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Kober, J.

Publications and source records attributed to Kober, J..

2 recordsLinked to original sources

The structure of a 2-MDa chloroplast RNA polymerase reveals unexpected evolutionary complexity

Transcription in chloroplasts depends on the Plastid-Encoded RNA polymerase (PEP), a bacterial-derived enzyme whose catalytic core remains encoded by the highly reduced genome inherited from the cyanobacterial ancestor. In land plants, PEP has roughly doubled in size, expanding into a [~]1 MDa multisubunit machinery through the acquisition of numerous nuclear-encoded subunits. Based on phylogenetic analyses, this added complexity has been widely attributed to the demands of plant terrestrialization. Contrary to this view, we show that in the unicellular green alga Chlamydomonas reinhardtii, PEP assembles into an even larger [~]2 MDa complex containing twelve previously uncharacterized nuclear-encoded subunits (PEPS1-12), representing an RNA polymerase architecture of unprecedented size. A cryo-EM structure at 2.7 [A] resolution reveals that several of these subunits occupy positions analogous to those in land plant PEP, and that metabolic enzyme folds have been repurposed as structural scaffolds stabilizing the highly expanded plastid-encoded core. Despite this, most of the newly identified PEPS subunits lack detectable sequence or structural similarity to their land plant counterparts. These findings demonstrate that PEP complexity is not a hallmark of land plant evolution and may instead reflect, at least in part, the evolutionary entrenchment of additional subunits around an expanded plastid-encoded core. More broadly, they suggest that essential organellar machines can acquire substantial structural complexity that leaves little trace in sequence-based analyses, a pattern consistent with constructive neutral evolution.

molecular biology↗

A Synergistic Desmin-SPARC Axis Regulates Cardiac Stem Cell Differentiation and Promotes Cardiomyogenesis through Autocrine Regulation

BACKGROUNDThe mammalian heart contains cardiac stem cells throughout life, but it has not been possible to harness or stimulate these cells to repair damaged myocardium in vivo. Assuming physiological relevance of these cells, which have evolved and have been maintained throughout evolution, we are investigating their function using mouse cardiac stem cell lines as an in vitro model system. METHODSHere we use genetically modified embryonic stem cells and cardiac stem cells from the mouse as model systems to study the influence of desmin and Secreted Protein Acidic and Rich in Cysteine (SPARC) on cardiomyogenesis in embryoid bodies and cardiac bodies. We analyze their expression in self-renewing and differentiating stem cells by fluorescence microscopy, RT-qPCR, quantitative Western blotting and fluorescence activated cell sorting, and assess their influence on the expression of myocardial transcription factors. RESULTSIn embryoid bodies, desmin induces expression and secretion of SPARC, which promotes cardiomyogenesis. Cardiac stem cells secrete substantial amounts of SPARC, which also promotes cardiomyogenesis in a concentration-dependent, autocrine manner and promotes expression of myocardial transcription factors and desmin. Desmin and SPARC interact genetically and form a positive feedback loop and secreted SPARC negatively influences sparc mRNA expression. Finally, SPARC rescues cardiomyogenic desmin-haploinsufficiency in cardiac stem cells in a glycosylation-dependent manner, increases the phosphorylation of Smad2 and induces the expression of gata4, nkx2.5 and mef2C. CONCLUSIONSDemonstration that desmin-induced autocrine secretion of SPARC in cardiac stem cells promotes cardiomyogenesis raises the possibility that a physiological function of cardiac stem cells in the adult and aging heart may be the gland-like secretion of factors such as SPARC that modulate age-related and adverse environmental influences and thereby contribute to cardiac homeostasis throughout life.

developmental biology↗