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Dive into the research topics where Roger S. Meadows is active.

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Featured researches published by Roger S. Meadows.


Journal of Cell Biology | 2004

Coalignment of plasma membrane channels and protrusions (fibripositors) specifies the parallelism of tendon

Elizabeth G. Canty; Yinhui Lu; Roger S. Meadows; Michael K. Shaw; David F. Holmes; Karl E. Kadler

The functional properties of tendon require an extracellular matrix (ECM) rich in elongated collagen fibrils in parallel register. We sought to understand how embryonic fibroblasts elaborate this exquisite arrangement of fibrils. We show that procollagen processing and collagen fibrillogenesis are initiated in Golgi to plasma membrane carriers (GPCs). These carriers and their cargo of 28-nm-diam fibrils are targeted to previously unidentified plasma membrane (PM) protrusions (here designated “fibripositors”) that are parallel to the tendon axis and project into parallel channels between cells. The base of the fibripositor lumen (buried several microns within the cell) is a nucleation site of collagen fibrillogenesis. The tip of the fibripositor is the site of fibril deposition to the ECM. Fibripositors are absent at postnatal stages when fibrils increase in diameter by accretion of extracellular collagen, thereby maintaining parallelism of the tendon. Thus, we show that the parallelism of tendon is determined by the late secretory pathway and interaction of adjacent PMs to form extracellular channels.


Stem Cells | 2007

Chondrogenic Differentiation of Human Bone Marrow Stem Cells in Transwell Cultures: Generation of Scaffold-Free Cartilage

Alan D. Murdoch; Lisa M Grady; Matthew P. Ablett; Theoni Katopodi; Roger S. Meadows; Timothy E. Hardingham

Human bone marrow stem cells (hMSCs) have been shown to differentiate in vitro into a number of cell lineages and are a potential autologous cell source for the repair and replacement of damaged and diseased musculoskeletal tissues. hMSC differentiation into chondrocytes has been described in high‐density cell pellets cultured with specific growth and differentiation factors. We now describe how culture of hMSCs as a shallow multicellular layer on a permeable membrane over 2–4 weeks resulted in a much more efficient formation of cartilaginous tissue than in established chondrogenic assays. In this format, the hMSCs differentiated in 14 days to produce translucent, flexible discs, 6 mm in diameter by 0.8–1 mm in thickness from 0.5 × 106 cells. The discs contained an extensive cartilage‐like extracellular matrix (ECM), with more than 50% greater proteoglycan content per cell than control hMSCs differentiated in standard cell pellet cultures. The disc constructs were also enriched in the cartilage‐specific collagen II, and this was more homogeneously distributed than in cell pellet cultures. The expression of cartilage matrix genes for collagen type II and aggrecan was enhanced in disc cultures, but improved matrix production was not accompanied by increased expression of the transcription factors SOX9, L‐SOX5, and SOX6. The fast continuous growth of cartilage ECM in these cultures up to 4 weeks appeared to result from the geometry of the construct and the efficient delivery of nutrients to the cells. Scaffold‐free growth of cartilage in this format will provide a valuable experimental system for both experimental and potential clinical studies.


Journal of Biological Chemistry | 2006

Actin Filaments Are Required for Fibripositor-mediated Collagen Fibril Alignment in Tendon

Elizabeth G. Canty; Tobias Starborg; Yinhui Lu; Sally M. Humphries; David F. Holmes; Roger S. Meadows; Adam Huffman; Eileen T. O'Toole; Karl E. Kadler

Cells in tendon deposit parallel arrays of collagen fibrils to form a functional tissue, but how this is achieved is unknown. The cellular mechanism is thought to involve the formation of intracellular collagen fibrils within Golgi to plasma membrane carriers. This is facilitated by the intracellular processing of procollagen to collagen by members of the tolloid and ADAMTS families of enzymes. The carriers subsequently connect to the extracellular matrix via finger-like projections of the plasma membrane, known as fibripositors. In this study we have shown, using three-dimensional electron microscopy, the alignment of fibripositors with intracellular fibrils as well as an orientated cable of actin filaments lining the cytosolic face of a fibripositor. To demonstrate a specific role for the cytoskeleton in coordinating extracellular matrix assembly, cytochalasin was used to disassemble actin filaments and nocodazole or colchicine were used to disrupt microtubules. Microtubule disruption delayed procollagen transport through the secretory pathway, but fibripositor numbers were unaffected. Actin filament disassembly resulted in rapid loss of fibripositors and a subsequent disappearance of intracellular fibrils. Procollagen secretion or processing was not affected by cytochalasin treatment, but the parallelism of extracellular collagen fibrils was altered. In this case a significant proportion of collagen fibrils were found to no longer be orientated with the long axis of the tendon. The results suggest an important role for the actin cytoskeleton in the alignment and organization of the collagenous extracellular matrix in embryonic tendon.


Journal of Biological Chemistry | 2007

Structural and functional characterization of recombinant matrilin-3 A-domain and implications for human genetic bone diseases.

Maryline Fresquet; Thomas A. Jowitt; Joni Ylostalo; Paul Coffey; Roger S. Meadows; Leena Ala-Kokko; David J. Thornton; Michael D. Briggs

Mutations in matrilin-3 result in multiple epiphyseal dysplasia, which is characterized by delayed and irregular bone growth and early onset osteoarthritis. The majority of disease-causing mutations are located within the β-sheet of the single A-domain of matrilin-3, suggesting that they disrupt the structure and/or function of this important domain. Indeed, the expression of mutant matrilin-3 results in its intracellular retention within the rough endoplasmic reticulum of cells, where it elicits an unfolded protein response. To understand the folding characteristics of the matrilin-3 A-domain we determined its structure using CD, analytical ultracentrifugation, and dual polarization interferometry. This study defined novel structural features of the matrilin-3 A-domain and identified a conformational change induced by the presence or the absence of Zn2+. In the presence of Zn2+ the A-domain adopts a more stable “tighter” conformation. However, after the removal of Zn2+ a potential structural rearrangement of the metal ion-dependent adhesion site motif occurs, which leads to a more “relaxed” conformation. Finally, to characterize the interactions of the matrilin-3 A-domain we performed binding studies on a BIAcore using type II and IX collagen and cartilage oligomeric matrix protein. We were able to demonstrate that it binds to type II and IX collagen and cartilage oligomeric matrix protein in a Zn2+-dependent manner. Furthermore, we have also determined that the matrilin-3 A-domain appears to bind exclusively to the COL3 domain of type IX collagen and that this binding is abolished in the presence of a disease causing mutation in type IX collagen.


Human Molecular Genetics | 2010

A mouse model offers novel insights into the myopathy and tendinopathy often associated with pseudoachondroplasia and multiple epiphyseal dysplasia

Katarzyna A. Piróg; Oihane Jaka; Yoshihisa Katakura; Roger S. Meadows; Karl E. Kadler; Ray Boot-Handford; Michael D. Briggs

Pseudoachondroplasia (PSACH) and multiple epiphyseal dysplasia (MED) are relatively common skeletal dysplasias belonging to the same bone dysplasia family. PSACH is characterized by generalized epi-metaphyseal dysplasia, short-limbed dwarfism, joint laxity and early onset osteoarthritis. MED is a milder disease with radiographic features often restricted to the epiphyses of the long bones. PSACH and some forms of MED result from mutations in cartilage oligomeric matrix protein (COMP), a pentameric glycoprotein found in cartilage, tendon, ligament and muscle. PSACH-MED patients often have a mild myopathy characterized by mildly increased plasma creatine kinase levels, a variation in myofibre size and/or small atrophic fibres. In some instances, patients are referred to neuromuscular clinics prior to the diagnosis of an underlying skeletal dysplasia; however, the myopathy associated with PSACH-MED has not previously been studied. In this study, we present a detailed study of skeletal muscle, tendon and ligament from a mouse model of mild PSACH harbouring a COMP mutation. Mutant mice exhibited a progressive muscle weakness associated with an increased number of muscle fibres with central nuclei at the perimysium and at the myotendinous junction. Furthermore, the distribution of collagen fibril diameters in the mutant tendons and ligaments was altered towards thicker collagen fibrils, and the tendons became more lax in cyclic strain tests. We hypothesize that the myopathy in PSACH-MED originates from an underlying tendon and ligament pathology that is a direct result of structural abnormalities to the collagen fibril architecture. This is the first comprehensive characterization of the musculoskeletal phenotype of PSACH-MED and is directly relevant to the clinical management of these patients.


Methods | 2008

Electron microscopy in cell-matrix research

Tobias Starborg; Yinhui Lu; Roger S. Meadows; Karl E. Kadler; David F. Holmes

Tissue development in multicellular animals relies on the ability of cells to synthesise an extracellular matrix (ECM) containing spatially-organised fibrous assemblies, the most widespread of which is based on collagen fibrils whose length greatly exceeds that of individual cells. The importance of the correct regulation of fibril deposition is exemplified in diseases such as osteogenesis imperfecta (caused by mutations in collagen genes), fibrosis (caused by ectopic accumulation of collagen) and cardiovascular disease (which involves cells and macromolecules binding to collagen in the vessel wall). Much is known about the molecular biology of collagens but less is known about collagen fibril structure and how the fibrils are formed (fibrillogenesis). This is explained in part by the fact that the fibrils are non-crystalline, extensively cross-linked, and very large, which makes them refractory to study by conventional biochemical and high-resolution structure-determination techniques. Electron microscopy has become established as the method of choice for studying collagen fibril structure and assembly, and this article describes the electron microscope methods most often used.


Methods of Molecular Biology | 2009

ECM macromolecules: rotary shadowing and transmission electron microscopy.

Michael J. Sherratt; Roger S. Meadows; Helen K. Graham; Cay M. Kielty; David F. Holmes

Conventional preparation techniques for electron microscopy employ contrast enhancing heavy metal stains in solution to visualize isolated macromolecules. In rotary shadowing electron microscopy, the heavy metal is evaporated onto surface adsorbed molecules and macromolecular assemblies. High resolution shadowing remains a valuable method for the visualization and characterization of extracellular matrix macromolecules including fibrillar collagens, microfibrillar elements, and glycoproteins.


Journal of Biological Chemistry | 2001

Cartilage oligomeric matrix protein interacts with type IX collagen, and disruptions to these interactions identify a pathogenetic mechanism in a bone dysplasia family.

Paul Holden; Roger S. Meadows; Kathryn L. Chapman; Michael E. Grant; Karl E. Kadler; Michael D. Briggs


Human Molecular Genetics | 2007

Reduced cell proliferation and increased apoptosis are significant pathological mechanisms in a murine model of mild pseudoachondroplasia resulting from a mutation in the C-terminal domain of COMP

Katarzyna A. Piróg-Garcia; Roger S. Meadows; Lynette Knowles; Dick Heinegård; David J. Thornton; Karl E. Kadler; Ray Boot-Handford; Michael D. Briggs


Human Molecular Genetics | 2007

Decreased chondrocyte proliferation and dysregulated apoptosis in the cartilage growth plate are key features of a murine model of epiphyseal dysplasia caused by a matn3 mutation

Matthew Leighton; Seema Nundlall; Tobias Starborg; Roger S. Meadows; Farhana Suleman; Lynette Knowles; Raimund Wagener; David J. Thornton; Karl E. Kadler; Ray Boot-Handford; Michael D. Briggs

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Karl E. Kadler

Wellcome Trust Centre for Cell-Matrix Research

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David F. Holmes

Wellcome Trust Centre for Cell-Matrix Research

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Tobias Starborg

Wellcome Trust Centre for Cell-Matrix Research

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Yinhui Lu

Wellcome Trust Centre for Cell-Matrix Research

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Elizabeth G. Canty

Wellcome Trust Centre for Cell-Matrix Research

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Lynette Knowles

Wellcome Trust Centre for Cell-Matrix Research

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Cay M. Kielty

Wellcome Trust Centre for Cell-Matrix Research

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