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Terence
Tan
,
Oliver J.
Clark
,
Matthew J.
Derry
,
Renaud
Duyme
,
Guilherme Abreu
Faria
,
Robert
Farla
,
Ralf
Flaig
,
Yogal Prasad
Ghimirey
,
Anushka
Ghosh
,
Miguel A.
Gomez-Gonzalez
,
Ellen L.
Heeley
,
Anna
Herlihy
,
Annette
Kleppe
,
Paul
Millar
,
Melanie
Nentwich
,
Josh
Pickston
,
Nick
Terrill
,
Armin
Wagner
,
Andrew C.
Walters
,
Matthew
Watson
,
Philippe
Rocca-Serra
,
Susanna-Assunta
Sansone
,
Stephen P.
Collins
Open Access
Abstract: Experiment proposals at synchrotron facilities serve as the primary gateway for instrument access. They currently lack the standardized and granular topic metadata necessary for tasks such as classification and review, and, broadly speaking, reuse. This paper defines and tests the feasibility of a real-time topic classification service for experiment proposals using an open-source machine-learning model and domain experts for the evaluation phase. We applied the OpenAlex topic classification model to 5384 experiment proposals and selected 209 of them to each be independently evaluated by three domain experts to assess the performance and utility of the model. Analysis of the evaluations reveals a general consensus among the reviewers regarding the model's predictions, with a Krippendorff's alpha of 0.572. We also find that 74.2% of the proposals had at least one topic that was unanimously deemed relevant, which suggests that the model performs well enough to be used in a live setting with real-time verification. However, we do not recommend using it in automated environments without human oversight, given the proposal-based precision score of 56.0%. By aligning the data infrastructure of photon and neutron facilities with the OpenAlex ecosystem, we also lay the groundwork for the eventual inclusion of proposals and experiment reports into OpenAlex, which is necessary for a complete record of a research activity.
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Sep 2026
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B21-High Throughput SAXS
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Bridget
Tang
,
Philip
Kitchen
,
Luke M.
Broadbent
,
Steven D.
Quinn
,
Nawal
Hassan
,
Siriporn
Chaimueangchuen
,
Barbara
Gerbelli
,
Katsuaki
Inoue
,
Nathan
Cowieson
,
Fátima
Herranz-Trillo
,
Alice J.
Rothnie
,
Roslyn M.
Bill
,
Paul D.
Topham
,
Alan D.
Goddard
,
Jacob J. K.
Kirkensgaard
,
Matthew J.
Derry
,
Andreas Haahr
Larsen
Diamond Proposal Number(s):
[39511]
Open Access
Abstract: Amphiphilic copolymers have emerged as powerful, detergent-free tools for solubilizing biological membranes, enabling the extraction and stabilization of membrane proteins within native-like lipid environments. We report a comprehensive, multi-technique elucidation of how polymer:lipid stoichiometry governs the formation, size, and stability of styrene-maleic acid lipid particles (SMALPs). Using commercial SMA2000, a styrene-maleic acid copolymer made using free radical polymerization and 1,2-ditetradecanoyl-sn-glycero-3-phosphocholine (DMPC) as a model phospholipid, we prepared SMALPs across a wide range of polymer-to-lipid weight ratios and employed an integrated suite of orthogonal characterization methods, including size exclusion chromatography (SEC), dynamic light scattering (DLS), flow-induced dispersion analysis (FIDA), mass photometry, ensemble and time-resolved Förster resonance energy transfer (FRET), and small-angle X-ray scattering (SAXS), to establish the structural consequences of varying polymer content. Our data reveal that efficient lipid solubilization into nanodiscs requires a minimum amount of polymer. Above ~1% (w/v) SMA2000: 1% DMPC, well-defined nanodiscs of ~10 nm diameter are formed that, on average, exhibit a consistent stoichiometry of ~130 lipids encircled by ~11 polymer chains. Through a new molecularly-constrained SAXS model, we show that these nanodiscs possess a stable bilayer height across variations in polymer to lipid ratio and a narrow polymer belt, and that their structural parameters remain invariant once excess polymer is used. In contrast, insufficient polymer (<1% w/v) generates bimodal populations including substantially larger discs. Notably, nanodiscs formed at optimal polymer:lipid ratios remain structurally stable for at least two months. Together, these results provide a rigorous quantification of SMALP composition and preferred size, enhancing our understanding of polymer-lipid nanodisc formation and offering critical design rules for detergent-free membrane protein extraction.
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Jul 2026
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I22-Small angle scattering & Diffraction
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Eleni
Axioti
,
Nana A.
Berfi
,
Philippa L.
Jacob
,
Klara M.
Saller
,
Georgia L.
Maitland
,
Anisha
Patel
,
Sri Nithya
Paruchuri
,
Paul D.
Topham
,
Matthew J.
Derry
,
Shreyasi
Chatterjee
,
Benoit
Couturaud
,
Luciano
Galantini
,
Iolanda
Francolini
,
Valentina
Cuzzucoli Crucitti
,
Veeren M.
Chauhan
,
Robert J.
Cavanagh
,
Vincenzo
Taresco
Diamond Proposal Number(s):
[38357]
Open Access
Abstract: Recent studies have highlighted the limitations of conventional high degrees of PEGylation in drug delivery systems, including immune recognition and reduced efficacy. Approaches such as poly(ethylene glycol) (PEG) isomerization and shortening of PEG chains have emerged as strategies to mitigate anti-PEG immune responses while preserving key physicochemical properties required for drug delivery. Inspired by these advancements, this study aims to enzymatically synthesize new hybrid polymers incorporating a limited fraction of PEG and biosourced polyols, such as glycerol and diglycerol, as the hydrophilic counterpart, minimizing the amount of PEG by 50% (compared to our previous work). These novel adipate-based tetrapolymers, generated using four different starting materials, outperformed previous systems, offering a tunable and sustainable design for nanomedicine. By strategically limiting the PEG fraction, we preserved the functional benefits of PEGylation, including stealth and amphiphilicity, while advancing toward greener chemistry. The resulting biodegradable PEGylated polyesters were formulated from film rehydration of solid dispersions and increased the water solubility of the model drug curcumin via direct encapsulation of the compound in polymeric nanoparticles. The best performing polymer variant consisted of diglycerol, 1,6-hexanediol, and PEG combined with divinyl adipate (PEGDGA-Hex 50%). Its drug interactions, colloidal stability, biodegradability, and biocompatibility, in both in vitro (Caco2, human intestinal epithelial cells MCF-7, human breast cancer cells, and MDA-MB-231 late-stage triple-negative breast cancer cells) and invertebrate in vivo models that align with 3R principles (Caenorhabditis elegans and Drosophila melanogaster), support its potential use in systemic drug delivery.
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Jun 2026
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I22-Small angle scattering & Diffraction
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Diamond Proposal Number(s):
[33098]
Open Access
Abstract: Particle fusion is key for establishing communication between biological components. For this reason, whole cell fusion plays a crucial role in many processes, including infection, muscle formation and tissue repair. Analogous co-assembly between synthetic nanoparticles represents a similar type of communication mechanism in artificial systems. Other approaches to control such co-assembly rely on incorporating anisotropic recognition units onto particle surfaces to provide a thermodynamic driving force. Here we present a fundamentally different approach, where hetero-fusion between two populations of undecorated polymer nanoparticles is regulated using kinetic control. Fusion extent is tuned simply by adjusting polymer chain length. Fusion is probed using an elemental tagging strategy for cryogenic scanning transmission electron microscopy combined with electron energy loss spectroscopy (cryo-STEM-EELS). Our results demonstrate the emergence of a complex process between populations of synthetic nanoparticles akin to communication. We anticipate such systems-level behaviour that results from hetero-fusion can enable future technologies.
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Nov 2025
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labSAXS-Offline SAXS and Sample Environment Development
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Mona
Semsarilar
,
Martin J.
Greenall
,
Alex H.
Balzer
,
Amit Kumar
Sarkar
,
Chaimaa
Gomri
,
Belkacem Tarek
Benkhaled
,
Anke-Lisa
Höhme
,
Martin
Held
,
Volker
Abetz
,
Helena J.
Hutchins-Crawford
,
Georgia L.
Maitland
,
Anisha
Patel
,
Thomas H.
Epps
,
Paul D.
Topham
,
Matthew J.
Derry
Diamond Proposal Number(s):
[29567, 31903]
Open Access
Abstract: We report the combined experimental and theoretical study of the bulk self-assembly behavior of polystyrene-block-poly(2,3,4,5,6-pentafluorostyrene) diblock copolymers. These block copolymers were designed to create highly antagonistic blocks (with a high Flory–Huggins interaction parameter, χ) with minimum disruption to the molecular construct (i.e., only replacing five hydrogen atoms with five fluorine atoms). A large library of diblock copolymers (41 samples) was synthesized by reversible addition–fragmentation chain transfer (RAFT) polymerization to map out a major portion of the phase space. All block copolymers exhibited narrow molecular weight distributions with dispersity (D) values between 1.07 and 1.32, and subsequent thermal annealing revealed phase separation into well-defined nanoscale morphologies depending on their molecular composition, as determined from small-angle X-ray scattering and transmission electron microscopy analyses, with an experimental phase diagram being constructed. The χ value at 25 °C for this block copolymer was estimated to be 0.2 using strong segregation theory, based on trends in phase-separated domain spacing and interfacial width. When applying theoretical approaches, the majority of the domain spacing data trends were captured by a coil–coil diblock copolymer model; however, a better fit to the data for samples with shorter fluorinated blocks was obtained with a rod–coil model, indicating that the chains in these fluorinated blocks likely have a higher inherent stiffness and were thus rod-like. This observation demonstrates that, due to the very high value of χ, a transition from coil–coil to rod–coil behavior can be obtained purely by reducing the length of the stiffer of the two blocks and without varying temperature or the chemical composition of the polymers. This work showcases the presence of strong microphase separation within AB diblock copolymers despite the relatively similar chemical composition of the constituent “A” and “B” units, with a clear transition from rod–coil to coil–coil segregation behavior.
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Oct 2025
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B21-High Throughput SAXS
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Diamond Proposal Number(s):
[39167]
Open Access
Abstract: We report the first reversible addition–fragmentation chain transfer polymerisation-induced self-assembly (RAFT-PISA) in ionic liquid (IL) that proceeds under emulsion conditions. Moreover, this formulation exploits refractive index contrast matching to generate highly transparent nanoparticle dispersions. Specifically, 1-ethyl-3-methyl-imidazolium ethylsulfate, [EMIM][EtOSO3], was used as the solvent for the chain extension of poly(2-hydroxyethyl methacrylate) (PHEMA) macromolecular chain transfer agents (macro-CTAs) using n-butyl methacrylate (BuMA) via RAFT emulsion polymerisation. Two series of PHEMAx-b-PBuMAy diblock copolymers with target PBuMA degrees of polymerisation (DPs) varying from 50 to 1000 were synthesised using either a PHEMA21 or PHEMA77 macro-CTA. All resulting nanoparticle dispersions yielded highly transparent dispersions, even when nanoparticle diameters exceeded 100 nm, due to the closely matched refractive index values of the [EMIM][EtOSO3] solvent and PBuMA nanoparticle core. Detailed analysis using small-angle X-ray scattering (SAXS) and transmission electron microscopy (TEM) confirmed the presence of spherical nanoparticles. Furthermore, the synthesis of PHEMA-b-PBuMA via this new PISA formulation was directly compared to equivalent block copolymer syntheses conducted in N,N-dimethylformamide (DMF) or ethanol/water mixtures. It was found that syntheses conducted in [EMIM][EtOSO3] resulted in the highest monomer conversions (up to >99%) and lowest dispersity (ĐM) values (as low as 1.16) in the shortest reaction times (2 hours) compared to the other solvent systems. This work demonstrates the use of ILs as a more sustainable and effective solvent for RAFT–PISA via the development of the first emulsion PISA formulation in IL.
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May 2025
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B21-High Throughput SAXS
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Diamond Proposal Number(s):
[37105]
Abstract: Star-shaped block copolymers (SBCs) have sparked interest as efficient cargo carriers due to their high loading capacity, decreased burst effects through sustained release, and maintained stability in dilute aqueous solution. Despite these advantages, the practical usage of SBCs is hindered by their challenging synthesis processes that often utilize metal-based catalysts at high temperatures. Herein we report the tailored synthesis of 3-, 4-, and 6-arm polycaprolactone-b-poly(ethylene glycol), PCL-b-PEG, SBCs using diphenyl phosphate as a friendlier, more sustainable non-metallic catalyst. Nuclear magnetic resonance (NMR) analysis confirms the molecular architecture of SBCs and gel permeation chromatography (GPC) is used to elucidate trends in molar mass when the number of arms within the SBCs is tuned, while dynamic light scattering (DLS) and small-angle X-ray scattering (SAXS) studies provide insights into aggregation behavior. Critical aggregation concentration (CAC) values, as measured by fluorescence spectroscopy, demonstrated that the 4-arm and 6-arm SBCs have greater stability than the 3-arm SBC. Biocompatibility assessment indicated minimal cytotoxicity of the nanoaggregates, even at high concentration, making these PCL-b-PEG SBCs potentially safe and sustainable vehicles for biomedical release applications.
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Sep 2024
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I22-Small angle scattering & Diffraction
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Diamond Proposal Number(s):
[33098]
Open Access
Abstract: Nucleobases control the assembly of DNA, RNA, etc. due to hydrogen bond complementarity. By combining these unique molecules with state-of-the-art synthetic polymers, it is possible to form nanoparticles whose self-assembly behavior could be altered under orthogonal stimuli (pH and temperature). Herein, we report the synthesis of cytosine-containing nanoparticles via aqueous reversible addition-fragmentation chain transfer polymerization-induced self-assembly. A poly(N-acryloylmorpholine) macromolecular chain transfer agent (mCTA) was chain-extended with cytosine acrylamide, and a morphological phase diagram was constructed. By exploiting the ability of cytosine to form dimers via hydrogen bonding, the self-assembly behavior of cytosine-containing polymers was altered when performed under acidic conditions. Under these conditions, stable nanoparticles could be formed at longer polymer chain lengths. Furthermore, the resulting nanoparticles displayed different morphologies compared to those at pH 7. Additionally, particle stability post-assembly could be controlled by varying pH and temperature. Finally, small-angle X-ray scattering was performed to probe their dynamic behavior under thermal cycling.
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Jul 2024
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I22-Small angle scattering & Diffraction
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Diamond Proposal Number(s):
[33098]
Open Access
Abstract: Poly(proline) II helical motifs located at the protein–water interface stabilize the three-dimensional structures of natural proteins. Reported here is the first example of synthetic biomimetic poly(proline)-stabilized polypeptide nanostructures obtained by a straightforward ring-opening polymerization-induced self-assembly (ROPISA) process through consecutive N-carboxyanhydride (NCA) polymerization. It was found that the use of multifunctional 8-arm initiators is critical for the formation of nanoparticles. Worm-like micelles as well as spherical morphologies were obtained as confirmed by dynamic light scattering (DLS), transmission electron microscopy (TEM), and small angle X-ray scattering (SAXS). The loading of the nanostructures with dyes is demonstrated. This fast and open-vessel procedure gives access to amino acids-based nanomaterials with potential for applications in nanomedicine.
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Jul 2024
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B21-High Throughput SAXS
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Diamond Proposal Number(s):
[34048]
Open Access
Abstract: We report for the first time a reversible addition–fragmentation chain transfer polymerisation-induced self-assembly (RAFT-PISA) formulation in ionic liquid (IL) that yields worm gels. A series of poly(2-hydroxyethyl methacrylate)-b-poly(benzyl methacrylate) (PHEMA-b-PBzMA) block copolymer nanoparticles were synthesised via RAFT dispersion polymerisation of benzyl methacrylate in the hydrophilic IL 1-ethyl-3-methyl imidazolium dicyanamide, [EMIM][DCA]. This RAFT-PISA formulation can be controlled to afford spherical, worm-like and vesicular nano-objects, with free-standing gels being obtained over a broad range of PBzMA core-forming degrees of polymerisation (DPs). High monomer conversions (≥96%) were obtained within 2 hours for all PISA syntheses as determined by 1H NMR spectroscopy, and good control over molar mass was confirmed by gel permeation chromatography (GPC). Nanoparticle morphologies were identified using small-angle X-ray scattering (SAXS) and transmission electron microscopy (TEM), and further detailed characterisation was conducted to monitor rheological, electrochemical and thermal characteristics of the nanoparticle dispersions to assess their potential in future electronic applications. Most importantly, this new PISA formulation in IL facilitates the in situ formation of worm ionogel electrolyte materials at copolymer concentrations >4% w/w via efficient and convenient synthesis routes without the need for organic co-solvents or post-polymerisation processing/purification. Moreover, we demonstrate that the worm ionogels developed in this work exhibit comparable electrochemical properties and thermal stability to that of the IL alone, showcasing their potential as gel electrolytes.
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Feb 2024
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