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Ackermann, L.

Publications and source records attributed to Ackermann, L..

2 recordsLinked to original sources

Concerted SUMO-targeted ubiquitin ligase activities of TOPORS and RNF4 are essential for stress management and cell proliferation

Protein SUMOylation provides a principal driving force for cellular stress responses including DNA-protein crosslink (DPC) repair and arsenic-induced PML body degradation. In genome-scale screens, we identified the human E3 ligase TOPORS as a key effector of SUMO-dependent DPC resolution. We demonstrate that TOPORS promotes DPC repair by functioning as a SUMO-targeted ubiquitin ligase (STUbL) for DPCs, combining ubiquitin ligase activity through its RING domain with poly-SUMO chain binding via a cluster of SUMO-interacting motifs, analogous to the STUbL RNF4. Surprisingly, the STUbL activities of TOPORS and RNF4 are both required for SUMO-dependent DPC repair, PML degradation and other stress responses, making overlapping and distinct contributions to ubiquitin chain formation on SUMOylated targets to enable p97/VCP unfoldase recruitment. Combined loss of TOPORS and RNF4 is synthetic lethal even in unstressed cells, leading to defective clearance of SUMOylated proteins from chromatin accompanied by cell cycle arrest and apoptosis. Together, our findings establish TOPORS as a novel STUbL whose concerted action with RNF4 defines a general mechanistic principle in crucial cellular processes governed by direct SUMO-ubiquitin crosstalk. HighlightsO_LIThe RING E3 ligase TOPORS is required for SUMO-dependent DPC repair C_LIO_LITOPORS is a novel SUMO-targeted ubiquitin ligase (STUbL) C_LIO_LITOPORS promotes multiple STUbL-driven processes in conjunction with RNF4 C_LIO_LICombined TOPORS and RNF4 loss is synthetic lethal in human cells C_LI

molecular biology↗

PHR1 and PHL1 mediate rapid high-light responses and acclimation to triose phosphate oversupply

O_LIRapid acclimation towards high light is vital for the prevention of phototoxic stress to plant tissues. Photosynthesis transiently consumes inorganic phosphate (Pi). We therefore asked whether changes in intracellular Pi pools can act as a signal for reprogramming gene expression upon increased light intensity. C_LIO_LIThe function of triose phosphate utilization for intracellular Pi homeostasis was deciphered by investigation of mutants defective in both photoassimilate partitioning and low-Pi signaling. Next, we determined subcellular Pi levels and transcript accumulation upon short-term high light. Physiological consequences were examined by analyses of ATP, carbohydrates, and an untargeted lipid profiling approach. C_LIO_LIThe capacity for triose phosphate utilization clearly affected systemic Pi signaling. High-light treatment caused a rapid depletion specifically of chloroplast Pi levels paralleled by induction of transcripts dependent on PHOSPHATE STARVATION RESPONSE 1 (PHR1) and PHR1-LIKE 1. Among the high-light induced targets of PHR1, SRG3/GDPD1 is involved in phospholipid catabolism. Lipid profiling revealed differences between WT and srg3 mutant plants upon high light, including changes in linolenic acid and photoprotective zeaxanthin. C_LIO_LIWe conclude that photosynthetic activity regulates the low-Pi response machinery in the nucleus to implement high-light acclimation. This facilitates the liberation of cellular P as well as the maintenance of membrane lipid integrity. C_LI

plant biology↗