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Biomedical subjects

A J Rowe

Publications and source records attributed to A J Rowe.

At least 19 recordsLinked to original sources

T cell responses to the human papillomavirus type 16 E7 protein in mice of different haplotypes.

The response of murine T cells to the E7 molecule of human papillomavirus type 16 (HPV-16) was studied using eight different mouse strains of six distinct H-2 haplotypes. HPV-16 E7 protein was prepared as a fusion protein with glutathione-S-transferase, purified by affinity chromatography and used for immunization. Cells from the lymph nodes were cultured with whole fusion protein, glutathione-S-transferase or HPV-16 E7 protein synthetic peptides. All the mouse strains tested, with the exception of BALB/c, recognized the E7 molecule, as evidenced by a proliferative response to at least two of the peptides. The profile of responses to peptides varied between and within a strain, but five distinct immunodominant regions could be identified. These regions were defined on the basis of a reaction to one or more peptides in a given part of the E7 molecule by at least four strains. The five regions were encompassed by amino acid residues 1 to 9, 17 to 32, 42 to 59, 62 to 77 and 87 to 98. The findings suggest that in an outbred population, such as man, the E7 molecule of HPV-16 would be recognized by a large proportion of the population. However, the poor response of two mouse strains [B10.RIII (71NS) and BALB/c] could also have a corollary in man.

Animals

A folded (10 S) conformer of myosin from a striated muscle and its implications for regulation of ATPase activity.

Myosin from the striated adductor muscle of the scallop Pecten maximus is shown to fold into a compact 10 S conformer under relaxing conditions, as has been characterized for smooth and non-muscle myosins. The folding transition is accompanied by the trapping of nucleotide at the active site to give a species with a half-life of about an hour at 20 degrees C. Ca2+ binding to the specific, regulatory sites on a myosin head promotes unfolding to the extended 6 S conformer and activates product release by 60-fold. The unfolding transition, however, remains much slower than the contraction-relaxation cycle of scallop striated muscle and could not play a role in the regulation of these events. The dissociation of products from myosin heads in native thick filaments is Ca2(+)-regulated, but under relaxing conditions the nucleotide is released at least an order of magnitude faster than from the 10 S monomeric myosin, at a rate similar to that observed with heavy meromyosin. Thus, there is no evidence for any intermolecular interaction between neighbouring molecules in the filament analogous to the head-neck intramolecular interaction in the 10 S conformer. It is possible that the 10 S myosin state represents an inert form involved in the control of filament assembly during muscle growth and development. Removal of regulatory light chains or labelling the reactive heavy chain thiol of myosin prevents, or at least disfavours, formation of the folded 10 S conformer and allows separation of the modified protein from the native molecules.

Adenosine Triphosphate

Components of the multicatalytic proteinase complex.

The multicatalytic proteinase complex is a high molecular weight nonlysosomal proteinase. Kinetic studies of the proteolytic activities of the complex have shown that there are at least three distinct types of catalytic centre, each of which has a different specificity. All of the activities can be inhibited by the serine protease inhibitor 3,4-dichloroisocoumarin. Viewed under the electron microscope, the multicatalytic proteinase purified from rat liver appears to have a hollow cylindrical structure. It is composed of many different types of subunit and on two-dimensional polyacrylamide gels gives rise to a complex pattern of about 20 spots with pI values ranging between 5 and 8.5 and molecular masses between 22 and 34 kDa. Immunoblot analysis has shown that many of the major polypeptides are antigenically distinct. However, there are some relationships between the proteinase polypeptides. For example, although N-terminal sequences of five of the polypeptides are unique, they show considerable sequence similarity suggesting that these proteins are encoded by members of the same gene family. Also, there is some cross-reactivity between certain polypeptides when blots are probed with affinity purified, subunit-specific antisera. In addition to the variety of polypeptide components of the proteinase, a small RNA species (80 nucleotides) can be found associated with the complex even after purification by chromatographic procedures.

Animals

Self-interaction of dynein from Tetrahymena cilia.

The molecular mass (Mr) and enzymic activity of the larger dynein species from Tetrahymena thermophila has been studied in the high (600 mM) to low (40 mM) ionic strength range. The apparent Mr is found to vary with both ionic strength (by sedimentation velocity and quasi elastic light scattering analysis) and with protein concentration at low ionic strength (by sedimentation equilibrium analysis). These data indicate a strong self-interaction, resulting in dimer formation under low salt conditions. There is no evidence for the formation of species of higher than dimeric mass. A molecular mass for the dynein monomer of 1.64 x 10(6) daltons has been determined, a value rather lower than previous published estimates. The ATPase activity of dynein increases with increasing ionic strength. The possible relationship between this effect and the self-association phenomenon is discussed.

Adenosine Triphosphatases

The reconstruction of myosin filaments in rabbit psoas muscle from solubilized myosin.

Using rabbit psoas muscle strips, A-bands with their myosin-containing thick filaments have been substantially reconstructed in situ (as judged by electron and light microscopy and by low-angle X-ray diffraction analysis) after prior solubilization of the myosin filaments in high ionic strength potassium phosphate solution. The maintenance of a very high local concentration of soluble myosin, by means of a closely apposed artificial semi-permeable membrane is necessary for reconstruction of full-length filaments. This reconstruction effect can be totally abolished by pre-glycerolation of the muscle, or (reversibly) by pre-depletion of Ca2+. Reconstruction at longer sarcomere lengths (greater than 2.6 micron) is anomalous, part-length 'stub filaments' being formed, with their stub tails projecting out from the I-Z-I lattice. A model is proposed to explain this reconstruction effect.

Animals

Modulation of myosin filament conformation by physiological levels of divalent cation.

The effect of divalent cation, in particular Mg2+, on the properties of synthetic myosin filaments has been studied; and substantial changes in sedimentation and light scattering demonstrated to occur in the physiological range of free Mg2+. A pre-requisite for these studies has been the definition of a modified method for the preparation of myosin in highly monodisperse filament form, rigorously free from thin filament proteins. The sedimentation coefficient at infinite dilution shows a large increase (169 S to 193 S) in the range 0.2 mM to 3 mM in Mg2+. The anomalous frictional increment found for these filaments is thus substantially reduced. The concentration dependence (ks), however, shows a substantial decrease (470 ml/g to 334 ml/g) in the same range of Mg2+, and the calculated filament molecular weight is virtually unchanged. A change in the filament conformation is thus indicated. This is confirmed by an analysis of the turbidity of the filaments in the centrifuge cell, which shows a similar increase in response to the addition of Mg2+. These effects have been found to be independent of ionic strength (0.07 to 0.11), pH (7.0 to 7.6), the presence of MgATP or the presence of low levels of Ca2+ (approximately 100 microM). These effects studied indicate the action of Mg2+ through a low-affinity binding site (Kd approximately 1.5 X 10(-3) M). We consider that a significant change in crossbridge conformation can adequately explain these changes in physical and enzymic properties. A provisional model is proposed, in which the effect of Mg2+ is to bring the crossbridges into closer proximity to the filament shaft.

Animals

Symmetry and self-assembly in vertebrate A-filaments.

The myosin-containing A-filaments of vertebrate skeletal muscle contain 294 myosin molecules packed to give overall 3-fold rotational symmetry, as illustrated by the fraying of the filament into 3 sub-filaments ( Maw and Rowe, 1980). Further studies on slightly frayed filaments are consistent with a highly linear arrangement of these sub-filaments, at least in the major part of the cross-bridge region where sub-filaments can be observed. Isolated filaments have an unusual hydrodynamic property in the form of an anomalous frictional increment. This property is as yet unexplained; it may possibly be related to flow-induced cyclic movements in the myosin heads. Self-assembly of A-filaments in vitro to correct length and width has yet to be achieved. We have found however that under certain exactly defined conditions a very accurate reconstruction of both filaments and A-band can be accomplished in situ. Solubilisation of the myosin in chloride-free medium and maintenance of a high local myosin concentration are absolute requirements. Reconstruction is either abolished or modified by preglycerolation or at longer sarcomere length. It is argued that these results suggest a role for the actin filament lattice in myosin assembly, and imply that myosin assembly in the M-line region may be separable from myosin assembly in the cross-bridge region.

Animals

Further evidence for a flexible and highly expanded spheroidal model for mucus glycoproteins in solution.

The flexible and greatly expanded roughly spherical model for mucus glycoproteins proposed earlier, on the basis of hydrodynamic and n.m.r. data, is supported by new hydrodynamic results on a bronchial glycoprotein from a cystic-fibrosis patient. Furthermore, images from electron microscopy of this molecule and a lower-molecular-weight mucus glycoprotein (which closely resembles a glycopolypeptide) appear to be at least consistent with this model.

Cystic Fibrosis

Fraying of A-filaments into three subfilaments.

Since Huxley established their bipolar structure, direct electron microsocpy of A-filaments isolated from vertebrate skeletal muscle has yielded little further interpretable information about the mode of packing of the myosin molecules within the filament. Using A-filaments prepared from rat psoas muscle we have now found it possible to induce clear fraying of these filaments into subfilaments, by exposure of the preparation to very low ionic strength before contrasting with uranyl acetate. The number of such filaments observed is generally (and never in excess of) three. Considerations of symmetry suggest that the formation of these frayed filaments is compatible only with a 'three stranded' model for the native A-filament, a finding in agreement with the balance of evidence recently published using other techniques.

Animals

Hydrodynamic studies on the self association of vertebrate skeletal muscle myosin.

Sedimentation velocity studies on myosin A solutions at high ionic strength combined with computer-simulation of the concentration dependence of the sedimentation coefficient for a rapidly reversible monomer-dimer equilibrium have confirmed that if such an equilibrium does exist it has an equilibrium constant of less than 10 ml/g. A new hydrodynamic treatment has been used to calculate the molecular weight of myosin from s0 and ks alone and has yielded a value of 470 000. Combination of viscosity and sedimentation velocity results has shown that the myosin molecule displays little swelling (Vs/v = 1.1 +/- 0.1). A new picture of the myosin molecule is presented in which a conformational change in the head region is suggested to account for the variation in published s 0 values.

Animals

Frictional properties and molecular weight of native and synthetic myosin filaments from vertebrate skeletal muscle.

1. The molecular weights of a series of synthetic myosin filaments have been measured, using the transport-concentration dependence theory of Rowe, A.J. [Biopolymers, 1977, 16, 2595--2611]. It is shown that for preparations of narrow length distribution (0.60--0.77 micrometer), N, the number of myosin molecules/14.3 nm varies between 3 and 6. 2. The reduced specific viscosity of synthetic myosin filaments has been measured as a function of both concentration and shear rate. From the concentration dependence at zero rate of shear, a value for the "swelling" of the filaments Vs/-v = 2.3 has been calculated. 3. The frictional coefficient of synthetic myosin filaments has been shown to be anomalously but reproducibly high, as compared to that of prolate ellipsoids of the same length and mass. This additional frictional drag has been numerically characterised by a "frictional increment", fi = 1.76 +/- 0.11. 4. A procedure has been devised whereby for any elongated structure which can be assumed to show the same (or other known) fi value, the molecular weight can be estimated from s0 (extrapolated sedimentation coefficient) and 2b (length) alone. 5. An s0 value for natural A-filaments, isolated from rabbit psoas muscle, has been determined by the active enzyme centrifugation technique. From this value, s0 = 132 +/- 3 S, a molecular weight of 1.20 . 10(8) has been computed by the new procedure, for preparations of average length 1.27 micrometer. 6. Contingent upon the validity of the assumptions used (see 4 above) the N value is computed as 3.1 +/- 0.2, consistent with the native, fully intact A-filament having three-fold symmetry, containing 294 myosin molecules, and having a molecular weight based upon myosin and C-protein of 1.31 . 10(8).

Adenosine Triphosphatases