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Biomedical subjects

M A Lynch

Publications and source records attributed to M A Lynch.

At least 19 recordsLinked to original sources

Domain-specific and cell type-specific localization of two types of cell wall matrix polysaccharides in the clover root tip.

Using immunocytochemical techniques and antibodies that specifically recognize xyloglucan (anti-XG), polygalacturonic acid/rhamnogalacturonan I (anti-PGA/RG-I), and methylesterified pectins (JIM 7), we have shown that these polysaccharides are differentially synthesized and localized during cell development and differentiation in the clover root tip. In cortical cells XG epitopes are present at a threefold greater density in the newly formed cross walls than in the older longitudinal walls, and PGA/RG-I epitopes are detected solely in the expanded middle lamella of cortical cell corners, even after pretreatment of sections with pectinmethylesterase to uncover masked epitopes. These results suggest that in cortical cells XG and PGA/RG-I are differentially localized not only to particular wall domains, but also to particular cell walls. In contrast to their nonoverlapping distribution in cortical cells, XG epitopes and PGA/RG-I epitopes largely colocalize in the epidermal cell walls. The results also demonstrate that the middle lamella of the longitudinal walls shared by epidermal cells and by epidermal and cortical cells constitutes a barrier to the diffusion of cell wall and mucilage molecules. Synthesis of XG and PGA/RG-I epitope-containing polysaccharides also varies during cellular differentiation in the root cap. The differentiation of gravitropic columella cells into mucilage-secreting peripheral cells is marked by a dramatic increase in the synthesis and secretion of molecules containing XG and PGA/RG-I epitopes. In contrast, JIM 7 epitopes are present at abundant levels in columella cell walls, but are not detectable in peripheral cell walls or in secreted mucilage. There were also changes in the cisternal labeling of the Golgi stacks during cellular differentiation in the root tip. Whereas PGA/RG-I epitopes are detected primarily in cis- and medial Golgi cisternae in cortical cells (Moore, P. J., K. M. M. Swords, M. A. Lynch, and L. A. Staehelin. 1991. J. Cell Biol. 112:589-602), they are localized predominantly in the trans-Golgi cisternae and the trans-Golgi network in epidermal and peripheral root cap cells. These observations suggest that during cellular differentiation the plant Golgi apparatus can be both structurally and functionally reorganized.

Antibodies, Monoclonal

Increase in arachidonic acid concentration in a postsynaptic membrane fraction following the induction of long-term potentiation in the dentate gyrus.

We have determined the concentration of free fatty acids in membranes of slices prepared from the dentate gyrus following the induction of long-term potentiation in the anaesthetized rat. Compared to unpotentiated tissue, there was a significant increase in the concentration of free arachidonic acid 2.5 min, 45 min and 3 h after induction of long-term potentiation. There was no corresponding increase in oleic, stearic or palmitic acids. To account for the increase in free arachidonate, the activities of phospholipase A2, phospholipase A1 and phospholipase C were determined at the same three time intervals in control and potentiated tissue. Two-and-a-half minutes after the induction of long-term potentiation, activity of phospholipase A2 was enhanced, while at 45 min, and at 3 h phospholipase C activity was increased. These results suggest that the liberation of free arachidonate is due initially to phospholipase A2 activity, but that at later stages of long-term potentiation, control switches to phospholipase C. Subcellular fractionation experiments revealed an increase in free arachidonate in the postsynaptic density fraction 45 min after induction of long-term potentiation, without significant changes in synaptosomal- or glial-enriched fractions. These results are consistent with the hypothesis that arachidonic acid, released from a postsynaptic site, acts as a trophic retrograde synaptic signal in long-term potentiation in the dentate gyrus.

Animals

Spatial organization of the assembly pathways of glycoproteins and complex polysaccharides in the Golgi apparatus of plants.

The Golgi apparatus of plant cells is the site of assembly of glycoproteins, proteoglycans, and complex polysaccharides, but little is known about how the different assembly pathways are organized within the Golgi stacks. To study these questions we have employed immunocytochemical techniques and antibodies raised against the hydroxyproline-rich cell wall glycoprotein, extensin, and two types of complex polysaccharides, an acidic pectic polysaccharide known as rhamnogalacturonan I (RG-I), and the neutral hemicellulose, xyloglucan (XG). Our micrographs demonstrate that individual Golgi stacks can process simultaneously glycoproteins and complex polysaccharides. O-linked arabinosylation of the hydroxyproline residues of extensin occurs in cis-cisternae, and glycosylated molecules pass through all cisternae before they are packaged into secretory vesicles in the monensin-sensitive, trans-Golgi network. In contrast, in root tip cortical parenchyma cells, the anti-RG-I and the anti-XG antibodies are shown to bind to complementary subsets of Golgi cisternae, and several lines of indirect evidence suggest that these complex polysaccharides may also exit from different cisternae. Thus, RG-I type polysaccharides appear to be synthesized in cis- and medial cisternae, and have the potential to leave from a monensin-insensitive, medial cisternal compartment. The labeling pattern for XG suggests that it is assembled in trans-Golgi cisternae and departs from the monensin-sensitive trans-Golgi network. This physical separation of the synthesis/secretion pathways of major categories of complex polysaccharides may prevent the synthesis of mixed polysaccharides, and provides a means for producing secretory vesicles that can be targeted to different cell wall domains.

Carbohydrate Sequence

Presynaptic changes in long-term potentiation: elevated synaptosomal calcium concentration and basal phosphoinositide turnover in dentate gyrus.

In this report, two changes that occur in the presynaptic terminal following induction of long-term potentiation in the dentate gyrus are examined, and the results demonstrate that the same changes are stimulated by the putative retrograde messenger arachidonic acid. First, there is an increase in the concentration of intracellular calcium in synaptosomes prepared from potentiated tissue compared with control tissue. This effect on intracellular calcium concentration was mimicked in control tissue by treatment of synaptosomes with either arachidonic acid or inositol 1,4,5-trisphosphate in a dose-dependent but nonadditive manner. Second, there is an increase in phosphoinositide turnover in synaptosomes prepared from potentiated tissue compared with control tissue, and this change can also be mimicked in control tissue by exposure of synaptosomes to arachidonic acid. These findings are consistent with the hypothesis that the increase in glutamate release associated with long-term potentiation may be stimulated by arachidonic acid, as a result of an increase in intrasynaptosomal calcium concentration, perhaps occurring as a result of arachidonate-stimulated phosphoinositide metabolism.

Animals

A heparin-like anticoagulant as part of global abnormalities of plasma glycosaminoglycans in a patient with transitional cell carcinoma.

A patient is described in whom a circulating heparin-like anticoagulant developed during the terminal course of metastatic transitional cell carcinoma. The anticoagulant, which was identified as heparan sulfate, was the clinical sign of global abnormalities in the patient's plasma glycosaminoglycans. Subsequent analysis disclosed increased amounts of chondroitin sulfate as well as heparan sulfate. In addition, the charge density and molecular weight of the patient glycosaminoglycans and their organization into proteoglycans differed significantly from glycosaminoglycans isolated from normal plasma samples.

Aged

Increases in glutamate release and phosphoinositide metabolism associated with long-term potentiation and classical conditioning.

Long-term potentiation (LTP) is a widely studied model of the kind of activity-dependent modulation of synaptic efficacy which is assumed to provide the physical basis for learning. Whether LTP, in the hippocampus or elsewhere in the brain, does in fact serve such a role is still a matter for debate. One approach to answering this question is to identify physiological or biochemical changes which are common to both learning and LTP; in the hippocampus, for example, one can ask whether the biochemical changes associated with LTP are also associated with learning. In this chapter we summarize the results which we have obtained in a study of glutamate release and phosphoinositide turnover in the dentate gyrus of rats trained in a classical conditioning task. The similarity between the changes occurring after classical conditioning and those associated with LTP is consistent with the hypothesis that LTP is one of the mechanisms by which a neural trace of the learned association is formed. We discuss this interpretation in the light of the observation that classical conditioning does not appear to affect synaptic responses in the hippocampus.

Animals

Arachidonic acid increases inositol phospholipid metabolism and glutamate release in synaptosomes prepared from hippocampal tissue.

We have been interested in the possibility that arachidonic acid or one of its 12-lipoxygenase metabolites may function as a retrograde messenger in long-term potentiation (LTP) in the dentate gyrus of the hippocampus. One criterion required of a retrograde messenger is that it stimulates presynaptic changes. Here, two possible presynaptic actions of arachidonic acid and its 12-lipoxygenase metabolites, 12-hydroxyeicosatetraenoic acid (HETE) and 12-hydroperoxyeicosatetraenoic acid (HPETE), are examined. We report that arachidonic acid, HETE, and HPETE significantly increase both K(+)-stimulated release of [3H]glutamate and [3H]inositol labelling of inositol phosphates in synaptosomes, whereas other biologically important fatty acids (oleic, palmitic, and stearic) failed to induce a similar response. The findings of these experiments are consistent with the hypothesis that arachidonic acid, HETE, or HPETE may play the role of a retrograde messenger in LTP.

Animals

Arthroscopic meniscal repair using an exogenous fibrin clot.

In this series of 153 meniscus tears, 8% were isolated whereas 92% were in conjunction with anterior cruciate ligament (ACL) tears. Exogenous fibrin clot was injected with a blunt needle in the seam of the tear. One to 2 ml of clot was sufficient to fill an average defect. When gaps could not be closed, such as with a radial split or flap in the posterior one-third of the meniscus, a fascia sheath was used to cover these defects and the exogenous clot was injected under the cover of the sheath. ACL-deficient knees were stabilized with an intraarticular reconstruction. Overall results were 64% healed, 24% incompletely healed, and 12% failed (less than 50% of vertical height of tear healed). In ACL-associated knees, the failure rate was 1.5% for tears in which surgery occurred up to two months after the time of injury. The failure rate for tears surgically treated two months to several years after injury was 20%. Complex tears had an even higher failure rate of 22%. It is these tears that will be treated with the fascia sheath. The isolated tear failure rate was 41% without the exogenous fibrin clot versus 8% with the exogenous clot. Complications included retear and popliteal neurovascular injury. Repair of almost all menisci in young active athletes is possible using the transarticular arthroscopic technique with a posterior incision. Repairs of tears of less than two months' duration from the time of injury to surgery result in significantly higher healing rates than those of more chronic tears. Isolated repairs heal significantly better with exogenous fibrin clot injection.

Adolescent

Effect of duration of exposure to verapamil on vincristine activity against multidrug-resistant human leukemic cell lines.

Verapamil sensitizes multidrug-resistant cell lines to various heterocyclic anticancer drugs by inhibition of energy-dependent release of drug, presumably by interaction with membrane glycoproteins involved in drug efflux. This work assessed verapamil sensitization of human multidrug-resistant lymphocytic and myeloid leukemic cell lines (CEM/VLB100, HL-60/AR) to vincristine during exposures of short duration (4 h). When cells were transferred to drug-free medium immediately after simultaneous 4-h exposures to vincristine and verapamil, the antiproliferative activity of vincristine was not altered in CEM/VLB100 cells and was only moderately increased in HL-60/AR cells. In contrast, when cells were transferred to verapamil-containing medium, vincristine activity was greatly increased against both CEM/VLB100 and HL-60/AR cells. Verapamil enhanced accumulation and inhibited release of [3H]vincristine by CEM/VLB100 and HL-60/AR cells, indicating that the sensitization was due to an increase in cell-associated vincristine after transfer of cells to vincristine-free medium. Slot blot analysis of cellular RNA with the pMDR1 probe revealed high levels of expression of the mdr1 gene in CEM/VLB100 cells but no detectable expression in HL-60/AR cells. Consistent with this finding, polypeptides (Mr 170,000 to 180,000) that were recognized by a monoclonal antibody (C219) against P-glycoprotein were greatly overexpressed in CEM/VLB100 cells, but were expressed at low levels, if at all, in HL-60/AR cells. These results demonstrate the importance of duration of exposure to verapamil in reversing multidrug resistance, not only in cells that overexpress P-glycoprotein but also in cells, such as HL-60/AR, that express little, if any, P-glycoprotein.

Cell Division

Arachidonic acid induces a long-term activity-dependent enhancement of synaptic transmission in the hippocampus.

Long-term potentiation (LTP) is a widely studied model of the synaptic basis of information storage in the mammalian brain. The induction of LTP is triggered by the postsynaptic entry of calcium through the channel associated with the N-methyl-D-aspartate (NMDA) receptor, whereas its maintenance is mediated, at least in part, by presynaptic mechanisms. To explain how postsynaptic events can lead to an increase in transmitter release, we have postulated the existence of a retrograde messenger to carry information from the postsynaptic side of the synapse to recently active presynaptic terminals. Candidates for a retrograde messenger include arachidonic acid or one of its lipoxygenase metabolites. Here we report that weak activation of the perforant path, when given in the presence of arachidonic acid, leads to a slow-onset persistent increase in synaptic efficacy both in vivo and in vitro. The activity-dependent potentiation thus produced is accompanied by an increase in the release of glutamate, and is non-additive with tetanus-induced LTP. These observations indicate a role for arachidonic acid as a retrograde messenger in the later, but not the initial, stages of LTP.

2-Amino-5-phosphonovalerate

The increase in [3H]glutamate release associated with long-term potentiation in the dentate gyrus is blocked by commissural stimulation.

Previous findings have indicated that long-term potentiation (LTP) in the perforant path-granule cell synapses is accompanied by an increase in K+-stimulated, calcium-dependent release of [3H]glutamate 45 min after the induction of LTP. Here we report that release of [3H]glutamate is increased at 3 time intervals following induction of LTP, 2.5 min, 45 min and 3 h. Stimulation of the commissural input to the granule cells blocks the induction of LTP and the increase in [3H]glutamate release.

Animals

Nordihydroguaiaretic acid blocks the synaptic component of long-term potentiation and the associated increases in release of glutamate and arachidonate: an in vivo study in the dentate gyrus of the rat.

The dentate gyrus of anaesthetized rats was perfused with artificial cerebrospinal fluid while field responses evoked by stimulation of the perforant path were monitored. Perfusates were collected for analysis of endogenous glutamate, aspartate and arachidonate. In animals in which long-term potentiation was induced by tetanic stimulation, there was a sustained increase in the concentration of glutamate in the perfusate, and, less reliably, in aspartate, as previously reported by Bliss et al. (J. Physiol., Lond. 377, 391-408, 1986) and Errington et al. (Neuroscience 20, 279-284, 1987). The lipoxygenase and phospholipase A2 inhibitor nordihydroguaiaretic acid, when added to the perfusate 30 min before the tetanus, abolished both long-term potentiation of the population excitatory postsynaptic potential and the tetanus-induced increase in glutamate release. Long-term potentiation of the population spike was reduced but not abolished. There was also a sustained increase in the release of arachidonic acid following the induction of long-term potentiation which did not occur when induction was blocked by nordihydroguaiaretic acid. These results are discussed in the light of the possibility that arachidonic acid or one of its lipoxygenase metabolites may be the retrograde messenger which we have postulated is released from postsynaptic sites following tetanic stimulation to trigger increased transmitter release from presynaptic terminals.

Action Potentials

Glucocorticoid inhibition of Na-SO4 transport by chick renal brush-border membranes.

To examine the effect of glucocorticoids on sulfate transport by the chick (domestic Gallus gallus) renal tubule we dosed 3-wk-old animals with 60 micrograms dexamethasone/100 g body wt at 24 and 6 h before isolation of renal brush-border (BBM) and basolateral membranes (BLM). Dexamethasone treatment significantly reduced Na-dependent sulfate transport by BBM and had no effect in paired membranes on bicarbonate, proton, or electrical gradient-driven sulfate transport. The glucocorticoid treatment had no statistically significant effect on HCO3-SO4 exchange in the BLM. Kinetic analysis of the dexamethasone effect on the Na-SO4 transport process showed that apparent Vmax was significantly decreased to almost one-half that seen in controls (from 676 to 348 pmol.mg protein-1.5 s-1). The Km in control BBM was 0.40 +/- 0.095 mM and was not significantly different in dexamethasone-treated membranes (0.53 +/- 0.094 mM). To determine whether the dexamethasone-induced decrease in Na-SO4 transport by BBM was indirectly caused by stimulation of Na-H exchange and more rapid dissipation of the initial Na gradient used to drive sulfate uptake, we examined the effect of 0.1 mM amiloride on Na-SO4 uptake by BBM. With amiloride present, dexamethasone treatment caused Vmax to significantly drop from 1,102 to 660 pmol.mg protein-1.5 s-1. Amiloride had no statistically significant effect on the Km. The extent to which amiloride increased Na-SO4 transport and blocked 22Na uptake by BBM did not appear to be related to hormone treatment. The data indicate that glucocorticoids may participate in the regulation of sulfate excretion.

Alkaline Phosphatase