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The European Union Before, During and After Brexit




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Can and Should Brexit Be Stopped?




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Undercurrents: Episode 17 - Alastair Campbell on New Labour and Brexit, Alistair Darling on the Financial Crisis




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The Kremlin Letters: Wartime Exchanges of the Big Three




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Radical Change? New Political Paradigms in Brazil and Mexico




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Podcast: Examining The Post-Brexit Japan-UK Partnership




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The Militarization of the Black Sea After the Annexation of Crimea




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Cybersecurity Series: Exploring Methods of Internet Censorship and Control




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Brexit: In Search of A Solution - The Common Market 2.0 Option




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UK–EU Defence and Security Cooperation after Brexit




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The State of Brexit on ‘Brexit Day’




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What Brexit Satisfies the Democratic Will of the People?




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The Paradox of Progress: Health Challenges of the Future




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Britain, Brexit and the Future of NATO




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Africa’s Economic Outlook in a Challenging External Environment




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Tunisia in an Election Year: What Next?




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Screening Room: Brexit - Behind Closed Doors




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In Conversation With Bob Dudley, Group Chief Executive, BP




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Undercurrents: Summer Special - Andrés Rozental on Mexican Politics




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Peacemaking in an Era of Global Extremism




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Brexit in a Historical Context: Pursuing a Global Vision at the Expense of Domestic Harmony?




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Tackling Toxic Air Pollution in Cities




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Schapiro Lecture: The Would-Be Federation Next Door – What Next for Britain?




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How Far Does the European Union’s Influence Extend?




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Discovery of a Redox Thiol Switch: Implications for Cellular Energy Metabolism [Research]

The redox-based modifications of cysteine residues in proteins regulate their function in many biological processes. The gas molecule H2S has been shown to persulfidate redox sensitive cysteine residues resulting in an H2S-modified proteome known as the sulfhydrome. Tandem Mass Tags (TMT) multiplexing strategies for large-scale proteomic analyses have become increasingly prevalent in detecting cysteine modifications. Here we developed a TMT-based proteomics approach for selectively trapping and tagging cysteine persulfides in the cellular proteomes. We revealed the natural protein sulfhydrome of two human cell lines, and identified insulin as a novel substrate in pancreatic beta cells. Moreover, we showed that under oxidative stress conditions, increased H2S can target enzymes involved in energy metabolism by switching specific cysteine modifications to persulfides. Specifically, we discovered a Redox Thiol Switch, from protein S-glutathioinylation to S-persulfidation (RTSGS). We propose that the RTSGS from S-glutathioinylation to S-persulfidation is a potential mechanism to fine tune cellular energy metabolism in response to different levels of oxidative stress.




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The Secretome Profiling of a Pediatric Airway Epithelium Infected with hRSV Identified Aberrant Apical/Basolateral Trafficking and Novel Immune Modulating (CXCL6, CXCL16, CSF3) and Antiviral (CEACAM1) Proteins [Research]

The respiratory epithelium comprises polarized cells at the interface between the environment and airway tissues. Polarized apical and basolateral protein secretions are a feature of airway epithelium homeostasis. Human respiratory syncytial virus (hRSV) is a major human pathogen that primarily targets the respiratory epithelium. However, the consequences of hRSV infection on epithelium secretome polarity and content remain poorly understood. To investigate the hRSV-associated apical and basolateral secretomes, a proteomics approach was combined with an ex vivo pediatric human airway epithelial (HAE) model of hRSV infection (data are available via ProteomeXchange and can be accessed at https://www.ebi.ac.uk/pride/ with identifier PXD013661). Following infection, a skewing of apical/basolateral abundance ratios was identified for several individual proteins. Novel modulators of neutrophil and lymphocyte activation (CXCL6, CSF3, SECTM1 or CXCL16), and antiviral proteins (BST2 or CEACAM1) were detected in infected, but not in uninfected cultures. Importantly, CXCL6, CXCL16, CSF3 were also detected in nasopharyngeal aspirates (NPA) from hRSV-infected infants but not healthy controls. Furthermore, the antiviral activity of CEACAM1 against RSV was confirmed in vitro using BEAS-2B cells. hRSV infection disrupted the polarity of the pediatric respiratory epithelial secretome and was associated with immune modulating proteins (CXCL6, CXCL16, CSF3) never linked with this virus before. In addition, the antiviral activity of CEACAM1 against hRSV had also never been previously characterized. This study, therefore, provides novel insights into RSV pathogenesis and endogenous antiviral responses in pediatric airway epithelium.




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Decreased Immunoglobulin G Core Fucosylation, A Player in Antibody-dependent Cell-mediated Cytotoxicity, is Associated with Autoimmune Thyroid Diseases [Research]

Autoimmune thyroid diseases (AITD) are the most common group of autoimmune diseases, associated with lymphocyte infiltration and the production of thyroid autoantibodies, like thyroid peroxidase antibodies (TPOAb), in the thyroid gland. Immunoglobulins and cell-surface receptors are glycoproteins with distinctive glycosylation patterns that play a structural role in maintaining and modulating their functions. We investigated associations of total circulating IgG and peripheral blood mononuclear cells glycosylation with AITD and the influence of genetic background in a case-control study with several independent cohorts and over 3,000 individuals in total. The study revealed an inverse association of IgG core fucosylation with TPOAb and AITD, as well as decreased peripheral blood mononuclear cells antennary α1,2 fucosylation in AITD, but no shared genetic variance between AITD and glycosylation. These data suggest that the decreased level of IgG core fucosylation is a risk factor for AITD that promotes antibody-dependent cell-mediated cytotoxicity previously associated with TPOAb levels.




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Proximity Dependent Biotinylation: Key Enzymes and Adaptation to Proteomics Approaches [Reviews]

The study of protein subcellular distribution, their assembly into complexes and the set of proteins with which they interact with is essential to our understanding of fundamental biological processes. Complementary to traditional assays, proximity-dependent biotinylation (PDB) approaches coupled with mass spectrometry (such as BioID or APEX) have emerged as powerful techniques to study proximal protein interactions and the subcellular proteome in the context of living cells and organisms. Since their introduction in 2012, PDB approaches have been used in an increasing number of studies and the enzymes themselves have been subjected to intensive optimization. How these enzymes have been optimized and considerations for their use in proteomics experiments are important questions. Here, we review the structural diversity and mechanisms of the two main classes of PDB enzymes: the biotin protein ligases (BioID) and the peroxidases (APEX). We describe the engineering of these enzymes for PDB and review emerging applications, including the development of PDB for coincidence detection (split-PDB). Lastly, we briefly review enzyme selection and experimental design guidelines and reflect on the labeling chemistries and their implication for data interpretation.




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A comprehensive evaluation of a typical plant telomeric G-quadruplex (G4) DNA reveals the dynamics of G4 formation, rearrangement, and unfolding [Plant Biology]

Telomeres are specific nucleoprotein structures that are located at the ends of linear eukaryotic chromosomes and play crucial roles in genomic stability. Telomere DNA consists of simple repeats of a short G-rich sequence: TTAGGG in mammals and TTTAGGG in most plants. In recent years, the mammalian telomeric G-rich repeats have been shown to form G-quadruplex (G4) structures, which are crucial for modulating telomere functions. Surprisingly, even though plant telomeres are essential for plant growth, development, and environmental adaptions, only few reports exist on plant telomeric G4 DNA (pTG4). Here, using bulk and single-molecule assays, including CD spectroscopy, and single-molecule FRET approaches, we comprehensively characterized the structure and dynamics of a typical plant telomeric sequence, d[GGG(TTTAGGG)3]. We found that this sequence can fold into mixed G4s in potassium, including parallel and antiparallel structures. We also directly detected intermediate dynamic transitions, including G-hairpin, parallel G-triplex, and antiparallel G-triplex structures. Moreover, we observed that pTG4 is unfolded by the AtRecQ2 helicase but not by AtRecQ3. The results of our work shed light on our understanding about the existence, topological structures, stability, intermediates, unwinding, and functions of pTG4.




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Structural basis of specific inhibition of extracellular activation of pro- or latent myostatin by the monoclonal antibody SRK-015 [Molecular Biophysics]

Myostatin (or growth/differentiation factor 8 (GDF8)) is a member of the transforming growth factor β superfamily of growth factors and negatively regulates skeletal muscle growth. Its dysregulation is implicated in muscle wasting diseases. SRK-015 is a clinical-stage mAb that prevents extracellular proteolytic activation of pro- and latent myostatin. Here we used integrated structural and biochemical approaches to elucidate the molecular mechanism of antibody-mediated neutralization of pro-myostatin activation. The crystal structure of pro-myostatin in complex with 29H4-16 Fab, a high-affinity variant of SRK-015, at 2.79 Å resolution revealed that the antibody binds to a conformational epitope in the arm region of the prodomain distant from the proteolytic cleavage sites. This epitope is highly sequence-divergent, having only limited similarity to other closely related members of the transforming growth factor β superfamily. Hydrogen/deuterium exchange MS experiments indicated that antibody binding induces conformational changes in pro- and latent myostatin that span the arm region, the loops contiguous to the protease cleavage sites, and the latency-associated structural elements. Moreover, negative-stain EM with full-length antibodies disclosed a stable, ring-like antigen–antibody structure in which the two Fab arms of a single antibody occupy the two arm regions of the prodomain in the pro- and latent myostatin homodimers, suggesting a 1:1 (antibody:myostatin homodimer) binding stoichiometry. These results suggest that SRK-015 binding stabilizes the latent conformation and limits the accessibility of protease cleavage sites within the prodomain. These findings shed light on approaches that specifically block the extracellular activation of growth factors by targeting their precursor forms.




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X-ray structures of catalytic intermediates of cytochrome c oxidase provide insights into its O2 activation and unidirectional proton-pump mechanisms [Molecular Biophysics]

Cytochrome c oxidase (CcO) reduces O2 to water, coupled with a proton-pumping process. The structure of the O2-reduction site of CcO contains two reducing equivalents, Fea32+ and CuB1+, and suggests that a peroxide-bound state (Fea33+–O−–O−–CuB2+) rather than an O2-bound state (Fea32+–O2) is the initial catalytic intermediate. Unexpectedly, however, resonance Raman spectroscopy results have shown that the initial intermediate is Fea32+–O2, whereas Fea33+–O−–O−–CuB2+ is undetectable. Based on X-ray structures of static noncatalytic CcO forms and mutation analyses for bovine CcO, a proton-pumping mechanism has been proposed. It involves a proton-conducting pathway (the H-pathway) comprising a tandem hydrogen-bond network and a water channel located between the N- and P-side surfaces. However, a system for unidirectional proton-transport has not been experimentally identified. Here, an essentially identical X-ray structure for the two catalytic intermediates (P and F) of bovine CcO was determined at 1.8 Å resolution. A 1.70 Å Fe–O distance of the ferryl center could best be described as Fea34+ = O2−, not as Fea34+–OH−. The distance suggests an ∼800-cm−1 Raman stretching band. We found an interstitial water molecule that could trigger a rapid proton-coupled electron transfer from tyrosine-OH to the slowly forming Fea33+–O−–O−–CuB2+ state, preventing its detection, consistent with the unexpected Raman results. The H-pathway structures of both intermediates indicated that during proton-pumping from the hydrogen-bond network to the P-side, a transmembrane helix closes the water channel connecting the N-side with the hydrogen-bond network, facilitating unidirectional proton-pumping during the P-to-F transition.




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Biophysical characterization of SARAH domain-mediated multimerization of Hippo pathway complexes in Drosophila [Signal Transduction]

Hippo pathway signaling limits cell growth and proliferation and maintains the stem-cell niche. These cellular events result from the coordinated activity of a core kinase cassette that is regulated, in part, by interactions involving Hippo, Salvador, and dRassF. These interactions are mediated by a conserved coiled-coil domain, termed SARAH, in each of these proteins. SARAH domain–mediated homodimerization of Hippo kinase leads to autophosphorylation and activation. Paradoxically, SARAH domain–mediated heterodimerization between Hippo and Salvador enhances Hippo kinase activity in cells, whereas complex formation with dRassF inhibits it. To better understand the mechanism by which each complex distinctly modulates Hippo kinase and pathway activity, here we biophysically characterized the entire suite of SARAH domain–mediated complexes. We purified the three SARAH domains from Drosophila melanogaster and performed an unbiased pulldown assay to identify all possible interactions, revealing that isolated SARAH domains are sufficient to recapitulate the cellular assemblies and that Hippo is a universal binding partner. Additionally, we found that the Salvador SARAH domain homodimerizes and demonstrate that this interaction is conserved in Salvador's mammalian homolog. Using native MS, we show that each of these complexes is dimeric in solution. We also measured the stability of each SARAH domain complex, finding that despite similarities at both the sequence and structural levels, SARAH domain complexes differ in stability. The identity, stoichiometry, and stability of these interactions characterized here comprehensively reveal the nature of SARAH domain–mediated complex formation and provide mechanistic insights into how SARAH domain–mediated interactions influence Hippo pathway activity.




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Delineating an extracellular redox-sensitive module in T-type Ca2+ channels [Membrane Biology]

T-type (Cav3) Ca2+ channels are important regulators of excitability and rhythmic activity of excitable cells. Among other voltage-gated Ca2+ channels, Cav3 channels are uniquely sensitive to oxidation and zinc. Using recombinant protein expression in HEK293 cells, patch clamp electrophysiology, site-directed mutagenesis, and homology modeling, we report here that modulation of Cav3.2 by redox agents and zinc is mediated by a unique extracellular module containing a high-affinity metal-binding site formed by the extracellular IS1–IS2 and IS3–IS4 loops of domain I and a cluster of extracellular cysteines in the IS1–IS2 loop. Patch clamp recording of recombinant Cav3.2 currents revealed that two cysteine-modifying agents, sodium (2-sulfonatoethyl) methanethiosulfonate (MTSES) and N-ethylmaleimide, as well as a reactive oxygen species–producing neuropeptide, substance P (SP), inhibit Cav3.2 current to similar degrees and that this inhibition is reversed by a reducing agent and a zinc chelator. Pre-application of MTSES prevented further SP-mediated current inhibition. Substitution of the zinc-binding residue His191 in Cav3.2 reduced the channel's sensitivity to MTSES, and introduction of the corresponding histidine into Cav3.1 sensitized it to MTSES. Removal of extracellular cysteines from the IS1–IS2 loop of Cav3.2 reduced its sensitivity to MTSES and SP. We hypothesize that oxidative modification of IS1–IS2 loop cysteines induces allosteric changes in the zinc-binding site of Cav3.2 so that it becomes sensitive to ambient zinc.




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Tracking isotopically labeled oxidants using boronate-based redox probes [Methods and Resources]

Reactive oxygen and nitrogen species have been implicated in many biological processes and diseases, including immune responses, cardiovascular dysfunction, neurodegeneration, and cancer. These chemical species are short-lived in biological settings, and detecting them in these conditions and diseases requires the use of molecular probes that form stable, easily detectable, products. The chemical mechanisms and limitations of many of the currently used probes are not well-understood, hampering their effective applications. Boronates have emerged as a class of probes for the detection of nucleophilic two-electron oxidants. Here, we report the results of an oxygen-18–labeling MS study to identify the origin of oxygen atoms in the oxidation products of phenylboronate targeted to mitochondria. We demonstrate that boronate oxidation by hydrogen peroxide, peroxymonocarbonate, hypochlorite, or peroxynitrite involves the incorporation of oxygen atoms from these oxidants. We therefore conclude that boronates can be used as probes to track isotopically labeled oxidants. This suggests that the detection of specific products formed from these redox probes could enable precise identification of oxidants formed in biological systems. We discuss the implications of these results for understanding the mechanism of conversion of the boronate-based redox probes to oxidant-specific products.




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Crystallographic and kinetic analyses of the FdsBG subcomplex of the cytosolic formate dehydrogenase FdsABG from Cupriavidus necator [Molecular Biophysics]

Formate oxidation to carbon dioxide is a key reaction in one-carbon compound metabolism, and its reverse reaction represents the first step in carbon assimilation in the acetogenic and methanogenic branches of many anaerobic organisms. The molybdenum-containing dehydrogenase FdsABG is a soluble NAD+-dependent formate dehydrogenase and a member of the NADH dehydrogenase superfamily. Here, we present the first structure of the FdsBG subcomplex of the cytosolic FdsABG formate dehydrogenase from the hydrogen-oxidizing bacterium Cupriavidus necator H16 both with and without bound NADH. The structures revealed that the two iron-sulfur clusters, Fe4S4 in FdsB and Fe2S2 in FdsG, are closer to the FMN than they are in other NADH dehydrogenases. Rapid kinetic studies and EPR measurements of rapid freeze-quenched samples of the NADH reduction of FdsBG identified a neutral flavin semiquinone, FMNH•, not previously observed to participate in NADH-mediated reduction of the FdsABG holoenzyme. We found that this semiquinone forms through the transfer of one electron from the fully reduced FMNH−, initially formed via NADH-mediated reduction, to the Fe2S2 cluster. This Fe2S2 cluster is not part of the on-path chain of iron-sulfur clusters connecting the FMN of FdsB with the active-site molybdenum center of FdsA. According to the NADH-bound structure, the nicotinamide ring stacks onto the re-face of the FMN. However, NADH binding significantly reduced the electron density for the isoalloxazine ring of FMN and induced a conformational change in residues of the FMN-binding pocket that display peptide-bond flipping upon NAD+ binding in proper NADH dehydrogenases.




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Quantification of the affinities of CRISPR-Cas9 nucleases for cognate protospacer adȷacent motif (PAM) sequences [Molecular Biophysics]

The CRISPR/Cas9 nucleases have been widely applied for genome editing in various organisms. Cas9 nucleases complexed with a guide RNA (Cas9–gRNA) find their targets by scanning and interrogating the genomic DNA for sequences complementary to the gRNA. Recognition of the DNA target sequence requires a short protospacer adjacent motif (PAM) located outside this sequence. Given that the efficiency of target location may depend on the strength of interactions that promote target recognition, here we sought to compare affinities of different Cas9 nucleases for their cognate PAM sequences. To this end, we measured affinities of Cas9 nucleases from Streptococcus pyogenes, Staphylococcus aureus, and Francisella novicida complexed with guide RNAs (gRNAs) (SpCas9–gRNA, SaCas9–gRNA, and FnCas9–gRNA, respectively) and of three engineered SpCas9–gRNA variants with altered PAM specificities for short, PAM-containing DNA probes. We used a “beacon” assay that measures the relative affinities of DNA probes by determining their ability to competitively affect the rate of Cas9–gRNA binding to fluorescently labeled target DNA derivatives called “Cas9 beacons.” We observed significant differences in the affinities for cognate PAM sequences among the studied Cas9 enzymes. The relative affinities of SpCas9–gRNA and its engineered variants for canonical and suboptimal PAMs correlated with previous findings on the efficiency of these PAM sequences in genome editing. These findings suggest that high affinity of a Cas9 nuclease for its cognate PAM promotes higher genome-editing efficiency.




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A neuroglobin-based high-affinity ligand trap reverses carbon monoxide-induced mitochondrial poisoning [Molecular Biophysics]

Carbon monoxide (CO) remains the most common cause of human poisoning. The consequences of CO poisoning include cardiac dysfunction, brain injury, and death. CO causes toxicity by binding to hemoglobin and by inhibiting mitochondrial cytochrome c oxidase (CcO), thereby decreasing oxygen delivery and inhibiting oxidative phosphorylation. We have recently developed a CO antidote based on human neuroglobin (Ngb-H64Q-CCC). This molecule enhances clearance of CO from red blood cells in vitro and in vivo. Herein, we tested whether Ngb-H64Q-CCC can also scavenge CO from CcO and attenuate CO-induced inhibition of mitochondrial respiration. Heart tissue from mice exposed to 3% CO exhibited a 42 ± 19% reduction in tissue respiration rate and a 33 ± 38% reduction in CcO activity compared with unexposed mice. Intravenous infusion of Ngb-H64Q-CCC restored respiration rates to that of control mice correlating with higher electron transport chain CcO activity in Ngb-H64Q-CCC–treated compared with PBS-treated, CO-poisoned mice. Further, using a Clark-type oxygen electrode, we measured isolated rat liver mitochondrial respiration in the presence and absence of saturating solutions of CO (160 μm) and nitric oxide (100 μm). Both CO and NO inhibited respiration, and treatment with Ngb-H64Q-CCC (100 and 50 μm, respectively) significantly reversed this inhibition. These results suggest that Ngb-H64Q-CCC mitigates CO toxicity by scavenging CO from carboxyhemoglobin, improving systemic oxygen delivery and reversing the inhibitory effects of CO on mitochondria. We conclude that Ngb-H64Q-CCC or other CO scavengers demonstrate potential as antidotes that reverse the clinical and molecular effects of CO poisoning.




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Tackling Toxic Air Pollution in Cities

Members Event

27 November 2019 - 6:00pm to 7:00pm

Chatham House | 10 St James's Square | London | SW1Y 4LE

Event participants

Camilla Hodgson, Environment Reporter, Financial Times

Dr Benjamin Barratt, Senior Lecturer in Chinese Environment, KCL

Dr Susannah Stanway MBChB MSc FRCP MD, Consultant in Medical Oncology Royal Marsden NHS Foundation Trust

Elliot Treharne, Head of Air Quality, Greater London Authority

Chair: Rob Yates, Head, Centre on Global Health Security, Chatham House

Air pollution has been classified as a cancer-causing agent with evidence showing an increased risk of lung cancer associated with increasing levels of exposure to outdoor air pollution and particulate matter.

Air pollution is also known to increase risks for other diseases, especially respiratory and heart diseases, and studies show that levels of exposure to air pollution have increased significantly in some parts of the world - mostly in rapidly industrializing countries with large populations.

In coordination with London Global Cancer Week partner organizations, this event outlines the evidence linking air pollution and cancer rates in London and other major cities.

Panellists provide a 360° picture of the impact of the rising incidence of cancer across the world, the challenges the cancer pandemic poses to the implementation of universal health coverage and the existing UK contribution to strengthening capacity in cancer management and research in developing countries.

Department/project

Members Events Team




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Exploring the Looming Water Crisis

28 November 2019

Gitika Bhardwaj

Editor, Communications & Publishing, Chatham House

Loïc Fauchon

President, World Water Council
Loïc Fauchon, president of the World Water Council, speaks to Gitika Bhardwaj about the causes of water scarcity around the world and how best to implement sustainable solutions.

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Dry sand and a narrow body of water near the Theewaterskloof Dam in South Africa which has had less than 20 per cent of its normal water capacity during recent water shortages. This dam, about 108km from Cape Town, is the main water source for residents of the city. Photo: Getty Images.

One-quarter of humanity faces a looming water crisis, including the prospect of running out of water, which may seem inconceivable when 70 per cent of the Earth’s surface is water. Nevertheless up to 80 per cent of available surface and groundwater is being used every year and water demand globally is projected to increase by 55 per cent by 2050. Why is the world facing a crisis of water scarcity and what is driving the increasing demand for water?

The first reason that is causing water stress around the world is the growing human population at the same time as the water supply has remained the same. Given that there are almost one billion more inhabitants on Earth every 15-20 years, this has led to a progressive deficit in the global water supply. 

The second reason is due to the uneven concentration of the global population. There is not a clear link between the presence of the population in some regions and the presence of water, in other words, water is not where we want it to be every time.

For example, there is, what we call, a ‘triangle of thirst’ from southern Spain, to Pakistan, to the Horn of Africa and back again. In this triangle, you have around two billion people in a very water-scarce region.

Comparatively, if you go to Russia or Canada, they have more water than they need in terms of the size of their population. So this is another crucial reason we are facing a crisis of water scarcity in some regions of the world – but not everywhere. 

Climate [change] will be the fruit on the cake. Currently we have global population growth and then later we will have climate change affecting water availability. But at this very moment, however, the problem for water suppliers and for political leaders is the demographic crisis we are facing – not the climate.

Water use has grown at more than twice the rate of the human population over the last century in part due to industries, such as agriculture, which account for 70 per cent of global freshwater use.

Given that food production will need to grow by up to 70 per cent by 2035 to feed the growing human population, how do we balance the use of water with the need to provide food?

There are some solutions. The first is that we need to improve water efficiency in the agricultural sector. We need to have all around the world, but mostly in developing countries, a better capacity to increase the water efficiency of agriculture without increasing the use of industrial chemical products and to move, step-by-step, to an economical system of organic farming. It will take time – it will not be done in one or even five years but more likely over a generation – but it is the best way.   

Secondly, which could be a faster solution, is that we have to reduce all kind of food waste which represents around 30-40 per cent of all agricultural production. Agriculture is a large sector involving the growing of crops but also livestock. There’s not only waste in terms of consumption but also during the production line, for example, during the transportation of food products. So there is this, sort of, waste cycle which is very important to consider. If you are able to reduce the water waste during the production line by 30-40 per cent, then you use less water, obviously.

The third solution is to be able to, step-by-step, change our consumption patterns. Use less meat, all kinds of agricultural products which need a lot of water etc. I think we will be obliged to do this over the next couple of decades, and we will probably have low animal protein diets in the future, which will mean we have to think of different ways to be able to provide food to the increasing global population.

There are other industries that are water-intensive that also need to be looked at in terms of their water waste such as the clothing and automobile industries. One piece of paper, for example, takes about 100 litres of water to produce while one litre of milk takes about 1,000 litres of water. Another example is that one cup of coffee takes 150 litres of water – just one cup of coffee – that’s because there is not only the water you are drinking but the water needed to prepare the coffee beans and the water used in the materials that make the coffee cup and so on.

So everything consumes water and that’s why humans will be obliged to consume less water over the coming years. 

More than one in three people globally do not have access to safe drinking water and more than 4 billion people lack adequate sanitation. How can waste water be more efficiently used and do you think global goals to provide everyone with safe and clean drinking water are still realistic?

In French, we use a phrase, parent pauvre, which means poor relative. Most of the decisions concerning access to water are not acceptable in the long term. That’s why we at the World Water Council are pushing for the financing of water and sanitation goals [concurrently].

For example, if you have a programme for a city to increase access to water for its citizens, they also need a sanitation programme. If we don’t do that, the mismatch that currently exists between water and sanitation will remain. 

There’s also another important solution which political leaders will be obliged to invest more in which is having more water coming from water reuse. If you produce water from water reuse processes then it means that it will likely have undergone sanitation treatment already which is a win-win solution [for providing safe and clean drinking water].

It’s all moving slowly but I’m optimistic concerning the increasing consciousness of people regarding water pollution – for example the pollution of our rivers, seas and oceans – and I think we will move faster in the sanitation area than in the water access area over the next decade.

Personally, I do not think that global goals to provide everyone with safe and clean drinking water [are the best solution]. I am more in favour of national and local commitments rather than global commitments. National and local efforts are stronger then [the rhetoric] around global goals where there is no authority to oversee the progress they are making. Only the population of a country or of a city can see if their leaders have done their job regarding providing access to safe and clean water.

People queue up to collect water from taps fed by a spring in Newlands in 15 May 2017 in Cape Town, South Africa. South Africa's Western Cape region declared a drought disaster on 22 May 2017 as the province battled its worst water shortages for more than 112 years. Photo: Getty Images.

With the depletion of global water supplies, how can governments avoid the politicization of water, as seen in cases such as the Nile River Basin and across the Middle East, to avoid conflicts over water?

This is a complicated issue because politicians will always do politics so it will always be difficult to avoid attempts to politicize situations. But the key is dialogue, dialogue and dialogue. That is the only way to solve water conflicts as well as better management of water because, in some regions, some of these conflicts are arising from the mismanagement of water supplies – not because of water scarcity. 

If you look at Egypt and the US, people are consuming around 800 litres [of water] per day whereas in Europe people are consuming around 200 litres per day. But why is [water consumption] in Egypt, rather than Europe, the same as in the US? Because they have considerable water losses in industries such as agriculture.

In addition, in the main cities like Cairo, there is not an adequate range of water networks, so, if in the future those living in Cairo are able to consume less water, they will need less water coming from the Nile River which will make politicization of water by politicians less likely. 

In the future, social unrest from water shortages is likely, however, I do not think it will ever lead to wars. 

Countries across the Middle East have invested in modern techniques, such as desalination plants, as an answer to water scarcity, but this can have a negative impact, notably on marine life. In contrast, some of the more ancient techniques, like rainwater harvesting, are being repurposed in cities around the world today. What is your view on these practices and what other solutions are available?

There are a lot of solutions and desalination is among them. Currently probably 100 countries in the world are using, or preparing to use, desalination as a solution so it surely is an important solution. But at the same time, reused water is developing fast and is a much cheaper option than desalination. 

Nevertheless, the price of desalination has been decreasing over the past 20 years and is now less than $1 a cubic metre, whereas 15 years ago, it was $10 a cubic metre.

Some of the negative impacts of desalination exist when you are separating the water from the salt, which can lead to disasters, for example, what has happened in the Persian Gulf. When Kuwait, Saudi Arabia, Bahrain and Qatar first used desalination treatments, the temperature of the sea was around 30°C, whereas today, it can be up to 40°C. This increasing sea temperature as a result of the desalination plants has contributed to changes in biodiversity. For example, we are seeing fish disappearing and even the growing population of giant jellyfish – which some desalination plants in Saudi Arabia are dealing with by using shredders which is another type of disaster.

Furthermore, in some regions, we need to keep in mind that desalination is not only along the coast but it’s also in the middle of the land too. For example, in the Sahara region, like in Algeria or Morocco, the water coming from the ground is salted so you need to have desalination plants inland and not on the coast. But where they keep the salt inland, that salt mixes with the rain and enters the ground, thereby destroying some of the biodiversity there too. So it must be used prudently. 

Rainwater harvesting is a technique from centuries ago and I am a great supporter of it as a solution to water scarcity in India, particularly in Rajasthan, and I think it could also be part of the solutions in some places across Africa.

That’s why I believe there needs to be an exchange of solutions because something which is successful here could be successful somewhere else. In this way, we need to be able to show a Senegalese farmer a solution which has been implemented elsewhere, such as in India, and show him this can work for you too – it’s sort of like when the Japanese built the Toyota by looking at the British Land Rover.

With billions of people threatened by the global water crisis, increased water stress could lead to more ‘Day Zeroes’, a term used in 2018 as Cape Town in South Africa came dangerously close to running out of water. In your view, what will happen if the world doesn’t adequately address the global crisis of water scarcity?

The increasing absence of water would mean not only the migration of humans to more water-abundant regions but also the absence of socioeconomic growth of any kind in some places because water scarcity will pose a risk to businesses who will be forced to move to new areas – from small businesses like a hairdresser to factories that are unable to produce any goods or provide any services. So not tackling the water crisis means not being able to tackle our own capacity to prosper by not protecting the environment we depend on.

In Cape Town, there was a lack of rain in the city which contributed to the water crisis there but there was also a lack of water management. They knew they could have a lack of rain, and when you have a lack of rain, you have the obligation to prepare a reservoir of water for the year to the next year and so on but that did not happen.

There is a French poem from Jean de La Fontaine about a grasshopper and an ant. The grasshopper just spends his time in the summer enjoying life but the ant keeps working hard throughout the summer to save all of his supplies for the winter. In this way, we need to be like the ant, preparing water supplies for today and for tomorrow.

In the case of Cape Town, there was also another element, which was that the water supplies were being used by the central government as a tool to isolate the regional governor there who was part of the opposition. So the lack of water management was almost used as a political tool as we discussed earlier.

Some say that the water scarcity we are seeing is because of climate change. Yes it is but there is also a lack of water management by humans. If you look at the people living throughout the centuries all the way to antiquity, you see that people around the world prepared reservoirs of water to keep water from the winter to the summer, from the one year to the next, whereas today, we are seeing bad water management. So, in this way, I believe climate change should not be the scapegoat of human error.




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Climate Change, Energy Transition, and the Extractive Industries Transparency Initiative (EITI)

Invitation Only Research Event

17 January 2020 - 9:30am to 5:00pm

Chatham House | 10 St James's Square | London | SW1Y 4LE

Climate change and energy transition are re-shaping the extractive sectors, and the opportunities and risks they present for governments, companies and civil society. As the central governance standard in the extractives sector, the EITI has a critical role in supporting transparency in producer countries.

This workshop will bring together experts from the energy and extractives sectors, governance and transparency, and climate risk and financial disclosure initiatives to discuss the role of governance and transparency through the transition. It will consider the appropriate role for the EITI and potential entry points for policy and practice, and the potential for coordination with related transparency and disclosure initiatives. 

Please note attendance is by invitation only.




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The prospects of carbon dioxide removal in climate policymaking within the United States

Research Event

19 November 2019 - 9:00am to 5:00pm

School of Law, University of California, Davis

This meeting formed part of a programme of work which investigates the role of negative emissions technologies (NETs) in achieving the Paris Agreement climate targets. Previous meetings held in London and Brussels have looked at integrating negative emissions into EU policy-making, the implications and degree to which NETs, and in particular bioenergy with carbon capture storage (BECCS), can be an effective climate mitigation tool. This meeting focused on the possible deployment pathways of NETs and alternatives to BECCS for the US in particular, in the context of geographical constraints and socioenvironmental implications, the role of the private sector, and appropriate governance and finance mechanisms. 

Melissa MacEwen

Project Manager, Energy, Environment and Resources Programme




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Tackling Toxic Air Pollution in Cities

Members Event

27 November 2019 - 6:00pm to 7:00pm

Chatham House | 10 St James's Square | London | SW1Y 4LE

Event participants

Camilla Hodgson, Environment Reporter, Financial Times

Dr Benjamin Barratt, Senior Lecturer in Chinese Environment, KCL

Dr Susannah Stanway MBChB MSc FRCP MD, Consultant in Medical Oncology Royal Marsden NHS Foundation Trust

Elliot Treharne, Head of Air Quality, Greater London Authority

Chair: Rob Yates, Head, Centre on Global Health Security, Chatham House

Air pollution has been classified as a cancer-causing agent with evidence showing an increased risk of lung cancer associated with increasing levels of exposure to outdoor air pollution and particulate matter.

Air pollution is also known to increase risks for other diseases, especially respiratory and heart diseases, and studies show that levels of exposure to air pollution have increased significantly in some parts of the world - mostly in rapidly industrializing countries with large populations.

In coordination with London Global Cancer Week partner organizations, this event outlines the evidence linking air pollution and cancer rates in London and other major cities.

Panellists provide a 360° picture of the impact of the rising incidence of cancer across the world, the challenges the cancer pandemic poses to the implementation of universal health coverage and the existing UK contribution to strengthening capacity in cancer management and research in developing countries.

Department/project

Members Events Team




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Hepatic monoamine oxidase B is involved in endogenous geranylgeranoic acid synthesis in mammalian liver cells [Research Articles]

Geranylgeranoic acid (GGA) originally was identified in some animals and has been developed as an agent for preventing second primary hepatoma. We previously have also identified GGA as an acyclic diterpenoid in some medicinal herbs. Recently, we reported that in human hepatoma-derived HuH-7 cells, GGA is metabolically labeled from 13C-mevalonate. Several cell-free experiments have demonstrated that GGA is synthesized through geranylgeranial by oxygen-dependent oxidation of geranylgeraniol (GGOH), but the exact biochemical events giving rise to GGA in hepatoma cells remain unclear. Monoamine oxidase B (MOAB) has been suggested to be involved in GGOH oxidation. Here, using two human hepatoma cell lines, we investigated whether MAOB contributes to GGA biosynthesis. Using either HuH-7 cell lysates or recombinant human MAOB, we found that: 1) the MAO inhibitor tranylcypromine dose-dependently downregulates endogenous GGA levels in HuH-7 cells; and 2) siRNA-mediated MAOB silencing reduces intracellular GGA levels in HuH-7 and Hep3B cells. Unexpectedly, however, CRISPR/Cas9-generated MAOB-KO human hepatoma Hep3B cells had GGA levels similar to those in MAOB-WT cells. A sensitivity of GGA levels to siRNA-mediated MAOB downregulation was recovered when the MAOB-KO cells were transfected with a MAOB-expression plasmid, suggesting that MAOB is the enzyme primarily responsible for GGOH oxidation and that some other latent metabolic pathways may maintain endogenous GGA levels in the MAOB-KO hepatoma cells. Along with the previous findings, these results provide critical insights into the biological roles of human MAOB and provide evidence that hepatic MAOB is involved in endogenous GGA biosynthesis via GGOH oxidation.




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Slc43a3 is a regulator of free fatty acid flux [Research Articles]

Adipocytes take up long chain FAs through diffusion and protein-mediated transport, whereas FA efflux is considered to occur by diffusion. To identify potential membrane proteins that are involved in regulating FA flux in adipocytes, the expression levels of 55 membrane transporters without known function were screened in subcutaneous adipose samples from obese patients before and after bariatric surgery using branched DNA methodology. Among the 33 solute carrier (SLC) transporter family members screened, the expression of 14 members showed significant changes before and after bariatric surgery. One of them, Slc43a3, increased about 2.5-fold after bariatric surgery. Further investigation demonstrated that Slc43a3 is highly expressed in murine adipose tissue and induced during adipocyte differentiation in primary preadipocytes and in OP9 cells. Knockdown of Slc43a3 with siRNA in differentiated OP9 adipocytes reduced both basal and forskolin-stimulated FA efflux, while also increasing FA uptake and lipid droplet accumulation. In contrast, overexpression of Slc43a3 decreased FA uptake in differentiated OP9 cells and resulted in decreased lipid droplet accumulation. Therefore, Slc43a3 seems to regulate FA flux in adipocytes, functioning as a positive regulator of FA efflux and as a negative regulator of FA uptake.




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Vitamin E does not prevent Western diet-induced NASH progression and increases metabolic flux dysregulation in mice [Research Articles]

Fatty liver involves ectopic lipid accumulation and dysregulated hepatic oxidative metabolism, which can progress to a state of elevated inflammation and fibrosis referred to as nonalcoholic steatohepatitis (NASH). The factors that control progression from simple steatosis to NASH are not fully known. Here, we tested the hypothesis that dietary vitamin E (VitE) supplementation would prevent NASH progression and associated metabolic alterations induced by a Western diet (WD). Hyperphagic melanocortin-4 receptor-deficient (MC4R–/–) mice were fed chow, chow+VitE, WD, or WD+VitE starting at 8 or 20 weeks of age. All groups exhibited extensive hepatic steatosis by the end of the study (28 weeks of age). WD feeding exacerbated liver disease severity without inducing proportional changes in liver triglycerides. Eight weeks of WD accelerated liver pyruvate cycling, and 20 weeks of WD extensively upregulated liver glucose and oxidative metabolism assessed by 2H/13C flux analysis. VitE supplementation failed to reduce the histological features of NASH. Rather, WD+VitE increased the abundance and saturation of liver ceramides and accelerated metabolic flux dysregulation compared with 8 weeks of WD alone. In summary, VitE did not limit NASH pathogenesis in genetically obese mice, but instead increased some indicators of metabolic dysfunction.




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Myeloid-specific deficiency of pregnane X receptor decreases atherosclerosis in LDL receptor-deficient mice [Research Articles]

The pregnane X receptor (PXR) is a nuclear receptor that can be activated by numerous drugs and xenobiotic chemicals. PXR thereby functions as a xenobiotic sensor to coordinately regulate host responses to xenobiotics by transcriptionally regulating many genes involved in xenobiotic metabolism. We have previously reported that PXR has pro-atherogenic effects in animal models, but how PXR contributes to atherosclerosis development in different tissues or cell types remains elusive. In this study, we generated an LDL receptor-deficient mouse model with myeloid-specific PXR deficiency (PXRMyeLDLR–/–) to elucidate the role of macrophage PXR signaling in atherogenesis. The myeloid PXR deficiency did not affect metabolic phenotypes and plasma lipid profiles, but PXRMyeLDLR–/– mice had significantly decreased atherosclerosis at both aortic root and brachiocephalic arteries compared with control littermates. Interestingly, the PXR deletion did not affect macrophage adhesion and migration properties, but reduced lipid accumulation and foam cell formation in the macrophages. PXR deficiency also led to decreased expression of the scavenger receptor CD36 and impaired lipid uptake in macrophages of the PXRMyeLDLR–/– mice. Further, RNA-Seq analysis indicated that treatment with a prototypical PXR ligand affects the expression of many atherosclerosis-related genes in macrophages in vitro. These findings reveal a pivotal role of myeloid PXR signaling in atherosclerosis development and suggest that PXR may be a potential therapeutic target in atherosclerosis management.




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Hematopoiesis is regulated by cholesterol efflux pathways and lipid rafts: connections with cardiovascular diseases [Thematic Reviews]

Lipid rafts are highly ordered regions of the plasma membrane that are enriched in cholesterol and sphingolipids and play important roles in many cells. In hematopoietic stem and progenitor cells (HSPCs), lipid rafts house receptors critical for normal hematopoiesis. Lipid rafts also can bind and sequester kinases that induce negative feedback pathways to limit proliferative cytokine receptor cycling back to the cell membrane. Modulation of lipid rafts occurs through an array of mechanisms, with optimal cholesterol efflux one of the major regulators. As such, cholesterol homeostasis also regulates hematopoiesis. Increased lipid raft content, which occurs in response to changes in cholesterol efflux in the membrane, can result in prolonged receptor occupancy in the cell membrane and enhanced signaling. In addition, certain diseases, like diabetes, may contribute to lipid raft formation and affect cholesterol retention in rafts. In this review, we explore the role of lipid raft-related mechanisms in hematopoiesis and CVD (specifically, atherosclerosis) and discuss how defective cholesterol efflux pathways in HSPCs contribute to expansion of lipid rafts, thereby promoting myelopoiesis and thrombopoiesis. We also discuss the utility of cholesterol acceptors in contributing to lipid raft regulation and disruption, and highlight the potential to manipulate these pathways for therapeutic gain in CVD as well as other disorders with aberrant hematopoiesis.




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Lipid rafts and pathogens: the art of deception and exploitation [Thematic Reviews]

Lipid rafts, solid regions of the plasma membrane enriched in cholesterol and glycosphingolipids, are essential parts of a cell. Functionally, lipid rafts present a platform that facilitates interaction of cells with the outside world. However, the unique properties of lipid rafts required to fulfill this function at the same time make them susceptible to exploitation by pathogens. Many steps of pathogen interaction with host cells, and sometimes all steps within the entire lifecycle of various pathogens, rely on host lipid rafts. Such steps as binding of pathogens to the host cells, invasion of intracellular parasites into the cell, the intracellular dwelling of parasites, microbial assembly and exit from the host cell, and microbe transfer from one cell to another all involve lipid rafts. Interaction also includes modification of lipid rafts in host cells, inflicted by pathogens from both inside and outside the cell, through contact or remotely, to advance pathogen replication, to utilize cellular resources, and/or to mitigate immune response. Here, we provide a systematic overview of how and why pathogens interact with and exploit host lipid rafts, as well as the consequences of this interaction for the host, locally and systemically, and for the microbe. We also raise the possibility of modulation of lipid rafts as a therapeutic approach against a variety of infectious agents.




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GPIHBP1, a partner protein for lipoprotein lipase, is expressed only in capillary endothelial cells [Images In Lipid Research]