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Bitcoin Pushes Past $90,000

After setting a record high yesterday, Bitcoin continued its remarkable rally, briefly surging past the $90,000 mark. Since Election Day, the cryptocurrency has gained nearly 30%, adding approximately $20,000 to its value. From a previous report: Bitcoin hit a peak of $90,000 on Coinbase at 12:56 PST on Nov. 12 and is up 11% over the past day, per TradingView data. The cryptocurrency is now just over 11% away from reaching $100,000.

Read more of this story at Slashdot.




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Politicians not ambitious enough to save nature, say scientists

Representatives of 196 countries have been meeting in Cali, Colombia, as part of the COP biodiversity summit.




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Badgers, birds and bridges star in photo exhibition

A nature reserve's photography club is holding its annual display at the end of August.




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News24 | Booker Prize 2024: Samantha Harvey's Orbital soars with astronauts' earth reflections

Samantha Harvey's Orbital wins the Booker Prize. The 136-page space novel explores astronauts' reflections on Earth, touching on mourning, desire, and the climate crisis.




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Bitcoin approaches $90,000 as post-election record streak rages on

Traders are eyeing $100,000 for bitcoin by the end of the year potentially. The total crypto market value has surged to $3 trillion since the election.





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Bitcoin’s market cap briefly overtakes silver’s at $89,000 level

Earlier today, Bitcoin’s market cap briefly overtook that of silver, as the world’s first cryptocurrency reached never-before-seen heights. CoinMarketCap data… Continue reading Bitcoin’s market cap briefly overtakes silver’s at $89,000 level

The post Bitcoin’s market cap briefly overtakes silver’s at $89,000 level appeared first on ReadWrite.





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Dogecoin at the Edge of a Major Breakout – Could $2 Be Possible with Bitcoin Dominance Holding Strong?

Dogecoin has experienced a significant surge in value since last month, with impressive price gains continuing today as it trades… Continue reading Dogecoin at the Edge of a Major Breakout – Could $2 Be Possible with Bitcoin Dominance Holding Strong?

The post Dogecoin at the Edge of a Major Breakout – Could $2 Be Possible with Bitcoin Dominance Holding Strong? appeared first on ReadWrite.






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FUS contributes to mTOR-dependent inhibition of translation [Signal Transduction]

The amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD)–linked RNA-binding protein called FUS (fused in sarcoma) has been implicated in several aspects of RNA regulation, including mRNA translation. The mechanism by which FUS affects the translation of polyribosomes has not been established. Here we show that FUS can associate with stalled polyribosomes and that this association is sensitive to mTOR (mammalian target of rapamycin) kinase activity. Specifically, we show that FUS association with polyribosomes is increased by Torin1 treatment or when cells are cultured in nutrient-deficient media, but not when cells are treated with rapamycin, the allosteric inhibitor of mTORC1. Moreover, we report that FUS is necessary for efficient stalling of translation because deficient cells are refractory to the inhibition of mTOR-dependent signaling by Torin1. We also show that ALS-linked FUS mutants R521G and P525L associate abundantly with polyribosomes and decrease global protein synthesis. Importantly, the inhibitory effect on translation by FUS is impaired by mutations that reduce its RNA-binding affinity. These findings demonstrate that FUS is an important RNA-binding protein that mediates translational repression through mTOR-dependent signaling and that ALS-linked FUS mutants can cause a toxic gain of function in the cytoplasm by repressing the translation of mRNA at polyribosomes.




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International Arbitration: Exploring India’s Potential

International Arbitration: Exploring India’s Potential 15 November 2019 — 9:30AM TO 5:30PM Anonymous (not verified) 17 October 2019 Chatham House | 10 St James's Square | London | SW1Y 4LE

As India’s economic clout grows, so does its aspiration to become a favoured arbitration destination in a globalized world dominated by foreign investments flows and cross border transactions. India’s bid to enhance its status as an arbitration destination depends largely on the suitability of its legal environment in meeting the demands of an increasingly sophisticated approach to disputed resolution. This conference will assess these, and other related, issues.

To register your interest in attending this event, please contact Nisha Ramdas by phone +91 9650977833 or by e-mail nisha@globaldialoguereview.com.




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Parts per Million Mass Accuracy on an Orbitrap Mass Spectrometer via Lock Mass Injection into a C-trap

Jesper V. Olsen
Dec 1, 2005; 4:2010-2021
Technology




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A drug-resistant {beta}-lactamase variant changes the conformation of its active-site proton shuttle to alter substrate specificity and inhibitor potency [Microbiology]

Lys234 is one of the residues present in class A β-lactamases that is under selective pressure due to antibiotic use. Located adjacent to proton shuttle residue Ser130, it is suggested to play a role in proton transfer during catalysis of the antibiotics. The mechanism underpinning how substitutions in this position modulate inhibitor efficiency and substrate specificity leading to drug resistance is unclear. The K234R substitution identified in several inhibitor-resistant β-lactamase variants is associated with decreased potency of the inhibitor clavulanic acid, which is used in combination with amoxicillin to overcome β-lactamase–mediated antibiotic resistance. Here we show that for CTX-M-14 β-lactamase, whereas Lys234 is required for hydrolysis of cephalosporins such as cefotaxime, either lysine or arginine is sufficient for hydrolysis of ampicillin. Further, by determining the acylation and deacylation rates for cefotaxime hydrolysis, we show that both rates are fast, and neither is rate-limiting. The K234R substitution causes a 1500-fold decrease in the cefotaxime acylation rate but a 5-fold increase in kcat for ampicillin, suggesting that the K234R enzyme is a good penicillinase but a poor cephalosporinase due to slow acylation. Structural results suggest that the slow acylation by the K234R enzyme is due to a conformational change in Ser130, and this change also leads to decreased inhibition potency of clavulanic acid. Because other inhibitor resistance mutations also act through changes at Ser130 and such changes drastically reduce cephalosporin but not penicillin hydrolysis, we suggest that clavulanic acid paired with an oxyimino-cephalosporin rather than penicillin would impede the evolution of resistance.




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The UK needs to address growth and debt problems if it is to match resources to ambitions on international priorities

The UK needs to address growth and debt problems if it is to match resources to ambitions on international priorities Expert comment LJefferson

The budget marks the lowest amount in decades the country has spent on development, and it is struggling to fund other international priorities too.

The UK’s Chancellor Rachel Reeves unveiled her much-anticipated budget last week, the first of the new Labour government. Labour is in a difficult place. There are numerous calls on the public purse and public services are not performing well. Meanwhile, public debt remains close to 100 per cent of GDP, and there has been a long run of sluggish growth.
 
Reeves argues with some justification that the previous government left her a challenging inheritance – gaps in this year’s spending plans, and persistent debt questions left unresolved. More importantly, there are longer-term concerns about the sustainability of UK public spending – the country’s Office for Budget Responsibility has warned public debt could triple by the 2070s due to an ageing population, the climate crisis, and security risks. The focus has understandably been on kitchen table questions about tax rises and funding public services.
 
But this picture also has longstanding implications for international policy – on whether the UK can afford to invest in its foreign policy. The Chancellor did announce an increase of £2.9bn for defence. But the question of whether the UK can get on a sustainable path to spending 2.5 per cent of GDP on defence is still being worked through in the ongoing Strategic Review, and remains challenging despite increasingly urgent warnings from parliamentary committees about the UK’s defence readiness.

The budget also marks one of the lowest amounts in recent years the UK will spend on development overseas, despite setting an ambition to reset relations with the Global South and recover the UK’s role as a leader in international development.
  
The UK needs to either match resources to ambition, spend much more efficiently, or, in the case of the aid budget, it could seek to focus on priorities that are less dependent on spending. But even this will still require consistent resources, alongside significant diplomatic attention, intellectual leadership, and focus.

Longer-term, the UK may need to consider larger questions: addressing broader problems with its lack of growth and productivity will be critical to fund an expansive international role.

With this budget, UK aid spent overseas is at a historic low

In 2020 the UK government cut its goal for spending on international development to 0.5 per cent of Gross National Income (GNI), ending a longstanding policy of spending 0.7 per cent. Labour have echoed this, promising to only return to previous levels when fiscal circumstances allow.
 
But this masks a bigger issue. Since 2022, significant amounts of the UK’s aid budget have been spent on accommodation for asylum seekers in the UK. This is within the rules governing aid, but reduces the amount spent on reducing poverty overseas. In 2023 this spending was 28 per cent of the £15.4bn aid budget. In 2016, it was 3.2 per cent

Previous Chancellor Jeremy Hunt quietly allowed a top-up of aid spending over the last two fiscal years to offset how much is being spent at home on asylum seeker accommodation. That provided an additional £2.5 billion for 2022–23 and 2023–24.

But Rachel Reeves declined to provide extra funding this time, meaning the amount being spent overseas is likely the lowest its been since 2007 – an effective cut – under a Labour government.

The Minister for Development, Anneliese Dodds, speaking at Chatham House last month, said the government is working on clearing the backlog of asylum claims, which should free up more to spend overseas.

But beyond this there has been little clarity on plans to address the issue. And costs for asylum seeker accommodation have increased significantly – the UK appears to spend much more than comparator countries per head, according to the Center for Global Development, raising questions about how this spending is managed.

Development is not just about money – but money is important

The UK debate about development has often focused on the 0.7 per cent figure, which can distract from larger questions about what development policy is intended to achieve. As many experts have argued, development aid is about more than spending, and the wider, complex process by which the UK contributes to broad-based growth and stability for poorer countries is not about hitting a specific number.
 
There are things the UK can do that aren’t about spending more directly. This might include focusing on priorities like reforming multilateral development banks so they provide more low-cost public finance, and more flexible and agile loans to poorer countries – a priority echoed by Dodds. It might also incorporate focusing more broadly on helping developing countries attract more investment to bolster growth. 

The UK debate about development has often focused on the 0.7 per cent figure, which can distract from larger questions about what development policy is intended to achieve. 

There is also the issue of developing country debt, much of which is held by the private sector. Dodds previously said, when she was shadow chancellor, she might consider changing the law to address this issue. However,  she declined to recommit to this when questioned at Chatham House. 

None of this can be done unilaterally – on debt, for example, the UK has spearheaded some creative policies. Its UK Export Finance body developed climate-resilient debt clauses – agreements that countries can pause debt repayments in the event of a climate shock – but the UK holds limited amounts of developing country debt. Impact will only come by galvanizing and coordinating others to adopt similar approaches.




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Unfulfilled Ambitions: the State of Democracy in Africa




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The Challenge of Ambition? Unlocking Climate Action and the Outcomes of COP24




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The Climate Briefing: Episode 2 - European Climate Ambitions




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Normal high density lipoprotein inhibits three steps in the formation of mildly oxidized low density lipoprotein: steps 2 and 3

Mohamad Navab
Sep 1, 2000; 41:1495-1508
Articles




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Normal high density lipoprotein inhibits three steps in the formation of mildly oxidized low density lipoprotein: step 1

Mohamad Navab
Sep 1, 2000; 41:1481-1494
Articles




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Inhibition of the SUV4-20 H1 histone methyltransferase increases frataxin expression in Friedreich's ataxia patient cells [Gene Regulation]

The molecular mechanisms of reduced frataxin (FXN) expression in Friedreich's ataxia (FRDA) are linked to epigenetic modification of the FXN locus caused by the disease-associated GAA expansion. Here, we identify that SUV4-20 histone methyltransferases, specifically SUV4-20 H1, play an important role in the regulation of FXN expression and represent a novel therapeutic target. Using a human FXN–GAA–Luciferase repeat expansion genomic DNA reporter model of FRDA, we screened the Structural Genomics Consortium epigenetic probe collection. We found that pharmacological inhibition of the SUV4-20 methyltransferases by the tool compound A-196 increased the expression of FXN by ∼1.5-fold in the reporter cell line. In several FRDA cell lines and patient-derived primary peripheral blood mononuclear cells, A-196 increased FXN expression by up to 2-fold, an effect not seen in WT cells. SUV4-20 inhibition was accompanied by a reduction in H4K20me2 and H4K20me3 and an increase in H4K20me1, but only modest (1.4–7.8%) perturbation in genome-wide expression was observed. Finally, based on the structural activity relationship and crystal structure of A-196, novel small molecule A-196 analogs were synthesized and shown to give a 20-fold increase in potency for increasing FXN expression. Overall, our results suggest that histone methylation is important in the regulation of FXN expression and highlight SUV4-20 H1 as a potential novel therapeutic target for FRDA.





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Identification of compounds that bind the centriolar protein SAS-6 and inhibit its oligomerization [Computational Biology]

Centrioles are key eukaryotic organelles that are responsible for the formation of cilia and flagella, and for organizing the microtubule network and the mitotic spindle in animals. Centriole assembly requires oligomerization of the essential protein spindle assembly abnormal 6 (SAS-6), which forms a structural scaffold templating the organization of further organelle components. A dimerization interaction between SAS-6 N-terminal “head” domains was previously shown to be essential for protein oligomerization in vitro and for function in centriole assembly. Here, we developed a pharmacophore model allowing us to assemble a library of low-molecular-weight ligands predicted to bind the SAS-6 head domain and inhibit protein oligomerization. We demonstrate using NMR spectroscopy that a ligand from this family binds at the head domain dimerization site of algae, nematode, and human SAS-6 variants, but also that another ligand specifically recognizes human SAS-6. Atomistic molecular dynamics simulations starting from SAS-6 head domain crystallographic structures, including that of the human head domain which we now resolve, suggest that ligand specificity derives from favorable Van der Waals interactions with a hydrophobic cavity at the dimerization site.




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Co-crystal structures of HIV TAR RNA bound to lab-evolved proteins show key roles for arginine relevant to the design of cyclic peptide TAR inhibitors [Molecular Biophysics]

RNA-protein interfaces control key replication events during the HIV-1 life cycle. The viral trans-activator of transcription (Tat) protein uses an archetypal arginine-rich motif (ARM) to recruit the host positive transcription elongation factor b (pTEFb) complex onto the viral trans-activation response (TAR) RNA, leading to activation of HIV transcription. Efforts to block this interaction have stimulated production of biologics designed to disrupt this essential RNA-protein interface. Here, we present four co-crystal structures of lab-evolved TAR-binding proteins (TBPs) in complex with HIV-1 TAR. Our results reveal that high-affinity binding requires a distinct sequence and spacing of arginines within a specific β2-β3 hairpin loop that arose during selection. Although loops with as many as five arginines were analyzed, only three arginines could bind simultaneously with major-groove guanines. Amino acids that promote backbone interactions within the β2-β3 loop were also observed to be important for high-affinity interactions. Based on structural and affinity analyses, we designed two cyclic peptide mimics of the TAR-binding β2-β3 loop sequences present in two high-affinity TBPs (KD values of 4.2 ± 0.3 and 3.0 ± 0.3 nm). Our efforts yielded low-molecular weight compounds that bind TAR with low micromolar affinity (KD values ranging from 3.6 to 22 μm). Significantly, one cyclic compound within this series blocked binding of the Tat-ARM peptide to TAR in solution assays, whereas its linear counterpart did not. Overall, this work provides insight into protein-mediated TAR recognition and lays the ground for the development of cyclic peptide inhibitors of a vital HIV-1 RNA-protein interaction.




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Cities as climate leaders: Progress and ambition

Cities as climate leaders: Progress and ambition 1 December 2021 — 12:00PM TO 1:00PM Anonymous (not verified) 16 November 2021 Online

This panel discusses the progress cities have already made, whether progress at COP26 was enough, and what more needs to be done to scale action and ambition internationally.

Cities are critical to tackling the pressing environmental challenges of our time. While they now account for an estimated 75 per cent of global CO2 emissions, cities also offer a unique opportunity for devolved leadership on climate action. At the recent COP26, some significant progress was made in elevating cities’ position on climate action with a flurry of announcements and commitments.

For example, more than 1,000 cities are now committed to the Cities Race to Zero and C40’s Clean Construction Declaration saw multiple cities committing to at least halving emissions from initial construction of buildings by 2030. A raft of financing commitments were also made to improve urban resilience in the face of climate change.

This builds on existing momentum before COP26. Over 50 world cities are now on track to meet Paris Agreement and the Marrakech Partnership is further enabling collaboration between governments and cities within the UNFCCC processes.

Therefore, how we design, build, govern and use our urban places will be a key factor for decarbonization and climate change adaptation.

On the back of COP26, this panel brings together leaders from across urban development sectors to discuss the progress cities have already made, whether progress at COP26 was enough, and what more needs to be done to scale action and ambition internationally. 




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Can a chemotaxis-consumption system recover from a measure-type aggregation state in arbitrary dimension?

Frederic Heihoff
Proc. Amer. Math. Soc. 152 (), 5229-5247.
Abstract, references and article information





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The Nightly Habit Cardiologists Are Begging You to Never, Ever Do




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Mouse Ifit1b is a cap1-RNA-binding protein that inhibits mouse coronavirus translation and is regulated by complexing with Ifit1c [RNA]

Knockout mouse models have been extensively used to study the antiviral activity of IFIT (interferon-induced protein with tetratricopeptide repeats). Human IFIT1 binds to cap0 (m7GpppN) RNA, which lacks methylation on the first and second cap-proximal nucleotides (cap1, m7GpppNm, and cap2, m7GpppNmNm, respectively). These modifications are signatures of “self” in higher eukaryotes, whereas unmodified cap0-RNA is recognized as foreign and, therefore, potentially harmful to the host cell. IFIT1 inhibits translation at the initiation stage by competing with the cap-binding initiation factor complex, eIF4F, restricting infection by certain viruses that possess “nonself” cap0-mRNAs. However, in mice and other rodents, the IFIT1 orthologue has been lost, and the closely related Ifit1b has been duplicated twice, yielding three paralogues: Ifit1, Ifit1b, and Ifit1c. Although murine Ifit1 is similar to human IFIT1 in its cap0-RNA–binding selectivity, the roles of Ifit1b and Ifit1c are unknown. Here, we found that Ifit1b preferentially binds to cap1-RNA, whereas binding is much weaker to cap0- and cap2-RNA. In murine cells, we show that Ifit1b can modulate host translation and restrict WT mouse coronavirus infection. We found that Ifit1c acts as a stimulatory cofactor for both Ifit1 and Ifit1b, promoting their translation inhibition. In this way, Ifit1c acts in an analogous fashion to human IFIT3, which is a cofactor to human IFIT1. This work clarifies similarities and differences between the human and murine IFIT families to facilitate better design and interpretation of mouse models of human infection and sheds light on the evolutionary plasticity of the IFIT family.




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{alpha}2-Macroglobulin-like protein 1 can conȷugate and inhibit proteases through their hydroxyl groups, because of an enhanced reactivity of its thiol ester [Protein Structure and Folding]

Proteins in the α-macroglobulin (αM) superfamily use thiol esters to form covalent conjugation products upon their proteolytic activation. αM protease inhibitors use theirs to conjugate proteases and preferentially react with primary amines (e.g. on lysine side chains), whereas those of αM complement components C3 and C4B have an increased hydroxyl reactivity that is conveyed by a conserved histidine residue and allows conjugation to cell surface glycans. Human α2-macroglobulin–like protein 1 (A2ML1) is a monomeric protease inhibitor but has the hydroxyl reactivity–conveying histidine residue. Here, we have investigated the role of hydroxyl reactivity in a protease inhibitor by comparing recombinant WT A2ML1 and the A2ML1 H1084N mutant in which this histidine is removed. Both of A2ML1s' thiol esters were reactive toward the amine substrate glycine, but only WT A2ML1 reacted with the hydroxyl substrate glycerol, demonstrating that His-1084 increases the hydroxyl reactivity of A2ML1's thiol ester. Although both A2ML1s conjugated and inhibited thermolysin, His-1084 was required for the conjugation and inhibition of acetylated thermolysin, which lacks primary amines. Using MS, we identified an ester bond formed between a thermolysin serine residue and the A2ML1 thiol ester. These results demonstrate that a histidine-enhanced hydroxyl reactivity can contribute to protease inhibition by an αM protein. His-1084 did not improve A2ML1's protease inhibition at pH 5, indicating that A2ML1's hydroxyl reactivity is not an adaption to its acidic epidermal environment.




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The cation diffusion facilitator protein MamM's cytoplasmic domain exhibits metal-type dependent binding modes and discriminates against Mn2+ [Molecular Biophysics]

Cation diffusion facilitator (CDF) proteins are a conserved family of divalent transition metal cation transporters. CDF proteins are usually composed of two domains: the transmembrane domain, in which the metal cations are transported through, and a regulatory cytoplasmic C-terminal domain (CTD). Each CDF protein transports either one specific metal or multiple metals from the cytoplasm, and it is not known whether the CTD takes an active regulatory role in metal recognition and discrimination during cation transport. Here, the model CDF protein MamM, an iron transporter from magnetotactic bacteria, was used to probe the role of the CTD in metal recognition and selectivity. Using a combination of biophysical and structural approaches, the binding of different metals to MamM CTD was characterized. Results reveal that different metals bind distinctively to MamM CTD in terms of their binding sites, thermodynamics, and binding-dependent conformations, both in crystal form and in solution, which suggests a varying level of functional discrimination between CDF domains. Furthermore, these results provide the first direct evidence that CDF CTDs play a role in metal selectivity. We demonstrate that MamM's CTD can discriminate against Mn2+, supporting its postulated role in preventing magnetite formation poisoning in magnetotactic bacteria via Mn2+ incorporation.




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Antibiotic binding releases autoinhibition of the TipA multidrug-resistance transcriptional regulator [Gene Regulation]

Investigations of bacterial resistance strategies can aid in the development of new antimicrobial drugs as a countermeasure to the increasing worldwide prevalence of bacterial antibiotic resistance. One such strategy involves the TipA class of transcription factors, which constitute minimal autoregulated multidrug resistance (MDR) systems against diverse antibiotics. However, we have insufficient information regarding how antibiotic binding induces transcriptional activation to design molecules that could interfere with this process. To learn more, we determined the crystal structure of SkgA from Caulobacter crescentus as a representative TipA protein. We identified an unexpected spatial orientation and location of the antibiotic-binding TipAS effector domain in the apo state. We observed that the α6–α7 region of the TipAS domain, which is canonically responsible for forming the lid of antibiotic-binding cleft to tightly enclose the bound antibiotic, is involved in the dimeric interface and stabilized via interaction with the DNA-binding domain in the apo state. Further structural and biochemical analyses demonstrated that the unliganded TipAS domain sterically hinders promoter DNA binding but undergoes a remarkable conformational shift upon antibiotic binding to release this autoinhibition via a switch of its α6–α7 region. Hence, the promoters for MDR genes including tipA and RNA polymerases become available for transcription, enabling efficient antibiotic resistance. These insights into the molecular mechanism of activation of TipA proteins advance our understanding of TipA proteins, as well as bacterial MDR systems, and may provide important clues to block bacterial resistance.




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EU Budget Battle Could Undermine its International Ambitions

17 July 2020

Alice Billon-Galland

Research Associate, Europe Programme

Vassilis Ntousas

Stavros Niarchos Foundation Academy Fellow, Europe Programme
EU’s heated budget negotiations risk producing a compromise at the expense of its longer-term international agenda.

GettyImages-1227664182-edit.jpg

German Chancellor Angela Merkel (L) talks with French President Emmanuel Macron (C) and President of European Council Charles Michel (R) during an EU summit on 17 July 2020 in Brussels, Belgium. Photo by Thierry Monasse/Getty Images.

With all EU economies still reeling from COVID-19, the ongoing heated deliberations on the bloc’s next budget, which will determine the amount of money matching its priorities for the next seven years, have taken on an urgency rarely felt in Brussels.

Relying in part on an unprecedentedly large volume of jointly issued debt, the European Commission’s plan for a €750 billion coronavirus recovery instrument is embedded within a revamped proposal for the EU’s long-term budget, of €1.1 trillion for the 2021-27 period. 

Now the ball is in the member states’ court. All seem to agree that getting the EU budget right is crucial to fostering an economic recovery and ensuring the Union is on the right track towards its long-term pre-COVID objectives, from increasing its strategic autonomy to reaching climate neutrality by 2050. However, stark differences persist as to what that means in practice.

Most of the core divisions predate the pandemic’s outbreak. In a special European Council meeting in February, leaders failed to find common ground on the Union’s first post-Brexit budget. Net contributor countries, such as Austria, Denmark, Sweden and the Netherlands — the so-called ‘Frugal Four’— refused to agree to higher overall spending and instead advocated for cuts in the Common Agricultural Policy or cohesion funds, meeting the resistance of states like France and Portugal.

These early divisions foreshadowed the risk of a budget compromise that would leave little space for new policy priorities. The COVID-induced economic crisis has made a traditionally fraught political process even more difficult, putting the squeeze on what were previously priority areas of funding.

The Frugal Four agree on the need for the coronavirus recovery plan but vehemently oppose the volume of grants or the issuance of too much common debt in the proposed instrument, reflecting the unpopularity of these proposals with their domestic audiences. Hungary has also threatened to derail progress on the EU’s rescue plan if rule of law criteria are weaved into mechanisms for the allocation of EU funding.

As European leaders reconvene at the 17-18 July Council meeting, EU Council President Michel proposed a revised 'negotiating box' in preparation for the discussions. The document, which tries to bridge these intra-bloc divisions, bolts the demands for short-term recovery onto the EU’s longer-term ambitions. For instance, it sets an increased target of 30 per cent of funding to go toward climate-related projects, which is necessary for the Union’s green transformation. It also retains the link between the rule of law and EU funding — despite Budapest’s opposition — which is critical for the bloc’s internal accountability and transparency, and external credibility. Furthermore, it proposes a set of new mechanisms through which the EU can sustainably raise its own revenue, including a plastics levy as well as more controversial carbon border tax and digital levy.

Yet in several other critical ways, Michel’s proposals fall short. This is particularly true for some of the more ‘geopolitical’ goals of the Union, as previously expressed by Commission president Ursula von der Leyen, or the repeated calls by the Union’s high representative that the EU should learn to use the language of power.

For all the rhetoric around the EU’s need to boost its ability to act more autonomously in the field of security and defence, reductions in important thematic programmes in this domain could result in a critical loss of momentum, if confirmed. For instance, in Michel’s proposals, flagship defence initiatives such as the European defence fund and the military mobility plan are facing cuts of about 39 per cent and 74 per cent respectively (to some €7 billion for the former and €1.5 billion for the latter) compared with the initial Commission proposal of 2018.

Moreover, the tragic developments at the Greece-Turkey border in the beginning of the year might have brought migration back to the forefront of the EU’s attention, but the overall funding for migration and border management is also significantly lower compared to initial proposals. This serves as another example of a discrepancy between the figures on the table today and those that the EU commission had previously regarded as necessary to address the challenges the bloc faces.

Similarly, under the Council president’s latest proposal, the combined funding allocated for the EU’s external action (under the ‘Neighbourhood and the World’ heading) is lower than the figures in the Commission’s May announcements – from €118.2 billion to €113.9 billion overall. This represents an increase compared to the previous EU budget, but it is not in line with the elevated ambitions recognized by the Commission in May, which have only been made more compelling by the pandemic.

Brokering a deal in EU budget negotiations has always been a brutal affair, requiring sacrifices and compromise under the pressure of a ticking clock. 2020 was never likely to be an exception to this rule; but the pandemic has complicated the politics and raised the stakes.

The risk is that the budget negotiations lead to a compromise which, while delivering a historic coronavirus package, does not adequately support some of the key elements of the Union’s long-term agenda, especially its international ambitions.




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Inhibition of mitochondrial oxidative metabolism attenuates EMCV replication and protects {beta}-cells from virally mediated lysis [Immunology]

Viral infection is one environmental factor that may contribute to the initiation of pancreatic β-cell destruction during the development of autoimmune diabetes. Picornaviruses, such as encephalomyocarditis virus (EMCV), induce a pro-inflammatory response in islets leading to local production of cytokines, such as IL-1, by resident islet leukocytes. Furthermore, IL-1 is known to stimulate β-cell expression of iNOS and production of the free radical nitric oxide. The purpose of this study was to determine whether nitric oxide contributes to the β-cell response to viral infection. We show that nitric oxide protects β-cells against virally mediated lysis by limiting EMCV replication. This protection requires low micromolar, or iNOS-derived, levels of nitric oxide. At these concentrations nitric oxide inhibits the Krebs enzyme aconitase and complex IV of the electron transport chain. Like nitric oxide, pharmacological inhibition of mitochondrial oxidative metabolism attenuates EMCV-mediated β-cell lysis by inhibiting viral replication. These findings provide novel evidence that cytokine signaling in β-cells functions to limit viral replication and subsequent β-cell lysis by attenuating mitochondrial oxidative metabolism in a nitric oxide–dependent manner.




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In crystallo screening for proline analog inhibitors of the proline cycle enzyme PYCR1 [Metabolism]

Pyrroline-5-carboxylate reductase 1 (PYCR1) catalyzes the biosynthetic half-reaction of the proline cycle by reducing Δ1-pyrroline-5-carboxylate (P5C) to proline through the oxidation of NAD(P)H. Many cancers alter their proline metabolism by up-regulating the proline cycle and proline biosynthesis, and knockdowns of PYCR1 lead to decreased cell proliferation. Thus, evidence is growing for PYCR1 as a potential cancer therapy target. Inhibitors of cancer targets are useful as chemical probes for studying cancer mechanisms and starting compounds for drug discovery; however, there is a notable lack of validated inhibitors for PYCR1. To fill this gap, we performed a small-scale focused screen of proline analogs using X-ray crystallography. Five inhibitors of human PYCR1 were discovered: l-tetrahydro-2-furoic acid, cyclopentanecarboxylate, l-thiazolidine-4-carboxylate, l-thiazolidine-2-carboxylate, and N-formyl l-proline (NFLP). The most potent inhibitor was NFLP, which had a competitive (with P5C) inhibition constant of 100 μm. The structure of PYCR1 complexed with NFLP shows that inhibitor binding is accompanied by conformational changes in the active site, including the translation of an α-helix by 1 Å. These changes are unique to NFLP and enable additional hydrogen bonds with the enzyme. NFLP was also shown to phenocopy the PYCR1 knockdown in MCF10A H-RASV12 breast cancer cells by inhibiting de novo proline biosynthesis and impairing spheroidal growth. In summary, we generated the first validated chemical probe of PYCR1 and demonstrated proof-of-concept for screening proline analogs to discover inhibitors of the proline cycle.




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Inhibition of oxidative metabolism by nitric oxide restricts EMCV replication selectively in pancreatic beta-cells [Enzymology]

Environmental factors, such as viral infection, are proposed to play a role in the initiation of autoimmune diabetes. In response to encephalomyocarditis virus (EMCV) infection, resident islet macrophages release the pro-inflammatory cytokine IL-1β, to levels that are sufficient to stimulate inducible nitric oxide synthase (iNOS) expression and production of micromolar levels of the free radical nitric oxide in neighboring β-cells. We have recently shown that nitric oxide inhibits EMCV replication and EMCV-mediated β-cell lysis and that this protection is associated with an inhibition of mitochondrial oxidative metabolism. Here we show that the protective actions of nitric oxide against EMCV infection are selective for β-cells and associated with the metabolic coupling of glycolysis and mitochondrial oxidation that is necessary for insulin secretion. Inhibitors of mitochondrial respiration attenuate EMCV replication in β-cells, and this inhibition is associated with a decrease in ATP levels. In mouse embryonic fibroblasts (MEFs), inhibition of mitochondrial metabolism does not modify EMCV replication or decrease ATP levels. Like most cell types, MEFs have the capacity to uncouple the glycolytic utilization of glucose from mitochondrial respiration, allowing for the maintenance of ATP levels under conditions of impaired mitochondrial respiration. It is only when MEFs are forced to use mitochondrial oxidative metabolism for ATP generation that mitochondrial inhibitors attenuate viral replication. In a β-cell selective manner, these findings indicate that nitric oxide targets the same metabolic pathways necessary for glucose stimulated insulin secretion for protection from viral lysis.




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One Bite from the Apple, One Bite from the Orange in the PRECISE-MDT Study




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Reply: One Bite from the Apple, One Bite from the Orange in the PRECISE-MDT Study and Limitations of Retrospective Study Design and Potential Bias in the PRECISE-MDT Study




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Kinome Profiling of Primary Endometrial Tumors Using Multiplexed Inhibitor Beads and Mass Spectrometry Identifies SRPK1 as Candidate Therapeutic Target

Alison M. Kurimchak
Dec 1, 2020; 19:2068-2089
Research




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A potential role for the Gsdf-eEF1{alpha} complex in inhibiting germ cell proliferation: A protein-interaction analysis in medaka (Oryzias latipes) from a proteomics perspective

Xinting Zhang
Dec 8, 2020; 0:RA120.002306v1-mcp.RA120.002306
Research




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Human pancreatic cancer cells under nutrient deprivation are vulnerable to redox system inhibition [Cell Biology]

Large regions in tumor tissues, particularly pancreatic cancer, are hypoxic and nutrient-deprived because of unregulated cell growth and insufficient vascular supply. Certain cancer cells, such as those inside a tumor, can tolerate these severe conditions and survive for prolonged periods. We hypothesized that small molecular agents, which can preferentially reduce cancer cell survival under nutrient-deprived conditions, could function as anticancer drugs. In this study, we constructed a high-throughput screening system to identify such small molecules and screened chemical libraries and microbial culture extracts. We were able to determine that some small molecular compounds, such as penicillic acid, papyracillic acid, and auranofin, exhibit preferential cytotoxicity to human pancreatic cancer cells under nutrient-deprived compared with nutrient-sufficient conditions. Further analysis revealed that these compounds target to redox systems such as GSH and thioredoxin and induce accumulation of reactive oxygen species in nutrient-deprived cancer cells, potentially contributing to apoptosis under nutrient-deprived conditions. Nutrient-deficient cancer cells are often deficient in GSH; thus, they are susceptible to redox system inhibitors. Targeting redox systems might be an attractive therapeutic strategy under nutrient-deprived conditions of the tumor microenvironment.




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PDE5 inhibition rescues mitochondrial dysfunction and angiogenic responses induced by Akt3 inhibition by promotion of PRC expression [Bioenergetics]

Akt3 regulates mitochondrial content in endothelial cells through the inhibition of PGC-1α nuclear localization and is also required for angiogenesis. However, whether there is a direct link between mitochondrial function and angiogenesis is unknown. Here we show that Akt3 depletion in primary endothelial cells results in decreased uncoupled oxygen consumption, increased fission, decreased membrane potential, and increased expression of the mitochondria-specific protein chaperones, HSP60 and HSP10, suggesting that Akt3 is required for mitochondrial homeostasis. Direct inhibition of mitochondrial homeostasis by the model oxidant paraquat results in decreased angiogenesis, showing a direct link between angiogenesis and mitochondrial function. Next, in exploring functional links to PGC-1α, the master regulator of mitochondrial biogenesis, we searched for compounds that induce this process. We found that, sildenafil, a phosphodiesterase 5 inhibitor, induced mitochondrial biogenesis as measured by increased uncoupled oxygen consumption, mitochondrial DNA content, and voltage-dependent anion channel protein expression. Sildenafil rescued the effects on mitochondria by Akt3 depletion or pharmacological inhibition and promoted angiogenesis, further supporting that mitochondrial homeostasis is required for angiogenesis. Sildenafil also induces the expression of PGC-1 family member PRC and can compensate for PGC-1α activity during mitochondrial stress by an Akt3-independent mechanism. The induction of PRC by sildenafil depends upon cAMP and the transcription factor CREB. Thus, PRC can functionally substitute during Akt3 depletion for absent PGC-1α activity to restore mitochondrial homeostasis and promote angiogenesis. These findings show that mitochondrial homeostasis as controlled by the PGC family of transcriptional activators is required for angiogenic responses.




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Adiponectin forms a complex with atherogenic LDL and inhibits its downstream effects

Akemi Kakino
Nov 3, 2020; 0:jlr.RA120000767v1-jlr.RA120000767
Research Articles




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Adiponectin forms a complex with atherogenic LDL and inhibits its downstream effects [Research Articles]

Adiponectin, an adipocyte-derived protein, has anti-atherogenic and anti-diabetic effects, but how it confers the anti-atherogenic effects is not well understood. To study the anti-atherogenic mechanisms of adiponectin, we examined whether it interacts with atherogenic low-density lipoprotein (LDL) to attenuate LDL’s atherogenicity. L5, the most electronegative subfraction of LDL, induces atherogenic responses similarly to copper-oxidized LDL (oxLDL). Unlike native LDL endocytosed via the LDL receptor, L5 and oxLDL are internalized by cells via the lectin-like oxidized LDL receptor-1 (LOX-1). Using enzyme-linked immunosorbent assays (ELISAs), we showed that adiponectin preferentially bound oxLDL but not native LDL. In Chinese hamster ovary (CHO) cells transfected with LOX-1 or LDL receptor, adiponectin selectively inhibited the uptake of oxLDL but not of native LDL, respectively. Furthermore, adiponectin suppressed the internalization of oxLDL in human coronary artery endothelial cells (HCAECs) and THP-1–derived macrophages. Western blot analysis of human plasma showed that adiponectin was abundant in L5 but not in L1, the least electronegative subfraction of LDL. Sandwich ELISAs with anti-adiponectin and anti–apolipoprotein B antibodies confirmed the binding of adiponectin to L5 and oxLDL. In LOX-1–expressing CHO cells, adiponectin inhibited cellular responses to oxLDL and L5, including nuclear factor-B activation and ERK phosphorylation. In HCAECs, adiponectin inhibited oxLDL-induced endothelin-1 secretion and ERK phosphorylation. Conversely, oxLDL suppressed the adiponectin-induced activation of adenosine monophosphate–activated protein kinase in COS-7 cells expressing adiponectin receptor AdipoR1. Our findings suggest that adiponectin binds and inactivates atherogenic LDL, providing novel insight into the anti-atherogenic mechanisms of adiponectin.




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How changes to drug prohibition could be good for the UK—an essay by Molly Meacher and Nick Clegg




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Radiosensitization by Kinase Inhibition Revealed by Phosphoproteomic Analysis of Pancreatic Cancer Cells [Research]

Pancreatic ductal adenocarcinoma (PDAC) is one of the most aggressive cancers and known for its extensive genetic heterogeneity, high therapeutic resistance, and strong variation in intrinsic radiosensitivity. To understand the molecular mechanisms underlying radioresistance, we screened the phenotypic response of 38 PDAC cell lines to ionizing radiation. Subsequent phosphoproteomic analysis of two representative sensitive and resistant lines led to the reproducible identification of 7,800 proteins and 13,000 phosphorylation sites (p-sites). Approximately 700 p-sites on 400 proteins showed abundance changes after radiation in all cell lines regardless of their phenotypic sensitivity. Apart from recapitulating known radiation response phosphorylation markers such as on proteins involved in DNA damage repair, the analysis uncovered many novel members of a radiation-responsive signaling network that was apparent only at the level of protein phosphorylation. These regulated p-sites were enriched in potential ATM substrates and in vitro kinase assays corroborated 10 of these. Comparing the proteomes and phosphoproteomes of radiosensitive and -resistant cells pointed to additional tractable radioresistance mechanisms involving apoptotic proteins. For instance, elevated NADPH quinine oxidoreductase 1 (NQO1) expression in radioresistant cells may aid in clearing harmful reactive oxygen species. Resistant cells also showed elevated phosphorylation levels of proteins involved in cytoskeleton organization including actin dynamics and focal adhesion kinase (FAK) activity and one resistant cell line showed a strong migration phenotype. Pharmacological inhibition of the kinases FAK by Defactinib and of CHEK1 by Rabusertib showed a statistically significant sensitization to radiation in radioresistant PDAC cells. Together, the presented data map a comprehensive molecular network of radiation-induced signaling, improves the understanding of radioresistance and provides avenues for developing radiotherapeutic strategies.




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Glutathionylation Decreases Methyltransferase Activity of PRMT5 and Inhibits Cell Proliferation [Research]

Glutathionylation is an important posttranslational modification that protects proteins from further oxidative damage as well as influencing protein structure and activity. In the present study, we demonstrate that the cysteine-42 residue in protein arginine N-methyltransferase 5 (PRMT5) is glutathionylated in aged mice or in cells that have been exposed to oxidative stress. Deglutathionylation of this protein is catalyzed by glutaredoxin-1 (Grx1). Using mutagenesis and subsequent biochemical analyses, we show that glutathionylation decreased the binding affinity of PRMT5 with methylosome protein-50 (MEP50) and reduced the methyltransferase activity of PRMT5. Furthermore, overexpression of PRMT5-C42A mutant caused a significant increase in histone methylation in HEK293T and A549 cells and promoted cell growth, whereas overexpression of the PRMT5-C42D mutant, a mimic of glutathionylated PRMT5, inhibited cell proliferation. Taken together, our results demonstrate a new mechanism of regulation of PRMT5 methyltransferases activity and suggest that PRMT5 glutathionylation is partly responsible for reactive oxygen species-mediated cell growth inhibition.




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Sialylation of Asparagine 612 Inhibits Aconitase Activity during Mouse Sperm Capacitation; a Possible Mechanism for the Switch from Oxidative Phosphorylation to Glycolysis [Research]

After ejaculation, mammalian spermatozoa must undergo a process known as capacitation in order to successfully fertilize the oocyte. Several post-translational modifications occur during capacitation, including sialylation, which despite being limited to a few proteins, seems to be essential for proper sperm-oocyte interaction. Regardless of its importance, to date, no single study has ever identified nor quantified which glycoproteins bearing terminal sialic acid (Sia) are altered during capacitation. Here we characterize sialylation during mouse sperm capacitation. Using tandem MS coupled with liquid chromatography (LC–MS/MS), we found 142 nonreductant peptides, with 9 of them showing potential modifications on their sialylated oligosaccharides during capacitation. As such, N-linked sialoglycopeptides from C4b-binding protein, endothelial lipase (EL), serine proteases 39 and 52, testis-expressed protein 101 and zonadhesin were reduced following capacitation. In contrast, mitochondrial aconitate hydratase (aconitase; ACO2), a TCA cycle enzyme, was the only protein to show an increase in Sia content during capacitation. Interestingly, although the loss of Sia within EL (N62) was accompanied by a reduction in its phospholipase A1 activity, a decrease in the activity of ACO2 (i.e. stereospecific isomerization of citrate to isocitrate) occurred when sialylation increased (N612). The latter was confirmed by N612D recombinant protein tagged with both His and GFP. The replacement of Sia for the negatively charged Aspartic acid in the N612D mutant caused complete loss of aconitase activity compared with the WT. Computer modeling show that N612 sits atop the catalytic site of ACO2. The introduction of Sia causes a large conformational change in the alpha helix, essentially, distorting the active site, leading to complete loss of function. These findings suggest that the switch from oxidative phosphorylation, over to glycolysis that occurs during capacitation may come about through sialylation of ACO2.




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Kinome Profiling of Primary Endometrial Tumors Using Multiplexed Inhibitor Beads and Mass Spectrometry Identifies SRPK1 as Candidate Therapeutic Target [Research]

Endometrial carcinoma (EC) is the most common gynecologic malignancy in the United States, with limited effective targeted therapies. Endometrial tumors exhibit frequent alterations in protein kinases, yet only a small fraction of the kinome has been therapeutically explored. To identify kinase therapeutic avenues for EC, we profiled the kinome of endometrial tumors and normal endometrial tissues using Multiplexed Inhibitor Beads and Mass Spectrometry (MIB-MS). Our proteomics analysis identified a network of kinases overexpressed in tumors, including Serine/Arginine-Rich Splicing Factor Kinase 1 (SRPK1). Immunohistochemical (IHC) analysis of endometrial tumors confirmed MIB-MS findings and showed SRPK1 protein levels were highly expressed in endometrioid and uterine serous cancer (USC) histological subtypes. Moreover, querying large-scale genomics studies of EC tumors revealed high expression of SRPK1 correlated with poor survival. Loss-of-function studies targeting SRPK1 in an established USC cell line demonstrated SRPK1 was integral for RNA splicing, as well as cell cycle progression and survival under nutrient deficient conditions. Profiling of USC cells identified a compensatory response to SRPK1 inhibition that involved EGFR and the up-regulation of IGF1R and downstream AKT signaling. Co-targeting SRPK1 and EGFR or IGF1R synergistically enhanced growth inhibition in serous and endometrioid cell lines, representing a promising combination therapy for EC.