SUMMARY Targeting kinase ATP-binding sites has produced many successful therapeutics, but selectivity remains a major challenge. We hypothesised that substrate-recognition surfaces could provide an alternative route to selective kinase inhibition. Here, we designed and tested structure-guided miniprotein inhibitors of Aurora-A using N-Myc as a template, a natural weak binder of the P+1 pocket. The most potent designs bind Aurora-A with single-digit nanomolar affinity, more than a thousand fold higher than the starting template, and selectively inhibit Aurora-A over Aurora-B in kinase assays and mitotic cells. Despite diverse architectures, successful binders targeting the substrate-recognition surface converged on a common strategy, coupling extensive engagement of the αG helix with activation loop stabilisation. Together these results show that selective kinase inhibition can be achieved by exploiting structurally well-defined active-state conformations rather than kinase-specific inactive states. Our work establishes a framework for converting weak substrate-recognition surface interactors into potent, selective kinase inhibitors through structure-guided protein design.
Aurora Kinase A (AurA) is an essential mitotic kinase and therapeutic target in cancer. Most protein kinase inhibitors target the conserved ATP-binding pocket, often resulting in poor selectivity and off-target effects. Here, we identify and characterise small synthetic protein binders, Adhirons, as allosteric inhibitors of AurA. Using ‘phage display, we isolated Adhiron reagents that bind a previously uncharacterised site on the αG-helix of the kinase C-lobe. Structural and biochemical analyses revealed that the Adhiron inhibited AurA by modulating the activation loop via this cryptic site, which we designate the T-pocket. In cells, Adhiron expression mimics the effects of small molecule inhibitors of AurA on substrate and auto-phosphorylation, while sparing Aurora kinase B and without impairing TPX2-mediated localisation of AurA to the mitotic spindle. The AurA-inhibitory Adhirons demonstrate remarkable selectivity, potency and affinity, a highly sought-after combination of properties for kinase inhibition facilitating their use as tractable research tools for probing AurA function and as pharmacophore templates for structure-based drug design. Finally, these reagents illustrate a generalisable strategy for targeting allosteric sites across the Kinome. *Jack P Roberts & James Holder contributed equally to this work.
Abstract Aurora-A is an essential cell-cycle kinase with critical roles in mitotic entry and spindle dynamics. These functions require binding partners such as CEP192 and TPX2, which modulate both kinase activity and localisation of Aurora-A. Here we investigate the structure and role of the centrosomal Aurora-A:CEP192 complex in the wider molecular network. We find that CEP192 wraps around Aurora-A, occupies the binding sites for mitotic spindle-associated partners, and thus competes with them. Comparison of two different Aurora-A conformations reveals how CEP192 modifies kinase activity through the site used for TPX2-mediated activation. Deleting the Aurora-A-binding interface in CEP192 prevents centrosomal accumulation of Aurora-A, curtails its activation-loop phosphorylation, and reduces spindle-bound TPX2:Aurora-A complexes, resulting in error-prone mitosis. Thus, by supplying the pool of phosphorylated Aurora-A necessary for TPX2 binding, CEP192:Aurora-A complexes regulate spindle function. We propose an evolutionarily conserved spatial hierarchy, which protects genome integrity through fine-tuning and correctly localising Aurora-A activity.
Centrosomes are the major microtubule-organizing centers in animals and play fundamental roles in many cellular processes. Understanding how their composition varies across diverse cell types and how it is altered in disease are major unresolved questions, yet currently available centrosome isolation protocols are cumbersome and time-consuming, and they lack scalability. Here, we report the development of centrosome affinity capture (CAPture)-mass spectrometry (MS), a powerful one-step purification method to obtain high-resolution centrosome proteomes from mammalian cells. Utilizing a synthetic peptide derived from CCDC61 protein, CAPture specifically isolates intact centrosomes. Importantly, as a bead-based affinity method, it enables rapid sample processing and multiplexing unlike conventional approaches. Our study demonstrates the power of CAPture-MS to elucidate cell-type-dependent heterogeneity in centrosome composition, dissect hierarchical interactions, and identify previously unknown centrosome components. Overall, CAPture-MS represents a transformative tool to unveil temporal, regulatory, cell -type-and tissue specific changes in centrosome proteomes in health and disease.
Cells produce considerable genotoxic formaldehyde from an unknown source. We carry out a genome-wide CRISPR-Cas9 genetic screen in metabolically engineered HAP1 cells that are auxotrophic for formaldehyde to find this cellular source. We identify histone deacetylase 3 (HDAC3) as a regulator of cellular formaldehyde production. HDAC3 regulation requires deacetylase activity, and a secondary genetic screen identifies several components of mitochondrial complex I as mediators of this regulation. Metabolic profiling indicates that this unexpected mitochondrial requirement for formaldehyde detoxification is separate from energy generation. HDAC3 and complex I therefore control the abundance of a ubiquitous genotoxic metabolite.
Red blood cells are produced by terminal erythroid differentiation, which involves the dramatic morphological transformation of erythroblasts into enucleated reticulocytes. Microtubules are important for enucleation, but it is not known if the centrosome, a key microtubule-organizing center, is required as well. Mice lacking the conserved centrosome component, CDK5RAP2, are likely to have defective erythroid differentiation because they develop macrocytic anemia. Here, we show that fetal liver-derived, CDK5RAP2-deficient erythroid progenitors generate fewer and larger reticulocytes, hence recapitulating features of macrocytic anemia. In erythroblasts, but not in embryonic fibroblasts, loss of CDK5RAP2 or pharmacological depletion of centrosomes leads to highly aberrant spindle morphologies. Consistent with such cells exiting mitosis without chromosome segregation, tetraploidy is frequent in late-stage erythroblasts, thereby giving rise to fewer but larger reticulocytes than normal. Our results define a critical role for CDK5RAP2 and centrosomes in spindle formation specifically during blood production. We propose that disruption of centrosome and spindle function could contribute to the emergence of macrocytic anemias, for instance, due to nutritional deficiency or exposure to chemotherapy.
Overload of proteasomal clearance triggers formation of a large protein inclusion called the aggresome, which shares similarities with protein aggregates seen in neurodegenerative diseases such as Huntington's. A new study uncovers how centrosome and centriolar satellite components facilitate stepwise assembly of aggresomes.
Zika virus (ZIKV) can infect human developing brain (HDB) progenitors resulting in epidemic microcephaly, whereas analogous cellular tropism offers treatment potential for the adult brain cancer, glioblastoma (GBM). We compared productive ZIKV infection in HDB and GBM primary tissue explants that both contain SOX2+ neural progenitors. Strikingly, although the HDB proved uniformly vulnerable to ZIKV infection, GBM was more refractory, and this correlated with an innate immune expression signature. Indeed, GBM-derived CD11b+ microglia/macrophages were necessary and sufficient to protect progenitors against ZIKV infection in a non-cell autonomous manner. Using SOX2+ GBM cell lines, we found that CD11b+-conditioned medium containing type 1 interferon beta (IFNβ) promoted progenitor resistance to ZIKV, whereas inhibition of JAK1/2 signaling restored productive infection. Additionally, CD11b+ conditioned medium, and IFNβ treatment rendered HDB progenitor lines and explants refractory to ZIKV. These findings provide insight into neuroprotection for HDB progenitors as well as enhanced GBM oncolytic therapies.
Viral infections targeting human neural stem cells can damage the developing brain, but this stem cell tropism also offers treatment potential in the lethal adult brain cancer glioblastoma multiforme (GBM). To elucidate the cellular mechanisms responsible for Zika flavivirus infection of SOX2+ cells, a stem cell population shared by the human developing brain (HDB) and GBM, we compared Zika virus infectability of these tissues. We uncovered striking differences in Zika infection rates: while HDB samples appeared uniformly vulnerable to Zika infection, fresh GBM surgical samples were moderately or highly resistant. RNA sequencing revealed a strong correlation between Zika resistance and an innate immune expression signature. Unexpectedly, we found that isolated GBM tumour microenvironment microglia/macrophages (MG) were necessary and sufficient to confer stem cell resistance against Zika in a non-cell autonomous manner. We tested several candidate factors identified from the MG secretome and found that inhibition of interferon signaling using the JAK1/2 inhibitor, ruxolitinib, both antagonized Zika resistance induced by MG-conditioned medium and enhanced consequent viral oncolysis. Conversely, in HDB samples, where microglia and macrophages are rare or absent, addition of MG or MG-conditioned medium promoted Zika resistance of SOX2+ stem cells. Our data identify a common role for the MG secretome in the regulation of Zika resistance in normal developing and malignant brain stem cells, with implications for understanding viral congenital neuropathology and GBM therapy.
Genome stability relies on proper coordination of mitosis and cytokinesis, where dynamic microtubules capture and faithfully segregate chromosomes into daughter cells. With a high-content RNAi imaging screen targeting more than 2,000 human lncRNAs, we identify numerous lncRNAs involved in key steps of cell division such as chromosome segregation, mitotic duration and cytokinesis. Here, we provide evidence that the chromatin-associated lncRNA, linc00899 , leads to robust mitotic delay upon its depletion in multiple cell types. We perform transcriptome analysis of linc00899 -depleted cells and identify the neuronal microtubule-binding protein, TPPP/p25 , as a target of linc00899 . We further show that linc00899 binds TPPP/p25 and suppresses its transcription. In cells depleted of linc00899 , upregulation of TPPP/p25 alters microtubule dynamics and delays mitosis. Overall, our comprehensive screen uncovers several lncRNAs involved in genome stability and reveals a lncRNA that controls microtubule behaviour with functional implications beyond cell division.
The International University of Andalucía (UNIA) Current Trends in Biomedicine Workshop on Molecular Causes of Primary Microcephaly and Related Diseases took place in Baeza, Spain, November 18–20, 2019. This meeting brought together scientists from Europe, the USA and China to discuss recent advances in our molecular and genetic understanding of a group of rare neurodevelopmental diseases characterised by primary microcephaly, a condition in which head circumference is smaller than normal at birth. Microcephaly can be caused by inherited mutations that affect key cellular processes, or environmental exposure to radiation or other toxins. It can also result from viral infection, as exemplified by the recent Zika virus outbreak in South America. Here we summarise a number of the scientific advances presented and topics discussed at the meeting.
Centrioles are cylindrical assemblies whose peripheral microtubule array displays a 9-fold rotational symmetry that is established by the scaffolding protein SAS6. Centriole symmetry can be broken by centriole-associated structures, such as the striated fibers in Chlamydomonas that are important for ciliary function. The conserved protein CCDC61/VFL3 is involved in this process, but its exact role is unclear. Here, we show that CCDC61 is a paralog of SAS6. Crystal structures of CCDC61 demonstrate that it contains two homodimerization interfaces that are similar to those found in SAS6, but result in the formation of linear filaments rather than rings. Furthermore, we show that CCDC61 binds microtubules and that residues involved in CCDC61 microtubule binding are important for ciliary function in Chlamydomonas. Together, our findings suggest that CCDC61 and SAS6 functionally diverged from a common ancestor while retaining the ability to scaffold the assembly of basal body-associated structures or centrioles, respectively.
Centrosomes comprise two centrioles, the mother and daughter, embedded within a multi-layered proteinaceous matrix known as the pericentriolar material. In proliferating cells, centrosomes duplicate once per cell cycle and organise interphase and mitotic microtubule arrays, whereas in quiescent cells, the mother centriole templates primary cilium formation. Centrosomes have acquired various accessory structures to facilitate these disparate functions. In some eukaryotic lineages, mother centrioles can be distinguished from their daughter by the presence of appendages at their distal end, which anchor microtubule minus ends and tether Golgi-derived vesicles involved in ciliogenesis. Moreover, in vertebrate cells, centrosomes are surrounded by a system of cytoplasmic granules known as centriolar satellites. In this review, we will discuss these centriolar accessories and outline recent findings pertaining to their composition, assembly and regulation.
Tischer and Gergely review the cell biology behind microtubule poisons and their clinical use in cancer patients.
Centrioles are core structural elements of both centrosomes and cilia. Although cytoplasmic granules called centriolar satellites have been observed around these structures, lack of a comprehensive inventory of satellite proteins impedes our understanding of their ancestry. To address this, we performed mass spectrometry (MS)-based proteome profiling of centriolar satellites obtained by affinity purification of their key constituent, PCM1, from sucrose gradient fractions. We defined an interactome consisting of 223 proteins, which showed striking enrichment in centrosome components. The proteome also contained new structural and regulatory factors with roles in ciliogenesis. Quantitative MS on whole-cell and centriolar satellite proteomes of acentriolar cells was performed to reveal dependencies of satellite composition on intact centrosomes. Although most components remained associated with PCM1 in acentriolar cells, reduced cytoplasmic and satellite levels were observed for a subset of centrosomal proteins. These results demonstrate that centriolar satellites and centrosomes form independently but share a substantial fraction of their proteomes. Dynamic exchange of proteins between these organelles could facilitate their adaptation to changing cellular environments during development, stress response and tissue homeostasis.
The Zika Virus epidemic of 2015–2016 was associated with striking failure of forebrain development in infants born to infected mothers, resulting in microcephaly. Studies from numerous labs subsequently confirmed a selective effect of the virus on neural stem cell survival, self-renewal and differentiation. The glioma stem cells which drive glioblastoma and other malignant gliomas depend on neural stem cell transcription programs, so that understanding Zika infection in these cells promises valuable insights into future therapy. We describe here: 1) Study of low passage patient-derived glioblastoma cell lines and normal neural stem cells (CRUK Glioma Cellular Genetics Resource) in adherent culture to address the influence of glioma subtype on infectability 2) Application of genetically modified mCherry reporter Zika Virus strains to address the Zika target cell in glioblastoma. 3) Development of a cerebral organoid model to interrogate the differential effects of the virus on tumour cells and surrounding normal brain. 4) Demonstration of Zika infection on primary patient derived tissue in slice culture format Using these tools we find that Zika targets a common stem cell population across tumour subtypes and neural stem cell controls, and in embryonic and primary tumour explants, and that infection is influenced by activity of cholesterol biosynthesis pathways.
Aurora-A regulates the recruitment of TACC3 to the mitotic spindle through a phospho-dependent interaction with clathrin heavy chain (CHC). Here, we describe the structural basis of these interactions, mediated by three motifs in a disordered region of TACC3. A hydrophobic docking motif binds to a previously uncharacterized pocket on Aurora-A that is blocked in most kinases. Abrogation of the docking motif causes a delay in late mitosis, consistent with the cellular distribution of Aurora-A complexes. Phosphorylation of Ser558 engages a conformational switch in a second motif from a disordered state, needed to bind the kinase active site, into a helical conformation. The helix extends into a third, adjacent motif that is recognized by a helical-repeat region of CHC, not a recognized phospho-reader domain. This potentially widespread mechanism of phospho-recognition provides greater flexibility to tune the molecular details of the interaction than canonical recognition motifs that are dominated by phosphate binding.
Aurora-A regulates the recruitment of TACC3 to the mitotic spindle through a phospho-dependent interaction with clathrin heavy chain (CHC). Here, we describe the structural basis of these interactions, mediated by three motifs in a disordered region of TACC3. A hydrophobic docking motif binds to a previously uncharacterized pocket on Aurora-A that is blocked in most kinases. Abrogation of the docking motif causes a delay in late mitosis, consistent with the cellular distribution of Aurora-A complexes. Phosphorylation of Ser558 engages a conformational switch in a second motif from a disordered state, needed to bind the kinase active site, into a helical conformation. The helix extends into a third, adjacent motif that is recognized by a helical-repeat region of CHC, not a recognized phospho-reader domain. This potentially widespread mechanism of phosphorecognition provides greater flexibility to tune the molecular details of the interaction than canonical recognition motifs that are dominated by phosphate binding.
Loss-of-function (LOF) methods such as RNA interference (RNAi), antisense oligonucleotides or CRISPR-based genome editing provide unparalleled power for studying the biological function of genes of interest. However, a major concern is non-specific targeting, which involves depletion of transcripts other than those intended. Little work has been performed to characterize the off-target effects of these common LOF methods at the whole-transcriptome level. Here, we experimentally compared the nonspecific activity of RNAi, antisense oligonucleotides and CRISPR interference (CRISPRi). All three methods yielded non-negligible off-target effects in gene expression, with CRISPRi also exhibiting strong clonal effects. As an illustrative example, we evaluated the performance of each method for determining the role of an uncharacterized long noncoding RNA (lncRNA). Several LOF methods successfully depleted the candidate lncRNA but yielded different sets of differentially expressed genes as well as a different cellular phenotype upon depletion. Similar discrepancies between methods were observed with a protein-coding gene (Ch-TOG/CKAP5) and another lncRNA (MALAT1). We suggest that the differences between methods arise due to method-specific off-target effects and provide guidelines for mitigating such effects in functional studies. Our recommendations provide a framework with which off-target effects can be managed to improve functional characterization of genes of interest.