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Orthopaedic Proceedings
Vol. 100-B, Issue SUPP_14 | Pages 48 - 48
1 Nov 2018
Walsh P Buchanan F
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Diatoms are unicellular microalgae whose cell walls are composed of remarkably uniform, hierarchical micro/nanopatterned, amorphous biosilica that cannot be replicated synthetically. Each species hosts its own unique morphology which is identically replicated generation-to-generation. There are currently estimated to be over 200,000 different diatom species, each with their own unique shape and morphology. This offers a huge array of surface topographies, particle sizes and shapes, each with the same silica precursor. Our research to date has shown that diatom-biosilica is non-cyctotoxic to J774.2 macrophages and hBMSC cells and does not invoke an immunological response or organ toxicity (kidney, spleen and liver) when tested in a murine model. Before testing diatom-biosilica in vivo in an animal fracture model, methods to incorporate the frustules into the defect are being investigated. Two methods have been developed 1) using a bioresorbable hydrogel and 2) 3-D printed polymer-biosilica scaffolds. Both methods have shown promising results with enhanced mechanical properties with the addition of the diatom-biosilica. Work is ongoing to further map and quantify the role of surface topography and chemical cues on cell fate through the systematic in vitro studies of different species of diatom-biosilica.


Orthopaedic Proceedings
Vol. 96-B, Issue SUPP_11 | Pages 295 - 295
1 Jul 2014
Walsh P Mulhall K
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Summary Statement

Ischaemic preconditioning protected skeletal myotubes against the effects of ischaemia-reperfusion in vitro. This protection was associated with increased Nrf2 signalling.

Introduction

Ischaemic preconditioning (IPC) is a well recognised and powerful phenomenon where a tissue becomes more tolerant to a period of prolonged ischaemia when it is first subjected to short bursts of ischaemia/reperfusion. While much is known about the ability of ischaemic preconditioning to protect myocardial tissue against ischaemia-reperfusion injury, its potential to confer benefit in an orthopaedic setting by protecting skeletal muscle remains relatively unexplored to date.

One mechanism by which ischaemic preconditioning may induce protection is through a reduction in oxidative stress. Reactive oxygen species (ROS) are generated both during prolonged ischaemia and also upon reperfusion by infiltrating neutrophils, thereby leading to an increase in oxidative stress. The transcription factor, NF-E2-related factor 2 (Nrf2), is a key regulator of the cells response to oxidative stress as it regulates the expression of a network of anti-oxidant/detoxifying enzymes. Nrf2 signalling has recently been shown to protect against ischaemia-reperfusion injury in both a kidney cell line and in liver biopsies, indicating that this transcription factor may play a key role in the protection provided by ischaemic preconditioning. To date, the involvement of Nrf2 in the response of skeletal muscle to ischaemia-reperfusion has not been investigated. Thus, the aims of this study were to investigate the ability of ischaemic preconditioning to protect skeletal myotubes against ischaemia-reperfusion and to determine the role of Nrf2 signalling in this protection.


Orthopaedic Proceedings
Vol. 96-B, Issue SUPP_6 | Pages 29 - 29
1 Apr 2014
Morris S Marriott H Walsh P Kane N Harding I Hutchinson J Nelson I
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Aim:

Recent guidelines have been published by the Association of Neurophysiological Scientists / British Society for Clinical Neurophysiology (ANS/BSCN) regarding the use of intra-operative neurophysiological monitoring (IOM) during spinal deformity procedures. We present our unit's experience with IOM and the compliance with national guidelines.

Method:

All patients undergoing intra-operative spinal cord monitoring during adult and paediatric spinal deformity surgery between Jan 2009 and Dec 2012 were prospectively followed. The use of somatosensory-evoked potentials (SSEPs) and motor-evoked potentials (MEPs) was recorded and monitoring outcomes were compared to post-operative clinical neurological outcomes. Compliance with the national ANS/BSCN guidelines was assessed.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XXXIX | Pages 208 - 208
1 Sep 2012
McGuire C Walsh P Mulhall K
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Objectives

Ischaemic preconditioning (IPC) is a phenomenon whereby tissues develop an increased tolerance to ischaemia and subsequent reperfusion if first subjected to sublethal periods of ischaemia. Despite extensive investigation of IPC, the molecular mechanism remains largely unknown. Our aim was to show genetic changes that occur in skeletal muscle cells in response to IPC.

Methods

We established an in-vitro model of IPC using a human skeletal muscle cell line. Gene expression of both control and preconditioned cells at various time points was determined. The genes examined were HIF-1?, EGR1, JUN, FOS, and DUSP1. HIF-1? is a marker of hypoxia. EGR1, JUN, FOS and DUSP1 are early response genes and may play a role in the protective responses induced by IPC. Secondly, the expression of HSP22 was examined in a cohort of preconditioned total knee arthroplasty patients.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XXXIX | Pages 166 - 166
1 Sep 2012
Baker J Walsh P Mulhall K
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Introduction

Matrix metalloproteinases (MMP) play a key role in cartilage degradation in osteoarthritis. Statins are a potential suppressor of MMPs. The aim of this research was to assess the efficacy of Pravastatin in suppressing MMP gene and protein expression in an in vitro model.

Methods

We stimulated normal human chondrocytes with IL-1b for 6 hours to induce MMP expression and then treated with Pravastatin (1, 5 & 10 mM) for a further 18 hours. Cells stimulated with IL-1b but not treated with Pravastatin served as controls. Real-time PCR was used to assess expression of MMP-3 and MMP-9 mRNA. MMP enzyme activity was assessed using a fluorescent MMP-specific substrate. Staistical analysis was performed using ANOVA.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XXXVI | Pages 4 - 4
1 Aug 2012
McGuire C Walsh P Mulhall PK
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OBJECTIVES

Ischaemic preconditioning (IPC) is a phenomenon whereby tissues develop an increased tolerance to ischaemia and subsequent reperfusion if first subjected to sublethal periods of ischaemia. Despite extensive investigation of IPC, the molecular mechanism remains largely unknown. Our aim was to show genetic changes that occur in skeletal muscle cells in response to IPC.

METHODS

Firstly, we established an in-vitro model of IPC using a human skeletal muscle cell line. Gene expression of both control and preconditioned cells at various time points was determined. The genes examined were HIF-1 alpha, EGR1, JUN, FOS, and DUSP1. HIF-1 alpha is a marker of hypoxia. EGR1, JUN, FOS and DUSP1 are early response genes and may play a role in the protective responses induced by IPC. Secondly, the expression of HSPB8 was examined in a cohort of preconditioned total knee arthroplasty patients.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XVII | Pages 50 - 50
1 May 2012
Baker J Byrne D Walsh P Mulhall K
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Introduction

Local anaesthetic has been reported to have a detrimental effect on human chondrocytes both in vitro and in vivo. Magnesium, an NMDA-receptor antagonist, may be an alternative intra-articular analgesic agent following arthroscopy. We aimed to report the dose response effect of commonly used local anaesthteitc on chondrocyte viability and also report on the effect of adding magnesium to local anaesthetic.

Methods

Human chondrocytes were grown under standard conditions. Cells were exposed to either lignocaine (0.5, 1, 2%), levobupivacaine (0.125, 0.25, 0.5%), bupivacaine (0.125, −.25, 0.5%) or ropivacaine (0.1875, 0.375, 0.75%) for 15 minutes. Cells were also exposed to a local anesthetic agent with the addition of magnesium (10, 20, or 50%). Cells exposed to media or saline served as controls. The MTS assay was used to assess cell viability 24-hours after exposure.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XVIII | Pages 27 - 27
1 May 2012
Magill P Walsh P Murphy T Mulhall K
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Introduction

Ischaemic preconditioning (IPC) is a phenomenon whereby a tissue is more tolerant to an insult if it is first subjected to short bursts of sublethal ischaemia and reperfusion. The potential of this powerful mechanism has been realised in many branches of medicine where there is an abundance of ongoing research. However, there has been a notable lack of development of the concept in Orthopaedic surgery. The routine use of tourniquet-controlled limb surgery and traumatic soft tissue damage are just two examples of where IPC could be utilised to beneficial effect in Orthopaedic surgery.

Methods

We conducted a randomized controlled clinical trial looking at the role of a delayed remote IPC stimulus on a cohort of patients undergoing a total knee arthroplasty (TKA). We measured the effect of IPC by analysing gene expression in skeletal muscle samples from these patients. Specifically we looked at the expression of Heat shock protein-90 (HSP-90), Catalase and Cyclo-oxygenase-2 (COX-2) at the start of surgery and at one hour into surgery. Gene analysis was performed using real time polymerase chain reaction amplification. As a second arm to the project we developed an in-vitro model of IPC using a human skeletal muscle cell line. A model was developed, tested and subsequently used to produce a simulated IPC stimulus prior to a simulated ischaemia-reperfusion (IR) injury. The effect of this on cell viability was investigated using crystal violet staining.


Orthopaedic Proceedings
Vol. 94-B, Issue SUPP_XVIII | Pages 20 - 20
1 May 2012
Baker J Walsh P Mulhall K
Full Access

Introduction

Local anaesthetic has been reported to have a potentially detrimental effect on human chondrocytes both in vitro and in vivo. Due to chondroproliferative effects, magnesium may be an alternative intra-articular analgesic agent following arthroscopy. We aimed to examine the dose response effect of commonly used local anaesthetics on chondrocyte viability and also to report on the effect of adding magnesium to the local anesthetic agent.

Methods

Human chondrocytes were grown under standard culture conditions. Cells were exposed to either lignocaine (0.5, 1, 2%), levobupivacaine (0.125, 0.25, 0.5%), bupivacaine (0.125, 0.25, 0.5%) or ropivacaine (0.1875, 0.375, 0.75%) for 15 minutes. Cells were also exposed to a local anesthetic agent with the addition of magnesium (10, 20, or 50%). Cells exposed to culture media or saline served as controls. The MTS assay was used to assess cell viability 24 hours after exposure. One-way ANOVA were used to test for statistical significance.


Orthopaedic Proceedings
Vol. 93-B, Issue SUPP_II | Pages 177 - 177
1 May 2011
Solayar G Walsh P Murray D Mulhall K
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Introduction: Low-molecular-weight heparin is commonly used for thromboprophylactic therapy post orthopaedic surgery. Studies in the past have suggested that it may have a negative effect on osteoblasts and some have implicated its use with the risk of developing osteoporosis. Recently, Rivaroxaban, an oral Factor Xa inhibitor is gaining impetus for antithrombotic therapy over the last year and has been recommended for licensing by the FDA for this purpose. The effect of Rivaroxa-ban on bone and osteoblasts, if any, remains to be seen.

Methods: In a standardized in vitro model, human osteoblasts were cultured and exposed to a range of Enoxaparin and Rivaroxaban concentrations including their therapeutic dose. We evaluated the effects of these drugs on osteoblastic proliferation and activity using CellTiter 96 AQueous non-radioactive cell proliferation (MTS) and alkaline phosphatase assays respectively. Gene expression of Runt-related transcription factor 2 (Runx2), osteocalcin and bone morphogenetic protein 2 (BMP-2) were evaluated using Real time-polymerase chain reaction (RT-PCR) studies. Statistical analyses (t-test) were conducted using Microsoft Excel 2007.

Results: Rivaroxaban and Enoxaparin significantly reduced alkaline phosphatase activity (p< 0.05) however, no negative effects on osteoblastic proliferation was seen at all concentrations of both drugs. Rivaroxaban decreased Osteocalcin and Runx2 mRNA expression levels at 24 hours at therapeutic concentrations (p< 0.05). This effect was similarly found at therapeutic levels of Enoxaparin. Both Rivaroxaban and Enoxaparin significantly reduced BMP-2 mRNA expression both at 24 hours and 7 days at therapeutic concentrations. (p< 0.05).

Conclusion: Our study suggests that Rivaroxaban has similar negative effects on osteoblasts compared to Enoxaparin in the early stages. The increased duration of recommended Rivaroxaban therapy (2 and 5 weeks) post arthroplasty compared to Enoxaparin therapy (around 1 week) may have a more pronounced effect on bone homeostasis.


Orthopaedic Proceedings
Vol. 92-B, Issue SUPP_IV | Pages 618 - 618
1 Oct 2010
Murphy T Doran P Magill P Mulhall K Walsh P
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Introduction: Ischaemic preconditioning (IPC) is a well recognised and powerful phenomenon where a tissue becomes more tolerant to prolonged ischaemia when it is first subjected to short bursts of ischaemia/reperfusion. IPC has been most comprehensively studied in cardiothoracic surgery, to date there has been little use of this powerful phenomenon in orthopaedic surgery. In this study, we report on the first clinical trial of IPC on human skeletal muscle, and show the potential of IPC in orthopaedics using global gene expression analysis.

Methods: After local ethics committee approval and informed consent, patients undergoing primary knee arthroplasty were randomly assigned into an IPC group and a control group. Diabetic patients or patients with an ankle/brachial index of less than 1 were excluded.

The IPC consisted of three five-minute periods of tourniquet insufflation on the operative limb, interrupted by five minute periods of reperfusion. The tourniquet was again insufflated and the operation started. The control group simply had tourniquet insufflation as normal prior to the start of surgery.

Muscle samples were taken from the operative knee of all patients at the immediate onset of surgery (t=0), and again, at one hour into the surgery (t=1). Total RNA was extracted from the muscle samples, and the gene expression profiles were determined using microarray technology.

Results: Comparison of IPC and control samples identified 702 transcripts with differences of ≥1.5-fold in their expression. Of these, 137 were altered at t=0 while 565 were altered at t=1. Amongst these changes was an up-regulation in the expression of a number of heat shock proteins (HSPs) in the IPC group as compared to the control group. Notably, there was up-regulation of the well known cytoprotective/anti-apoptotic gene, HSP72, at one hour post IPC (1.5-fold, p=0.039). There was also up-regulation of important oxidative stress defense genes, such as glutathione-S-transferase (1.6-fold, p = 0.021) and superoxide dismutase 2 (3.6-fold, p= 0.048). Microarray analysis also revealed a down-regulation in the expression of genes involved in metabolism, down-regulation of pro-apoptotic genes and up-regulation of genes necessary for transformation to a hypoxia-tolerant state.

Discussion: We present convincing evidence that IPC is beneficial to human skeletal muscle and for the first time show that IPC of human skeletal muscle works in the clinical setting. In this study, the protective effect of IPC involved a down-regulation in the expression of genes associated with metabolism, and an up-regulation in the expression of genes that provide protection from cell stress, oxidative stress and apoptosis. HSPs, and especially HSP72, have well documented roles in cell stress protection. Their presence has been cited by other studies as an indicator of cell adaptation to stress.