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Dive into the research topics where Yasser Majeed is active.

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Featured researches published by Yasser Majeed.


Nature | 2008

TRPC channel activation by extracellular thioredoxin

Shang-Zhong Xu; Piruthivi Sukumar; Fanning Zeng; Jing Li; Amit Jairaman; Anne English; Jacqueline Naylor; Coziana Ciurtin; Yasser Majeed; Carol J. Milligan; Yahya M Bahnasi; Eman AL-Shawaf; Karen E. Porter; Lin-Hua Jiang; Paul Emery; Asipu Sivaprasadarao; David J. Beech

Mammalian homologues of Drosophila melanogaster transient receptor potential (TRP) are a large family of multimeric cation channels that act, or putatively act, as sensors of one or more chemical factor. Major research objectives are the identification of endogenous activators and the determination of cellular and tissue functions of these channels. Here we show the activation of TRPC5 (canonical TRP 5) homomultimeric and TRPC5–TRPC1 heteromultimeric channels by extracellular reduced thioredoxin, which acts by breaking a disulphide bridge in the predicted extracellular loop adjacent to the ion-selectivity filter of TRPC5. Thioredoxin is an endogenous redox protein with established intracellular functions, but it is also secreted and its extracellular targets are largely unknown. Particularly high extracellular concentrations of thioredoxin are apparent in rheumatoid arthritis, an inflammatory joint disease that disables millions of people worldwide. We show that TRPC5 and TRPC1 are expressed in secretory fibroblast-like synoviocytes from patients with rheumatoid arthritis, that endogenous TRPC5–TRPC1 channels of the cells are activated by reduced thioredoxin, and that blockade of the channels enhances secretory activity and prevents the suppression of secretion by thioredoxin. The data indicate the presence of a previously unrecognized ion-channel activation mechanism that couples extracellular thioredoxin to cell function.


Nature | 2014

Piezo1 integration of vascular architecture with physiological force

Jing Li; Bing Hou; Sarka Tumova; Katsuhiko Muraki; Alexander F. Bruns; Melanie J. Ludlow; Alicia Sedo; Adam J. Hyman; Lynn McKeown; Richard Young; Nadira Yuldasheva; Yasser Majeed; Lesley A. Wilson; Baptiste Rode; Marc A. Bailey; H.R. Kim; Zhaojun Fu; Deborah A. L. Carter; Jan Bilton; Helen Imrie; Paul Ajuh; T. Neil Dear; Richard M. Cubbon; Mark T. Kearney; K. Raj Prasad; Paul C. Evans; Justin Ainscough; David J. Beech

The mechanisms by which physical forces regulate endothelial cells to determine the complexities of vascular structure and function are enigmatic. Studies of sensory neurons have suggested Piezo proteins as subunits of Ca2+-permeable non-selective cationic channels for detection of noxious mechanical impact. Here we show Piezo1 (Fam38a) channels as sensors of frictional force (shear stress) and determinants of vascular structure in both development and adult physiology. Global or endothelial-specific disruption of mouse Piezo1 profoundly disturbed the developing vasculature and was embryonic lethal within days of the heart beating. Haploinsufficiency was not lethal but endothelial abnormality was detected in mature vessels. The importance of Piezo1 channels as sensors of blood flow was shown by Piezo1 dependence of shear-stress-evoked ionic current and calcium influx in endothelial cells and the ability of exogenous Piezo1 to confer sensitivity to shear stress on otherwise resistant cells. Downstream of this calcium influx there was protease activation and spatial reorganization of endothelial cells to the polarity of the applied force. The data suggest that Piezo1 channels function as pivotal integrators in vascular biology.


Circulation Research | 2011

Orai1 and CRAC Channel Dependence of VEGF-Activated Ca2+ Entry and Endothelial Tube Formation

Jing Li; Richard M. Cubbon; Lesley A. Wilson; Mohamed S Amer; Lynn McKeown; Bing Hou; Yasser Majeed; Sarka Tumova; Victoria A.L. Seymour; Hilary Taylor; Martin Stacey; David J. O'Regan; Richard Foster; Karen E. Porter; Mark T. Kearney; David J. Beech

Rationale: Orai1 and the associated calcium release-activated calcium (CRAC) channel were discovered in the immune system. Existence also in endothelial cells has been suggested, but the relevance to endothelial biology is mostly unknown. Objective: The aim of this study was to investigate the relevance of Orai1 and CRAC channels to vascular endothelial growth factor (VEGF) and endothelial tube formation. Methods and Results: In human umbilical vein endothelial cells, Orai1 disruption by short-interfering RNA or dominant-negative mutant Orai1 inhibited calcium release–activated (store-operated) calcium entry, VEGF-evoked calcium entry, cell migration, and in vitro tube formation. Expression of exogenous wild-type Orai1 rescued the tube formation. VEGF receptor-2 and Orai1 partially colocalized. Orai1 disruption also inhibited calcium entry and tube formation in endothelial progenitor cells from human blood. A known blocker of the immune cell CRAC channel (3-fluoropyridine-4-carboxylic acid (2′,5′-dimethoxybiphenyl-4-yl)amide) was a strong blocker of store-operated calcium entry in endothelial cells and inhibited calcium entry evoked by VEGF in 3 types of human endothelial cell. The compound lacked effect on VEGF-evoked calcium-release, STIM1 clustering, and 2 types of transient receptor potential channels, TRPC6 and TRPV4. Without effect on cell viability, the compound inhibited human endothelial cell migration and tube formation in vitro and suppressed angiogenesis in vivo in the chick chorioallantoic membrane. The compound showed 100-fold greater potency for endothelial compared with immune cell calcium entry. Conclusions: The data suggest positive roles for Orai1 and CRAC channels in VEGF-evoked calcium entry and new opportunity for chemical modulation of angiogenesis.


Nature Protocols | 2009

Robotic multiwell planar patch-clamp for native and primary mammalian cells

Carol J. Milligan; Jing Li; Piruthivi Sukumar; Yasser Majeed; Mark L. Dallas; Anne English; Paul Emery; Karen E. Porter; Andrew M. Smith; Ian McFadzean; Dayne Beccano-Kelly; Yahya M Bahnasi; Alex Cheong; Jacqueline Naylor; Fanning Zeng; Xing Liu; Nikita Gamper; Lin-Hua Jiang; Hugh A. Pearson; Chris Peers; Brian Robertson; David J. Beech

Robotic multiwell planar patch-clamp has become common in drug development and safety programs because it enables efficient and systematic testing of compounds against ion channels during voltage-clamp. It has not, however, been adopted significantly in other important areas of ion channel research, where conventional patch-clamp remains the favored method. Here, we show the wider potential of the multiwell approach with the ability for efficient intracellular solution exchange, describing protocols and success rates for recording from a range of native and primary mammalian cells derived from blood vessels, arthritic joints and the immune and central nervous systems. The protocol involves preparing a suspension of single cells to be dispensed robotically into 4–8 microfluidic chambers each containing a glass chip with a small aperture. Under automated control, giga-seals and whole-cell access are achieved followed by preprogrammed routines of voltage paradigms and fast extracellular or intracellular solution exchange. Recording from 48 chambers usually takes 1–6 h depending on the experimental design and yields 16–33 cell recordings.


Circulation Research | 2010

Pregnenolone Sulphate- and Cholesterol-Regulated TRPM3 Channels Coupled to Vascular Smooth Muscle Secretion and Contraction

Jacqueline Naylor; Jing Li; Carol J. Milligan; Fanning Zeng; Piruthivi Sukumar; Bing Hou; Alicia Sedo; Nadira Yuldasheva; Yasser Majeed; Dhananjay Beri; Shan Jiang; Victoria A.L. Seymour; Lynn McKeown; Bhaskar Kumar; Christian Harteneck; David J. O'Regan; Stephen B. Wheatcroft; Mark T. Kearney; Clare Jones; Karen E. Porter; David J. Beech

Rationale: Transient receptor potential melastatin (TRPM)3 is a calcium-permeable ion channel activated by the neurosteroid pregnenolone sulfate and positively coupled to insulin secretion in &bgr; cells. Although vascular TRPM3 mRNA has been reported, there is no knowledge of TRPM3 protein or its regulation and function in the cardiovascular system. Objective: To determine the relevance and regulation of TRPM3 in vascular biology. Methods and Results: TRPM3 expression was detected at mRNA and protein levels in contractile and proliferating vascular smooth muscle cells. Calcium entry evoked by pregnenolone sulfate or sphingosine was suppressed by TRPM3 blocking antibody or knock-down of TRPM3 by RNA interference. Low-level constitutive TRPM3 activity was also detected. In proliferating cells, channel activity was coupled negatively to interleukin-6 secretion via a calcium-dependent mechanism. In freshly isolated aorta, TRPM3 positively modulated contractile responses independently of L-type calcium channels. Concentrations of pregnenolone sulfate required to evoke responses were higher than the known plasma concentrations of the steroids, leading to a screen for other stimulators. &bgr;-Cyclodextrin was one of few stimulators of TRPM3, revealing the channels to be partially suppressed by endogenous cholesterol, the precursor of pregnenolone. Elevation of cholesterol further suppressed channel activity and loading with cholesterol to generate foam cells precluded observation of TRPM3 activity. Conclusions: The data suggest functional relevance of TRPM3 in contractile and proliferating phenotypes of vascular smooth muscle cells, significance of constitutive channel activity, regulation by cholesterol, and potential value of pregnenolone sulfate in therapeutic vascular modulation.


Cell Calcium | 2012

Pregnenolone sulphate-independent inhibition of TRPM3 channels by progesterone

Yasser Majeed; Sarka Tumova; Ben L Green; Victoria A.L. Seymour; Daniel M. Woods; Anil K. Agarwal; Jacqueline Naylor; Shannon Jiang; Helen M. Picton; Karen E. Porter; David J. O’Regan; Katsuhiko Muraki; Colin W. G. Fishwick; David J. Beech

Transient Receptor Potential Melastatin 3 (TRPM3) is a widely expressed calcium-permeable non-selective cation channel that is stimulated by high concentrations of nifedipine or by physiological steroids that include pregnenolone sulphate. Here we sought to identify steroids that inhibit TRPM3. Channel activity was studied using calcium-measurement and patch-clamp techniques. Progesterone (0.01–10 μM) suppressed TRPM3 activity evoked by pregnenolone sulphate. Progesterone metabolites and 17β-oestradiol were also inhibitory but the effects were relatively small. Dihydrotestosterone was an inhibitor at concentrations higher than 1 μM. Corticosteroids lacked effect. Overlay assays indicated that pregnenolone sulphate, progesterone and dihydrotestosterone bound to TRPM3. In contrast to dihydrotestosterone, progesterone inhibited nifedipine-evoked TRPM3 activity or activity in the absence of an exogenous activator, suggesting a pregnenolone sulphate-independent mechanism of action. Dihydrotestosterone, like a non-steroid look-alike compound, acted as a competitive antagonist at the pregnenolone sulphate binding site. Progesterone inhibited endogenous TRPM3 in vascular smooth muscle cells. Relevance of TRPM3 or the progesterone effect to ovarian cells, which have been suggested to express TRPM3, was not identified. The data further define a chemical framework for competition with pregnenolone sulphate at TRPM3 and expand knowledge of steroid interactions with TRPM3, suggesting direct steroid binding and pregnenolone sulphate-independent inhibition by progesterone.


British Journal of Pharmacology | 2011

Stereo-selective inhibition of transient receptor potential TRPC5 cation channels by neuroactive steroids

Yasser Majeed; Amer; Ak Agarwal; Lynn McKeown; Karen E. Porter; David J. O'Regan; Jacqueline Naylor; Cwg Fishwick; K Muraki; David J. Beech

BACKGROUND AND PURPOSE Transient receptor potential canonical 5 (TRPC5) channels are widely expressed, including in the CNS, where they potentiate fear responses. They also contribute to other non‐selective cation channels that are stimulated by G‐protein‐coupled receptor agonists and lipid and redox factors. Steroids are known to modulate fear and anxiety states, and we therefore investigated whether TRPC5 exhibited sensitivity to steroids.


British Journal of Pharmacology | 2010

Cis‐isomerism and other chemical requirements of steroidal agonists and partial agonists acting at TRPM3 channels

Yasser Majeed; Ak Agarwal; Jacqueline Naylor; Val Seymour; S Jiang; Katsuhiko Muraki; Cwg Fishwick; David J. Beech

BACKGROUND AND PURPOSE The transient receptor potential melastatin‐3 (TRPM3) channel forms calcium‐permeable, non‐selective, cationic channels that are stimulated by pregnenolone sulphate (PregS). Here, we aimed to define chemical requirements of this acute steroid action and potentially reveal novel stimulators with physiological relevance.


British Journal of Pharmacology | 2013

Inhibition of endothelial cell Ca2+ entry and transient receptor potential channels by Sigma‐1 receptor ligands

Mohamed S Amer; Lynn McKeown; Sarka Tumova; Ruifeng Liu; Victoria A.L. Seymour; Lesley A. Wilson; Jacqueline Naylor; Katriona Greenhalgh; Bing Hou; Yasser Majeed; Paul C. Turner; Alicia Sedo; David J. O'Regan; Jing Li; Robin S. Bon; Karen E. Porter; David J. Beech

The Sigma‐1 receptor (Sig1R) impacts on calcium ion signalling and has a plethora of ligands. This study investigated Sig1R and its ligands in relation to endogenous calcium events of endothelial cells and transient receptor potential (TRP) channels.


BMC Musculoskeletal Disorders | 2010

TRPM3 channel stimulated by pregnenolone sulphate in synovial fibroblasts and negatively coupled to hyaluronan.

Coziana Ciurtin; Yasser Majeed; Jacqueline Naylor; Piruthivi Sukumar; Anne English; Paul Emery; David J. Beech

BackgroundCalcium-permeable channels are known to have roles in many mammalian cell types but the expression and contribution of such ion channels in synovial cells is mostly unknown. The objective of this study was to investigate the potential relevance of Transient Receptor Potential Melastatin 3 (TRPM3) channel to fibroblast-like synoviocytes (FLSs) of patients with rheumatoid arthritis.MethodsThe study used RT-PCR and immunofluorescence to detect mRNA and protein. Intracellular calcium measurement detected channel activity in a FLS cell-line and primary cultures of FLSs from patients with rheumatoid arthritis. Enzyme-linked immunosorbent assays measured hyaluronan.ResultsEndogenous expression of TRPM3 was detected. Previously reported stimulators of TRPM3 sphingosine and pregnenolone sulphate evoked sustained elevation of intracellular calcium in FLSs. The FLS cell-line showed an initial transient response to sphingosine which may be explained by TRPV4 channels but was not observed in FLSs from patients. Blocking antibody targeted to TRPM3 inhibited sustained sphingosine and pregnenolone sulphate responses. Secretion of hyaluronan, which contributes adversely in rheumatoid arthritis, was suppressed by pregnenolone sulphate in FLSs from patients and the effect was blocked by anti-TRPM3 antibody.ConclusionsThe data suggest that FLSs of patients with rheumatoid arthritis express TRPM3-containing ion channels that couple negatively to hyaluronan secretion and can be stimulated by pharmacological concentrations of pregnenolone sulphate.

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