observed no immune response in fetal liver. Instead, likely due to nutrient depletion, the fetal liver displayed metabolic adaptations, including increases in lipids containing docosahexaenoic acid, crucial for fetal brain development. Our study shows, for the first time, the integrated temporal response to pulmonary MIA across maternal and fetal organs.

genomics↗