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H C Anderson

Publications and source records attributed to H C Anderson.

At least 73 records · Page 4Linked to original sources

The deposition of calcium pyrophosphate and phosphate by matrix vesicles isolated from fetal bovine epiphyseal cartilage.

Since calcium (Ca) deposition by isolated fetal bovine matrix vesicles is selectively supported by nucleoside triphosphate, and since the Ca deposits appear to be amorphous by transmission electron microscopy, attempts were made to study further the nature of these Ca deposits. Calcification of isolated matrix vesicles was allowed to occur in a calcifying medium in which either inorganic phosphate (Pi) or [gamma-P]ATP was labeled with 32P. 32P in Ca P (pyrophosphate) deposits were analyzed by a Dowex 1 X 10 anion exchange chromatography. The results of the analysis indicate that the (32P) radioactivity was mainly associated with Pi when Pi in the calcifying media was labeled with 32P. In contrast, 32P was found to be associated with inorganic pyrophosphate (PPi) when [gamma-32P]ATP was used. Using a specific enzyme coupling assay for PPi, the presence of PPi in the Ca deposits was demonstrated. The amounts of Pi and PPi in the Ca deposits initiated by fetal calf matrix vesicles were found to be approximately equal. To exclude the possibility that the major part of PPi of Ca P deposit existed as adsorbed form, the deposition was performed under the conditions in which Pi was omitted from calcifying medium. The results of these experiments showed that substantial amount of PPi and Ca deposits remained the same and was not correlated to the amount of Pi in these deposits. In contrast, Pi of CaP was decreased if Pi was omitted from the calcifying medium. Thus, it appears that the major portion of PPi exists as mineral rather than adsorbed form.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Diphosphate↗

Mineralization by matrix vesicles.

Matrix vesicles are widely regarded as the initial site of calcification in epiphyseal growth plate cartilage, in growing bone and in predentin. This opinion has recently been challenged on grounds that the early aqueous methods used for electron microscopic tissue preparation may have produced an erroneous picture by causing mineral dislocation. However, this argument has now been refuted by multiple investigators throughout the world using a variety of anhydrous methods coupled with electron probe analysis to show convincingly that matrix vesicles are, indeed, associated with initial mineral. Matrix vesicles appear to mineralize by concentrating calcium and phosphate at a protected site close to the inner leaflet of the vesicle membrane. Calcium may be attracted by its affinity for acidic phospholipids of the vesicle membrane, and phosphate may be concentrated by the action of transmembrane phosphatases of the matrix vesicle membrane. Evidence is accumulating to suggest that alkaline phosphatase of the matrix vesicle membrane functions as a phosphotransferase or phosphate vector, transporting PO4 across the vesicle membrane. The mechanism(s) of matrix vesicle biogenesis are discussed including budding from the plasma membrane (for which there is much support), cell degeneration (for which there is gathering support), extrusion of intracytoplasmic vesicles (for which there is weak support), and extracellular subunit self-assembly (for which there is little support). It is suggested that none of these mechanisms is necessarily exclusive, thus more than one mechanism may function in the same tissue. Finally, it is noted that in many calcific diseases, ranging from arthritis to atherosclerosis, mineralization is initiated by extracellular membrane-invested vesicles which are probably analogous to the matrix vesicles of skeletal tissues.

Animals↗

Electron microscopic localization of adenosine triphosphate (ATP)-hydrolyzing activity in isolated matrix vesicles and reconstituted vesicles from calf cartilage.

The presence and distribution of adenosine triphosphatase (ATPase) activity in isolated matrix vesicles and reconstituted vesicles from fetal calf epiphyseal growth plate cartilage was studied by electron microscopic cytochemical methods to determine whether phosphatase activity would be found concentrated on the inside or the outside of matrix vesicle membranes or on both sides, and whether reconstitution of vesicles from deoxycholate-solubilized substituents would lead to the reassembly of membranes with ATPase incorporated. ATPase activity was observed on both the outer and inner surfaces of the investing membranes of isolated matrix vesicles and reconstituted vesicles. A transmembrane location of ATPase could indicate phosphate transfer across the vesicle membrane. Orthophosphate released by phosphatase activity within the protected microenvironment of the matrix vesicle could combine with membrane- or lipid-bound calcium, known to be present in vesicles, to form the first hydroxyapatite mineral during calcification.

Adenosine Triphosphatases↗

Matrix vesicles in atherosclerotic calcification.

Matrix vesicles, small extracellular membranous structures, are known to be the initial loci of calcification of cartilage, bone, and dentin. Calcification is an important complication of atherosclerosis. Using histologic, ultrastructural, and cytochemical techniques, the present study has demonstrated that matrix vesicle-like structures are involved in the calcification of atherosclerotic lesions, as well as in arterial medial calcification. In aortas from autopsied humans and from rabbits and chickens on atherogenic diets, the matrix vesicles appear to be derived from intimal and medial cellular components, mainly smooth muscle cells.

Animals↗

Calcific diseases. A concept.

New observations portray calcification processes as similar whether occurring normally or pathologically. Most forms of calcification are initiated by membranous organelles, ie, extracellular, calcifying "matrix vesicles" or intracellular mitochondria. Matrix vesicles promote calcification through calcium-binding phospholipids and phosphatase activity. Mitochondria use a forceful, inwardly directed Ca and phosphate transport mechanism. After mineral initiation, the proliferation of mineral crystals is dependent on regulatory factors, such as extracellular Ca2+ and PO4(3-) and other mineral inhibitors and promoters. Calcific diseases are defined as those in which (1) Ca uptake is early, (2) calcification is importantly related to dysfunction, and (3) the control of calcification may lead to decreased morbidity or enhanced diagnostic capability. Calcific diseases include such well-known entities as crystal deposition arthritis, atherosclerosis, calcific valvular sclerosis, tumor calcification, dental plaque, and dysfunctional calcification occurring in implanted cardiovascular devices.

Arteriosclerosis↗

Normal and abnormal mineralization in mammals.

It is widely accepted that cells play a crucial role in the mineralization of dentin, cartilage and bone. The initial locus of calcification appears to be the matrix vesicle, a 200 nm submicroscopic extracellular, membrane-invested particle which is shed from the osteoblast, chondrocyte, or odontoblast and carries into the matrix calcifiable lipids and phosphatases. During Phase 1 of mineralization, the initiation phase, apatite appears within matrix vesicles, probably preceded by amorphous calcium phosphate. Initially, acidic phospholipids of matrix vesicles may attract calcium to form complexes with phosphate and protein. In vitro studies of cartilage slices and isolated matrix vesicles indicate the essentiality of vesicle phosphatases for mineral initiation. In pathological calcification is self-sustaining. Given physiological amounts of Ca2+ and PO43(-), calcification will spread by crystal proliferation into the extracellular matrix surrounding vesicles (Phase 2). During Phase 2 the rate of crystal proliferation is controlled by matrical factors: Collagen can orient and apparently promote apatite formation. Proteoglycans, pyrophosphate, gamma-carboxyglutamic acid-containing proteins and phosphoproteins in calcifying matrix bind Ca2+ by their anionic subgroups, and all have been shown to impede hydroxyapatite formation in vitro. The latter substances are visualized as regulating Phase 2 by inhibiting mineral growth. The calcification process involves an interaction of all of the above. When viewed as a 2-phase phenomenon, it is possible to integrate each of these factors into a comprehensive concept od biological mineralization.

Calcification, Physiologic↗

Enzymatic characterization of the chondrocytic alkaline phosphatase isolated from bovine fetal epiphyseal cartilage.

Purified chondrocytic alkaline phosphatase (orthophosphoric-monoester phosphohydrolase (alkaline optimum), EC 3.1.3.1) from bovine fetal epiphyseal cartilage hydrolyzes a variety of phosphate esters as well as ATP and inorganic pyrophosphate. Optimal activities for p-nitrophenyl phosphate, ATP and inorganic pyrophosphate are found at pH 10.5, 10.0 and 8.5, respectively. The latter two substrates exhibit substrate inhibition at high concentrations. p-Nitrophenyl phosphate demonstrates decreasing pH optima with decreasng substrate concentration. Heat inactivation studies indicate that both phosphorolytic and pyrophosphorolytic cleavage occur at the same site on the enzyme. Mg2+ (0.1-10.0 mM) and Mn2+ (0.01-0.1 mM) show a small stimulation of p-nitrophenyl phosphate-splitting activity at pH 10.5. Levamisole, Pi, CN-, Zn2+ and L-phenylalanine are all reversible inhibitors of the phosphomonoesterase activity. Pi is a competitive inhibitor with a Ki of 10.0 mM. Levamisole and Zn2+ are potent non-competitive inhibitors with inhibition constants of 0.05 and 0.04 mM, respectively. The chondrocytic alkaline phosphatase is inhibited irreversibly by Be2+, EDTA, EGTA, ethane-1-hydroxydiphosphonate, dichloromethane diphosphonate, L-cysteine, phenyl-methylsulfonyl fluoride, N-ethylmaleimide and iodoacetamide. NaCL, KCL and Na2SO4 at 0.5-1.0 M inhibit the enzyme. At pH 8.5, the cleavage of inorganic pyrophosphate (pyrophosphate phosphohydrolase, EC 3.6.1.1) by the chondrocytic enzyme is slightly enhanced by low levels of Mg2+ and depressed by concentrations higher than 1mM. Ca2+ show only inhibition. Similar effects of Mg2+ and Ca2+ on the associated ATPase (ATP phosphohydrolase, EC 3.1.6.3) activity were observed. Arrhenius studies using p-nitrophenyl phosphate and AMP as substrates have accounted for the ten-fold difference in V in terms of small differences in both the enthalpies and entropies of activation which are 700 cal/mol and 2.3 cal/degree per mol, respectively.

Adenosine Triphosphatases↗

Hereditary osteodysplasia with acro-osteolysis. (The Hajdu-Cheney syndrome).

A mother and son with acro-osteolysis (Hajdu-Cheney syndrome) are described. In addition to osteolysis of the distal phalanges, these patients have a generalized osseous dysplasia with osteoporosis, premature loss of teeth, short stature and a distinctive facial appearance. In one of the cases an enlarged sella turcica was associated with no abnormality of endocrine function. A biopsy specimen taken from an area of active osteolysis in a phalanx was studied by light and electron microscopy. There was active replacement of central medullary bone by a fibrous and angiomatous process characterized by the presence of small, thick-walled vessels and an unusual number of interspersed nerve fibers and mast cells. A neurovascular dysfunction with local release of osteolytic mediators may be involved in the pathogenesis of the disorder, but the nature of the osteolytic factor is unknown.

Adolescent↗

Calcification of isolated matrix vesicles and reconstituted vesicles from fetal bovine cartilage.

Ca deposition by isolated matrix vesicles from fetal calf growth plate cartilage and by a deoxycholate extract from matrix vesicles that included their phosphatase was studied under defined in vitro conditions. Electron microscopy showed that after removal of deoxycholate and lyophilization of the vesicle extract, new vesicles were reconstituted, often with multiple membrane layers. Both intact calf vesicles and reconstituted vesicles initiated Ca deposition maximally when supplied with ATP, GTP, CTP, or UTP. Only nucleoside triphosphates supported Ca deposition well; mono- and diphosphoesters, although hydrolyzed, were ineffective as substrates. Nucleoside triphosphates supported Ca deposition even if the final [Ca] X [P] reached in the reaction mixture was below a metastable level (3.5 mM2), suggesting that matrix vesicles or reconstituted vesicles promote calcification by localizing Ca or PO4 or both. ATP or GTP supported Ca deposition readily at concentrations ranging from 0.25 to 1.0 mM but, at 2.5 and 5.0 mM, Ca deposition was inhibited. The ATPase of intact matrix vesicles and reconstituted vesicles was stimulated by addition of Ca2+ and Mg2+. Ca deposition did not require additional Mg2+. These results lend support to the hypothesis that matrix vesicles and their phosphatases play an important role in mineralization.

Adenosine Triphosphatases↗

A simple and defined method to study calcification by isolated matrix vesicles. Effect of ATP and vesicle phosphatase.

A simplified and defined system was developed to study in vitro calcium phosphate deposition by isolated matrix vesicles from rabbit growth plate cartilage, and to examine the relationship between vesicle phosphatase and calcium deposition. Samples of suspended vesicles containing 25 microgram of protein, were incubated for 2 h in a 45Ca-labelled solution with 2.2 mM Ca2+, 1.6 mM PO 3/4-and 1 mM ATP at pH 7.6. Calcium deposition was related to the amount of PO4 hydrolysed by matrix vesicle phosphatases from ATP and other phosphate esters. Ca2+ or Mg2+ was found to stimulate matrix vesicle ATPase, but the hydrolysis of phosphoenolpyruvate, glucose 1-phosphate, beta-glycerol phosphate and AMP was independent of either cation. All of the above substrates supported calcium deposition. 1 mM ATP was more effective than 5 mM in supporting calcium deposition, indicating inhibition of mineralization at higher ATP concentrations. Our results suggest that, in addition to concentrating calcium, vesicles provide phosphate from ATP for mineral formation and at the same time remove the inhibitory effect of ATP upon mineral deposition.

Adenine Nucleotides↗

Calcification of rachitic cartilage to study matrix vesicle function.

Growth plate cartilage from rachitic rats was studied to assess the role of extra-cellular matrix vesicles in the reinstitution of calcification during healing. The concentration and distribution of matrix vesicles was found to be normal in rachitic growth plate, and although the rachitic cartilage matrix was largely uncalcified, an occasional vesicle did contain internal mineral. Matrix vesicles served as initial loci for mineralization when healing was brought about either by in vivo injection of phosphate or in vitro incubation of growth plates in a metastable calcifying solution. During in vitro calcification a distinct line of mineralization developed in the upper growth plate which was shown by electron microscopy to reflect mineralization by the vesicles. The appearance of this vesicle-associated calcification line was inhibited by preheating or repeated freezing and thawing, and by 30 minutes preincubation in deoxycholate, ethane-1-hydroxy-1,1-diphosphonate, or beryllium sulfate. Our results suggest that vesicle calcification is dependent on the structural and enzymatic integrity of the vesicle membrane. Enzymes that may well play a role in vesicle calcification are phosphatases (e. g., alkaline phosphatase, pyrophosphatase and ATPase), which are known to be concentrated in vesicle membranes.

Animals↗

Biogenesis of matrix vesicles in cartilage growth plates.

Although the structure and function of cartilage matrix vesicles have been comprehensively documented in the literature, the method of vesicle production and export to the extra-cellular matrix is less well understood. The existing data are grouped into four general hypotheses of matrix vesicle biogenesis, with a consideration of the relative merits and weaknesses of each postulate. The hypotheses are: a) budding from cellular processes; b) extrusion of preformed structures; c) cellular degeneration and disintegration; and c)subunit secretion and extracellular assembly. Each of these possibilities offers conceptual advantages and disadvantages, so that it is difficult to adopt a monistic stance. Previous notions of vesicle biogenesis have derived from statis morphologic and analytical data, which are necessarily limiting when attempting to draw kinetic conclusions. Radiotracer studies of lipid synthesis and transport in cartilage lead to the conclusion that matrix vesicles in the growth plate are derived from chondrocytes; the present data favor the hypotheses of budding from cellular processes and/or subunit secretion with extracellular self-assembly.

Cartilage↗