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M Manthorpe

Publications and source records attributed to M Manthorpe.

At least 73 records · Page 4Linked to original sources

An examination of ciliary neuronotrophic factors from avian and rodent tissue extracts using a blot and culture technique.

We have previously reported a technique for determining the apparent molecular weight (Mr) of ciliary neuronotrophic factors (CNTFs) in crude extracts. This method involves SDS-polyacrylamide gel electrophoresis of the extract. Western blotting and culture of purified ciliary ganglion neurons on the paper containing the blotted lane. Neurons will survive only if in direct contact with the trophic factor band and the surviving neurons, when stained with a vital dye, will outline the CNTF band thereby indicating the Mr of the active polypeptide. Here we have modified this 'blot and culture' technique by including Mr standard proteins in the same electrophoretic lane with the samples, identifying the proteins by staining the nitrocellulose blot with Amido black, marking the standard bands with pinholes and destaining the blot prior to seeding neurons onto it. The active CNTF polypeptides can then be identified by their ability to support the 24-h survival of cultured ciliary neurons. This modified technique was used to determine the Mr of CNTF activities in several chick and rat tissue extracts of selected developmental ages and to ascertain if the two forms of CNTF are exclusive to chick and rat, embryonic and adult, or eye and nerve tissues. We report that the above modifications permitted a more accurate method for Mr determination than the previous method, only two apparent forms of CNTF were recognized, the Mr found for each form is 25 kDa and 28 kDa, both forms can be present in chick and rat tissues and from embryonic and adult sources and the 28 kDa form is predominant in rat while the 25-kDa form is predominant in chicken tissues.

Animals↗

Differential effects of nerve growth factor and ciliary neuronotrophic factor on catecholamine storage and catecholamine synthesizing enzymes of cultured rat chromaffin cells.

The effects of nerve growth factor (NGF) and ciliary neuronotrophic factor (CNTF) on catecholamine content and in vitro activities of tyrosine hydroxylase (TH) and phenylethanolamine N-methyltransferase (PNMT) were studied in adrenal chromaffin cells cultured from 8-day-old rats. Both NGF and CNTF enhanced chromaffin cell survival and partially prevented losses of adrenaline during the 4-day culture period in a dose-dependent manner. CNTF was more potent, although cellular levels of adrenaline and noradrenaline were not maintained. NGF did not add to the effect of CNTF. The effect of CNTF on catecholamine storage was not accompanied by changes in the activities of TH and PNMT. In contrast, NGF induced TH but not PNMT activity. These data indicate differences between the mechanisms by which NGF and CNTF affect adrenal chromaffin cells.

Adrenal Medulla↗

Human amnion membrane as a substratum for cultured peripheral and central nervous system neurons.

We report here on the use of human amnion membrane as a substratum for the culture of neuronal cells. Pieces of amnion membrane were bound to nitrocellulose paper as a supporting material, seeded with neurons, and cultured for 1-4 days. Neurons and neurites were visualized after fixation by immunoperoxidase staining using an anti-neurofilament monoclonal antibody. Neurons from embryonic chick ciliary and dorsal root ganglia and fetal rat hippocampus were cultured on either the basement membrane or stromal surface of the amnion membrane. Neurons adhered to both surfaces but extended neurites only on the basement membrane surface. Neurons survived and continued to grow neurites in serum-free medium for at least 4 days. When cultured for 4 days on the basement membrane surface in the presence of 10% fetal calf serum, the ciliary ganglion neurons survived but neurite growth was markedly inhibited, while dorsal root ganglion neurons survived, hypertrophied and grew an extensive network of neurites. Other experiments addressed the question whether the basement membrane surface had an ability to guide growing neurites. Amnion membranes were folded, frozen, cross-sectioned using a cryostat, and placed on the nitrocellulose to give irregular patterns of basement membrane juxtaposed to the collagenous stroma. Ciliary ganglion neurons after 4 days in culture had initiated and extended neurites in patterns which corresponded and were limited to those areas visualized by indirect immunofluorescence staining using anti-laminin antibodies. Thus, in vivo assembled human amnion basement membranes appear to contain signals that both promote and guide neuritic growth from previously axotomized embryonic peripheral and central nervous system neurons. The amnion membrane represents a novel tool for the culture of neuronal cells in vitro and potentially could be used as a neurite-promoting bridging material in vivo for regeneration studies.

Amnion↗

Purification of adult rat sciatic nerve ciliary neuronotrophic factor.

The ciliary neuronotrophic factor (CNTF), a protein required for the survival of cultured avian embryonic parasympathetic ciliary ganglionic neurons, was recently purified from extracts of selected chick intraocular tissues. Here we report the purification of a mammalian CNTF activity from extracts of adult rat sciatic nerve using a fractionation procedure similar to that employed for isolating chick eye CNTF. About 2 micrograms of CNTF protein can be obtained from each 1.5 g batch of nerve tissue. Like the chick CNTF, the mammalian factor displays trophic activity for dorsal root and sympathetic as well as ciliary ganglionic neurons. The nerve CNTF activity differs from its chick counterpart in molecular weight and chromatographic behavior on ion-exchange columns. Unlike purified nerve growth factor (NGF), nerve CNTF activity is insensitive to anti-NGF antibodies and is unable to support the survival of 8-day chick embryo dorsal root ganglion neurons.

Animals↗

Lowry protein assay using an automatic microtiter plate spectrophotometer.

The method of protein determination reported by Lowry et al. (1951, J. Biol. Chem. 193, 265-275) has been adapted for use with 96-well microtiter plates and an automatic microplate spectrophotometer. The spectrophotometer has been interfaced with a computer which plots the standard curve and calculates the protein content of each sample. The adapted method offers advantages over previously reported methods in that it is more rapid and uses a smaller sample volume (100 microliters) for samples containing 3-300 micrograms/ml (0.3-30 micrograms/assay) of protein. The method of Bensadoun and Weinstein (1976, Anal. Biochem. 70, 241-252) for precipitating microgram amounts of protein away from substances which interfere with the Lowry assay has also been adapted to this microplate procedure. These techniques should be particularly useful for laboratories where large numbers of samples containing a wide range of protein concentrations are assayed.

Animals↗

Morphological modulation of cultured rat brain astroglial cells: antagonism by ganglioside GM1.

Secondary cultures of neonatal rat astroglial cells, maintained in a serum-free, chemically defined medium were treated with several agents thought to activate cyclic AMP-synthesizing systems. Dibutyryl cyclic AMP (dBcAMP), forskolin and cholera toxin promoted, within 2 h, the near-complete conversion of 1-day-old (D1) astroglial cells from a flat, epithelioid morphology to a stellate (star-shaped) morphology. With all 3 agents, cell susceptibility to morphological change declined with culture age, 5-day-old cultures failing to respond altogether. D1 cultures, after 48 h of treatment, had reverted to the flat morphology. Gangliosides reported to stimulate adenylate cyclase were also tested, using purified GM1 X GM1 failed to stimulate the conversion to stellate morphologies. GM1, however, did affect these astroglial cells by causing a block or reversal of their morphological response to dBcAMP, forskolin or cholera toxin. The GM1 response was specific for the intact ganglioside molecule, asialo GM1 and sialic acid having no effect. Gangliosides GD1a, GD1b and GT1b were also active, being effective at ca. 4-fold lower concentrations. The response to GM1 appeared to involve a direct interaction with the astroglial cell, rather than influencing either substratum or medium components.

Animals↗

An automated colorimetric microassay for neuronotrophic factors.

A microassay is described for determining the number of neurons surviving after 24 h in response to added neuronotrophic factors. Neuronal cultures in 96-well microtiter plates are supplied with a yellow tetrazolium derivative, MTT (3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide), which is taken up selectively by viable neurons and converted to a blue formazan product. The amount of blue color development can be rapidly quantified using an automatic microplate spectrophotometer. The resulting optical density is directly proportional to the number of viable neurons. The spectrophotometer has been interfaced with a computer allowing a print out of individual absorbance values and calculation of half-maximal (one trophic unit) neuronal survival. The assay has been used for the quantification of the trophic activities of nerve growth factor and ciliary neuronotrophic factor using, respectively, dorsal root and ciliary ganglionic neurons from 8-day chick embryos. Assay parameters were optimized so that about 2000 individual cultures of ganglionic neurons can be set up and analyzed each day, thus allowing the serial titration in duplicate of 80-120 separate samples. The determination of neuronal number and titer calculation steps now requires about 2 min per microplate (96 cultures), a 50-fold reduction in time over existing methods.

Animals↗

Mapping of domains in human laminin using monoclonal antibodies: localization of the neurite-promoting site.

Monoclonal antibodies were made against a truncated form of human laminin isolated from placenta. 12 antibodies were isolated and characterized. All antibodies stained basement membranes in placenta and immunoprecipitated laminin from media of cultured choriocarcinoma cells. Three antibodies, 3E5, 4C7, and 4E10, partially blocked the neurite-promoting activity of laminin. Addition of a second antibody, goat anti-mouse IgG, caused more complete blocking of the activity. Two of the blocking antibodies, 4C7 and 4E10, reacted with epitopes within the globular domain at the end of the long arm of laminin, and the third one, 3E5, reacted at the end of the rod-like portion of the long arm adjacent to the globular domain, as shown by electron microscopy after rotary shadowing. Five nonblocking antibodies used in the same test reacted with epitopes in other domains of the molecule. Blocking antibodies 3E5 and 4E10 could be used in immunoblotting and both antibodies reacted with the same polypeptides in pepsin fragments of human laminin, the predominant polypeptides being approximately 400 kD. When a crude extract of human amnion was used as a source of intact laminin, the 4E10 antibody detected a single polypeptide of approximately 400 kD. A nonblocking antibody, 2E8, which reacted at the center of the laminin cross, reacted predominantly with a 200-kD polypeptide in human laminin fragments and exclusively with a 200-kD polypeptide in amnion extract and in rat laminin. Our results with human laminin match the results by Edgar, D., R. Timpl, and H. Thoenen, 1984, EMBO (Eur. Mol. Biol. Organ.) J., 3:1463-1468, in which the neurite-promoting activity of mouse laminin resides at the end of the long arm, which is also the site for heparin binding. However, since the active fragments of human laminin did not bind to heparin, the neurite-promoting site should be different from the heparin-binding site. Our results further suggest that the neurite-promoting site may be contained in or close to the 400-kD component of laminin.

Animals↗

Central nervous system-directed neuronotrophic activity present in red blood cells.

A new neuronotrophic factor has been identified in extracts of vertebrate red blood cells. The factor supports the survival in culture of neurons from vertebrate central nervous systems, and does not support the survival of several peripheral ganglionic neurons. The active molecule appears to be a slightly acidic protein of 30,000-100,000 daltons.

Animals↗

Tumor-promoting phorbol diester mimics two distinct neuronotrophic factors.

The two purified neuronotrophic factor proteins, nerve growth factor (NGF) and ciliary neuronotrophic factor (CNTF), differ in molecular properties and in their action on certain neuronal cell types. The survival in culture of dissociated chick embryonic day 8 dorsal root ganglionic neurons is supported by NGF and day 8 ciliary ganglionic neurons by CNTF, but neither factor can be a substitute for the other. Here we report that a known tumor-promoting phorbol diester, 12-O-tetradecanoyl-phorbol-13-acetate (TPA), can support the survival of both neuronal types in the absence of either NGF or CNTF and does so with the same efficacy as the corresponding trophic factor. The inactive phorbol derivative, 4-alpha-phorbol-didecanoate, does not support either neuronal type. The combined provision of suboptimal doses of TPA and NGF or CNTF does not reveal synergistic effects. These results suggest that TPA, NGF and CNTF may exert their neuronal survival promoting influences through a common molecular mechanism.

Animals↗

Parameters of neuritic growth from ciliary ganglion neurons in vitro: influence of laminin, schwannoma polyornithine-binding neurite promoting factor and ciliary neuronotrophic factor.

Ciliary ganglion neurons extend neuritic processes when cultured for 24 h in medium containing ciliary neuronotrophic factor (CNTF) and on a polyornithine substratum precoated with either laminin or a Schwannoma-derived neurite promoting factor (PNPF). We have examined the roles of laminin, PNPF and CNTF for each of four parameters of neuritic growth, including: initiation time, neuronal polarity, neuritic branching and average neurite output (lengths) with time. Increasing laminin and PNPF levels were found to advance the time of neurite initiation as well as shift the majority (70-80%) of the neurons from a unipolar to multipolar neuritic morphology. The polarity imposed by any given concentration of either neurite promoting factor remained constant over the 24 h culture period examined. The average lengths from the longest neurites per neuron over a 10-28 h culture interval were not affected by increasing levels of laminin or PNPF, but total neuritic output per neuron was increased. This increased total neuritic output could be attributed to a combination of earlier neuritic initiation time and an increased neuronal polarity at high laminin or PNPF levels. CNTF at threshold survival levels did not promote initiation time, neuronal polarity or total neuritic output. However, cultures receiving less CNTF than that required for maximal neuronal survival displayed an increased neuronal polarity and a reduced neuritic output before any apparent loss of neurons. Neuritic branching was not affected by either the neurite promoting or trophic factors after 24 h of culture. Laminin and PNPF were found to be indistinguishable in their effects on the ciliary ganglion neurons in each of the four parameters studied.

Animals↗

Comparison of the effects of laminin and the polyornithine-binding neurite promoting factor from RN22 Schwannoma cells on neurite regeneration from cultured newborn and adult rat dorsal root ganglion neurons.

We have investigated the effects of two neurite promoting factors (NPFs)--laminin and the semipurified polyornithine-binding neurite promoting factor (PNPF-1) from RN 22 Schwannoma cells--on neurite regeneration from dissociated newborn and adult rat dorsal root ganglion (DRG) neurons during 24 and 48 h culture periods in the absence of exogenous neuronotrophic factors. Both laminin and PNPF, when used to pretreat the polyornithine substratum, significantly enhanced neurite recruitment from surviving newborn and adult DRG neurons as compared to an untreated polyornithine substratum. However, the responses of newborn neurons at saturating concentrations of laminin and PNPF were consistently greater (46% neurite-bearing cells at 24 h, 81% at 48 h) than those of adult neurons (14 and 45%, respectively). The responsive neurons of both newborn and adult DRG displayed extensive neuritic networks at 48 h. The ED50 of laminin, or PNPF was 0.15-0.2 micrograms/ml for both newborn and adult neurons. The similarities in the responses of newborn and adult DRG neurons to NPFs validate the use of neurons from embryonic and newborn animals for the in vitro assays of NPFs that can be collected from injured and regenerating adult peripheral nervous tissues.

Age Factors↗

The output of neuronotrophic and neurite-promoting agents from rat brain astroglial cells: a microculture method for screening potential regulatory molecules.

Throughout embryonic development, as well as in response to injury of the central nervous system, astroglial cells may present neurons with a critical supply of neuronotrophic and neurite-promoting factors which control, respectively, neuronal survival and axonal growth. The identification of such astroglial cell-derived factors, as well as of specific extrinsic agents regulating their production, will require the use of in vitro techniques. We define here a new microculture system in which added agents can be screened for their ability to enhance or inhibit the output of trophic and neurite-promoting factors from purified neonatal rat brain astroglial cells. With such a procedure, thousands of replicate secondary astroglial cultures can be set-up and maintained in chemically defined medium, on a defined substratum and in a viable, low proliferative stable state. These cultured astroglial cells release into their medium at least three distinct and separable types of agents addressing nerve cells in vitro: (i) high molecular weight trophic factors (Mr greater than 10,000) which support the survival of embryonic peripheral neurons; (ii) low molecular weight trophic agents (Mr less than 10,000) supporting embryonic central neurons; and (iii) polyornithine-binding neurite-promoting factors which enhance neuritic regeneration for both peripheral and central neurons. The temporal release patterns of these three agents from astroglial cultures are quite distinct suggesting that their output is independently regulated.

Animals↗

Purified proteins acting on cultured chick embryo ciliary ganglion neurons.

Chick embryo ciliary ganglion neurons in dissociated monolayer culture have been used to examine molecular requirements for neuronal survival and neurite growth. These neurons will rapidly die in vitro unless supplied with an adequate level of ciliary neuronotrophic factor (CNTF), and even in the presence of CNTF they will not vigorously extend neurites on polyornithine substrata unless supplied with appropriate amounts of polyornithine-binding neurite-promoting factors (PNPFs). Recent work on the purification and partial characterization of embryonic chick eye CNTF and rat schwannoma PNPF is reviewed, and in vitro responses of ciliary ganglion neurons to other purified proteins such as laminin, fibronectin, insulin, and nerve growth factor are mentioned.

Animals↗

Isolation and characterization of rat schwannoma neurite-promoting factor: evidence that the factor contains laminin.

Rat RN22 schwannoma cells in vitro release into their growth medium a macromolecular factor that, when bound to polyornithine-coated culture substrata, will stimulate neuritic regeneration from axotomized peripheral and central neurons. During the purification of this factor, the neurite-promoting activity co-purifies with laminin immunoreactivity as measured by an enzyme-linked immunoadsorbent assay. The purified factor has an immunoreactivity per milligram of protein similar to that of purified rat yolk sac tumor laminin. After sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) under reducing conditions, the purified factor exhibits a major band at 200 kilodaltons (kD) and two minor ones at about 130 and 35 kD. The 200-kD band comigrates with the 200-kD band of purified rat laminin. After SDS-PAGE under non-reducing conditions, the rat schwannoma factor and rat laminin both exhibit a band in the 900-kD range with the schwannoma factor band migrating slightly faster than the laminin one. The 200-kD (reducing conditions) and 900-kD (non-reducing conditions) bands of both the schwannoma factor and laminin are stained by immunoblotting with antisera raised against rat and human laminin and against a partially purified preparation of the schwannoma factor. On immunoblots the 400-kD band of laminin (a band not seen in the schwannoma factor preparation) also stains with all three antisera. When the antibodies from each of the three antisera are immobilized on protein A-agarose beads, the beads will completely remove from solution the neurite-promoting activities of both the schwannoma factor and laminin. Antibodies raised against rat laminin fail to block the neurite-promoting activity of the purified schwannoma factor but totally block that of rat laminin. In contrast, antibodies raised against the schwannoma factor will block the neurite-promoting activities of both the schwannoma factor and laminin. By rotary shadowing electron microscopy the schwannoma factor preparation exhibits cross-shaped images similar but not identical to those previously reported for rat and mouse laminin. In addition, the schwannoma factor preparation contains images resembling proteoglycans.

Animals↗

Localized survival of ciliary ganglionic neurons identifies neuronotrophic factor bands on nitrocellulose blots.

A novel and sensitive method has been developed to identify ciliary neuronotrophic factors (CNTFs) from tissue extracts after blotting to nitrocellulose paper. The CNTF proteins are required for the in vitro survival of embryonic chick ciliary ganglionic neurons. Tissue extracts containing such CNTFs are electrophoresed using sodium dodecyl sulfate-polyacrylamide gel electrophoresis and transferred to nitrocellulose paper. Purified ciliary ganglionic neurons are seeded on the surface of the nitrocellulose blot, and the culture is incubated for 24 hr in medium lacking CNTF. CNTF can be localized on the blot because it retains its ability to support the survival of the neurons cultured on the nitrocellulose. A band of viable neurons, easily visualized by staining with a vital dye, is supported by the blotted CNTF polypeptide. The number of neurons surviving on the blotted CNTF is related to the amount of CNTF originally loaded on the electrophoretic gel. As little as 2 ng (16 trophic units) of CNTF protein contained in crude tissue extracts can be loaded on the sodium dodecyl sulfate gel and still be recognized by the cultured neurons. This method was used to identify CNTF polypeptides from extracts of adult rat nerve (24,000 and 19,000 daltons) and from tissue found near experimentally induced adult rat brain lesions (24,000 daltons). The electrophoretic mobilities of these peptides are distinct from the previously purified chick eye CNTF polypeptide (20,400 daltons).

Animals↗

Neurite-promoting factors and extracellular matrix components accumulating in vivo within nerve regeneration chambers.

The outgrowth of neurites from cultured neurons can be induced by the extracellular matrix glycoproteins, fibronectin and laminin, and by polyornithine-binding neurite-promoting factors (NPFs) derived from culture media conditioned by Schwann, or other cultured cells. We have examined the occurrence of fibronectin, laminin and NPFs during peripheral nerve regeneration in vivo. A previously established model of peripheral nerve regeneration was used in which a transected rat sciatic nerve regenerates through a silicone chamber bridging a 10 mm interstump gap. The distribution of fibronectin and laminin during regeneration was assessed by indirect immunofluorescence. Seven days after nerve transection the regenerating structure within the chamber consisted primarily of a fibrous matrix which stained with anti-fibronectin but not anti-laminin. At 14 days, cellular outgrowths from the proximal and distal stumps (along which neurites grow) had entered the fibronectin-containing matrix, consistent with a role of fibronectin in promoting cell migration. Within these outgrowths non-vascular as well as vascular cells stained with anti-fibronectin and anti-laminin. Within the degenerated distal nerve segment, cell characteristic of Bungner bands (rows of Schwann cells along which regenerating neurites extend) stained with anti-fibronectin and laminin. The fluid surrounding the regenerating nerve was found to contain NPF activity for cultured ciliary ganglia neurons which markedly increased during the period of neurite growth into the chamber. In previous studies using this particular neurite-promoting assay, laminin but to a much lesser extent fibronectin also promoted neurite outgrowth.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗