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D A Kirschner

Publications and source records attributed to D A Kirschner.

At least 73 records · Page 4Linked to original sources

Proton magnetic resonance in myelin deficient brains of mutant mice.

The role of myelin in determining the magnetic resonance (MR) characterization of the central nervous system (CNS) was investigated in unmyelinated brains of normal fetal mice, as well as myelin-deficient adult mutant mice (shi, qk, mld) and their age-matched controls. In vitro NMR relaxation time measurements at 10 MHz for whole brains showed consistently longer T1 (range 558 +/- 8 to 580 +/- 27 msec) and T2 (range 81 +/- 3 to 89 +/- 3 msec) values for the adult myelin-deficient animals than the age-matched controls (T1 = 496 +/- 31, T2 = 79 +/- 4 msec). The fetal brains exhibited even more prolonged relaxation times (T1 = 976 +/- 60, T2 = 158 +/- 7 msec). MR images obtained at 81 MHz using spin echo (SE) sequences, which unlike the in vitro approach allowed discrimination between white and gray matter areas, revealed an absence of gray-white matter contrast in the brains of mutant mice, consistent with longer than normal relaxation of the myelin-deficient white matter. While larger tissue water components such as those present in the immature brain and edematous white matter contribute a greater effect, myelin and its associated bound water may still play an important role in the MR characterization of normal gray and white matter.

Animals↗

Membrane structure in isolated and intact myelins.

The biochemical composition of myelin and the topology of its constituent lipids and proteins are typically studied using membranes that have been isolated from whole, intact tissue using procedures involving hypotonic shock and sucrose density gradient centrifugation. To what extent, however, are the structure and intermembrane interactions of isolated myelin similar to those of intact myelin? We have previously reported that intact and isolated myelins do not always show identical myelin periods, indicating a difference in membrane-membrane interactions. The present study addresses the possibility that this is due to altered membrane structure. Because x-ray scattering from isolated myelin sometimes consists of overlapping Bragg reflections or is continuous, we developed nonlinear least squares procedures for analyzing the total intensity distribution after film scaling, background subtraction, and Lorentz correction. We calculated electron density profiles of isolated myelin for comparison with membrane profiles from intact myelin. The change in the width of the extracellular space and the relative invariance of the cytoplasmic space as a function of pH and ionic strength that we previously found for intact nerve was largely paralleled by isolated myelin. There were two exceptions: isolated CNS myelin was resistant to swelling under all conditions, and isolated PNS myelin in hypotonic saline showed indefinite swelling at the extracellular apposition. However, electron density profiles of isolated myelins, calculated to 30 A resolution, did not show any major change in structure compared with intact myelin that could account for the differences in interactions.

Animals↗

Myelin membrane structure and composition correlated: a phylogenetic study.

We have correlated myelin membrane structure with biochemical composition in the CNS and PNS of a phylogenetic series of animals, including elasmobranchs, teleosts, amphibians, and mammals. X-ray diffraction patterns were recorded from freshly dissected, unfixed tissue and used to determine the thicknesses of the liquid bilayer and the widths of the spaces between membranes at their cytoplasmic and extracellular appositions. The lipid and protein compositions of myelinated tissue from selected animals were determined by TLC and sodium dodecyl sulfate-polyacrylamide gel electrophoresis/immunoblotting, respectively. We found that (1) there were considerable differences in lipid (particularly glycolipid) composition, but no apparent phylogenetic trends; (2) the lipid composition did not seem to affect either the bilayer thickness, which was relatively constant, or the membrane separation; (3) the CNS of elasmobranch and teleost and the PNS of all four classes contained polypeptides that were recognized by antibodies against myelin P0 glycoprotein; (4) antibodies against proteolipid protein (PLP) were recognized only by amphibian and mammalian CNS; (5) wide extracellular spaces (ranging from 36 to 48 A) always correlated with the presence of P0-immunoreactive protein; (6) the narrowest extracellular spaces (approximately 31 A) were observed only in PLP-containing myelin; (7) the cytoplasmic space in PLP-containing myelin (approximately 31 A) averaged approximately 5 A less than that in P0-containing myelin; (8) even narrower cytoplasmic spaces (approximately 24 A) were measured when both P0 and 11-13-kilodalton basic protein were detected; (9) proteins immunoreactive to antibodies against myelin P2 basic protein were present in elasmobranch and teleost CNS and/or PNS, and in mammalian PNS, but not in amphibian tissues; and (10) among mammalian PNS myelins, the major difference in structure was a variation in membrane separation at the cytoplasmic apposition. These findings demonstrate which features of myelin structure have remained constant and which have become specifically altered as myelin composition changed during evolutionary development.

Animals↗

Orientation of proteolipid protein in myelin: comparison of models with X-ray diffraction measurements.

Three models have been proposed for the arrangement of proteolipid protein (PLP) in the myelin membrane. We have tested these models by determining to what extent each is consistent with the membrane-membrane interactions and electron density profile of central nervous system myelin obtained from X-ray diffraction. Equilibrium periods and membrane separations were calculated from the proposed organization of lipids and proteins in the membrane, and compared with values obtained experimentally as a function of pH and ionic strength. The orientation of the proteins was also used to calculate electron density levels in the cytoplasmic and extracellular spaces. We found that the Stoffel and Hudson models for PLP were more consistent than the Laursen model with the range of pH over which the intermembrane separation at the extracellular apposition is a minimum. The Hudson model also fits better the swollen periods observed at alkaline pH. The Hudson PLP model has many more residues in the extracellular side of the membrane than does either of the other models, resulting in higher electron density in the extracellular space compared to the cytoplasmic space. Such an asymmetric distribution of electron density is offset by the electron density of myelin basic protein which is localized in the cytoplasmic space. The resulting similar levels of electron density at the two appositions are like those in profiles calculated from the X-ray data.

Animals↗

Membrane interactions in nerve myelin. I. Determination of surface charge from effects of pH and ionic strength on period.

We have used x-ray diffraction to study the interactions between myelin membranes in the sciatic nerve (PNS) and optic nerve (CNS) as a function of pH (2-10) and ionic strength (0-0.18). The period of myelin was found to change in a systematic manner with pH and ionic strength. PNS periods ranged from 165 to 250 A or more, while CNS periods ranged from 150 to 230 A. The native periods were observed only near physiological ionic strength at neutral or alkaline pH. The smallest periods were observed in the pH range 2.5-4 for PNS myelin and pH 2.5-5 for CNS myelin. The minimum period was also observed for PNS myelin after prolonged incubation in distilled water. At pH 4, within these acidic pH ranges, myelin period increased slightly with ionic strength; however, above these ranges, the period increased with pH and decreased with ionic strength. Electron density profiles calculated at different pH and ionic strength showed that the major structural alteration underlying the changes in period was in the width of the aqueous space at the extracellular apposition of membranes; the width of the cytoplasmic space was virtually constant. Assuming that the equilibrium myelin periods are determined by a balance of nonspecific forces/i.e., the electrostatic repulsion force and the van der Walls attractive force, as well as the short-range repulsion force (hydration force, or steric stabilization), then values in the period-dependency curve can be used to define the isoelectric pH and exclusion length of the membrane. The exclusion length, which is related to the minimum period at isoelectric pH, was used to calculate the electrostatic repulsion force given the other forces. The electrostatic repulsion was then used to calculate the surface potential, which in turn was used to calculate the surface charge density (at different pH and ionic strength). We found the negative surface charge increases with pH at constant ionic strength and with ionic strength at constant pH. We suggest that the former is due to deprotonation of the ionizable groups on the surface while the latter is due to ion binding. Interpretation of our data in terms of the chemical composition of myelin is given in the accompanying paper (Inouye and Kirschner, 1988). We also calculated the total potential energy functions for the different equilibrium periods and found that the energy minima became shallower and broader with increasing membrane separation. Finally, it was difficult to account directly for certain structural transitions from a balance of nonspecific forces. Such transitions included the abrupt appearance of the native period at alkaline pH and physiological ionic strength and the discontinuous compaction after prolonged treatment in distilled water. Possibly, in PNS myelin conformational modification of PO glycoprotein occurs under these conditions. The invariance of the cytoplasmic space suggests the presence of specific short-range interactions between surfaces at this apposition.

Animals↗

Membrane interactions in nerve myelin: II. Determination of surface charge from biochemical data.

In our accompanying paper (Inouye and Kirschner, 1988) we calculated the surface charge density at the extracellular surfaces in peripheral and central nervous system (PNS; CNS) myelins from observations on the dependency of the width of the extracellular space on pH and ionic strength. Here, we have determined the surface charge density of the membrane surfaces in myelin from its chemical composition and the localization of some of its molecular components. We then analyzed the attractive and repulsive forces between the apposed surfaces and calculated equilibrium periods for comparison with the measured values. The biochemical model accounts for the observed isoelectric range of the myelin period and, with the surface charge reduced (possibly by divalent cation binding or a space charge approximation), the model also accounts for the dependency of period on pH above the isoelectric range. At the extracellular (and cytoplasmic) surfaces the contribution of lipid (with pI approximately 2) to the net surface charge is about the same in both PNS and CNS myelin, whereas the contribution of protein depends on which ones are exposed at the two surfaces. The protein conformation and localization modulate the surface charge of the lipid, resulting in positively-charged cytoplasmic surfaces (pI approximately 9) and negatively-charged extracellular surfaces (pI approximately 2-4). The net negative charge at the extracellular surface is due in CNS myelin to lipid, and in PNS myelin to both lipid and (PO) glycoprotein. The net positive charge at the cytoplasmic surface is due in CNS myelin mostly to basic protein, and in PNS myelin to PO glycoprotein and basic protein. The invariance of the cytoplasmic packing may be due to specific short-range interactions. Our models demonstrate how the particular myelin proteins and their localization and conformation can account for the differences in inter-membrane interactions in CNS and PNS myelins.

Amino Acids↗

Membrane interactions are altered in myelin isolated from central and peripheral nervous system tissues.

Isolated myelin has been used for determinations of membrane surface charge density and topographical mapping of components in the membrane. To determine how similar such myelin is to myelin of intact tissue, we have used x-ray diffraction to compare their intermembrane interactions. The interactions were monitored by measuring the myelin period in samples treated with distilled water, buffered saline at pH 4-9 and ionic strength 0.06-0.18, and saline containing HgCl2 or triethyl tin sulfate. Myelin was isolated from whole brains and sciatic nerves of mice by conventional methods involving sucrose gradient centrifugation and osmotic shock. Consistent with previous findings, electron microscopy showed that the multilamellar morphology, staining, and repeat periods of isolated myelin were essentially like those of intact myelin; however, the membrane stacks were less extensive than those in whole tissue. X-ray diffraction revealed that isolated CNS myelin was like intact myelin in showing reversible compaction in acidic media and in distilled water. However, unlike the myelin in whole tissue, isolated CNS myelin did not swell in hypotonic or alkaline media, or in the presence of HgCl2-saline or triethyl tin. The altered membrane interactions could result from an increase in adhesiveness of the apposed membrane surfaces. Reorganization of proteolipid protein and/or a reduction of surface charge could account for the change in surface properties of isolated CNS myelin. Isolated PNS myelin, like the membranes in whole tissue, showed both compaction and swelling; however, the membrane pairs were disordered in the swollen structure. This irregular membrane swelling could result from charge variation in the extracellular surfaces.

Animals↗

A survey of neurological mutant mice. I. Lipid composition of myelinated tissue in known myelin mutants.

The lipids of white matter and peripheral nerve from mutant mice with known myelin deficiencies were analyzed by one- and two-dimensional high-performance thin-layer chromatography and quantitated by densitometry. In optic nerve, the mutants jp/Y, jpmsd/Y, qk/qk, shi/shi and shimld/shimld, which have severe central nervous system (CNS) myelin deficiency, had a common pattern of lipid loss: cerebrosides and sulfatides (hydroxy and nonhydroxy forms) were generally reduced by 70-95% or more; most phospholipids were diminished by 15-55%, and cholesterol was reduced by 35-60%. Only in the CNS of jp/Y and jpmsd/Y did cholesterol ester accumulate. In peripheral nerve, the lipid composition varied markedly among these mutants. In jp/Y there was no change, while in jpmsd/Y there was a 5-15% loss among the phospholipids and cholesterol. Homozygous qk had reductions of 75-85% in the nonhydroxy forms of cerebroside and sulfatide, a 130% increase in hydroxy sulfatide, and a 55% loss of sphingomyelin. In shi/shi and shimld/shimld homozygotes, the glycolipids were altered by +/- 20%, most phospholipids and cholesterol were reduced by 5-15%, and sphingomyelin was reduced by 40%. Tr and TrJ showed 35-90% reductions in most lipid classes of the peripheral nervous system; CNS lipid composition was normal. Homozygous twi had a uniform loss of most lipid classes in both optic (generally 10-20%) and trigeminal nerves (generally 40-55%); cerebrosides did not accumulate in these tissues. dy/dy had a 10-20% reduction of cerebrosides in trigeminal nerve trunk. The CNS of dy homozygotes had 10-35% increases in specific classes of glycolipids and phospholipids, and in cholesterol. None of the mutants showed detectable levels of lysophospholipids or other unusual lipid species. The fractions of ethanolamine and choline phosphatides in the plasmalogen form were close to normal in all mutants.

Animals↗

A survey of neurological mutant mice. II. Lipid composition of myelinated tissue in possible myelin mutants.

The lipids of white matter and peripheral nerve from neurological mutant mice with possible myelin abnormalities were analyzed by thin-layer chromatography and quantitated by densitometry. Eight mutants had major abnormalities in the central nervous system (CNS) and/or peripheral nervous system (PNS) tissues examined (optic nerve, and trigeminal and sciatic nerves). In the optic nerve of axJ/axJ, there were increases of 20-30% in the levels of the major phospholipids; peripheral nerve was normal. In bc3J/bc3J CNS, the major phospholipids and cholesterol were increased by 25-40%; the PNS was normal. In myd/myd CNS, there were increases of about 20% in the levels of both forms of cerebrosides and in the major phospholipids; in the PNS the lipids were normal. ot/ot CNS had 20-40% reductions of all the glycolipids and minor alterations in some of the phospholipids and cholesterol; the PNS had 20% losses of both forms of cerebrosides. In the PNS of ji/ji, there were decreases of 10-40% among the glycolipids and of 15-25% in three of the major phospholipids; the CNS was virtually normal. In the PNS of dtJ/dtJ, vb/vb and wr/wr, almost all lipids were significantly decreased. The CNS of dtJ/dtJ and vb/vb were normal; wr/wr had minor reductions of certain glycolipids and phospholipids. Six mutants had relatively minor lipid abnormalities in their myelinated tissues. In cr/cr PNS, there were elevated levels of the cerebrosides and major phospholipids; the CNS was virtually normal. In db/db CNS and PNS, there were reduced levels of the nonhydroxy forms of cerebroside and sulfatide. The major change in htr/htr was the elevation of all the glycolipids in the CNS. In the CNS of Lc/+, nonhydroxy cerebroside was reduced. In shm/shm PNS, nonhydroxy sulfatide was elevated and there were small decreases in some of the phospholipids. wl/wl CNS showed decreases among most of the glycolipids. Mutants homozygous for du, mto, spa and tg had virtually normal lipid levels in both the optic and peripheral nerves. Cholesterol ester, lysophospholipids and other unusual lipid species were not detected in any of the mutants. The plasmalogen forms of ethanolamine and choline phosphatides were at normal levels in all mutants that otherwise had significant alterations among their lipids. Although many alterations in lipid composition were found in these mutants, the changes were moderate compared to the classical myelin mutants and indicate that none of the mutants are severely myelin-deficient.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Synthetic peptide homologous to beta protein from Alzheimer disease forms amyloid-like fibrils in vitro.

Progressive amyloid deposition in senile plaques and cortical blood vessels may play a central role in the pathogenesis of Alzheimer disease. We have used x-ray diffraction and electron microscopy to study the molecular organization and morphology of macromolecular assemblies formed by three synthetic peptides homologous to beta protein of brain amyloid: beta-(1-28), residues 1-28 of the beta protein; [Ala16]beta-(1-28), beta-(1-28) with alanine substituted for lysine at position 16; and beta-(18-28), residues 18-28 of the beta protein. beta-(1-28) readily formed fibrils in vitro that were similar in ultrastructure to the in vivo amyloid and aggregated into large bundles resembling those of senile plaque cores. X-ray patterns from partially dried, oriented pellets showed a cross-beta-conformation. A series of small-angle, equatorial maxima were consistent with a tubular fibril having a mean diameter of 86 A and a wall composed of pairs of cross-beta-pleated sheets. The data may also be consistent with pairs of cross-beta-sheets that are centered 71-A apart. [Ala16]beta-(1-28) formed beta-pleated sheet assemblies that were dissimilar to in vivo fibrils. The width of the 10-A spacing indicated stacks of about six sheets. Thus, substitution of the uncharged alanine for the positively charged lysine in the beta-strand region enhances the packing of the sheets and dramatically alters the type of macromolecular aggregate formed. beta-(18-28) formed assemblies that had even a greater number of stacked sheets, approximately equal to 24 per diffracting domain as indicated by the sharp intersheet reflection. Our findings on these homologous synthetic assemblies help to define the specific sequence that is required to form Alzheimer-type amyloid fibrils, thus providing an in vitro model of age-related cerebral amyloidogenesis.

Alzheimer Disease↗

Shiverer jimpy double mutant mice. III. Comparison of shimld*jpmsd and shi*jp phenotypes demonstrates dissimilar interactions of allelic mutations.

Double mutant mice, which are of the genotype shimld/shimld*jpmsd/Y and therefore express both the shimld and jpmsd mutations, have a CNS myelin protein composition which resembles shimld/shimld alone but not jpmsd/Y alone. The double mutant CNS white matter morphology shows much less myelin and major dense line than either shimld/shimld or jpmsd/Y, but has other features which resemble jpmsd/Y but not shimld/shimld. In contrast, the parallel double mutant shi/shi*jp/Y, which expresses the alleles shi and jp rather than shimld and jpmsd, has already been shown to have biochemical and morphological phenotypes which are consistent with each other, both being intermediate between shi/shi and jp/Y and therefore suggesting partial reciprocal intergenic suppression (Brain Research, 374 (1986) 45-53 and 54-62). To assist in explaining the apparent inconsistencies between the biochemical and morphological phenotypes of the shimld/shimld*jpmsd/Y double mutant and between interactions of allelic mutations at the shi and jp loci, a hypothesis of multiple primary gene functions at these two loci is proposed.

Animals↗

Shiverer jimpy double mutant mice. II. Morphological evidence supports reciprocal intergenic suppression.

Mice which carry both the shiverer (shi) and the jimpy (jp) mutations have a morphological phenotype with features of each single mutation by itself but in milder form: the number of myelin sheaths is increased relative to jp, the thickness of sheaths and amount of major dense line is increased relative to shi, and the abnormal, lipid-filled cells characteristic of jp are not seen. However, the abnormal bundles of oligodendrocyte microprocesses and errors in the targeting of myelination which characterize shi are not altered by the presence of the jp mutation. This morphological evidence suggests partial reciprocal intergenic suppression in shiverer jimpy double mutant mice and therefore agrees with conclusions based on biochemical data presented by Kerner and Carson (Brain Research, 374 (1986) 45-53).

Animals↗

X-ray diffraction from intraneuronal paired helical filaments and extraneuronal amyloid fibers in Alzheimer disease indicates cross-beta conformation.

Information about the structure of the paired helical filaments (PHF) that accumulate within human neurons and the amyloid fibers that accumulate in the extracellular spaces between neurons in Alzheimer disease has so far depended on electron microscopy of thin-sectioned or negatively stained material. To determine the protein conformation of these abnormal fibers, we have obtained x-ray diffraction patterns from unfixed human brain fractions highly enriched in PHF and from purified amyloid cores isolated from senile plaques. The predominant x-ray scatter evident from both types of samples, either wet or dry, is a sharp reflection at 4.76-A spacing and a diffuse one at about 10.6-A spacing. These features are characteristic of a beta-pleated sheet type of protein conformation. In doubly oriented dried pellets of PHF fractions, the two reflections are accentuated at right angles to each other and the arc at 4.76-A spacing is in the fiber direction indicating a cross-beta conformation. From the integral widths of the reflections we estimate the cross-beta crystallite to be about 80 A long in the fiber direction and about 40 A thick. These dimensions correspond to approximately four pleated sheets, each of which consists of approximately 16 hydrogen-bonded polypeptide chains running normal to the fiber direction. The cross-beta conformation of PHF and amyloid fibers that we have found from x-ray diffraction is in contrast to the predominant alpha-helical coiled-coil conformation of the neurofilaments with which they share epitopes and from which they have been postulated to derive.

Alzheimer Disease↗

Shiverer and normal peripheral myelin compared: basic protein localization, membrane interactions, and lipid composition.

We have correlated membrane structure and interactions in shiverer sciatic nerve myelin with its biochemical composition. Analysis of x-ray diffraction data from shiverer myelin swollen in water substantiates our previous localization of an electron density deficit in the cytoplasmic half of the membrane. The density loss correlates with the absence of the major myelin basic proteins and indicates that in normal myelin, the basic protein is localized to the cytoplasmic apposition. As in normal peripheral myelin, hypotonic swelling in the shiverer membrane arrays occurs in the extracellular space between membranes; the cytoplasmic surfaces remain closely apposed notwithstanding the absence of basic protein from this region. Surprisingly, we found that the interaction at the extracellular apposition of shiverer membranes is altered. The extracellular space swells to a greater extent than normal when nerves are incubated in distilled water, treated at a reduced ionic strength of 0.06 in the range of pH 4-9, or treated at constant pH (4 or 7) in the range of ionic strengths 0.02-0.20. To examine the biochemical basis of this difference in swelling, we compared the lipid composition of shiverer and normal myelin. We find that sulfatides, hydroxycerebroside, and phosphatidylcholine are 20-30% higher than normal; nonhydroxycerebroside and sphingomyelin are 15-20% lower than normal; and ethanolamine phosphatides, phosphatidylserine, and cholesterol show little or no change. A higher concentration of negatively charged sulfatides at the extracellular surface likely contributes to an increased electrostatic repulsion and greater swelling in shiverer. The cytoplasmic surfaces of the apposed membranes of normal and shiverer myelins did not swell apart appreciably in the pH and ionic strength ranges expected to produce electrostatic repulsion. This stability, then, clearly does not depend on basic protein. We propose that P0 glycoprotein molecules form the stable link between apposed cytoplasmic membrane surfaces in peripheral myelin.

Animals↗

The interaction of mercurials with myelin: comparison of in vitro and in vivo effects.

Our previous study on the in vitro interactions of mercurials with peripheral nerve had shown that HgCl2 labels phosphatidylethanolamine plasmalogen in the myelin membrane, and that both HgCl2 and CH3HgCl alter the packing of the membrane array (Kirschner and Ganser, 1982). Thin-layer chromatography shows that in vitro treatment of sciatic and optic nerve with HgCl2 causes the hydrolysis of phosphatidylethanolamine plasmalogen while treatment with CH3HgCl does not. The present study addresses the possibility that the interaction of mercurials with myelin phosphatidylethanolamine plasmalogen may underlie their neurotoxicity. HgCl2 was administered to different groups of mice by intravenous, intraperitoneal and subcutaneous injections, and perorally through their drinking water. CH3HgCl was given perorally. Elemental mercury (Hg degree) vapor was administered by inhalation. The mice were monitored for signs of neurotoxicity. Myelin labeling and structure in sciatic and optic nerves was examined using X-ray diffraction and histochemical electron microscopy. The levels of mercury in tissues were measured using atomic absorption spectrophotometry. Mice exposed to CH3HgCl or to Hg degree vapor developed neurological symptoms, while mice exposed to HgCl2 did not show dysfunction even after doses as high as 10-20 mg/kg/day for 14 months. Neither labeling of the myelin membrane nor changes in membrane packing were detected in nerves from mice treated with either mercurial or with Hg degree. These nerves did not show any histochemical evidence for mercury deposition in the myelin, whereas in vitro treated nerves did. The level of mercury in sciatic and optic nerves from mice intoxicated with CH3HgCl was measurable, but at least 30-40 times less than that after in vitro treatment. With HgCl2 intoxication, no measurable amount of mercury was detected in these nerves. Exposure to Hg degree vapor resulted in low but detectable levels of mercury in the nerves. We conclude from these results that the neurotoxicity of mercurials does not involve their interaction with lamellar myelin.

Animals↗

Effects of ZnCl2 on membrane interactions in myelin of normal and shiverer mice.

X-ray diffraction was used to record the effects of metal cations on the structure of peripheral nerve myelin. Acidic saline (pH 5.0) either with or without added metal cations caused myelin to swell by 10-20 A from its native period of 178 A. The X-ray patterns usually showed broad reflections, and higher orders were either weak or unobserved. With added ZnCl2, however, the swollen myelin gave diffraction patterns that retained sharp reflections to approx. 15 A spacing. Alkaline saline (pH 9.7) containing ZnCl2 produced a reduction of the myelin period by approx. 5 A which was at least twice as much as that produced by other metals. To examine the underlying chemical basis for these unique interactions of Zn2+ with myelin, we carried out parallel X-ray experiments on sciatic nerve from the shiverer mutant mouse, which lacks the major myelin basic proteins. Shiverer myelin responded like normal myelin to ZnCl2 in acidic saline; however, in alkaline saline shiverer myelin showed broadened X-ray reflections which indicated disordering of the regularity of the membrane arrays, and additional reflections were recorded which indicated lipid phase separation. This breakdown may come about by the binding of Zn2+ to negatively-charged lipids which could be more exposed due to the absence of myelin basic proteins. Electron density profiles were calculated on the assumption that, except for changes in their packing, the myelin membranes were minimally altered in structure. For both normal and shiverer myelins, treatments under acidic conditions resulted in swelling at the extracellular apposition and a slight narrowing of the cytoplasmic space. This swelling is likely due to adsorption of protons and divalent cations. Interaction between Zn2+ and myelin P0 glycoprotein could preserve an ordered arrangement of the apposed membrane surfaces. Alkaline saline containing ZnCl2 produced compaction at the cytoplasmic apposition in both normal and shiverer myelins possibly through interactions with a portion of P0 glycoprotein which extends into the cytoplasmic space between membranes.

Animals↗

Differential expression of gangliosides on the surfaces of myelinated nerve fibers.

The binding of cholera and tetanus toxins to receptors on the surfaces of teased nerve fibers was used to localize GM1 and G1b-series gangliosides, respectively, by immunocytochemical methods. Native fibers and fibers treated with various hydrolytic enzymes to degrade specific surface components were studied. With native fibers, both toxins bound abundantly to nodes of Ranvier and poorly to the most external, internodal Schwann cell surfaces. Treatment of the fibers with proteases, hyaluronidase, and chondroitin ABC lyase neither eliminated receptors at the nodes nor unmasked receptors over the internodes. The axolemma underlying the paranodal or internodal myelin, exposed by extensive treatment with protease, bound both toxins in large amounts. Neuraminidase action induced cholera toxin receptors on the Schwann cell surface; these receptors were insensitive to protease. The results indicate that GM1 and G1b-series gangliosides are predominantly localized to axonal and glial structures of the node of Ranvier and to paranodal/internodal Axolemma, and that polysialogangliosides not of the G1b-series are present on the internodal Schwann cell surface.

Animals↗

New X-ray spacings from central myelinated tissue.

New X-ray reflections have been detected from myelinated tissue of the mammalian C.N.S. Diffraction patterns from unfixed optic nerves of mouse, rat, guinea-pig and rabbit, and unfixed corpus callosum of calf were recorded during X-ray exposures of 1-6 days. The equatorial pattern was typical of lamellar myelin of the C.N.S.; however, the meridional pattern showed new features: a strong, sharp intensity maximum at 30.4 +/- 0.4 A (N = 11) spacing, and a weak, diffuse ring centered at 11.0 +/- 0.5 A (N = 5) spacing. The 30.4 A reflection was neither strictly arced like the equatorial reflections from lamellar myelin nor fully horizontal. Since the 30.4 A meridional reflection was not observed in patterns from myelinated nerve of the P.N.S., we suggest that this diffraction comes from the radial component, or interlamellar tight junctions, which is unique to mammalian C.N.S. myelinated tissue. The diffuse ring at 11.0 A probably comes from myelin protein.

Animals↗