Sarah R. Needham
Science and Technology Facilities Council
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Publication
Featured researches published by Sarah R. Needham.
European Biophysics Journal | 2011
Daniel J. Rolfe; Charles McLachlan; Michael Hirsch; Sarah R. Needham; Christopher J. Tynan; Stephen E. D. Webb; Marisa L. Martin-Fernandez; Michael P. Hobson
Characterisation of multi-protein interactions in cellular networks can be achieved by optical microscopy using multidimensional single molecule fluorescence imaging. Proteins of different species, individually labelled with a single fluorophore, can be imaged as isolated spots (features) of different colour light in different channels, and their diffusive behaviour in cells directly measured through time. Challenges in data analysis have, however, thus far hindered its application in biology. A set of methods for the automated analysis of multidimensional single molecule microscopy data from cells is presented, incorporating Bayesian segmentation-based feature detection, image registration and particle tracking. Single molecules of different colours can be simultaneously detected in noisy, high background data with an arbitrary number of channels, acquired simultaneously or time-multiplexed, and then tracked through time. The resulting traces can be further analysed, for example to detect intensity steps, count discrete intensity levels, measure fluorescence resonance energy transfer (FRET) or changes in polarisation. Examples are shown illustrating the use of the algorithms in investigations of the epidermal growth factor receptor (EGFR) signalling network, a key target for cancer therapeutics, and with simulated data.
Nature Communications | 2016
Sarah R. Needham; Selene K. Roberts; Anton Arkhipov; Venkatesh Mysore; Christopher J. Tynan; Laura C. Zanetti-Domingues; Eric T. Kim; Valeria Losasso; Dimitrios Korovesis; Michael Hirsch; Daniel J. Rolfe; David T. Clarke; Martyn Winn; Alireza Lajevardipour; Andrew H. A. Clayton; Linda J. Pike; Michela Perani; Peter J. Parker; Yibing Shan; David E. Shaw; Marisa L. Martin-Fernandez
Epidermal growth factor receptor (EGFR) signalling is activated by ligand-induced receptor dimerization. Notably, ligand binding also induces EGFR oligomerization, but the structures and functions of the oligomers are poorly understood. Here, we use fluorophore localization imaging with photobleaching to probe the structure of EGFR oligomers. We find that at physiological epidermal growth factor (EGF) concentrations, EGFR assembles into oligomers, as indicated by pairwise distances of receptor-bound fluorophore-conjugated EGF ligands. The pairwise ligand distances correspond well with the predictions of our structural model of the oligomers constructed from molecular dynamics simulations. The model suggests that oligomerization is mediated extracellularly by unoccupied ligand-binding sites and that oligomerization organizes kinase-active dimers in ways optimal for auto-phosphorylation in trans between neighbouring dimers. We argue that ligand-induced oligomerization is essential to the regulation of EGFR signalling.
PLOS ONE | 2013
Sarah R. Needham; Michael Hirsch; Daniel J. Rolfe; David T. Clarke; Laura C. Zanetti-Domingues; Richard J. Wareham; Marisa L. Martin-Fernandez
Detecting receptor dimerisation and other forms of clustering on the cell surface depends on methods capable of determining protein-protein separations with high resolution in the ∼10–50 nm range. However, this distance range poses a significant challenge because it is too large for fluorescence resonance energy transfer and contains distances too small for all other techniques capable of high-resolution in cells. Here we have adapted the technique of fluorophore localisation imaging with photobleaching to measure inter-receptor separations in the cellular environment. Using the epidermal growth factor receptor, a key cancer target molecule, we demonstrate ∼10 nm resolution while continuously covering the range of ∼10–80 nm. By labelling the receptor on cells expressing low receptor numbers with a fluorescent antagonist we have found inter-receptor separations all the way up from 8 nm to 59 nm. Our data are consistent with epidermal growth factor receptors being able to form homo-polymers of at least 10 receptors in the absence of activating ligands.
eLife | 2017
Christian Tiede; Robert Bedford; Sophie J. Heseltine; Gina A. Smith; Imeshi Wijetunga; Rebecca L. Ross; Danah AlQallaf; Ashley Pe Roberts; Alexander Balls; Alistair Curd; Ruth Hughes; Heather L. Martin; Sarah R. Needham; Laura C. Zanetti-Domingues; Yashar Sadigh; Thomas P. Peacock; Anna Ah-San Tang; Naomi Gibson; Hannah F. Kyle; Geoffrey W Platt; Nicola Ingram; Thomas Taylor; Louise Coletta; Iain W. Manfield; Margaret A. Knowles; Sandra M. Bell; Filomena Esteves; Azhar Maqbool; Raj K. Prasad; Mark J. Drinkhill
Molecular recognition reagents are key tools for understanding biological processes and are used universally by scientists to study protein expression, localisation and interactions. Antibodies remain the most widely used of such reagents and many show excellent performance, although some are poorly characterised or have stability or batch variability issues, supporting the use of alternative binding proteins as complementary reagents for many applications. Here we report on the use of Affimer proteins as research reagents. We selected 12 diverse molecular targets for Affimer selection to exemplify their use in common molecular and cellular applications including the (a) selection against various target molecules; (b) modulation of protein function in vitro and in vivo; (c) labelling of tumour antigens in mouse models; and (d) use in affinity fluorescence and super-resolution microscopy. This work shows that Affimer proteins, as is the case for other alternative binding scaffolds, represent complementary affinity reagents to antibodies for various molecular and cell biology applications. DOI: http://dx.doi.org/10.7554/eLife.24903.001
Optics Express | 2008
Stephen E. D. Webb; Daniel J. Rolfe; Sarah R. Needham; Selene K. Roberts; David T. Clarke; Charles McLachlan; Michael P. Hobson; Marisa L. Martin-Fernandez
We combine single molecule fluorescence orientation imaging with single-pair fluorescence resonance energy transfer microscopy, using a total internal reflection microscope. We show how angles and FRET efficiencies can be determined for membrane proteins at the single molecule level and provide data from the epidermal growth factor receptor system in cells.
Methods | 2016
Christopher J. Tynan; Valentina Lo Schiavo; Laura C. Zanetti-Domingues; Sarah R. Needham; Selene K. Roberts; Michael Hirsch; Daniel J. Rolfe; Dimitrios Korovesis; David T. Clarke; Marisa L. Martin-Fernandez
The challenge of determining the architecture and geometry of oligomers of the epidermal growth factor receptor (EGFR) on the cell surface has been approached using a variety of biochemical and biophysical methods. This review is intended to provide a narrative of how key concepts in the field of EGFR research have evolved over the years, from the origins of the prevalent EGFR signalling dimer hypothesis through to the development and implementation of methods that are now challenging the conventional view. The synergy between X-ray crystallography and cellular fluorescence microscopy has become particularly important, precisely because the results from these two methods diverged and highlighted the complexity of the challenge. We illustrate how developments in super-resolution microscopy are now bridging this gap. Exciting times lie ahead where knowledge of the nature of the complexes can assist with the development of a new generation of anti-cancer drugs.
PLOS ONE | 2012
Laura C. Zanetti-Domingues; Marisa L. Martin-Fernandez; Sarah R. Needham; Daniel J. Rolfe; David T. Clarke
Single-molecule techniques are being increasingly applied to biomedical investigation, notwithstanding the numerous challenges they pose in terms of signal-to-noise ratio issues. Non-specific binding of probes to glass substrates, in particular, can produce experimental artifacts due to spurious molecules on glass, which can be particularly deleterious in live-cell tracking experiments. In order to resolve the issue of non-specific probe binding to substrates, we performed systematic testing of a range of available surface coatings, using three different proteins, and then extended our assessment to the ability of these coatings to foster cell growth and retain non-adhesive properties. Linear PEG, a passivating agent commonly used both in immobilized-molecule single-molecule techniques and in tissue engineering, is able to both successfully repel non-specific adhesion of fluorescent probes and to foster cell growth when functionalized with appropriate adhesive peptides. Linear PEG treatment results in a significant reduction of tracking artifacts in EGFR tracking with Affibody ligands on a cell line expressing EGFR-eGFP. The findings reported herein could be beneficial to a large number of experimental situations where single-molecule or single-particle precision is required.
Methods | 2015
Stephen E. D. Webb; Michael Hirsch; Sarah R. Needham; Benjamin C. Coles; Kathrin M. Scherer; Selene K. Roberts; Laura C. Zanetti-Domingues; Christopher J. Tynan; Marisa L. Martin-Fernandez; Daniel J. Rolfe
Although considerable progress has been made in imaging distances in cells below the diffraction limit using FRET and super-resolution microscopy, methods for determining the separation of macromolecules in the 10-50 nm range have been elusive. We have developed fluorophore localisation imaging with photobleaching (FLImP), based on the quantised bleaching of individual protein-bound dye molecules, to quantitate the molecular separations in oligomers and nanoscale clusters. We demonstrate the benefits of using our method in studying the nanometric organisation of the epidermal growth factor receptor in cells.
Review of Scientific Instruments | 2011
David T. Clarke; Stanley W. Botchway; Benjamin C. Coles; Sarah R. Needham; Selene K. Roberts; Daniel J. Rolfe; Christopher J. Tynan; Andrew D. Ward; Stephen E. D. Webb; Rahul Yadav; Laura C. Zanetti-Domingues; Marisa L. Martin-Fernandez
Optics clustered to output unique solutions (OCTOPUS) is a microscopy platform that combines single molecule and ensemble imaging methodologies. A novel aspect of OCTOPUS is its laser excitation system, which consists of a central core of interlocked continuous wave and pulsed laser sources, launched into optical fibres and linked via laser combiners. Fibres are plugged into wall-mounted patch panels that reach microscopy end-stations in adjacent rooms. This allows multiple tailor-made combinations of laser colours and time characteristics to be shared by different end-stations minimising the need for laser duplications. This setup brings significant benefits in terms of cost effectiveness, ease of operation, and user safety. The modular nature of OCTOPUS also facilitates the addition of new techniques as required, allowing the use of existing lasers in new microscopes while retaining the ability to run the established parts of the facility. To date, techniques interlinked are multi-photon/multicolour confocal fluorescence lifetime imaging for several modalities of fluorescence resonance energy transfer (FRET) and time-resolved anisotropy, total internal reflection fluorescence, single molecule imaging of single pair FRET, single molecule fluorescence polarisation, particle tracking, and optical tweezers. Here, we use a well-studied system, the epidermal growth factor receptor network, to illustrate how OCTOPUS can aid in the investigation of complex biological phenomena.
bioRxiv | 2018
Marisa L. Martin-Fernandez; Lin Wang; Benji Bateman; Laura C. Zanetti-Domingues; Amy Moores; Sarah R. Needham; Daniel J. Rolfe; Sam Astbury; Christopher Spindloe; Michelle Darrow; Maria Romano; Konstantinos Beis; David T. Clarke
Super-resolution fluorescence microscopy achieves 20-30 nm resolution by using liquid-immersion objectives to optimize light collection and chemical sample fixation to minimize image blurring. It is known that fluorophore brightness increases substantially under cryogenic conditions and that cryo-fixation is far superior in preserving ultrastructure. However, cryogenic conditions have not been exploited to improve resolution or sample quality because liquid immersion media freezes at the objective, losing its optical properties. Here, simply by replacing the immersion fluid with a low-cost super-hemispherical solid immersion lens (superSIL), we effortlessly achieve <8 nm localisation precision and 12 nm resolution under cryogenic conditions in a low-cost, low-tech system. This is to our knowledge the best resolution yet attained in biological samples. Furthermore, we demonstrate multicolour imaging and show that the inexpensive setup outperforms 10-fold more costly super-resolution microscopes. By also removing the barrier to total internal reflection fluorescence imaging of mammalian cells under cryogenic conditions, superSIL microscopy delivers a straightforward route to achieve unmatched nanoscale resolution on both bacterial and mammalian cell samples, which any laboratory can effortlessly and inexpensively implement.