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Marschlich, N.

Publications and source records attributed to Marschlich, N..

2 recordsLinked to original sources

The two plant-specific DREAM components FLIC and FLAC repress floral transition in Arabidopsis

The DREAM complex is a key transcriptional regulator especially involved in the control of the cell cycle and development. Here, we characterise two novel plant- specific DREAM components, FLIC and FLAC, which we identified through tandem affinity purification experiments as interactors of conserved core DREAM constituents. We demonstrate that plants lacking both FLIC and FLAC exhibit pleiotropic phenotypes, including stunted growth and reduced fertility. Notably, flic flac double mutants show an early-flowering phenotype, an aspect that we found to be shared with mutants of the core DREAM component LIN37, with which FLIC and FLAC interact in binary protein-protein interaction assays. Performing reverse affinity purification experiments, we detected the JMJ14/NAC050/NAC052 module, known for its involvement in flowering repression, in the interactome of both FLIC and FLAC. Subsequent binary interaction studies then link the JMJ14/NAC050/NAC052 module via LIN37 to the DREAM complex providing a mechanistic framework on how flowering time could be transcriptionally controlled by the DREAM complex. Summary blurbThis study identifies two plant-specific members of the DREAM complex, explores their roles by mutant analysis and protein interaction investigation, and links them and additional DREAM complex components to the regulation of floral transition.

developmental biology↗

Molecular profiling of sponge deflation reveals an ancient relaxant-inflammatory response

A hallmark of animals is the coordination of whole-body movement. Neurons and muscles are central to this, yet coordinated movements also exist in sponges that lack these cell types. Sponges are sessile animals with a complex canal system for filter-feeding. They undergo whole-body movements resembling "contractions" that lead to canal closure and water expulsion. Here, we combine 3D optical coherence microscopy, pharmacology, and functional proteomics to elucidate anatomy, molecular physiology, and control of these movements. We find them driven by the relaxation of actomyosin stress fibers in epithelial canal cells, which leads to whole-body deflation via collapse of the incurrent and expansion of the excurrent system, controlled by an Akt/NO/PKG/A pathway. A concomitant increase in reactive oxygen species and secretion of proteinases and cytokines indicate an inflammation-like state reminiscent of vascular endothelial cells experiencing oscillatory shear stress. This suggests an ancient relaxant-inflammatory response of perturbed fluid-carrying systems in animals. HighlightsO_LISponge deflation is driven by tension release in actomyosin stress fibers of epithelial pinacocytes C_LIO_LIAkt kinase/Nitric oxide/Protein kinase G/A regulate actomyosin relaxation C_LIO_LIAgitation-induced deflation coincides with an inflammatory state C_LIO_LIThe sponge relaxant-inflammatory response is evolutionary related to similar responses in the vertebrate vascular system C_LI

molecular biology↗