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Featured researches published by Rose L. Spear.


Biomaterials | 2011

Osteoblast and monocyte responses to 444 ferritic stainless steel intended for a Magneto-Mechanically Actuated Fibrous Scaffold

Vera N. Malheiro; Rose L. Spear; Roger A. Brooks; Ae Markaki

The rationale behind this work is to design an implant device, based on a ferromagnetic material, with the potential to deform in vivo promoting osseointegration through the growth of a healthy periprosthetic bone structure. One of the primary requirements for such a device is that the material should be non-inflammatory and non-cytotoxic. In the study described here, we assessed the short-term cellular response to 444 ferritic stainless steel; a steel, with a very low interstitial content and a small amount of strong carbide-forming elements to enhance intergranular corrosion resistance. Two different human cell types were used: (i) foetal osteoblasts and (ii) monocytes. Austenitic stainless steel 316L, currently utilised in many commercially available implant designs, and tissue culture plastic were used as the control surfaces. Cell viability, proliferation and alkaline phosphatase activity were measured. In addition, cells were stained with alizarin red and fluorescently-labelled phalloidin and examined using light, fluorescence and scanning electron microscopy. Results showed that the osteoblast cells exhibited a very similar degree of attachment, growth and osteogenic differentiation on all surfaces. Measurement of lactate dehydrogenase activity and tumour necrosis factor alpha protein released from human monocytes indicated that 444 stainless steel did not cause cytotoxic effects or any significant inflammatory response. Collectively, the results suggest that 444 ferritic stainless steel has the potential to be used in advanced bone implant designs.


Journal of Biomedical Materials Research Part A | 2013

Short-term in vitro responses of human peripheral blood monocytes to ferritic stainless steel fiber networks.

Rose L. Spear; Roger A. Brooks; Ae Markaki

Beneficial effects on bone-implant bonding may accrue from ferromagnetic fiber networks on implants which can deform in vivo inducing controlled levels of mechanical strain directly in growing bone. This approach requires ferromagnetic fibers that can be implanted in vivo without stimulating undue inflammatory cell responses or cytotoxicity. This study examines the short-term in vitro responses, including attachment, viability, and inflammatory stimulation, of human peripheral blood monocytes to 444 ferritic stainless steel fiber networks. Two types of 444 networks, differing in fiber cross section and thus surface area, were considered alongside austenitic stainless steel fiber networks, made of 316L, a widely established implant material. Similar high percent seeding efficiencies were measured by CyQuant® on all fiber networks after 48 h of cell culture. Extensive cell attachment was confirmed by fluorescence and scanning electron microscopy, which showed round monocytes attached at various depths into the fiber networks. Medium concentrations of lactate dehydrogenase (LDH) and tumor necrosis factor alpha (TNF-α) were determined as indicators of viability and inflammatory responses, respectively. Percent LDH concentrations were similar for both 444 fiber networks at all time points, whereas significantly lower than those of 316L control networks at 24 h. All networks elicited low-level secretions of TNF-α, which were significantly lower than that of the positive control wells containing zymosan. Collectively, the results indicate that 444 networks produce comparable responses to medical implant grade 316L networks and are able to support human peripheral blood monocytes in short-term in vitro cultures without inducing significant inflammatory or cytotoxic effects.


Archive | 2014

In Vitro Assessment of Porous Magneto-Active Coatings for Implant Osseointegration

Rose L. Spear; Antonia Symeonidou; Roger A. Brooks; Ae Markaki

Abstract Recent advances have been made in the development of smart implant coatings with the potential for controlled actuation in vivo, promoting osseointegration. The design of these coatings is based on the concept of magneto-mechanical actuation of porous ferromagnetic fiber networks. In response to an applied magnetic field, ferromagnetic fibers deform elastically applying strains to in-growing bone tissue. Systematic in vitro experimentation has been conducted to evaluate the biological suitability of a ferritic stainless steel grade for these coatings in two-dimensional sheets and a three-dimensional, highly porous network. These studies have considered critical biological parameters such as responses of bone and inflammatory cells. A discussion of these in vitro studies is presented in the current review along with a perspective of current magneto-mechanical actuation experiments with these materials.


Colloids and Surfaces B: Biointerfaces | 2007

Templated growth of calcium phosphate on tyrosine derived microtubules and their biocompatibility

Rose L. Spear; Robert Tamayev; Karl R. Fath; Ipsita A. Banerjee


International Journal of Material Forming | 2008

Carbon nanotubes for orthopaedic implants

Rose L. Spear; Ruth E. Cameron


Tissue Engineering Part A | 2015

Physical and Biological Characterization of Ferromagnetic Fiber Networks: Effect of Fibrin Deposition on Short-Term In Vitro Responses of Human Osteoblasts

Rose L. Spear; Brajith Srigengan; Suresh Neelakantan; Wolfram Bosbach; Roger A. Brooks; Ae Markaki


MRS Proceedings | 2013

Human Mesenchymal Stem Cell Response to 444 Ferritic Stainless Steel Networks

Antonia Symeonidou; Rose L. Spear; Roger A. Brooks; Ae Markaki


Biomaterials and Biomechanics in Bioengineering | 2015

Fibrin affects short-term in vitro human mesenchymal stromal cell responses to magneto-active fibre networks

Rose L. Spear; Antonia Symeonidou; Jeremy N. Skepper; Roger A. Brooks; Ae Markaki


Archive | 2008

The effect of functionalisation on carbon nanotube interactions with osteoblast-like cells

Rose L. Spear; D Eder; Ah Windle; N Rushton; Rr Brooks; Sm Best; Ruth E. Cameron


MRS Proceedings | 2012

Short-term Cytotoxic and Inflammatory Responses of Human Monocytes to Stainless Steel Fibre Networks

Rose L. Spear; Roger A. Brooks; Ae Markaki

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Ae Markaki

University of Cambridge

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Karl R. Fath

City University of New York

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Suresh Neelakantan

Delft University of Technology

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