Search PubMed⌕ Search

Biomedical subjects

S Varon

Publications and source records attributed to S Varon.

At least 163 records · Page 9Linked to original sources

Age-dependent requirements of sympathetic neurons in serum-free culture.

Neurons dissociated from chick sympathetic ganglia of different embryonic ages can be cultured equally well in serum containing or serum-free (N1) medium on collagen polyornithine, and polyornithine pretreated with neurite-promoting factor (PNPF), in the presence of nerve growth factor (NGF). Quantitative analysis of nerve cell survival is best achieved in serum-free conditions and on PNPF-pretreated polyornithine. Under such conditions, 11-day embryonic (E11) sympathetic neurons showed a specific requirement for insulin, selenium and transferrin. Similar analyses at E8 and E16 revealed that the requirement for transferrin is developmentally regulated since it is not expressed by E8 nerve cells until after 3 days in vitro. These data strongly suggest that, besides NGF, other specific molecules are involved in the control of neuronal survival and that specific requirements may be displayed at different embryonic stages.

Animals↗

Functional receptors for vasoactive intestinal polypeptide in cultured astroglia from neonatal rat brain.

The effects of vasoactive intestinal polypeptide (VIP) were assessed on astroglia cultured from rat CNS. In these cultures VIP (500 nM) promoted the hydrolysis of [3H]glycogen newly synthesized from [3H]glucose. This effect on [3H]glycogen levels was also observed with the structurally related peptide PHI-27 and with other substances which had been demonstrated to promote glycogenolysis in rodent CNS in vitro such as: norepinephrine (NE), serotonin, histamine, adenosine, K+ and dibutyryl cyclic-AMP (dbcAMP). Furthermore, VIP (500 nM) and PHI 27 (500 nM), when applied to astroglial cultures in serum-free medium, displayed marked effects on the morphological appearance of the cell population: they converted the flat cells present in the cultures into cells with typical astrocytic morphology. As previously reported, this effect on the cellular morphology of the cultures was also observed, under identical experimental conditions, after NE and dbcAMP application. These studies demonstrate that cultured rat neonatal astroglia possess receptors for VIP, and suggest that a cyclic AMP accumulation may mediate both the metabolic and morphologic components of this response.

Animals↗

Laminin promotes neuritic regeneration from cultured peripheral and central neurons.

The ability of axons to grow through tissue in vivo during development or regeneration may be regulated by the availability of specific neurite-promoting macromolecules located within the extracellular matrix. We have used tissue culture methods to examine the relative ability of various extracellular matrix components to elicit neurite outgrowth from dissociated chick embryo parasympathetic (ciliary ganglion) neurons in serum-free monolayer culture. Purified laminin from both mouse and rat sources, as well as a partially purified polyornithine-binding neurite promoting factor (PNPF-1) from rat Schwannoma cells all stimulate neurite production from these neurons. Laminin and PNPF-1 are also potent stimulators of neurite growth from cultured neurons obtained from other peripheral as well as central neural tissues, specifically avian sympathetic and sensory ganglia and spinal cord, optic tectum, neural retina, and telencephalon, as well as from sensory ganglia of the neonatal mouse and hippocampal, septal, and striatal tissues of the fetal rat. A quantitative in vitro bioassay method using ciliary neurons was used to (a) measure and compare the specific neurite-promoting activities of these agents, (b) confirm that during the purification of laminin, the neurite-promoting activity co-purifies with the laminin protein, and (c) compare the influences of antilaminin antibodies on the neurite-promoting activity of laminin and PNPF-1. We conclude that laminin and PNPF-1 are distinct macromolecules capable of expressing their neurite-promoting activities even when presented in nanogram amounts. This neurite-promoting bioassay currently represents the most sensitive test for the biological activity of laminin.

Animals↗

Injury-induced neuronotrophic activity in adult rat brain: correlation with survival of delayed implants in the wound cavity.

Mechanical or chemical injury to adult rat brain elicited the accumulation in the affected area of trophic activity for cultured parasympathetic, sympathetic, and sensory neurons. Neuronotrophic activity was relatively low both in noninjured brain tissue extracts and in extracts prepared from the tissue surrounding an injury immediately after the lesion was made. However, trophic titers increased considerably over time, first in the brain tissue that formed the walls of the wound and then in the Gelfoam filling the wound cavity. In the tissue adjacent to the injury, trophic titers began to rise immediately after the lesion, reached a maximum 10 days later, and decayed thereafter. In the wound cavity, occupied by Gelfoam, neuronotrophic activity began to increase 6 days postlesion, reached a maximum at day 16 after injury, and decreased at later times. The levels of induced trophic activity appeared to be proportional to the size of the wound. Injury to various brain areas including temporal, entorhinal, occipital, parietal, and frontal cortices, hippocampus, corpus striatum, and cerebellum, all induced a similar increase in neuronotrophic factor(s). Damage to the myelinated fibers of the corpus callosum did not. High trophic titers decayed rapidly with distance from the wound except in areas heavily deafferented by the lesion, where activity also reached high levels. Extracts from all of the above-mentioned brain areas contained toxic activity for cultured spinal cord neurons. The level of neuronotoxic activity was similar both before the lesion and 15 days postlesion, with the possible exception of the corpus callosum. Intraventricular injections of kainic acid at doses which destroy areas CA4, CA3, and part of CA1 of the hippocampus also induced a time-dependent rise of neuronotrophic activity in this structure, comparable to that achieved by mechanical damage. Both kainic acid treatment and mechanical injury cause extensive glial proliferation in the injured and/or deafferented area. The apparent concurrence of glial reaction and increase in neuronotrophic activity suggests that glial cells may be a major source of the induced trophic activity. As an in vivo correlate of cell culture data, the survival of striatal transplants into host cortical wounds was examined. Fragments of embryonic corpus striatum did not survive when transplanted into a freshly made cavity in the entorhinal/occipital cortex of adult rats. Survival was enhanced by introducing a delay between the time at which the wound cavity was made and that at which the striatal tissue was implanted in it.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Brain injury causes a time-dependent increase in neuronotrophic activity at the lesion site.

A cavity was made in the brain (entorhinal cortex) of developing or adult rats, and a small piece of Gelfoam was emplaced to collect fluid secreted into the wound. The neuronotrophic activity of the fluid was assayed with sympathetic and parasympathetic neurons in culture. The results show that wounds in the brain of developing or adult rats stimulate the accumulation of neuronotrophic factors and that the activity of these factors increases over the first few days after infliction of the damage.

Adrenergic Fibers↗

Nerve regeneration model and trophic factors in vivo.

The proximal stump of a transected rat sciatic nerve has been observed to regenerate through a cylindrical silicone chamber across a 10 mm gap to the distal stump. The fluid filling such in vivo chambers contains trophic factors that ensure in vitro survival and growth of at least sensory neurons from rodent dorsal root ganglia--as already demonstrated for fluid generated in vitro from Schwann and other cell cultures.

Animals↗

Regulation of Na+,K+ pump activity by nerve growth factor in chick embryo dorsal root ganglion cells.

Nerve growth factor (NGF) is required for the growth and development of sensory and sympathetic neurons. Incubation of chick dorsal root ganglionic cells without NGF resulted in a decrease of active (Na+,K+-pump-mediated) K+ influx over a period of several hours. Addition of NGF to NGF-deprived cells caused 1) a return of the active K+ influx to the values occurring in cells continuously exposed to NGF, preceded by 2) a very rapid, but transient overstimulation of the Na+,K+-pump-mediated K+ influx. Restoration of normal Na+,K+-pump activity occurred at NGF concentrations of 1 biological unit/ml or greater, whereas the NGF concentration in the 1-100 biological unit/ml range affected the rapidity with which the pump restoration took place. The transient pump behavior was only observed in NGF-deprived cells and could not be elicited in NGF-supported steady-state cells or in cells having already received delayed NGF once. This transient Na+,K+-pump behavior was exclusively displayed in conjunction with a high intracellular Na+ concentration. Decreasing the external Na+ concentration below 70 mM reduced the hyperstimulation response to NGF, until at 10 mM Na+ the delayed presentation of NGF caused no overshoot at all. The effect of NGF on the Na+,K+-pump was specific for the NGF molecule and could not be mimicked by other proteins.

Animals↗

Isoelectric focusing of the chick eye ciliary neuronotrophic factor.

A procedure is presented in which a crude extract from selected chick embryo intraocular tissues is submitted to analytical polyacrylamide slab gel isoelectric focusing. The extract contains a protein, ciliary neuronotrophic factor (CNTF) which can be eluted in active form from focused gels in a region occupied by only two protein bands. A "slot" technique is presented in which we demonstrate that the eluted CNTF activity focuses in the very restricted region between the two visible bands and is not associated with either band. Silver stain-densitometry is used to correlate staining intensity with protein concentration and from such an analysis it is concluded that the CNTF protein represents an extremely low proportion of total extract protein and that the minimum CNTF specific activity eluted from gel slices is 10(6) trophic units per mg protein. This one-step procedure will be used in the future to prepare highly purified CNTF for antibody generation.

Animals↗

Comparative features of spinal neuronotrophic factors in fluids collected in vitro and in vivo.

Survival in monolayer culture of 4-day (stage 23) chick embryo lumbar spinal cord neurons can be regulated by two opposing activities. One, spinal neuronotrophic activity, promotes neuronal survival; and the other, spinal neuronotoxic activity, eliminates the neurons from the culture even when the trophic support is present at an optimal concentration. Quantitative microbioassays for each activity are presented and used to measure the relative amounts of each agent within different sources including glial, muscle, and spinal cord cell-conditioned media and fluid collected from peripheral and central nervous tissue lesions. Although both activities were present in all of the sources tested, their concentrations in the wound fluids were orders of magnitude greater than in the conditioned media. The fluid-derived trophic activities were inactivated by heat and trypsin and nondialyzable, whereas all of the conditioned media-derived trophic activities were heat- and trypsin-resistant and dialyzable.

Animals↗

Molecular requirements for survival of cultured avian and rodent dorsal root ganglionic neurons responding to different trophic factors.

We have previously demonstrated that both peripheral and central neurons from 8 day embryonic chick and newborn mouse can be maintained in a serum-free medium using the N1 supplement consisting of insulin, transferrin, putrescine, progesterone, and selenite. In the present studies we show that dorsal root ganglionic (DRG) neurons from embryonic chick (E7-E15) and neonatal mouse can be cultured in a serum-free environment with only the addition of insulin and transferrin, plus Nerve Growth Factor (NGF). Chick DRG from E10-E15 contain a population of neurons sensitive to a chick embryo eye-derived ganglionic neuronotrophic factor (GNTF), which is distinct from the neuronal subset dependent upon NGF. The GNTF-dependent chick neurons can also be maintained in culture with insulin and transferrin supplements. Neonatal mouse DRG neurons, whether supported by NGF or eye-derived GNTF, likewise survive in serum-free medium with only insulin and transferrin. Limited numbers of neurons survive for the first 24 hours in a serum-free medium lacking insulin or transferrin, but failed to display neurite outgrowth even in the presence of added trophic factor.

Animals↗

Ionic behaviors and nerve growth factor dependence in developing embryonic chick ganglia. I. Studies with intact dorsal root ganglia.

We have recently shown that intact and dissociated 8-day embryonic (E8) chick dorsal root ganglia (DRG) lose the ability to regulate their intracellular Na+, K+ levels when deprived of nerve growth factor (NGF) for 6 h; recovery occurs within minutes of NGF presentation. These ganglionic neurons are believed to depend on NGF for survival and neurite production over a defined period of embryonic life--between about E6 and E15 in the chick. Using intact DRG from E6-E16 chick embryos we determined developmental changes in: (i) 22Na+ accumulation in the presence and absence of NGF, or in the presence of ouabain; and (ii) intra- and extracellular fluid spaces. Sodium accumulation, in the presence of NGF, increases from E6 to E10. It parallels the total fluid space under ouabain but then decreases conspicuously between E10 and E16, despite little change in the latter. NGF thus prevents Na+ accumulation during the early period, and becomes increasingly irrelevant for this behavior in later (after E10) development. These data are interpreted as indicating that: (i) NGF is required for ionic control by DRG neurons up to E10; and (ii) indigenous behaviors for the control of ion pump mechanism(s) are progressively acquired by these cells from E10 to E16, in parallel with the decreasing ionic relevance of NGF. These findings are consistent with the view that the ionic responses to NGF correlate closely with the survival and neurite-promoting effects of this factor.

Age Factors↗

Spinal cord neuronotrophic factors (SCNTFs): I. Bioassay of schwannoma and other conditioned media.

We present a procedure for the dissociation and growth in serum-free defined culture medium of 4-day chick embryo lumbar spinal cord (LC4) neurons. LC4 neurons will not survive for even 24 h without the addition of trophic supplements (putative spinal cord neuronotrophic factors, SCNTFs). Serum-free medium conditioned over chick embryo heart and skeletal muscle, mouse Schwann and rat RN22 Schwannoma cell cultures were found to contain SCNTF activity which could be quantitated using a convenient neuronal survival bioassay. RN22 conditioned medium also contains polyornithine-binding neurite promoting factors (PNPFs) which can be physically separated from SCNTF. When SCNTF and PNPF were presented to LC4 neurons individually or in combination (i) SCNTF, but not PNPF, supported neuronal survival whereas (ii) PNPF, but not SCNTF, induced neurite production. When LC4 neurons were grown in SCNTF alone, nearly all of them exhibited a flattened, circular, 'fried-egg' morphology. The subsequent addition of PNPF caused these cells to extend long neurites with characteristic terminal growth-cone-like structures.

Animals↗

Lectin reactivity of PNPF, a polyornithine-binding neurite-promoting factor.

The fate of dissociated neurons from 8-day chick embryo ciliary ganglia, cultured in serum-containing media on polyornithine substrata, is influenced by two different macromolecular factors. The neurons will die within 24 h in the absence of CNTF, the eye-derived ciliary neuronotrophic factor. Even when supported by CNTF, however, ciliary neurons do not grow neurites unless the polyornithine substratum is coated with PNPF, a polyornithine-binding neurite-promoting factor. PNPF activity present in rat Schwannoma-conditioned medium has been shown to behave as a large, acidic, trypsin-sensitive molecule. In the experiments reported here the lectin reactivity of PNPF has been investigated. Using lectin affinity chromatography PNPF was found to bind to concanavalin A and wheat germ agglutinin from which it could be respectively eluted with the specific sugars alpha-methyl-D-mannoside and N-acetyl-D-glucosamine. PNPF did not bind to Ulex europaeus or Dolichus biflorus agglutinins. Pretreatment of polyornithine-bound PNPF with concanavalin A before cell seeding prevented neurite outgrowth from ciliary neurons in a dose-dependent manner, without affecting neuronal survival. This inhibitory effect of concanavalin A could be removed with alpha-methyl-D-mannoside. Wheat germ agglutinin failed to inhibit the neurite-promoting effects of polyornithine-bound PNPF.

Animals↗

Nerve regeneration across an extended gap: a neurobiological view of nerve repair and the possible involvement of neuronotrophic factors.

We have compared the anatomic and functional regeneration of a transected sciatic nerve following regrowth from its proximal stump through either preformed empty mesothelial chambers or autologous nerve grafts bridging a 10 mm gap. Within the mesothelial chambers an organized multifascicular nerve trunk forms between the proximal and distal stumps. After 3 months, distal segment cross sections from the mesothelial chamber and nerve graft groups did not differ with respect to axonal density or distribution of axonal diameters. Mean conduction velocities across the gaps were also similar, although the nerve graft group had a wider distribution of velocities. Little or no regeneration was evident when the gap between the nerve stumps was left empty. These results suggest that if the regrowing proximal stump is in an appropriate environment, it can form a well organized and oriented nerve trunk. In the mesothelial chambers, the regenerating nerve is surrounded by a loose cellular stroma and a small amount of interstitial fluid, which was found to contain trophic activity for cultured rodent sensory neurons. Such factors may also support nerve regeneration in vivo.

Animals↗