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Biology subjects

Tjokrodirijo, R. T. N.

Publications and source records attributed to Tjokrodirijo, R. T. N..

8 recordsLinked to original sources

Selectivity and dynamics of VAP family tether exchange across membrane contact sites

To integrate diverse cellular function and coordinate homeostasis, the endoplasmic reticulum (ER) communicates with all other intracellular compartments through physical interfaces termed membrane contact sites (MCSs). Given the sheer diversity of possible MCS pairings, how the ER discriminates between simultaneously available binding partners remains unclear. To explore this, we performed comparative endogenous contact site mapping for three closely related VAP family tethers and uncovered a unique set of FFAT motif selectivity and MCS footprints for each: VAPA at mitochondria and TGN, VAPB at mitochondria and peroxisomes, and MOSPD2 at mature endosomes, lysosomes and lipid droplets. In line with their MCS selectivity profiles, co-depletion of VAPA and VAPB, but not MOSPD2, caused systemic breakdown in mitochondrial integrity, while silencing of MOSPD2 alone was sufficient to disrupt the organization and transport of (endo)lysosomes. Unexpectedly, coincident loss of VAPA and VAPB instigated ER contact site rewiring by redirecting endogenous MOSPD2 to the collapsing mitochondrial network. Our findings define hierarchies of ER contact site formation and reveal compensation mechanisms exploited by cells to safeguard organelle homeostasis and crosstalk.

cell biology↗

O-GlcNAcylation and low glycolysis underpin Th2 polarization by dendritic cells

Activation of dendritic cells (DCs) is dependent on rewiring of their cellular metabolism. However, the metabolic requirements for DCs to prime T helper 2 (Th2) responses are still poorly understood. Using unbiased transcriptomics and non-targeted metabolomics we find that helminth antigen-conditioned human DCs suppress glycolysis while increasing hexosamine biosynthesis to fuel protein O-GlcNAcylation. Functionally, glycolytic inhibition of DCs selectively enhanced, while blocking O-GlcNAcylation impaired, Th2-priming capacity. In helminth infection and allergic challenge, Th2 responses were also attenuated in vivo in mice with specific deletion of O-GlcNAc Transferase (OGT) in CD11c-expressing cells. Mechanistically, through proteomic analysis and functional validation, we identified O-GlcNAcylation as a critical negative regulator of immune synapse formation by controlling cytoskeletal organization via Fascin-1 and Zyxin, thereby dampening TCR signalling to promote Th2 polarization. Altogether we reveal a novel metabolic program in DCs that governs Th2 polarization, that could potentially be harnessed to treat type 2 mediated inflammatory diseases.

immunology↗

CRISPR activation screen uncovers MARCKSL1 as a gauge for extracellular vesicle secretion.

Extracellular vesicles (EVs) are crucial mediators of intercellular communication that originate through one of two pathways: outward budding of the plasma membrane (PM) or fusion of mature (late) endosomes with the PM. How cells balance these EV biogenesis routes remains unclear. To address this, we performed a genome-wide CRISPR activation screen for genes that increase cell surface levels of the tetraspanin CD63--an EV marker that shuttles between late endosomes and the PM. This unbiased approach identified a membrane adaptor protein, MARCKSL1, commonly upregulated in diverse tumor types. Follow-up studies, integrating genomic activation/ablation with microscopic and proteomic approaches, revealed that MARCKSL1 potentiates EV secretion from the PM, (in part) at the expense of late endosome--PM fusion. Probing the molecular context of MARCKSL1 function, we implicate PM-bridging cytoskeletal components (e.g., Radixin) and SNARE-associated proteins (e.g., STXBP3) as collaborators of MARCKSL1. Collectively, our findings reveal new mechanistic underpinnings of PM remodeling and position MARCKSL1 as a gauge between different platforms of EV biogenesis.

cell biology↗

Identification of RNF114 as ADPr-Ub reader through non-hydrolysable ubiquitinated ADP-ribose

Crosstalk between the post-translational modification processes ubiquitination and ADP-ribosylation occurs in DNA-damage and immune-responses, in addition the physical linkage of ADP-ribose and ubiquitin is found during bacterial infection. Here, we study the ubiquitination of ADP-ribose mediated by human Deltex E3 ligases and the subsequent fate of the formed hybrid post-translational modification. We prepare a non-hydrolysable ADPr-Ub probe that we employ in a chemoproteomics approach and identify RNF114 as an interacting protein. Using biophysical and biochemical experiments, we validate that RNF114 preferentially interacts with ubiquitinated ADP-ribose over non-modified ubiquitin. Subsequently, RNF114 can elongate the ubiquitinated ADP-ribose with a K11-linked ubiquitin chain. Using domain deletion analysis, we pinpoint the tandem zinc fingers and ubiquitin interacting motif (ZnF2+ZnF3+UIM) domains of RNF114 to be crucial for recognising ubiquitinated ADP-ribose. Moreover, these domains are essential for the recruitment of RNF114 to the sites of laser-induced DNA damage.

molecular biology↗

Huib32: A Potent and Selective USP32 Inhibitor Modulating Endosomal Processes and Advancing Cell-Permeable USP32 Probes

Deubiquitinating enzymes (DUBs) are pivotal regulators of ubiquitination, a vital post-translational modification essential for cellular processes. Dysregulated DUB activity disrupts cellular homeostasis, driving diseases like cancer and neurodegeneration. Ubiquitin-specific protease 32 (USP32) has emerged as a promising therapeutic target due to its role in endosomal and autophagosomal dynamics and its association with breast, ovarian, and lung cancers. Here, we describe Huib32 (Human deUbiquitinase Inhibitor 32) as a USP32 inhibitor. Cyanimide-containing Huib32 potently and selectively inhibits USP32 by covalently binding to the active site Cys743 in vitro and in cells, enhancing substrate ubiquitination, altering endosomal morphology, and mimicking USP32 depletion. Additionally, we present two activity-based probes (ABPs), Huib32*1 and Huib32*2, which enable precise detection of USP32 activity and confirm probe selectivity via mass spectrometry. Together, Huib32 and its probes represent a unique approach for targeting USP32, offering new research tools and potential therapeutic avenues for cancer and disorders involving endocytic trafficking.

biochemistry↗

Vault RNAs aid viral infection by facilitating nuclear export of hnRNP C and ELAVL1

Vault RNAs (vtRNAs) are a family of four small non-coding RNAs (ncRNAs) that are ubiquitously expressed in many eukaryotes and that regulate multiple cellular pathways. Their expression is increased upon infection with various DNA and RNA viruses. This suggests they are either co-opted by the virus to aid replication or function as an antiviral restriction factor. However, their precise molecular function remains unclear. Here, we show that replication of picornaviruses, alphaviruses, and beta-coronaviruses broadly enhances vtRNA expression. We find that genetic loss of vtRNAs inhibits replication of Sindbis virus (SINV) and encephalomyocarditis virus (EMCV), independent of the antiviral type I interferon (IFN) response. A proteomic screen uncovered the vtRNA interactome and revealed that vtRNAs associate with RNA binding proteins ELAVL1 and hnRNP C in uninfected and infected cells. VtRNAs facilitate the translocation of ELAVL1 and hnRNP C from the nucleus to the cytoplasm in infected cells, an event that is required for efficient viral replication. Moreover, hnRNP C and ELAVL1 fail to associate with viral RNA in the cytosol of SINV-infected cells in the absence of vtRNAs. Together, our findings reveal a novel molecular mechanism by which vtRNAs exert proviral activity during the course of SINV and EMCV infection, which opens up new avenues for therapeutic targeting to fight infectious diseases.

molecular biology↗

Development of covalent probes to capture Legionella pneumophila effector enzymes

Upon infection of host cells, Legionella pneumophila releases a multitude of effector enzymes into the cells cytoplasm that hijack a plethora of cellular activities, including the hosts ubiquitination pathways. Effectors belonging to the SidE-family are involved in non-canonical serine phosphoribosyl ubiquitination of host substrate proteins contributing to the formation of a Legionella-containing vacuole that is crucial in the onset of Legionnaires disease. This dynamic process is reversed by effectors called Dups that hydrolyse the phosphodiester in the phosphoribosyl ubiquitinated protein. We installed reactive warheads on chemically prepared ribosylated ubiquitin to generate a set of probes targeting these Legionella enzymes. In vitro tests on recombinant DupA revealed that a vinyl sulfonate warhead was most efficient in covalent complex formation. Mutagenesis and x-ray crystallography approaches were used to identify the site of covalent crosslinking to be an allosteric cysteine residue. The subsequent application of this probe highlights the potential to selectively enrich the Dup enzymes from Legionella-infected cell lysates.

cell biology↗

AMPK activation induces RALDHhigh tolerogenic dendritic cells through rewiring of glucose and lipid metabolism

It is well known that dendritic cell (DC) activation and function are underpinned by profound changes in cellular metabolism. Several studies indicate that the ability of DCs to promote tolerance is dependent on catabolic metabolism. The AMP-activated kinase (AMPK) is a central nutrient and energy sensor whose activation promotes catabolism while inhibiting ATP-consuming anabolic pathways. Yet the contribution of AMPK activation to DC tolerogenicity remains unknown. Here, we show that AMPK activation renders human monocyte-derived DCs tolerogenic as evidenced by an enhanced ability to drive differentiation of regulatory T cells, a process dependent on increased RALDH activity. This is accompanied by a number of distinct metabolic changes, in particular increased breakdown of glycerophospholipids, enhanced mitochondrial fission-dependent fatty acid oxidation, and upregulated glucose catabolism. This metabolic rewiring is functionally important as we found interference with these metabolic processes to reduce to various degrees AMPK-induced RALDH activity as well as the tolerogenic capacity of moDCs. Altogether, our findings reveal a key role for AMPK signaling in shaping DC tolerogenicity, and suggest that AMPK may serve as new target to direct DC-driven immune responses in therapeutic settings.

immunology↗