The EMBO Journal
○ Springer Science and Business Media LLC
All preprints, ranked by how well they match The EMBO Journal's content profile, based on 309 papers previously published here. The average preprint has a 0.21% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Henninger, E. E.; Jolivet, P.; Fallet, E.; Benmounah, M.; Xu, Z.; Mattarocci, S.; Teixeira, M. T.
Show abstract
Withdrawal StatementThe authors have withdrawn their manuscript because, upon reanalyzing the primary data it appears that the methods used by one of the authors, S.M., might have compromised the reliability of the data presented in Figure 1. We sincerely apologize for any harm or confusion this may cause to BioRxiv and its users.
Zdzalik-Bielecka, D.; Poswiata, A.; Kozik, K.; Jastrzebski, K.; Schink, K. O.; Brewinska-Olchowik, M.; Piwocka, K.; Stenmark, H.; Miaczynska, M.
Show abstract
AXL, a member of the TAM (TYRO3, AXL, MER) receptor tyrosine kinase family, and its ligand GAS6 are implicated in oncogenesis and metastasis of many cancer types. However, the exact cellular processes activated by GAS6-AXL remain largely unexplored. Here, we identified an interactome of AXL and revealed its associations with proteins regulating actin dynamics. Consistently, GAS6-mediated AXL activation triggered actin remodeling manifested by peripheral membrane ruffling and circular dorsal ruffles (CDRs). This further promoted macropinocytosis that mediated the internalization of GAS6-AXL complexes and sustained survival of glioblastoma cells grown under glutamine-deprived conditions. GAS6-induced CDRs contributed to focal adhesion (FA) turnover, cell spreading and elongation. Consequently, AXL activation by GAS6 drove invasion of cancer cells in a spheroid model. All these processes required the kinase activity of AXL but not TYRO3, and downstream activation of PI3K. We propose that GAS6-AXL signaling induces multiple actin-driven cytoskeletal rearrangements and macropinocytosis that jointly contribute to cancer cell invasion.
Dasgupta, P.; Kelsall, I. R.; Anand, G.; Perez-Rafols, A.; Knebel, A.; Gourlay, R.; Masson, G. R.; Kulathu, Y.
Show abstract
VCP/p97 is an AAA+ ATPase that, together with its cofactors UFD1-NPL4 (p97-UN), binds and unfolds ubiquitylated substrates to maintain cellular homeostasis. The human p97-UN complex associates with additional cofactors, but how these cofactors modulate p97-UN activity is not fully understood. Here, we screen for cofactors that enhance p97-UN activity and identify FAF2 as the strongest activator. Using biochemical and structural approaches, we show how FAF2 engages p97-UN and polyubiquitin to promote unfolding. We define a conserved activation motif in FAF2 that contacts both UFD1 and the ubiquitin proximal to the initiator, stabilizing and initiating unfolding in a UFD1-dependent manner. We leverage the features of FAF2 AM to engineer de novo proteins that potently enhance unfolding, providing a rational strategy to boost p97 activity. Our findings reveal how cofactors can provide additional adaptive control, fine-tuning human p97 activity to unfold challenging substrates and those modified with short ubiquitin chains.
Vlachova, S.; Iovine, L.; Marano, V.; Polishchuk, E.; Cillo, M.; Donnici, L.; Machado, P.; Swuec, P.; Settembre, C.; Grumati, P.; De Francesco, R.; Herhaus, L.; Cortese, M.
Show abstract
Coronaviruses hijack host membranes to assemble ER-derived double-membrane vesicles (DMVs) that shield viral RNA replication from the cell intrinsic surveillance. Although DMVs morphologically resemble autophagosomes, whether and how autophagy factors actively support their biogenesis has remained elusive. Here, we identify a non-canonical requirement for the autophagy protein LC3C in {beta}-coronavirus replication. Loss of LC3s impaired viral RNA replication, whereas genetic ablation of ATG7 did not, indicating that canonical ATG7-dependent lipidation is dispensable in this context. Reconstitution experiments showed that only LC3C substantially restored replication in LC3-deficient cells and that LC3C phospho-mutants, differing in accessibility to ATG4-mediated processing, displayed distinct proviral activities. Additionally, ATG4D, the main protease responsible for maintaining the LC3 non-lipidated pool, is selectively required for viral replication. Both ATG4D and LC3s depletion triggers formation of aberrant DMV-like structures and potently suppresses SARS-CoV-2 replication. Ultrastructural analysis of nsp3-nsp4-induced membranes showed that depletion of LC3s or ATG4 proteases altered DMV abundance and morphology, supporting a role for the LC3C-ATG4D axis in replication organelle biogenesis. These data establish that {beta}-coronaviruses repurpose ATG4D-driven LC3C de-lipidation for non-canonical LC3 recruitment to replication organelles, identifying the lipidation state of LC3 as a molecular determinant of replication organelle biogenesis and efficient viral replication. HighlightsThe manuscript shows that {beta}-coronavirus replication depends on LC3 proteins and particularly on LC3C in reconstitution experiments, that this dependency is independent of ATG7-mediated lipidation, and that ATG4D promotes efficient replication and replication organelle morphology. Together, the data support a model in which a non-canonical LC3C-ATG4D pathway contributes to DMV biogenesis and viral RNA replication.
Haenel, A.; Leyrer, J.; Stucki, M.
Show abstract
The repair of DNA double-strand breaks in repetitive sequences is challenging because the abundance of potential templates for homology-directed repair (HDR) exacerbates the risk of ectopic recombination and chromosome rearrangements. Relocalization of repair sites in repetitive sequences to a safe location prior to RAD51 loading has been observed in various organisms and is thought to suppress ectopic recombination and chromosomal rearrangements. We characterized this phenomenon in the rDNA repeats that reside within the nucleoli, specialized nuclear compartments where ribosome biosynthesis takes place. DSB induction in the rDNA repeats is associated with large-scale mobilization of the broken rDNA repeats from inside of the nucleoli to the nucleolar periphery where they are repaired by HDR. Here, we show that the two adaptor proteins Treacle and MDC1 are coordinating the sequence of events that ensue in response to rDNA break induction. Recruitment of the HDR machinery to rDNA breaks is dependent on the nucleolar adaptor Treacle, and specifically on its role in rDNA mobilization upon break induction. We demonstrate that following mobilization of the rDNA repeats and subsequent establishment of the {gamma}H2AX chromatin domain in the nucleolar periphery, the MDC1-RNF8-RNF168 axis is mediating the recruitment of the BRCA1-PALB2-BRCA2 complex and RAD51 loading. This coordinated sequence of events thus ensures that RAD51 loading is coupled to rDNA break mobilization to the nucleolar periphery, which may prevent ectopic recombination between repeats.
Davis, C.; Spaller, B. L.; Choi, E.; Kurrasch, J. B.; Chong, H.; Elsasser, S.; Finley, D.; Matouschek, A.
Show abstract
Proteins are typically targeted to the proteasome for degradation through the attachment of ubiquitin chains and the proteasome initiates degradation at a disordered region within the target protein. Yet some proteins with ubiquitin chains and disordered regions escape degradation. Here we investigate how the position of the ubiquitin chain on the target protein relative to the disordered region modulates degradation and show that the distance between the two determines whether a protein is degraded efficiently. This distance depends on the type of the degradation tag and is likely a result of the separation on the proteasome between the receptor that binds the tag and the site that engages the disordered region.
Tsaridou, S.; Velimezi, G.; Willenbrock, F.; Chatzifrangkeskou, M.; Panagopoulos, A.; Karamitros, D.; Gorgoulis, V. G.; Lygerou, Z.; O'Neill, E.; Pefani, D.-E.
Show abstract
DNA lesions occur across the genome and constitute a threat to cell viability; however, damage at specific genomic loci has a disproportionally greater impact on the overall genome stability. The ribosomal RNA gene repeats (rDNA) are emerging fragile sites due to repetitive nature, clustering and high transcriptional activity. Notably, recent progress in understanding how the rDNA damage response is organized has highlighted the key role of adaptor proteins in the response. Here we identify that the scaffold and tumor suppressor, RASSF1A is recruited at sites of damage and particularly enriched at rDNA breaks. Employing targeted nucleolar DNA damage, we find that RASSF1A recruitment requires ATM activity and depends on the 53BP1. At sites of damage RASSF1A facilitates local ATM signal establishment and rDNA break repair. RASSF1A silencing, a common epigenetic event during malignant transformation, results in persistent breaks, rDNA copy number alterations and decreased cell viability. Moreover, meta-analysis of a lung adenocarcinoma cohort showed that epigenetic silencing of the scaffold leads in rDNA copy number discrepancies. Overall, we present evidence that RASSF1A acts as a DNA repair factor and offer mechanistic insight in how the nucleolar DNA damage response is organized.
Iadevaia, V.; Burke, J. M.; Eke, L.; Moller-Levet, C.; Parker, R. R.; Locker, N.
Show abstract
To rapidly respond and adapt to stresses, such as viral infections, cells have evolved several mechanisms, which include the activation of stress response pathways and the innate immune response. These stress responses result in the rapid inhibition of translation and condensation of stalled mRNAs, together with RNA-binding proteins and signalling components, into cytoplasmic biocondensates called stress granules. Increasing evidence suggests that stress granules contribute to antiviral defense and thus viruses need to evade these response pathways to propagate. In addition, the stress granule pathway is proposed to be dynamic and adaptable to specific stresses. We previously showed that Feline Calicivirus (FCV) impairs SGs assembly by cleaving the scaffolding protein G3BP1. We also observed that uninfected bystander cells assembled G3BP1-granules, suggesting a paracrine response trigged by the infection. We now present evidence that virus-free supernatant generated from infected cells can induce the formation of paracrine granules. They are different from canonical stress granules and exhibit specific kinetics of assembly-disassembly, protein and RNA composition and are linked to antiviral activity. We propose that this paracrine induction reflects a novel cellular defence mechanism to limit viral propagation and promote stress responses in bystander cells. Summary statementWe describe a novel type of paracrine induced RNA granules associated with viruses, highlighting how different stresses results in heterogeneous stress granule-like condensates with specific cellular functions.
Koller, T. O.; Morici, M.; Berger, M.; Safdari, H.; Lele, D. S.; Beckert, B.; Kaur, K. J.; Wilson, D. N.
Show abstract
The proline-rich antimicrobial peptide (PrAMP) drosocin is produced by Drosophila species to combat bacterial infection. Unlike many PrAMPs, drosocin is O-glycosylated at threonine 11, a post-translation modification that enhances its antimicrobial activity. Here we demonstrate that the O-glycosylation influences not only cellular uptake of the peptide, but also interacts with its intracellular target, the ribosome. Cryo-electron microscopy structures of glycosylated drosocin on the ribosome at 2.1-2.8 [A] resolution reveal that the peptide interferes with translation termination by binding within the polypeptide exit tunnel and trapping RF1 on the ribosome, reminiscent of that reported for the PrAMP apidaecin. The glycosylation of drosocin enables multiple interactions with U2609 of the 23S rRNA, leading to conformational changes that break the canonical base-pair with A752. Collectively, our study provides novel molecular insights into the interaction of O-glycosylated drosocin with the ribosome, which provides a structural basis for future development of this class of antimicrobials.
Liu, J.; Nagy, N.; Aguilar-Alonso, F.; Esteves, F.; Ayala-Torres, C.; Xu, S.; Masucci, M. G.
Show abstract
The strategies adopted by viruses to reprogram the protein translation and quality control machineries to promote infection are poorly understood. Here, we discovered that the viral ubiquitin deconjugase (vDUB) encoded in the large tegument protein of Epstein- Barr virus (EBV) regulates ribosomal stress responses. The vDUB participates in protein complexes that include the ubiquitin ligases ZNF598 and LTN1 and the UFM1 ligase UFL1. Upon ribosomal stalling, the vDUB counteracts the ubiquitination of 40S ribosome subunits, inhibits the degradation of translation-stalled polypeptides by the proteasome, and prevents UFMylation of the 60S particle, which impairs the ER-phagy- dependent clearance of stalled products. Inhibition of the ribosome quality control activates a GCN2-dependent integrated stress response that decreases global protein translation while promoting the readthrough of stall-inducing mRNAs. The vDUB enhances viral mRNAs translation and virus release during productive infection, pointing to a pivotal role in cell reprogramming that enables virus production and underlies the pathogenesis of EBV-associated cancers and autoimmune diseases. GRAPHIC SUMMARY O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=151 SRC="FIGDIR/small/526464v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@1c7421dorg.highwire.dtl.DTLVardef@c59b8dorg.highwire.dtl.DTLVardef@1676b4eorg.highwire.dtl.DTLVardef@b5e111_HPS_FORMAT_FIGEXP M_FIG C_FIG
Radhakrishnan, R. M.; Stokes, L.; Day, M.; Huis in 't Veld, P. J.; Volkov, V. A.
Show abstract
During mitosis, properly aligned chromosomes stabilise microtubule ends with the help of kinetochores to ensure timely segregation of chromosomes. Microtubule-binding components of the human outer kinetochore, such as Ndc80 and Ska complexes, are present in multiple copies and together bind several microtubule ends, creating a highly multivalent binding interface. Whereas Ndc80:Ndc80 and Ndc80:microtubule binding is crucial for interface stability, Ndc80 alone in absence of Ska is unable to support stable kinetochore-attachments. Using cryoET, we demonstrate that oligomeric Ndc80:Ska assemblies stabilise microtubule ends against shortening by strengthening lateral contacts between tubulin protofilaments at microtubule plus-ends. We further identify a point mutation within the SKA1 microtubule-binding domain that does not affect microtubule-binding of individual Ska molecules, but does abolish Ska:Ska interactions. Finally, we report that oligomerisation of Ska, in a cooperative fashion together with the Ndc80, is necessary to maintain stable microtubule attachments both in vivo and in vitro.
Gabiatti, B. P.; Krenzer, J.; Braune, S.; Krüger, T.; Zoltner, M.; Kramer, S.
Show abstract
Nuclear export of mRNAs requires loading the mRNP to the transporter Mex67/Mtr2 in the nucleoplasm, controlled access to the pore by the basket-localized TREX2 complex and mRNA release at the cytoplasmic site by the DEAD-box RNA helicase Dbp5. Asymmetric localisation of nucleoporins (NUPs) and transport components as well as the ATP dependency of Dbp5 ensure unidirectionality of transport. Trypanosomes possess homologues of the mRNA transporter Mex67/Mtr2, but not of TREX2 or Dbp5. Instead, nuclear export is likely fuelled by the GTP/GDP gradient created by the Ran GTPase. However, it remains unclear, how directionality is achieved since the current model of the trypanosomatid pore is mostly symmetric. We have revisited the architecture of the trypanosome nuclear pore complex using a novel combination of expansion microscopy, proximity labelling and streptavidin imaging. We could confidently assign the NUP76 complex, a known Mex67 interaction platform, to the cytoplasmic site of the pore. The resulting availability of reference proteins for basket, inner ring and cytoplasmic site allowed mapping of all 75 trypanosome proteins with known nuclear pore localisation to a sub-region of the pore based on mass spectrometry data from proximity labelling. This approach defined many further asymmetrically localised nuclear pore components. At the nuclear site, we identified several trypanosome-unique proteins, for instance the FG-NUPs NUP64/NUP98, but also proteins with structural homology to TREX-2 components. We mapped the components of the Ran-based nuclear export system and confirm the absence of a Dbp5 homologue. Lastly, we demonstrate, by deploying an auxin degron system, that NUP76 holds an essential role in mRNA export consistent with a functional orthology to NUP82/88. Altogether, the combination of proximity labelling with expansion microscopy revealed an asymmetric architecture of the trypanosome nuclear pore supporting inherent roles fort directed transport. Our approach delivered novel nuclear pore associated components inclusive positional information, which can now be interrogated for functional roles to explore trypanosome specific adaptions of the nuclear basket, export control and mRNP remodelling.
Seefelder, M.; Klein, F. A. C.; Calzia, E.; Muqaku, B.; Oeckl, P.; Kochanek, S.
Show abstract
Huntingtin-associated protein 40 (HAP40) is an obligate structural subunit of huntingtin (HTT) and is rapidly degraded when unbound, yet has been conserved across eukaryotes for over a billion years. Combining interactomics, quantitative respirometry, and transcriptomics, we show that the HTT-HAP40 complex functions as a bidirectional stoichiometric rheostat: unbuffered apo-HAP40 activates the Integrated Stress Response via ATF4 and DDIT3/CHOP, whereas unbuffered apo-HTT reciprocally drives cholesterol and fatty-acid biosynthesis through SREBF1/2. We identify the ER-mitochondria tether RMDN3 (PTPIP51) as a key HAP40 interactor, placing mitochondria-associated ER membranes (MAMs) at the rheostats convergence point, and demonstrate that HAP40 depletion specifically impairs respiratory complexes II/IV. Loss of rheostat balance reproduces transcriptional signatures of Huntingtons disease patient tissues, supporting a "dual failure" model in which collapse of stoichiometric buffering -- rather than aggregation toxicity alone -- drives pathogenesis. To our knowledge, this is the first obligate complex in which both unbound partners carry out distinct essential functions, defining stoichiometric buffering as a generalizable regulatory principle that couples complex assembly to metabolic and stress-response control across eukaryotes.
Huntington, B.; Sandholu, A.; Wang, J.; Zhang, J.; Zhao, L.; Qureshi, B. M.; Shahul Hameed, U. F.; Arold, S. T.
Show abstract
Targeted protein degradation through the CDC48 unfoldase enables the maintenance and rapid adaptation of proteomes across eukaryotes. However, the profound differences between animals, fungi, and plants are expected to have led to a significant adaptation of the CDC48-mediated degradation. While animal and fungal CDC48 systems have shown structural and functional preservation, such analysis is lacking for plants. We determined the structural and functional characteristics of Arabidopsis thaliana CDC48A in various states and bound to the target-identifying cofactors UFD1 and NPL4. Our analysis reveals several features that distinguish AtCDC48 from its animal and yeast counterparts, despite an 80% sequence identity. Key features are that AtCDC48A displays distinct domain dynamics and interacts differently with AtNPL4. Moreover, AtNPL4 and AtUFD1 do not form an obligate heterodimer, but independently bind to AtCDC48A and mediate target degradation; however, their joint action is synergistic. An evolutionary analysis supports that these Arabidopsis features are conserved across plants and represent the ancestral state of eukaryotic CDC48 systems. Jointly, our findings support that plant CDC48 retains a greater modular and combinatorial cofactor usage, highlighting a specific adaptation of targeted protein degradation in plants.
Pajonk, O.; Albert, L.; Schafer, J. A.; de Jager, L.; Martin de Hijas, C.; Papagiannidis, D.; Odehnalova, K.; Friemel, N.; Esch, B. M.; Frohlich, F.; Luzarowski, M.; Borner, G.; Forster, F.; Schuck, S.
Show abstract
ESCRT proteins remodel membranes at many cell organelles, including the endoplasmic reticulum (ER). Here, we investigate whether ESCRTs in budding yeast participate in stress-induced ER reorganisation. We find that ER stress triggers the formation of tubular ER subdomains that recruit various ESCRT proteins. Recruitment of the major ESCRT-III protein Snf7 is mediated by the ESCRT-associated protein Bro1, a homologue of human ALIX, in a manner that is mechanistically distinct from Bro1 function at endosomes. ESCRT-containing ER subdomains are derived from ceramide-rich ER exit sites and form contacts with the Golgi. Furthermore, Bro1 helps to concentrate the tethering and lipid transfer protein Tcb3, a homologue of human extended synaptotagmins, at these organelle contacts and contributes to cellular fitness when lipid metabolism is perturbed. These results indicate that specialised ER exit sites can be repurposed for contacting the Golgi directly and uncover ESCRTs as organisers of stress-inducible ER-Golgi contacts that help maintain cell homeostasis.
Conin, B.; Billault-Chaumartin, I.; El Sayyed, H.; Cockram, C.; Koszul, R.; Espeli, O.
Show abstract
In bacteria, chromosome segregation occurs progressively, from the origin to the terminus, a few minutes after the replication of each locus. In-between replication and segregation, sister loci are maintained in an apparent cohesive state by topological links. Whereas topoisomerase IV (Topo IV), the main bacteria decatenase, controls segregation, little is known regarding the influence of the cohesion step on chromosome folding. In this work, we investigated chromosome folding in cells with altered decatenation activities. Within minutes after Topo IV inactivation, a massive chromosome reorganization takes place, associated with increases in trans-contacts between catenated sister chromatids and in long-range cis-contacts between the terminus and distant loci on the genome. A genetic analysis of these signals allowed us to decipher specific roles for Topo IV and Topo III, an accessory decatenase. Moreover we revealed the role of MatP, the terminus macrodomain organizing system and MukB, the E. coli SMC in organizing sister chromatids tied by persistent catenation links. We propose that large-scale conformation changes observed in these conditions reveal a defective decatenation hub located in the terminus area. Altogether, our findings support a model of spatial and temporal partition of the tasks required for sister chromosome segregation.
Chen, H.; Charles, P. D.; Gu, Q.; Liberatori, S.; Robertson, D. L.; Palmarini, M.; Wilson, S. J.; Mohammed, S.; Castello, A.
Show abstract
The capacity of host cells to sustain or restrict virus infection is influenced by their proteome. Understanding the compendium of proteins defining cellular permissiveness is key to many questions in fundamental virology. Here, we apply a multiomic approach to determine the proteins that are associated with highly permissive, intermediate, and hostile cellular states. We observed two groups of differentially regulated genes: i) with robust changes in mRNA and protein levels, and ii) with protein/RNA discordances. Many of the latter are classified as interferon stimulated genes (ISGs) but have no reported antiviral activity. This suggests that IFN-dependent changes in mRNA levels do not imply antiviral function. Phosphoproteomics revealed an additional regulatory layer involving non-signalling proteins with altered phosphorylation. Indeed, we confirmed that several permissiveness-associated proteins with changes in abundance or phosphorylation regulate infection fitness. Altogether, our study provides a comprehensive and systematic map of the cellular alterations driving virus susceptibility.
Demmig, R.; Schaefer, M.; Johannes, E.; Heim, A.; Boland, A.; Mayer, T. U.
Show abstract
To ensure the correct euploid state of embryos, it is essential that vertebrate oocytes await fertilization arrested at metaphase of meiosis II. This MII arrest is mediated by XErp1/Emi2, which inhibits the ubiquitin ligase APC/C (anaphase-promoting complex/cyclosome). Cyclin B3 in complex with Cdk1 (cyclin-dependent kinase 1) is essential to prevent an untimely arrest of vertebrate oocytes in meiosis I by targeting XErp1/Emi2 for degradation. Yet, the molecular mechanism of XErp1/Emi2 degradation in MI is not well understood. Here, by combining TRIM-Away in oocytes with egg extract and in vitro studies, we demonstrate that a hitherto unknown phosphate-binding pocket in cyclin B3 is essential for efficient XErp1/Emi2 degradation in meiosis I. This pocket enables Cdk1/cyclin B3 to bind pre-phosphorylated XErp1/Emi2 facilitating further phosphorylation events, which ultimately target XErp1/Emi2 for degradation in a Plk1 (Polo-like kinase 1) dependent manner. Key elements of this degradative mechanism are conserved in frog and mouse. Our studies identify a novel, evolutionarily conserved determinant of Cdk/cyclin substrate specificity essential to prevent an untimely oocyte arrest at meiosis I with catastrophic consequences upon fertilization.
Garcia-Llagostera, F.; Putman, A. L.; Choromidis, A.; Leeke, B. J.; Stanik, K.; Ramos-Guzman, A.; Moyon, B.; Gil, J.; Barr, A. R.; Percharde, M.
Show abstract
Transposable elements (TEs) are mobile DNA sequences that make up a sizeable fraction of mammalian genomes yet are often tightly repressed by transcriptional and epigenetic mechanisms. During early development, epigenetic reprogramming selectively loosens TE repression, and TE transcription actively contributes to embryogenesis. This raises the question: how can embryos and embryonic stem cells (ESCs) tolerate TE expression without incurring widespread inflammation or DNA damage? Here, we reveal multiple mechanisms that prevent innate immune activation by TE-derived cytosolic DNA, including reduced cGAS/STING expression and signalling, dampening of Type I interferon responses by pluripotency factors, and post-transcriptional restriction of retrotransposition. These layers of protection are essential, as experimental perturbation triggers loss of ESC self-renewal and pluripotency. Our data explain how early development can be permissive to TE expression while safeguarding against harmful effects of TE activity.
Delgado de la Herran, H. C.; Reane, D. V.; Cheng, Y.; Katona, M.; Hosp, F.; Greotti, E.; Wettmarshausen, J.; Patron, M.; Mohr, H.; Prudente de Mello, N.; Chudenkova, M.; Gorza, M.; Walia, S.; Feng, M. S.-F.; Leimpek, A.; Mielenz, D.; Pellegata, N. S.; Langer, T.; Hajnoczky, G.; Mann, M.; Murgia, M.; Perocchi, F.
Show abstract
The Mitochondrial Ca2+ Uniporter Channel (MCUC) allows calcium entry into the mitochondrial matrix to regulate energy metabolism but also cell death. Although, several MCUC components have been identified, the molecular basis of mitochondrial Ca2+ signaling networks and their remodeling upon changes in uniporter activity have not been systematically assessed. Using an unbiased and quantitative proteomic approach, we map the MCUC interactome in HEK293 cells under physiological conditions and upon chronic loss or gain of mitochondrial Ca2+ uptake. Besides all previously known subunits of the uniporter, we identify 89 high-confidence interactors linking MCUC to several mitochondrial complexes and pathways, half of which are currently linked to metabolic, neurological, and immunological diseases. As a proof-of-concept, we validate EFHD1 as a binding partner of MCU, EMRE and MCUB with a MICU1-dependent inhibitory effect on Ca2+ uptake. To investigate compensatory mechanisms and functional consequences of mitochondrial Ca2+ dyshomeostasis, we systematically survey the MCU interactome upon silencing of EMRE, MCUB, MICU1 or MICU2. We observe profound changes in the MCU interconnectivity, whereby downregulation of EMRE reduces the number of MCU interactors of over 10-fold, while silencing of MCUB leads to a wider functional network linking MCU to mitochondrial stress response pathways and cell death. Altogether our study provides a comprehensive map of MCUC protein-protein interactions and a rich, high-confidence resource that can be explored to gain insights into the players and mechanisms involved in calcium signal transduction cascades and their relevance in human diseases.