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Biology subjects

van der Kammen, R.

Publications and source records attributed to van der Kammen, R..

3 recordsLinked to original sources

NAC-mediated ribosome localization regulates cell fate and metabolism in intestinal stem cells

Intestinal stem cells (ISCs) face the challenge of integrating metabolic demands with unique regenerative functions. Studies have shown an intricate interplay between metabolism and stem cell capacity, however it is still not understood how this process is regulated. Combining ribosome profiling and CRISPR screening in intestinal organoids, we show that RNA translation is at the root of this interplay. We identify the nascent polypeptide-associated complex (NAC) as a key mediator of this process, and show that it regulates ISC metabolism by relocalizing ribosomes to the mitochondria. Upon NAC inhibition, intestinal cells show decreased import of mitochondrial proteins, which are needed for oxidative phosphorylation, and, consequently, enable the cell to maintain a stem cell identity. Furthermore, we show that overexpression of NAC is sufficient to drive mitochondrial respiration and promote ISC identity. Ultimately, our results reveal the pivotal role of ribosome localization in regulating mitochondrial metabolism and ISC function. TeaserThe location of ribosomes in cells is regulated, and defines the fate of intestinal stem cells.

molecular biology↗

RNA dicing regulates the expression of an oncogenic JAK1 isoform

mRNA transcripts have limited potential for protein synthesis, defined by their open reading frames1. However, recent advances have revealed a far more complex reality, in which the proteome exceeds the perceived limits of the transcriptome2-6 exposing a significant gap in our understanding. Our prior studies have demonstrated that mRNA can undergo further processing, yielding truncated, uncapped mRNAs with translation potential2,7. Yet, the biological importance of this process remains mostly unclear. Here, we demonstrate that cleavage within the coding sequence of JAK1 mRNA produces an uncapped variant downstream to the cleavage site, at the expense of the full-length transcript. This results in the independent translation of the JH1 kinase domain, a process we term RNA dicing. Notably, canonical and diced JAK1 variants have distinct impacts on cell proliferation and tumorigenesis, operating independently, localizing to distinct cellular compartments. In addition, the activation of JAK1 signaling through IFN{gamma} induction promotes the dicing of JAK1, thereby altering the balance of isoforms present. Base editor screens reveal that stop-codon nonsense mutations, which are typically considered loss-of-function, have differing impacts depending on their position relative to the dicing site. In agreement with this, JAK1 nonsense frameshift (JAK1fs) mutations in endometrial tumors inhibit the tumor-suppressive functions of canonical JAK1, while amplifying the oncogenic potential of the diced JH1 kinase domain. Lastly, we demonstrate that Momelotinib8, a JAK1-specific inhibitor, is more effective in cancer cells carrying a "loss-of-function" JAK1fs mutation, highlighting the significant impact of RNA dicing biology as a potent tool for patient stratification. Our findings characterize RNA dicing as a fundamental regulatory machinery that diversifies the potential products of a single mRNA molecule, and allows for significant variation in biological function.

molecular biology↗

An "alert state" ribosome population acts as a master regulator of cytokine mediated processes

Inflammatory cytokines are pivotal to immune responses. Upon cytokine exposure, cells enter an "alert-state" that enhances their visibility to the immune system. Here, we identified an "alert-state" subpopulation of ribosomes (ASRs) defined by the presence of the P-stalk. We show that ASRs are formed in response to cytokines linked to tumor immunity, and are involved in the preferential translation of mRNAs vital for the cytokine response. Mechanistically, ASRs are required for the efficient translation of transmembrane domains of receptor molecules involved in cytokine-mediated processes. Importantly, loss of the ASR prevents CD8+ T cell recognition and killing, and inhibitory cytokines like TGF{beta} hinder ASR formation, suggesting that the ASR is a central regulatory hub upon which multiple signals converge. Thus, the ASR is an essential mediator of the cellular rewiring that occurs following cytokine exposure, via the translational regulation of this process.

immunology↗