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Leipertz, A.

Publications and source records attributed to Leipertz, A..

4 recordsLinked to original sources

MEK inhibition induces AXIN1 loss in colorectal cancer by mTOR associated suppression of protein synthesis

AXIN1 is a central regulatory hub of many oncogenic pathways in colorectal cancer (CRC). As the main scaffold protein and least abundant component of the beta-catenin destruction complex, changes in AXIN1 levels affect Wnt signaling output. We show that targeting the Ras-MAPK pathway by MEK1/2 inhibitors induces AXIN1 loss across a panel of CRC cell lines and patient-derived organoids. GSK3B inhibition similarly reduced AXIN1 levels, yet by distinct mechanisms. MEK1/2 causes a reduction of AXIN1 transcript levels, but neither affects protein stability nor post-translational modifications of AXIN1. In contrast, GSK3B inhibition induces rapid AXIN1 degradation. Prevention of AXIN1 loss by co-treatment with tankyrase inhibitors was much stronger for GSK3B than for MEK1/2 inhibition. Using isogenic CRC cell lines and murine intestinal organoids, we show that APC truncations strongly reduce basal AXIN1 levels, but do not alter dynamics of AXIN1 loss upon MEK1/2 inhibition. Polysome profiling and Ribo-Seq revealed that MEK1/2 inhibition reduces global protein synthesis via an mTOR dependent pathway. This translational repression is sufficient to cause significant AXIN1 loss, as treatment with mTOR inhibitors phenocopies the effect of MEK1/2 inhibitors. Our study demonstrates that AXIN1 protein homeostasis is critically controlled by Ras-MAPK signaling at the level of protein synthesis, and that MEK1/2 inhibitors cause AXIN1 loss by translational repression.

cancer biology↗

Resolving an unconventional non-photochemical quenching signature at the light-to-dark transition

Non-photochemical quenching (NPQ) protects photosynthetic organisms via diverse molecular players contributing at varying timescales. However, in the absence of one of the largest contributors to NPQ, energy-dependent quenching (qE), we observe an unusual but universal phenomenon: a transient increase in quenching in the dark following high light exposure. To mechanistically interrogate this light-to-dark (LtD) NPQ phenotype, we performed chlorophyll fluorescence lifetime snapshot measurements across a diverse array of Arabidopsis mutant backgrounds and chemical treatments. We found that the electrochemical gradient across the thylakoid membrane is essential for this phenomenon. Through analysis of higher-order Arabidopsis mutants, we also found that LtD NPQ is independent of the known forms of photoprotective NPQ, as well as the major and minor light-harvesting complexes (LHCII). Our results point to LtD NPQ as a photoinhibition (qI)-related, reaction center quenching with implications for photoprotection in fluctuating light.

plant biology↗

Taste evolution in an herbivorous drosophilid

Plant secondary metabolites pose a challenge for generalist herbivorous insects because they are not only potentially toxic, they also may trigger aversion. On the contrary, some highly specialized herbivorous insects evolved to use these same compounds as token stimuli for unambiguous determination of their host plants. Two questions that emerge from these observations are how recently derived herbivores evolve to overcome this aversion to plant secondary metabolites and the extent to which they evolve increased attraction to these same compounds. In this study, we addressed these questions by focusing on the evolution of bitter taste preferences in the herbivorous drosophilid Scaptomyza flava, which is phylogenetically nested deep in the paraphyletic Drosophila. We measured behavioral and neural responses of S. flava and a set of non-herbivorous species representing a phylogenetic gradient (S. pallida, S. hsui, and D. melanogaster) towards host- and non-host derived bitter plant compounds. We observed that S. flava evolved a shift in bitter detection, rather than a narrow shift towards glucosinolates, the precursors of mustard-specific defense compounds. In a dye-based consumption assay, S. flava exhibited shifts in aversion toward the non-mustard bitter, plant-produced alkaloids caffeine and lobeline, and reduced aversion towards glucosinolates, whereas the non-herbivorous species each showed strong aversion to all bitter compounds tested. We then examined whether these changes in bitter preferences of S. flava could be explained by changes in sensitivity in the peripheral nervous system and compared electrophysiological responses from the labellar sensilla of S. flava, S. pallida, and D. melanogaster. Using scanning electron microscopy, we also created a map of labellar sensilla in S. flava and S. pallida. We assigned each sensillum to a functional sensilla class based on their morphology and initial response profiles to bitter and sweet compounds. Despite a high degree of conservation in the morphology and spatial placement of sensilla between S. flava and S. pallida, electrophysiological studies revealed that S. flava had reduced sensitivity to glucosinolates to varying degrees. We found this reduction only in I type sensilla. Finally, we speculate on the potential role that evolutionary genetic changes in gustatory receptors between S. pallida and S. flava may play in driving these patterns. Specifically, we hypothesize that the evolution of bitter receptors expressed in I type sensilla may have driven the reduced sensitivity observed in S. flava, and ultimately, its reduced bitter aversion. The S. flava system showcases the importance of reduced aversion to bitter defense compounds in relatively young herbivorous lineages, and how this may be achieved at the molecular and physiological level.

evolutionary biology↗

Multiplexed CRISPR/Cas9 mutagenesis of rice PSBS1 non-coding sequences for transgene-free overexpression

Understanding CRISPR/Cas9s capacity to generate native overexpression (OX) alleles would accelerate agronomic gains achievable by gene editing. To generate OX alleles with increased RNA and protein abundance, we leveraged multiplexed CRISPR/Cas9 mutagenesis of non-coding DNA sequences located upstream of the rice PSBS1 gene. We isolated 120 transgene-free, gene-edited alleles with varying NPQ capacity in vivo --ranging from complete knockout to overexpression, using a high-throughput phenotyping and transgene screening pipeline. Overexpression of OsPSBS1 increased protein abundance 2-3-fold, matching fold changes obtained by transgenesis. Increased PsbS protein abundance enhanced non-photochemical quenching capacity and improved water-use efficiency. Across our resolved genetic variation, we identify the role of 5UTR indels and inversions in driving knockout/knockdown and overexpression phenotypes, respectively. Complex structural variants, such as the 252kb duplication/inversion generated in this study, evidence the potential of CRISPR/Cas9 to facilitate significant genomic changes with negligible off-target transcriptomic perturbations. Our results may inform future gene-editing strategies for hypermorphic alleles and have opened the door to the pursuit of gene-edited, non-transgenic rice plants with accelerated relaxation of photoprotection.

plant biology↗