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Biomedical subjects

W A Morrison

Publications and source records attributed to W A Morrison.

At least 37 records · Page 2Linked to original sources

Effects of LIF dose and laminin plus fibronectin on axotomized sciatic nerves.

Leukemia inhibitory factor (LIF), a cytokine which has neurotrophic and myotrophic activities, has been shown to enhance nerve regeneration and consequent return of muscle function in the entubulation model of sciatic nerve repair. Fibronectin (FN) and laminin (LN) are two extracellular matrix (ECM) components that, when combined, promote axon growth in the entubulation model. The aim of this study was to determine the optimal LIF dose and the efficacy of FN plus LN administered either alone or simultaneously with the optimal LIF dose. We found that at 12 weeks following nerve repair, a single 10 ng LIF dose produced the largest medial gastrocnemius (MG) muscle mass (P < 0.0001) and maximum force contraction (P < 0.001). The diameter of the axons in the FN plus LN group were significantly greater than for saline (P < 0.001) and the LIF dose groups (P < 0.01). When 10 ng LIF was combined with FN plus LN, the MG muscle mass was significantly greater than the optimal LIF dose (P < 0.05), suggesting an additive effect. Our findings support the view that combinations of factors, which perhaps act on complementary mechanisms for nerve regeneration, will be required to maximally potentiate nerve regeneration and return of muscle function after nerve injury.

Animals↗

Prior heat stress improves survival of ischemic-reperfused skeletal muscle in vivo.

The ability of heat stress to improve the survival of ischemic-reperfused skeletal muscle in vivo was investigated. Ischemia-reperfusion was applied using the rat hindlimb tourniquet model. The viability of ischemic-reperfused muscle (11 +/- 1%) was increased by prior mild heat stress (86 +/- 2%). To investigate whether heat shock protein 70 (Hsp 70) expression in the muscle of the heated limb was responsible for this protection, the survival of Hsp 70-expressing transduced myoblasts and myocytes was measured after exposure to mediators of ischemia-reperfusion injury. Survival was improved in Hsp 70-positive myoblasts but not in myocytes, suggesting that the mechanism of protection conferred by heat stress in vivo cannot be explained by the expression of Hsp 70 in myocytes and may involve a more complex mechanism. In conclusion, prior heat stress is effective in protecting mature skeletal muscle in vivo against necrosis after ischemia-reperfusion and has potential for use in microsurgical procedures requiring tourniquet applications.

Animals↗

Cold storage of rat skeletal muscle free flaps and pre-ischemic perfusion with modified UW solution.

We used the rat medial gastrocnemius free flap, based on a pedicle of the femoral artery and vein, in order to test the tolerance of skeletal muscle to cold ischemia-reperfusion (IR) injury, and to determine whether tolerance can be enhanced by pre-ischemic perfusion with tissue/organ preservation solutions. Muscle flaps (n = 6 per group) were subjected to variable periods of cold storage (0, 1, 2, 3, or 4 days) and 24-h normothermic reperfusion. Muscle viability, as determined by nitroblue tetrazolium (NBT) histochemical staining of viable mitochondria and supported by histological examination, was 100%, 26%, 11%, 4%, and 1%, respectively. Using 24-h cold storage/24-h reperfusion as the experimental conditions, groups of muscle flaps (n = 5 per group) were perfused immediately before cold storage with either modified, colloid-free University of Wisconsin (UW) solution, a solution described by Kohout et al. (Br J Plast Surg 1995;48:132-144) or normal saline. Perfusion with modified UW solution or Kohout's solution increased survival to 33% (P < 0.05) and 28% (not statistically significant), respectively, compared with the 19% viability of separate groups of nonperfused or saline-perfused controls. These findings indicate that cold-stored skeletal muscle is highly susceptible to cold IR injury and that the viability can be increased by prior perfusion with a tissue preservation solution such as modified UW solution.

Adenosine↗

Ischemic preconditioning: lack of delayed protection against skeletal muscle ischemia-reperfusion.

We investigated the ability of ischemic preconditioning to induce expression of heat shock protein 70 (Hsp 70) and/or to increase muscle survival after ischemia-reperfusion in the rat hind limb. Ischemic preconditioning regimens tested were; 1 x 5 min of ischemia, 4 x 5 min of ischemia interrupted by 10 min of reperfusion, 1 x 10 min of ischemia or 2 x 10 min of ischemia interrupted by 15 min of reperfusion. Western blot analysis revealed only a modest induction of Hsp 70 at 24 h after preconditioning using the latter two protocols of 1 x 10 min of ischemia or 2 x 10 min. Used at 24 h prior to prolonged ischemia, neither protocol improved muscle survival measured at 24 h after reperfusion. In conclusion, ischemic preconditioning did not produce delayed protection from ischemia-reperfusion in this model and the study suggests that ischemic preconditioning is not a useful protective strategy against skeletal muscle necrosis in the long-term.

Animals↗

Localization of inducible nitric oxide synthase to mast cells during ischemia/reperfusion injury of skeletal muscle.

Nitric oxide contributes to tissue necrosis after ischemia-reperfusion (IR). A biochemical and immunohistochemical study was made of the amounts and localization of both Ca++-independent nitric oxide synthase (NOS) II and Ca++-dependent (NOS I and NOS III) in rat skeletal muscle after ischemia and 0.5, 2, 8, 16, and 24 hours reperfusion. NOS II was not detectable in control muscle or during ischemia, was first detected after 2 hours reperfusion, increased further by 8 hours, and remained elevated at 24 hours. Both NOS II and nitrotyrosine, a marker of peroxynitrite formation, were localized exclusively to mast cells except after 24 hours reperfusion when some macrophages and neutrophils also showed positive immunoreactivity. Mast cells underwent extensive degranulation during reperfusion. NOS I was not detected in injured or control muscle. The level of NOS III, which was localized to the endothelium of blood vessels of all sizes in control muscle, decreased progressively during ischemia and reperfusion to reach undetectable levels after 16 hours reperfusion. These findings indicate that most of the nitric oxide formed during IR injury is generated by NOS II located almost exclusively in mast cells.

Animals↗

Neutrophil-independent protective effect of r-metHuG-CSF in ischaemia-reperfusion injury in rat skeletal muscle.

The aim of this study was to investigate the effect of the cytokine, r-metHuG-CSF, in a rat model of ischaemia-reperfusion (IR) injury and the pathophysiological mechanism involved. The administration of r-metHuG-CSF (20 (g/kg, s.c.) 4 h prior to either 100 min or 2 h of tourniquet ischaemia to the upper thigh significantly improved the viability of skeletal muscle after 24 h reperfusion compared with saline-treated rats (P < 0.05). Administration of r-metHuG-CSF earlier (24 h before ischaemia) or later (immediately before ischaemia) had no protective effect. At the dose used, r-metHuG-CSF caused a three-fold increase in the level of circulating blood neutrophils and a modest but significant increase in the neutrophil content of ischaemic muscle after 24 h reperfusion. Reduction of neutrophils to 1.4% of normal levels by cyclophosphamide (150 mg/kg, i.p.) prior to injury had no significant effect on the survival of muscle subjected to 2 h ischaemia and 24 h reperfusion or on the protective effect of r-metHuG-CSF. IR injury to skeletal muscle was accompanied by a time-dependent increase in plasma TNFalpha levels during the first 8 h of reperfusion and the increase was reduced significantly by pretreatment with r-metHuG-CSF. However, a similar time-dependent increase in plasma nitrite/nitrate levels was unaffected by pretreatment with r-metHuG-CSF. These findings suggest that the protective effect of r-metHuG-CSF may be mediated by the attenuated release of TNFalpha and indicate that the level of neutrophils in either blood or injured tissue does not influence significantly the viability of rat muscle after IR injury.

Animals↗

Generation of an autologous tissue (matrix) flap by combining an arteriovenous shunt loop with artificial skin in rats: preliminary report.

The present experiment was designed to investigate the possibility of prefabricating a tissue flap in a rat by combining an arteriovenous (A-V) shunt loop with artificial skin dermis (AS). The A-V fistula loop was constructed between the right femoral artery and vein by the interposition of a vein graft and the loop was wrapped with a folded sheet of AS and buried beneath the inguinal skin. In the control group the folded sheet of AS was inserted without a vessel loop and embedded in the inguinal region as in the experimental group. There were three experiments. In experiment 1, the total volume of the generated tissue formed within the AS was calculated after 4 weeks in the experimental and control groups. In experiment 2, the AS in the experimental group was harvested at 2 (group 1) and 4 (group 2) weeks after insertion to assess the change in morphology over time. In experiment 3, full thickness skin grafts were placed over the generated tissue of the experimental groups to investigate the possibility of creating skin flaps. The total volume of tissue generated in the experimental group was significantly greater than in the control group (P< 0.01). Histological and carbon injection studies suggest that the new capillary bed is derived from the graft loop vessels and tissue generation and organisation of the AS were further advanced in group 2 than in group 1. The skin grafts placed over the tissues generated showed complete survival and could be raised as island flaps in both groups.

Animals↗

Formation of new tissue from an arteriovenous loop in the absence of added extracellular matrix.

A major requirement for the microsurgical repair of contour defects of the skin, for example, following removal of a skin cancer on the face, is a mass of vascularised subcutaneous tissue. Such tissue can be generated in vivo using basic tissue engineering principles. In previous studies in our laboratory, we have used a model comprising an arteriovenous (AV) shunt loop sandwiched in artificial dermis, placed in a cylindrical plastic growth chamber, and inserted subcutaneously to grow new connective tissue progressively up to 4 weeks. To learn more about the basic growth characteristics with this model, the same AV shunt loop within a chamber without added extracellular matrix was inserted subcutaneously into the groins of rats for 2, 4, or 12 weeks (n = 5 per group). There was a progressive increase in the mass and volume of tissue such that the chamber was two-thirds full after 12 weeks. Histological examination showed that at 2 weeks there was evidence of fibroblast and vascular outgrowth from the AV shunt, with the formation of granulation tissue, surrounded by a mass of coagulated exudate. At 4 weeks the connective tissue deposition was more extensive, with a mass of more mature granulation tissue containing considerable collagen. By 12 weeks there was an extensive, well vascularized mass of mature fibrous tissue. The blood vessels and residual adventitia of the AV shunt were the likely source of growth factors and of the cells which populated the chamber with new maturing connective tissue. A patent AV shunt in an isolated chamber appears to be the minimal requirement for the generation of new vascularized tissue that is potentially suitable for microsurgical transplantation.

Animals↗

The beneficial effect of heparin in preischemic perfusion solutions for cold-stored skin flaps.

Storage of skin flaps in the cold before replantation increases their tolerance to ischemic damage. Rat epigastric skin flaps were perfused immediately before 2 days of cold ischemia with 3 ml of normal saline containing either 10 U per milliliter of heparin (group 1, N = 11) or normal saline (group 2, N = 10), or stored without perfusion (group 3, N = 6), and replanted. Flap viability was assessed 7 days later. The mean flap survival in groups 1, 2, and 3 was 73% (p<0.01 compared with group 2), 10%, and 33% respectively. Intravascular fibrin deposits were detected histochemically 5 minutes before reperfusion in nonperfused flaps and 5 minutes after reperfusion in saline-perfused flaps, but not in flaps perfused with heparinized saline. Angiography revealed evidence of no reflow in the first 5 minutes of reperfusion in saline-perfused flaps, but normal blood flow in heparinized saline-perfused flaps. Tissue water content, myeloperoxidase activity, and hydroperoxide levels after 1 and 24 hours of reperfusion were not significantly different in flaps perfused with heparinized saline and normal saline. These findings indicate that in skin flaps perfused before ischemia, flaps perfused with heparinized saline survive significantly better than flaps perfused with normal saline. They also survive better than nonperfused flaps but the improvement is not significant.

Animals↗

A method for processing fluorescent labelled tissue into methacrylate: a qualitative comparison of four tracers.

A technique for preserving fluorescence in retrogradely labelled neurons embedded in resin was developed. Four retrograde tracers were tested, Fast Blue (FB); Diamidino Yellow (DY); tetramethylrhodamine dextran (fluoro-ruby) (TMRD) and fluorescein dextran (fluoro-emerald) (FD). These tracers were applied to the cut end of the sciatic nerves in rats either by: (a) direct application of tracer crystals, or (b) dipping the nerve into an aqueous solution containing the tracer. Each lumbar spinal cord was removed and dehydrated by one of two methods: (a) conventional alcohol dehydration, or (b) dehydration through a graded series of aqueous methacrylate infiltration solutions (inert dehydration). Specimens were embedded in methacrylate and horizontal sections cut. The location of labelled motoneurons was mapped using a fluorescence microscope. Direct application of tracer crystals labelled more motoneurons than dipping. Fast Blue labelled considerably more motoneurons than tetramethylrhodamine. Labelling by all tracers was retained following methacrylate embedding. Fast Blue and Diamidino Yellow required inert dehydration, while tetramethylrhodamine dextran and fluorescein dextran were preserved using conventional dehydration. These results indicate that tissue labelled with commonly used fluorescent tracers can be processed and embedded in methacrylate, thereby permitting quantitative analysis by modern stereological methods.

Animals↗

Anterograde transport of leukemia inhibitory factor within transected sciatic nerves.

Disappointing functional recovery following peripheral nerve repair can be improved by neurotrophic growth factors. Leukemia inhibitory factor (LIF) is unique in that it has independent neurotrophic and myotrophic actions. The aim of this study was to explain this finding by establishing the existence of anterograde axonal transport of LIF from the site of nerve division to denervated muscles. Using 125I LIF, administered topically via an entubulation repair of divided rat sciatic nerve, we monitored its subsequent distribution by measuring the radioactivity associated with nerve segments and denervated muscles. We established that LIF preferentially accumulated in denervated muscles, a process we could reduce by 70% after tightly ligating the intervening nerve, confirming the presence of anterograde axonal transport. This was most likely an active mode of transport that ceased approximately 24 h after nerve division, establishing a narrow clinical time frame within which the myotrophic action of LIF could be optimized following nerve repair.

Animals↗

New source of vein graft for rabbit experimentation.

The present report introduces a new source of vein graft in rabbit experimentation which is long and of large caliber. The average length of available vein was 13.3+/-0.9 cm (mean+/-SD). The average external diameter of the vein was 1.8+/-0.2 mm (mean+/-SD), 1.4+/-0.4 mm (mean+/-SD), and 1.8+/-0.2 mm (mean+/-SD) at the proximal, middle, and distal portions, respectively. The average number of valves throughout the vein was 7+/-1. The vein is anatomically termed the lateral saphenous vein distally and the ischiadic vein proximally, and is superficially located on the lateral aspect of the pelvic limb. Therefore, this vein is easily harvested from the lower crus to the upper-thigh, providing a long length of vein graft for experimental study.

Animals↗

Nitric oxide synthase-independent generation of nitric oxide in rat skeletal muscle ischemia-reperfusion injury.

We have used electron paramagnetic resonance to investigate the time course of nitric oxide (NO) generation and its susceptibility to inhibitors of nitric oxide synthase (NOS) in ischemia-reperfusion (IR) injury to rat skeletal muscle in vivo. Significant levels of muscle nitroso-heme complexes were detected 24 h postreperfusion, but not after at 0.05, 3, and 8 h of reperfusion. The levels of muscle nitroso-heme complexes were not decreased by the NOS inhibitor N-nitro-L-arginine methyl ester as a single dose (30 mg/kg) prior to reperfusion or as multiple doses continued throughout the reperfusion (total administered, 120 mg/kg) or by the potent NOS inhibitor S-methylisothiourea (3 mg/kg). In contrast, nitroso-heme levels were reduced by the glucocorticoid dexamethasone (2.5 mg/kg). Muscle necrosis in vitro did not result in the formation of nitroso-heme complexes. The finding that reperfusion after ischemia is necessary for NO formation suggests that an inflammatory pathway is responsible for NOS-independent NO formation in IR injury to skeletal muscle.

Animals↗

The survival of skeletal muscle myoblasts in vitro is sensitive to a donor of nitric oxide and superoxide, SIN-1, but not to nitric oxide or peroxynitrite alone.

The survival of skeletal muscle myoblasts in culture after exposure either to a donor of NO, sodium nitroprusside (SNP), or ethanamine, 2,2'-(hydroxynitrosohydrazono)bis-(DETA NONOate), or to a donor of both NO and O(-)(2), 3-morpholinosydnonimine hydrochloride (SIN-1), was investigated. SIN-1 reduced clonogenic survival markedly but donors of NO alone did not. The injurious effect of SIN-1 was prevented by oxyhemoglobin or by uric acid but not by superoxide dismutase. The exposure of myoblasts to authentic peroxynitrite (ONOO(-)) or to DETA NONOate in the presence of an O(-)(2)-generating system did not reduce their survival. The results show that NO or ONOO(-) alone is not detrimental to myoblast survival and suggest that SIN-1 toxicity is, at least in part, mediated by H(2)O(2) in this myoblast culture system.

Animals↗

Muscle cells become necrotic rather than apoptotic during reperfusion of ischaemic skeletal muscle.

While necrosis is known as a major mechanism for the loss of viability of skeletal muscle following ischaemia and reperfusion, much less is known of the role of apoptosis. In this study rat hind limbs were subjected to 2 h of tourniquet ischaemia, then reperfused for either 0, 0.25, 0.5, 1, 3, 8, 16 or 24 h (n = 6 per group). Mean viability of muscle, assessed by tetrazolium dye reduction, after 2 h ischaemia and 24 h reperfusion was 17%. Histological examination revealed disrupted, necrotic muscle fibres from 30 min to 24 h reperfusion. Apoptotic nuclei were identified by haematoxylin staining and TUNEL, terminal deoxynucleotidyl transferase mediated dUTP nick end labelling. No TUNEL-positive cells were observed at the end of the ischaemic period, but a small number of TUNEL-positive endothelial and smooth muscle cells were found at 30 min reperfusion, with a progressive increase in their number up to 24 h reperfusion. Apoptotic neutrophils were detected after 8-24 h reperfusion. At no stage was apoptosis seen in the nuclei of skeletal muscle fibres. It appears that apoptosis plays no role in the death of muscle fibres after ischaemia-reperfusion injury to skeletal muscle.

Animals↗

Leukemia inhibitory factor is an autocrine survival factor for Schwann cells.

Schwann cells play a major role in promoting nerve survival and regeneration after injury. Their activities include providing neurotrophic factors and increasing the production of extracellular matrix components and cell surface adhesion molecules to promote axon regeneration. Following nerve transection, leukemia inhibitory factor (LIF) is up-regulated by Schwann cells at the injury site. LIF receptors are also up-regulated at the nerve injury site, but their cellular localization and function have not been fully characterized. We demonstrate that Schwann cells express mRNAs for LIF and the LIF receptor components LIF receptor subunit beta and glycoprotein 130 in vitro. We also show that although LIF is not required for the genesis of Schwann cells, it can potentiate the survival of differentiated Schwann cells in the context of neuregulin support. Not only does exogenous LIF promote survival under these conditions, but addition of the soluble LIF receptor (LIF binding protein) and anti-LIF antibodies significantly reduced cell survival, suggesting that LIF exerts autocrine effects. These results suggest that Schwann cell survival following nerve injury is potentially modulated by LIF.

Animals↗

Scar formation after skin injury to the human foetus in utero or the premature neonate.

A macroscopically visible scar was present at birth in three infants with a history of injury during amniocentesis at 16-20 weeks' gestation. In several neonates born between 21 and 31 weeks' gestation, chemical injury to the skin caused by extravasation of calcium gluconate healed by formation of a large scar. In the infant born at 21 weeks, biopsy of the injured area showed infiltration by large numbers of neutrophils and macrophages. It appears that a very immature neonate can mount a prominent inflammatory reaction and that both a midtrimester foetus and a very immature neonate heal injuries to the skin by scar formation and not by scarless healing.

Adolescent↗