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This work investigated the influence of the CRISPR/Cas9 mediated knockout of 5-lipoxygenase (5-LO) on different adherent tumour cell lines derived from solid tumours. For this, the 5-LO expressing tumour cell lines HCT-116, HT-29, and U-2 OS were transiently transfected using a plasmid carrying the CRISPR/Cas9 complex sequence to the ALOX5 gene. Subsequently, cells were selected using Puromycin and analysed via Western blotting and DNA Sanger sequencing. Cells that were transfected with a control plasmid missing the guide RNA sequence, were used as a control for all experiments.
Differential gene expression analysis, performed after next-generation RNA sequencing, revealed that the expression of various genes was altered after the knockout of 5-LO. In HCT-116 cells, 28 genes were expressed differentially in all 5-LO knockout single-cell clones, while in HT-29 cells the expression of 18 genes and in U-2 OS cells of 234 genes was influenced by the knockout of 5-LO. These findings were validated by real-time qPCR. A lot of the genes that were influenced by the 5-LO knockout are known to be connected to epithelial-mesenchymal-transition (EMT), a process necessary for tumour metastasis. The results from RNA sequencing were the starting point for further investigations. In the following, different aspects of the tumour cell lines were examined. In HT-29, as
well as in U-2 OS cells, it was shown that knockout of the 5-LO resulted in impaired cell proliferation. Also, the formation of three-dimensional tumour spheroids was altered. In HT-29 cells, the knockout of 5-LO increased the number of cells in spheroids. In contrast, in U-2 OS cells, the number of cells per spheroid was decreased, even though the diameter of the spheroids was increased, due to more loosely packed spheroids. The difference between 5-LO positive and negative U-2 OS cells became even more obvious after embedding the spheroids in an artificial extracellular matrix. In that scenario, cells lacking the 5-LO formed smaller spheroids that did not have the same ability to grow into the extracellular matrix as 5-LO positive cells did. Also, directed cell migration was strongly influenced by the knockout of 5-LO. In both, HCT-116 and U-2 OS cells, directed cell migration towards a serum gradient was increased in 5-LO knockout single-cell clones. Pharmacological inhibition of the enzyme was used to investigate, whether canonical or non-canonical functions were responsible for the previously mentioned effects.
Therefore, vector control cells were treated with the 5-LO inhibitors Zileuton and CJ-13610 in different concentrations. Interestingly, only some of the effects mediated by the complete knockout of 5-LO could be reproduced by inhibiting the enzyme, leading to the suggestion, that canonical, as well as non-canonical functions of 5-LO, play a role in these tumour cells.
To conclude, it was shown in this study, that 5-LO affects various cellular functions when expressed in adherent tumour cell lines. These cell line-dependent effects result in altered gene expression, enhanced proliferation, and spheroid formation, as well as impaired cell motility, and can be mediated by enzymatic activity as well as other non-canonical functions.
Inflammation is a regulated reaction of the body to control a threat such as infection or injury. An efficient resolution of inflammation is critical to prevent the development of chronic inflammation and to restore tissue homeostasis. Macrophages (Mf) play a crucial role in the onset, but also in the resolution of inflammation, because they phagocytose and eliminate pathogens and tissue debris. Efficient efferocytosis, i.e. the engulfment of apoptotic cells, represents an important trigger for the onset of the resolution response and contributes to the pro-resolving reprogramming of Mf. Despite the importance of post- transcriptional modes of regulation during the resolution phase and translational control as a key node modulating gene expression in immune cells, relevant translational alterations remain largely elusive.
In the present study, I aimed to identify translationally regulated targets in inflammatory primary murine Mf upon resolution-promoting efferocytosis. To this end, I used total RNA-sequencing as well as de novo proteomics analyses to determine global transcriptional and translational changes. Sequencing data confirmed that efferocytosis induced a pro-resolution signature in inflammatory Mf and pointed towards translational regulation because the related integrated stress response was enriched upon efferocytosis. While changes of gene expression between efferocytic and non-efferocytic Mf appeared rather small at the transcriptional level, I observed considerable differences at the level of de novo synthesized proteins. This finding suggests a regulation at the level of translation. Furthermore, the tight connection between translational and metabolic changes was confirmed by enriched metabolism-associated terms of targets upregulated by efferocytosis at both RNA and de novo protein level. Interestingly, analysis of translationally regulated targets in response to inflammatory stimulation showed reduced translation for most targets, with only little impact of efferocytosis. Among those targets, I identified pro-resolving matrix metallopeptidase 12 (Mmp12) as a novel candidate, which showed translational repression during early inflammation and translational increase during the resolution phase. Noteworthy, a first indicator for a potential translation regulatory component of Mmp12 were the extremely high mRNA levels and not overly high de novo protein levels. Validation experiments recapitulated a slight elevation of Mmp12 mRNA expression and a significant downregulation of MMP12 intracellular protein levels in inflammatory Mf, as observed in the RNA-seq and de novo proteomics datasets. To investigate whether the discrepancy in mRNA and protein expression were due to changes in translation, I applied polysomal fractionation analysis to determine the translational status of Mmp12. Inflammatory Mf displayed a significantly lower relative Mmp12 mRNA abundance in the late polysomes compared to naïve Mf, suggesting reduced translational efficiency upon inflammatory stimulation. Consequently, extracellular MMP12 levels in the supernatant of inflammatory Mf decreased, although with a slight delay.
The functional impact of attenuated Mmp12 translation upon inflammatory stimulation was assessed in migration assays. While siRNA-mediated knockdown of Mmp12 did not alter Mf migration on uncoated plates, it increased migration 3-fold on matrigel/elastin-coated plates. Importantly, the increase in migrated distance driven by siMmp12 could be lowered by the addition of exogenous recombinant MMP12 protein. In line with reduced Mmp12 translation and MMP12 protein in inflammatory Mf, I observed a significant increase in cell migration on matrigel/elastin-coated plates, while it remained unaltered on uncoated plates. Consequently, Mf elastase MMP12 degrades elastin, thereby cell migration along elastin fibers is diminished. In inflammatory Mf, Mmp12 is translationally downregulated, thereby enhancing the migratory capacity.
In summary, the present study identifies a substantial contribution of translational regulation in the course of inflammation shown by high changes between inflammatory naïve and efferocytic Mf at the de novo proteomic level. Specifically, I was able to determine the translational regulation of pro-resolving Mmp12, which is repressed during early inflammation and recovers during the resolution phase. Functionally, translational control of MMP12 emerged as a strategy to alter the migratory properties of Mf, enabling enhanced, matrix- dependent migration of Mf during the early inflammatory phase, while restricting migration during the resolution phase.