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Dive into the research topics where Neil S. Graham is active.

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Featured researches published by Neil S. Graham.


The Plant Cell | 2001

Auxin Transport Promotes Arabidopsis Lateral Root Initiation

Ilda Casimiro; Alan Marchant; Rishikesh P. Bhalerao; Tom Beeckman; Sandra Dhooge; Ranjan Swarup; Neil S. Graham; Dirk Inzé; Göran Sandberg; Pedro Casero; Malcolm J. Bennett

Lateral root development in Arabidopsis provides a model for the study of hormonal signals that regulate postembryonic organogenesis in higher plants. Lateral roots originate from pairs of pericycle cells, in several cell files positioned opposite the xylem pole, that initiate a series of asymmetric, transverse divisions. The auxin transport inhibitor N-1-naphthylphthalamic acid (NPA) arrests lateral root development by blocking the first transverse division(s). We investigated the basis of NPA action by using a cell-specific reporter to demonstrate that xylem pole pericycle cells retain their identity in the presence of the auxin transport inhibitor. However, NPA causes indoleacetic acid (IAA) to accumulate in the root apex while reducing levels in basal tissues critical for lateral root initiation. This pattern of IAA redistribution is consistent with NPA blocking basipetal IAA movement from the root tip. Characterization of lateral root development in the shoot meristemless1 mutant demonstrates that root basipetal and leaf acropetal auxin transport activities are required during the initiation and emergence phases, respectively, of lateral root development.


The New England Journal of Medicine | 2013

Dupilumab in Persistent Asthma with Elevated Eosinophil Levels

Sally E. Wenzel; Linda Ford; David S. Pearlman; Sheldon L. Spector; Lawrence Sher; Franck Skobieranda; Lin Wang; Stephane C. Kirkesseli; Ross E. Rocklin; Brian Bock; Jennifer D. Hamilton; Jeffrey Ming; Allen Radin; Neil Stahl; George D. Yancopoulos; Neil S. Graham; Gianluca Pirozzi

BACKGROUND Moderate-to-severe asthma remains poorly treated. We evaluated the efficacy and safety of dupilumab (SAR231893/REGN668), a fully human monoclonal antibody to the alpha subunit of the interleukin-4 receptor, in patients with persistent, moderate-to-severe asthma and elevated eosinophil levels. METHODS We enrolled patients with persistent, moderate-to-severe asthma and a blood eosinophil count of at least 300 cells per microliter or a sputum eosinophil level of at least 3% who used medium-dose to high-dose inhaled glucocorticoids plus long-acting beta-agonists (LABAs). We administered dupilumab (300 mg) or placebo subcutaneously once weekly. Patients were instructed to discontinue LABAs at week 4 and to taper and discontinue inhaled glucocorticoids during weeks 6 through 9. Patients received the study drug for 12 weeks or until a protocol-defined asthma exacerbation occurred. The primary end point was the occurrence of an asthma exacerbation; secondary end points included a range of measures of asthma control. Effects on various type 2 helper T-cell (Th2)-associated biomarkers and safety and tolerability were also evaluated. RESULTS A total of 52 patients were assigned to the dupilumab group, and 52 patients were assigned to the placebo group. Baseline characteristics were similar in the two groups. Three patients had an asthma exacerbation with dupilumab (6%) versus 23 with placebo (44%), corresponding to an 87% reduction with dupilumab (odds ratio, 0.08; 95% confidence interval, 0.02 to 0.28; P<0.001). Significant improvements were observed for most measures of lung function and asthma control. Dupilumab reduced biomarkers associated with Th2-driven inflammation. Injection-site reactions, nasopharyngitis, nausea, and headache occurred more frequently with dupilumab than with placebo. CONCLUSIONS In patients with persistent, moderate-to-severe asthma and elevated eosinophil levels who used inhaled glucocorticoids and LABAs, dupilumab therapy, as compared with placebo, was associated with fewer asthma exacerbations when LABAs and inhaled glucocorticoids were withdrawn, with improved lung function and reduced levels of Th2-associated inflammatory markers. (Funded by Sanofi and Regeneron Pharmaceuticals; ClinicalTrials.gov number, NCT01312961.).


Trends in Plant Science | 2003

Dissecting Arabidopsis lateral root development

Ilda Casimiro; Tom Beeckman; Neil S. Graham; Rishikesh P. Bhalerao; Hanma Zhang; Pedro Casero; Göran Sandberg; Malcolm J. Bennett

Recent studies in the model plant Arabidopsis provide new insight into the regulation of root architecture, a key determinant of nutrient- and water-use efficiency in crops. Lateral root (LR) primordia originate from a subset of pericycle founder cells. Sophisticated mass-spectroscopy-based techniques have been used to map the sites of biosynthesis of auxin and its distribution in Arabidopsis seedlings, highlighting the importance of the phytohormone during LR initiation and emergence. Key components of the cell cycle and signal-transduction pathway(s) that promote and attenuate auxin-dependent LR initiation have recently been identified. Additional signals, such as abscisic acid and nitrate, also regulate LR emergence, raising intriguing questions about the cross-talk between their transduction pathways.


Nature Cell Biology | 2008

The auxin influx carrier LAX3 promotes lateral root emergence

Kamal Swarup; Eva Benková; Ranjan Swarup; Ilda Casimiro; Benjamin Péret; Yaodong Yang; Geraint Parry; Erik Nielsen; Ive De Smet; Steffen Vanneste; Mitch P. Levesque; David John Carrier; Nicholas James; Vanessa Calvo; Karin Ljung; Eric M. Kramer; Rebecca Roberts; Neil S. Graham; Sylvestre Marillonnet; Kanu Patel; Jonathan D. G. Jones; Christopher G. Taylor; Daniel P. Schachtman; Sean T. May; Göran Sandberg; Philip N. Benfey; Jiri Friml; Ian D. Kerr; Tom Beeckman; Laurent Laplaze

Lateral roots originate deep within the parental root from a small number of founder cells at the periphery of vascular tissues and must emerge through intervening layers of tissues. We describe how the hormone auxin, which originates from the developing lateral root, acts as a local inductive signal which re-programmes adjacent cells. Auxin induces the expression of a previously uncharacterized auxin influx carrier LAX3 in cortical and epidermal cells directly overlaying new primordia. Increased LAX3 activity reinforces the auxin-dependent induction of a selection of cell-wall-remodelling enzymes, which are likely to promote cell separation in advance of developing lateral root primordia.


The Plant Cell | 2007

Cytokinins Act Directly on Lateral Root Founder Cells to Inhibit Root Initiation

Laurent Laplaze; Eva Benková; Ilda Casimiro; Lies Maes; Steffen Vanneste; Ranjan Swarup; Dolf Weijers; Vanessa Calvo; Boris Parizot; Maria Begoña Herrera-Rodriguez; Remko Offringa; Neil S. Graham; Patrick Doumas; Jiri Friml; Didier Bogusz; Tom Beeckman; Malcolm J. Bennett

In Arabidopsis thaliana, lateral roots are formed from root pericycle cells adjacent to the xylem poles. Lateral root development is regulated antagonistically by the plant hormones auxin and cytokinin. While a great deal is known about how auxin promotes lateral root development, the mechanism of cytokinin repression is still unclear. Elevating cytokinin levels was observed to disrupt lateral root initiation and the regular pattern of divisions that characterizes lateral root development in Arabidopsis. To identify the stage of lateral root development that is sensitive to cytokinins, we targeted the expression of the Agrobacterium tumefaciens cytokinin biosynthesis enzyme isopentenyltransferase to either xylem-pole pericycle cells or young lateral root primordia using GAL4-GFP enhancer trap lines. Transactivation experiments revealed that xylem-pole pericycle cells are sensitive to cytokinins, whereas young lateral root primordia are not. This effect is physiologically significant because transactivation of the Arabidopsis cytokinin degrading enzyme cytokinin oxidase 1 in lateral root founder cells results in increased lateral root formation. We observed that cytokinins perturb the expression of PIN genes in lateral root founder cells and prevent the formation of an auxin gradient that is required to pattern lateral root primordia.


The Plant Cell | 2010

Cytokinin Regulation of Auxin Synthesis in Arabidopsis Involves a Homeostatic Feedback Loop Regulated via Auxin and Cytokinin Signal Transduction

Brian Jones; Sara Andersson Gunnerås; Sara V. Petersson; Petr Tarkowski; Neil S. Graham; Sean T. May; Karel Dolezal; Göran Sandberg; Karin Ljung

This study demonstrates that auxin and cytokinin regulate each others biosynthesis, providing an intrinsic mechanism for optimizing the relative intracellular concentrations of both hormones. Together, auxin and cytokinin regulate many of the processes that are critical to plant growth, development, and environmental responsiveness. We have previously shown that exogenous auxin regulates cytokinin biosynthesis in Arabidopsis thaliana. In this work, we show that, conversely, the application or induced ectopic biosynthesis of cytokinin leads to a rapid increase in auxin biosynthesis in young, developing root and shoot tissues. We also show that reducing endogenous cytokinin levels, either through the induction of CYTOKININ OXIDASE expression or the mutation of one or more of the cytokinin biosynthetic ISOPENTENYLTRANSFERASE genes leads to a reduction in auxin biosynthesis. Cytokinin modifies the abundance of transcripts for several putative auxin biosynthetic genes, suggesting a direct induction of auxin biosynthesis by cytokinin. Our data indicate that cytokinin is essential, not only to maintain basal levels of auxin biosynthesis in developing root and shoot tissues but also for the dynamic regulation of auxin biosynthesis in response to changing developmental or environmental conditions. In combination with our previous work, the data suggest that a homeostatic feedback regulatory loop involving both auxin and cytokinin signaling acts to maintain appropriate auxin and cytokinin concentrations in developing root and shoot tissues.


Journal of Plant Growth Regulation | 2001

Quick on the uptake: characterization of a family of plant auxin influx carriers

Geraint Parry; Alan Marchant; Sean T. May; Ranjan Swarup; Kamal Swarup; Nick James; Neil S. Graham; Trudie Allen; Tony Martucci; Antony Yemm; Richard M. Napier; Ken Manning; Graham J. King; Malcolm J. Bennett

Auxins are unique among plant signalling molecules in that they are subject to polar transport. Plants employ specialized influx and efflux carrier proteins to transport the auxin indole-3-acetic acid (IAA) in and out of cells. Until recently, auxin transport research has largely focused on the role of the efflux carrier. Given our rapidly advancing knowledge about the development importance of auxin uptake, this review aims to redress the balance by exclusively focusing on the auxin influx carrier. We will review the discovery, molecular characterization, evolution and developmental function(s) of the auxin influx carrier.


The Plant Cell | 2011

Medicago truncatula CYP716A12 Is a Multifunctional Oxidase Involved in the Biosynthesis of Hemolytic Saponins

Maria Carelli; Elisa Biazzi; Francesco Panara; Aldo Tava; Laura Scaramelli; Andrea Porceddu; Neil S. Graham; Miriam Odoardi; Efisio Piano; Sergio Arcioni; Sean T. May; Carla Scotti; Ornella Calderini

Triterpenic saponins participate in plant defense mechanisms and possess a broad spectrum of biological and pharmacological properties. This article identifies the P450 cytochrome CYP716A12 as a key gene in the synthesis of hemolytic saponins in Medicago truncatula by a combination of genetic and biochemical analyses. Saponins, a group of glycosidic compounds present in several plant species, have aglycone moieties that are formed using triterpenoid or steroidal skeletons. In spite of their importance as antimicrobial compounds and their possible benefits for human health, knowledge of the genetic control of saponin biosynthesis is still poorly understood. In the Medicago genus, the hemolytic activity of saponins is related to the nature of their aglycone moieties. We have identified a cytochrome P450 gene (CYP716A12) involved in saponin synthesis in Medicago truncatula using a combined genetic and biochemical approach. Genetic loss-of-function analysis and complementation studies showed that CYP716A12 is responsible for an early step in the saponin biosynthetic pathway. Mutants in CYP716A12 were unable to produce hemolytic saponins and only synthetized soyasaponins, and were thus named lacking hemolytic activity (lha). In vitro enzymatic activity assays indicate that CYP716A12 catalyzes the oxidation of β-amyrin and erythrodiol at the C-28 position, yielding oleanolic acid. Transcriptome changes in the lha mutant showed a modulation in the main steps of triterpenic saponin biosynthetic pathway: squalene cyclization, β-amyrin oxidation, and glycosylation. The analysis of CYP716A12 expression in planta is reported together with the sapogenin content in different tissues and stages. This article provides evidence for CYP716A12 being a key gene in hemolytic saponin biosynthesis.


The Plant Cell | 2012

Tackling Drought Stress: RECEPTOR-LIKE KINASES Present New Approaches

Alex Marshall; Reidunn B. Aalen; Dominique Audenaert; Tom Beeckman; Martin R. Broadley; Melinka A. Butenko; Ana I. Caño-Delgado; Sacco C. de Vries; Thomas Dresselhaus; Georg Felix; Neil S. Graham; John Foulkes; Christine Granier; Thomas Greb; Ueli Grossniklaus; John P. Hammond; Renze Heidstra; Charlie Hodgman; Michael Hothorn; Dirk Inzé; Lars Østergaard; Eugenia Russinova; Rüdiger Simon; Aleksandra Skirycz; Yvonne Stahl; Cyril Zipfel; Ive De Smet

Global climate change and a growing population require tackling the reduction in arable land and improving biomass production and seed yield per area under varying conditions. One of these conditions is suboptimal water availability. Here, we review some of the classical approaches to dealing with plant response to drought stress and we evaluate how research on RECEPTOR-LIKE KINASES (RLKs) can contribute to improving plant performance under drought stress. RLKs are considered as key regulators of plant architecture and growth behavior, but they also function in defense and stress responses. The available literature and analyses of available transcript profiling data indeed suggest that RLKs can play an important role in optimizing plant responses to drought stress. In addition, RLK pathways are ideal targets for nontransgenic approaches, such as synthetic molecules, providing a novel strategy to manipulate their activity and supporting translational studies from model species, such as Arabidopsis thaliana, to economically useful crops.


PLOS ONE | 2011

Tandem quadruplication of HMA4 in the zinc (Zn) and cadmium (Cd) hyperaccumulator noccaea caerulescens

Seosamh Ó Lochlainn; Helen C. Bowen; Rupert G. Fray; John P. Hammond; Graham J. King; Philip J. White; Neil S. Graham; Martin R. Broadley

Zinc (Zn) and cadmium (Cd) hyperaccumulation may have evolved twice in the Brassicaceae, in Arabidopsis halleri and in the Noccaea genus. Tandem gene duplication and deregulated expression of the Zn transporter, HMA4, has previously been linked to Zn/Cd hyperaccumulation in A. halleri. Here, we tested the hypothesis that tandem duplication and deregulation of HMA4 expression also occurs in Noccaea. A Noccaea caerulescens genomic library was generated, containing 36,864 fosmid pCC1FOS™ clones with insert sizes ∼20–40 kbp, and screened with a PCR-generated HMA4 genomic probe. Gene copy number within the genome was estimated through DNA fingerprinting and pooled fosmid pyrosequencing. Gene copy numbers within individual clones was determined by PCR analyses with novel locus specific primers. Entire fosmids were then sequenced individually and reads equivalent to 20-fold coverage were assembled to generate complete whole contigs. Four tandem HMA4 repeats were identified in a contiguous sequence of 101,480 bp based on sequence overlap identities. These were flanked by regions syntenous with up and downstream regions of AtHMA4 in Arabidopsis thaliana. Promoter-reporter β-glucuronidase (GUS) fusion analysis of a NcHMA4 in A. thaliana revealed deregulated expression in roots and shoots, analogous to AhHMA4 promoters, but distinct from AtHMA4 expression which localised to the root vascular tissue. This remarkable consistency in tandem duplication and deregulated expression of metal transport genes between N. caerulescens and A. halleri, which last shared a common ancestor >40 mya, provides intriguing evidence that parallel evolutionary pathways may underlie Zn/Cd hyperaccumulation in Brassicaceae.

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Sean T. May

University of Nottingham

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Graham J. King

Southern Cross University

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Ariel Teper

Icahn School of Medicine at Mount Sinai

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