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Incorporation of fluorescent lipids into living rabbit hippocampal and cerebellar slices.

Incorporation of exogenously applied fluorescent lipids into living cells was exploited to probe cellular structure and function in living hippocampal and cerebellar slices as assessed by fluorescent imaging techniques and intracellular recording. Nitrobenzoxadiole-phosphatidylcholine (NBD-PC) and BODIPY phorbol ester, in vitro substrates of phospholipase activity and protein kinase C, respectively, were incorporated and distributed into specific cell populations. In the hippocampal slice, both probes labeled the somata and proximal dendrites of pyramidal and granule cells but were hetrogeneously distributed across the different hippocampal fields. Changes in fluorescent properties of NBD-PC in individual pyramidal cell and granule cell somata were quantified upon challenge with a muscarinic agonist known to modulate phospholipase A2 activity. In the cerebellar slice, both probes labeled Purkinje cell bodies and dendrites but only NBD-PC labeled stellate and granule cells. The cellular and functional specificity of these fluorescent lipid probes shows great promise for monitoring biochemical events in complex neuronal systems with significant spatial and temporal resolution.

4-Chloro-7-nitrobenzofurazan↗

[Age-related changes in the ultrastructural organization of the human gingival epithelium].

By means of transmissive and scanning electron microscopy 103 gingival bioptates in practically healthy persons at the age of 18-80 years have been studied. At ageing essential changes take place in all structural elements of the epithelium. The basal membrane is intermittent and loose. In cytoplasm of the cells of the basal layer epithelium the amount of microfilaments increases essentially, and as a result it becomes electron opaque. Tonofibrillar fasciculi of the spinous layer cells are fragmented, their contours are indistinct. In cytoplasm of the granular layer cells amount of keratohyalin granules increases, their size becomes large and their typical form is lost. In cytoplasm of the basal, spinous and granular layer cells the amount of organells decreases. Mitochondria acquire the appearance of electron translucent cavities with discomplexic, and sometimes, destroyed cristae. Rather great changes occur in intercellular interrelations. In all the layers some intercellular spaces are widen, in the spaces formed isolated desmosomes and other debries of cellular structures are formed. Sharp changes of microrelief of the granular layer epitheliocytes are observed. The ultrastructural rearrangements of epitheliocytes, revealed in the human gingiva, demonstrate certain disturbances in keratinization processes, in mechanical firmness, as well as in barrier function of the epithelial layer.

Adolescent↗

[Structural features of linear and cyclic analogs of angiotensin, affecting secretion of histamine from rat mast cells].

Linear and cyclic analogues of angiotensin were studied to clarify the structural properties of peptides possessing a histamine-releasing action. It was shown that an increase in the angiotensin basicity or its cyclization leads to the appearance of the histamine-releasing activity which is not characteristic of the natural hormone. This increase in the basicity of the angiotensin cyclic analogs results in highly active compounds with the EC50 exceeding by 2 to 3 orders of magnitude that of polymyxin B or substance 48/80. The data obtained confirm the hypothesis postulating a high degree of amphiphilicity for histamine-releasing peptides. As a result of cyclization of angiotensin analogues, a block of positively charged amino acids with an oppositely located hydrophobic region is formed. This finding can be of importance for the effective interaction of peptides with cellular structures as well as for the stimulation of secretory processes.

Adrenocorticotropic Hormone↗

Immunocytochemical and scanning electron microscopic studies of atherosclerosis in Japanese quail.

The major cellular components of atherosclerotic lesions in several species have been shown to be smooth muscle cells (SMC) and macrophages. Many studies suggest the composition of a lesion varies depending on the stage of lesion development. For example, macrophages are believed to be involved in the initial events of fatty streak formation in many animals. This communication presents the first cellular study of quail atherosclerosis and demonstrates the alteration of cellular structure during the process of the disease in quail fed a cholesterol diet. Monoclonal antibodies to alpha-actin and chicken macrophages effectively identified the presence of SMC and macrophages, respectively, as constituents of the atherosclerotic lesions. Macrophage presence, as well as SMC proliferation, was observed in early lesions. Although the first cell type to be involved in the initial stages of atherogenesis cannot be defined, the results suggest early intervention of macrophages and SMC. Scanning electron microscopic examination of the aortic arch demonstrates the obvious differences in appearance of the endothelial surface of normal and diseased quail. The accumulation of subendothelial foam cells causes the lumen surface to bulge irregularly into the lumen. The results of the present study are important to the evaluation of the key cellular events of atherogenesis.

Animals↗

[Leukemias--diseases of haemopoietic organs stroma (hypothesis)].

Like bones and other tissues in the organism, hemopoietic tissue is a constantly regenereting system in which stem hemopoietic cells (SHC) are involved in mitosis like stem cells of other tissues, this suggesting a universal mechanism of cell repopulation. Hemopoietic connective tissue is a special structure for autoregeneration and differentiation of stem cells. It forms hemopoiesis as the environment in which cells develop. Cell repopulation is the function of connective tissue and bone marrow. In leukemia involvement of the stroma creates conditions for tumor cell growth. Connective tissue disease at first manifests by imbalanced cell-to-cell interactions and then disorders cell repopulation and leads to appearance of abnormal cell forms. Abnormalities in cell development involve alteration of their biological properties. Fibrosis is a common biological phenomenon. It is one of manifestations of connective tissue functions. Fibrous tissue overgrowth in leukemia is to be regarded from a general biological viewpoint. Normally extension of the function of bone marrow hemopoiesis involves or is parallel with connective tissue growth which does not impair balanced interactions between cellular structures, their regeneration and degradation. Myelofibrosis, a form of fibrosis manifestations, is observed (in different measure) in all leukemias and is their integral component. Hemopoietic connective tissue is an "incubator" of SHC, and therefore, development of fibrosis is determined by the initial connective tissue involvement (disease) of nontumorous origin. In leukemia the same biological regularities, maintaining the organism viability, are in force, but their effect is distorted, because in leukemia the bulk of cells is many times higher than in health or even in disease. Moreover, increase of the bulk of cells occurrs under conditions of deficient bone marrow hemopoiesis, present to this or that measure in leukemia.

Cell Communication↗

Quantitative cytochemical determination of desoxyribonucleic acid with the Feulgen nucleal reaction.

The possibility of using the Feulgen nucleal reaction for a quantitative cytochemical estimation of desoxyribonucleic acid (DNA) was investigated. The intensity of the reaction in nuclei was determined by absorption measurements with the microscope. The accuracy of such measurements was tested by comparison with measurements on the same material with a Beckman spectrophotometer. The values obtained with the microscope agreed within a few per cent with those obtained with the Beckman spectrophotometer. Furthermore, the errors introduced by uneven distribution of absorbing material, by variations in the numerical aperture of the system, and by variation in the area used on the phototube were investigated empirically. The following variables were studied with regard to their effect on the intensity of the Feulgen reaction: type of fixation, time of hydrolysis after acetic acid-alcohol and formalin fixation, time of staining in leucobasic fuchsin, method of preparation of leucobasic fuchsin. The intensity of the Feulgen reaction in liver and erythrocyte nuclei of various vertebrates, fixed in acetic acid-alcohol, was then compared with the DNA content of these nuclei as determined by chemical analysis on a known number of nuclei. The intensity of the reaction was found to be proportional to the DNA content of the nuclei, if nuclei of similar structure and DNA concentration were compared. In nuclei of different structure and DNA concentration (i.e. liver and erythrocyte nuclei), fixed in acetic acid-alcohol, the intensity of the Feulgen reaction was, however, not proportional to the DNA content. This difficulty was overcome by isolating nuclei in sucrose and by fixing them in formalin. Uniform distribution of DNA and therefore uniform coloring after the Feulgen reaction were thus obtained. In such nuclei with uniform distribution of absorbing material the Feulgen reaction was found to be proportional to the DNA content of nuclei, even if they differed greatly in their DNA concentration. The Feulgen nucleal reaction is not quantitative in an absolute sense. For absolute determinations nuclei of known DNA content must be treated together with the unknown material to serve as standard. From these data it therefore appears possible to determine cytochemically relative amounts of DNA in cellular structures by measuring their absorption after treatment with the Feulgen nucleal reaction.

Animals↗

Transcriptional deregulation in hereditary disorders and cancer: the 12th annual CABM symposium, October 21-22, 1998, Piscataway, NJ.

As can be seen from the above descriptions, the presentations at the CABM symposium provided an extraordinarily rich and diverse panorama of some of the most exciting science in current molecular biology. The presentations provided both a general overview and a detailed analysis of multiple biological systems, which despite their specific differences, also generated insights into important common themes. The success of any meeting is most appropriately measured by the kinds of questions that are provoked for future study, not merely by the recitation of past discoveries. In fact, the different presentations often raised highly similar questions for future study. At the most fundamental levels of transcriptional regulation, what are the signals that provide specificity of gene expression? What is the structural basis of specific protein-protein interactions, such as those between homeodomain proteins and beta-catenin-Lef1 interactions, and how are these determinants altered in transcriptional regulation in oncogenesis and in genetic diseases? How is specificity achieved in transcriptional repression, given that the fundamental biochemical reactions often involve modifications of relatively ubiquitous components such as histones? To what extent do changes in specificity of gene activation and repression or in chromosomal architecture mediate the kinds of developmental and oncogenic signals mediated through transcriptional regulators such as Myc, BCL6 and other basic helix-loop-helix proteins and the HMGI proteins? How do altered signaling pathways affect diseases of development and differentiation such as cardiovascular disorders and aging itself? What are the pathways that integrate extracellular signals and transcription during the process of organogenesis? How do fundamental cellular structures such as adhesion junctions, and the interactions of a cell with other cells and extracellular matrix impact on normal and abnormal development and on malignancy, and how do these levels of structure and function alter nuclear regulation of transcription and cell division? These are some of the recurrent questions raised in talk after talk at this symposium, questions that undoubtedly will provide the impetus for important discoveries that will be presented at future CABM symposia.

Aging↗

A family of hsp60-related proteins in pancreatic beta cells of non-obese diabetic (NOD) mice.

Eukaryotic hsp60s are plastid-specific molecular chaperones implicated in the pathogenesis of many inflammatory and autoimmune diseases. We have used immunoelectron microscopy, immunoblotting and subcellular fractionation of islet cells to determine whether analogous proteins with related function are expressed in other cellular structures and whether such hsp60-related proteins could serve as antigenic targets in autoimmune diabetes. Using a panel of monoclonal and polyclonal antibodies to human and yeast hsp60s and immunoelectron microscopy, the hsp60 antibody cross-reactive proteins were detected in secretory granules, mitochondria, synaptic-like microvesicles and microtubules of mouse pancreatic beta cells. The expression of microtubule-associated hsp60 was induced by an infiltration of islets by mononuclear cells. This novel inducible-form of hsp60-related protein was recognized as an antigen by sera from diabetic mice. Subcellular fractionation of islets indicated that the molecular size of hsp60-related proteins included 66, 62, 58, 55, 52 and 38 kDa. These results demonstrate that the pancreatic beta cells express a family of hsp60-related proteins, with members differentially expressed in distinct cellular compartments. These proteins bearing hsp60 epitopes were antigenic targets for autoimmune responses in diabetic NOD mice.

Animals↗

Cytokinesis in prokaryotes and eukaryotes: common principles and different solutions.

Cytokinesis requires duplication of cellular structures followed by bipolarization of the predivisional cell. As a common principle, this applies to prokaryotes as well as eukaryotes. With respect to eukaryotes, the discussion has focused mainly on Saccharomyces cerevisiae and on Schizosaccharomyces pombe. Escherichia coli and to a lesser extent Bacillus subtilis have been used as prokaryotic examples. To establish a bipolar cell, duplication of a eukaryotic origin of DNA replication as well as its genome is not sufficient. Duplication of the microtubule-organizing center is required as a prelude to mitosis, and it is here that the dynamic cytoskeleton with all its associated proteins comes to the fore. In prokaryotes, a cytoskeleton that pervades the cytoplasm appears to be absent. DNA replication and the concomitant DNA segregation seem to occur without help from extensive cytosolic supramacromolecular assemblies but with help from the elongating cellular envelope. Prokaryotic cytokinesis proceeds through a contracting ring, which has a roughly 100-fold-smaller circumference than its eukaryotic counterpart. Although the ring contains proteins that can be considered as predecessors of actin, tubulin, and microtubule-associated proteins, its macromolecular composition is essentially different.

Animals↗

Analysis of fast dynamic processes in living cells: high-resolution and high-speed dual-color imaging combined with automated image analysis.

The generation of spectral mutants of the green fluorescent protein (GFP) set the stage for multiple-color imaging in living cells. However, the use of this technique has been limited by a spectral overlap of the available GFP mutants and/or by insufficient resolution in both time and space. Using a new setup for dual-color imaging, we demonstrate here the visualization of small, fast moving vesicular structures with a high time resolution. Two GFP-fusion proteins were generated: human chromogranin B, a secretory granule matrix protein, and phogrin, a secretory granule membrane protein. They were tagged with enhanced yellow fluorescent protein (EYFP) and enhanced cyan fluorescent protein (ECFP), respectively. Both fusion proteins were cotransfected in Vero cells, a cell line from green monkey kidney. EYFP and ECFP were excited sequentially at high time rates using a monochromator. Charged coupled device (CCD)-based image acquisition resulted in 5-8 dual-color images per second, with a resolution sufficient to detect transport vesicles in mammalian cells. Under these conditions, a fully automated time-resolved analysis of the movement of color-coded objects was achieved. The development of specialized software permitted the analysis of the extent of colocalization between the two differentially labeled sets of cellular structures over time. This technical advance will provide an important tool to study the dynamic interactions of subcellular structures in living cells.

Animals↗

Diverse pathways for nuclear signaling by G protein-coupled receptors and their ligands.

Recent realization that plasma membrane G protein-coupled receptors (GPCRs) may translocate and establish ligand-responsive signaling complexes in other cellular structures has motivated studies of site-specific differences in transductional pathways. GPCRs and their ligands may signal transcription and other nuclear events by two basic mechanisms. The first consists of GPCR-complex activation of messengers that enter the nucleus and there initiate cell-modifying processes without the GPCR leaving the plasma membrane. The second encompasses entry into the nuclear membranes or matrix of either GPCR ligands, which bind to non-GPCR nuclear signaling proteins, proteolytic fragments of GPCRs capable of ligand-independent signaling, or intact GPCRs with transduction-competent factors that directly initiate or regulate transcriptional events. With the second mechanism, often concurrent down-regulation of plasma membrane GPCRs terminates signaling from the cell-surface and moves it into the nuclear domain. Site-dependent differences in signals from the same GPCR provide potentials for unique cellular abnormalities attributable to defective intracellular movement and distribution of a GPCR, site-specific alterations in ligand concentration, and limited intracellular bioavailability of pharmacological agents that can interact specifically with both nuclear and plasma membrane forms of a GPCR.

Animals↗

Ultrastructural changes in the hippocampal CA1 region following transient cerebral ischemia: evidence against programmed cell death.

The ultrastructural changes in the pyramidal neurons of the CA1 region of the hippocampus were studied 6 h, 24 h, 48 h, and 72 h following a transient 10 min period of cerebral ischemia induced by common carotid occlusion combined with hypotension. The pyramidal neurons showed delayed neuronal death (DND), i.e. at 24 h and 48 h postischemia few structural alterations were noted in the light microscope, while at 72 h extensive neuronal degeneration was apparent. The most prominent early ultrastructural changes were polysome disaggregation, and the appearance of electron-dense fluffy dark material associated with tubular saccules. Mitochondria and nuclear elements appeared intact until frank neuronal degeneration. The dark material accumulated with extended periods of recirculation in soma and in the main trunks of proximal dendrites, often beneath the plasma membrane, less frequently in the distal dendrites and seldom in spines. Protein synthesis inhibitors (anisomycin, cycloheximide) and an RNA synthesis inhibitor (actinomycin D), administered by intrahippocampal injections or subcutaneously, did not mitigate neuronal damage. Therefore, DND is probably not apoptosis or a form of programmed cell death. We propose that the dark material accumulating in the postischemic period represents protein complexes, possibly aggregates of proteins or internalized plasma membrane fragments, which may disrupt vital cellular structure and functions, leading to cell death.

Animals↗

Regulated docking of nuclear membrane vesicles to vimentin filaments during mitosis.

During mitosis, several types of intermediate-sized filaments (IFs) undergo an extensive remodelling in response to phosphorylation by cdc 2 and other protein kinases. However, unlike the nuclear lamins, the cytoplasmic IFs do not seem to follow a fixed disassembly stereotype and often retain their physical continuity without depolymerizing into soluble subunits. To investigate potential interactions between mitotically modified IFs and other cellular structures, we have examined prometaphase-arrested cells expressing the IF protein vimentin. We demonstrate here that vimentin filaments associate in situ and co-fractionate with a distinct population of mitotic vesicles. These vesicles carry on their surfaces nuclear lamin B, the inner nuclear membrane protein p58, and wheat germ agglutinin (WGA)-binding proteins. Consistent with a tight interaction between the IFs and the mitotic membranes, vimentin, nuclear lamin B, and a 180-kD WGA-binding protein are co-isolated when whole mitotic homogenates are incubated with anti-vimentin or anti-lamin B antibodies immobilized on magnetic beads. The vimentin-associated vesicles are essentially depleted of ER, Golgi and endosomal membrane proteins. The interaction of vimentin with lamin B-carrying membranes depends on phosphorylation and is weakened by dephosphorylation during nuclear reassembly in vitro. These observations reveal a novel interaction between IFs and cellular membranes and further suggest that the vimentin filaments may serve as a transient docking site for inner nuclear membrane vesicles during mitosis.

Animals↗

Cargo selection by specific kinesin light chain 1 isoforms.

Kinesin-1 drives the movement of diverse cargoes, and it has been proposed that specific kinesin light chain (KLC) isoforms target kinesin-1 to these different structures. Here, we test this hypothesis using two in vitro motility assays, which reconstitute the movement of rough endoplasmic reticulum (RER) and vesicles present in a Golgi membrane fraction. We generated GST-tagged fusion proteins of KLC1B and KLC1D that included the tetratricopeptide repeat domain and the variable C-terminus. We find that preincubation of RER with KLC1B inhibits RER motility, whereas KLC1D does not. In contrast, Golgi fraction vesicle movement is inhibited by KLC1D but not KLC1B reagents. Both RER and vesicle movement is inhibited by preincubation with the GST-tagged C-terminal domain of ubiquitous kinesin heavy chain (uKHC), which binds to the N-terminal domain of uKHC and alters its interaction with microtubules. We propose that although the TRR domains are required for cargo binding, it is the variable C-terminal region of KLCs that are vital for targeting kinesin-1 to different cellular structures.

Alternative Splicing↗

Segregated assembly of muscle myosin expressed in nonmuscle cells.

Skeletal muscle myosin cDNAs were expressed in a simian kidney cell line (COS) and a mouse myogenic cell line to investigate the mechanisms controlling early stages of myosin filament assembly. An embryonic chicken muscle myosin heavy chain (MHC) cDNA was linked to constitutive promoters from adenovirus or SV40 and transiently expressed in COS cells. These cells accumulate hybrid myosin molecules composed of muscle MHCs and endogenous, nonmuscle, myosin light chains. The muscle myosin is found associated with a Triton insoluble fraction from extracts of the COS cells by immunoprecipitation and is detected in 2.4 +/- 0.8-micron-long filamentous structures distributed throughout the cytoplasm by immunofluorescence microscopy. These structures are shown by immunoelectron microscopy to correspond to loosely organized bundles of 12-16-nm-diameter myosin filaments. The muscle and nonmuscle MHCs are segregated in the transfected cells; the endogenous nonmuscle myosin displays a normal distribution pattern along stress fibers and does not colocalize with the muscle myosin filament bundles. A similar assembly pattern and distribution are observed for expression of the muscle MHC in a myogenic cell line. The myosin assembles into filament bundles, 1.5 +/- 0.6 micron in length, that are distributed throughout the cytoplasm of the undifferentiated myoblasts and segregated from the endogenous nonmuscle myosin. In both cell lines, formation of the myosin filament bundles is dependent on the accumulation of the protein. In contrast to these results, the expression of a truncated MHC that lacks much of the rod domain produces an assembly deficient molecule. The truncated MHC is diffusely distributed throughout the cytoplasm and not associated with cellular stress fibers. These results establish that the information necessary for the segregation of myosin isotypes into distinct cellular structures is contained within the primary structure of the MHC and that other factors are not required to establish this distribution.

Actin Cytoskeleton↗

Immunolocalization of myosin Va in the developing nervous system of embryonic chicks.

Myosins are molecular motors associated with the actin cytoskeleton that participate in the mechanisms of cellular motility. During the development of the nervous system, migration of nerve cells to specific sites, extension of growth cones, and axonal transport are dramatic manifestations of cellular motility. We demonstrate, via immunoblots, the expression of myosin Va during early stages of embryonic development in chicks, extending from the blastocyst period to the beginning of the fetal period. The expression of myosin Va in specific regions and cellular structures of the nervous system during these early stages was determined by immunocytochemistry using a polyclonal antibody. Whole mounts of chick embryos at 24-30-h stages showed intense immunoreactivity of the neural tube in formation along its full extent. Cross-sections at these stages of development showed strong labeling in neuroepithelial cells at the basal and apical regions of the neural tube wall. Embryos at more advanced periods of development (48 h and 72 h) showed distinctive immunolabeling of neuroepithelial cells, neuroblasts and their cytoplasmic extensions in the mantle layer of the stratified neural tube wall, and neuroblasts and their cytoplasmic extensions in the internal wall of the optic cup, as well as a striking labeling of cells in the apparent nuclei of cranial nerves and budding fibers. These immunolocalization studies indicate temporal and site-specific expression of myosin Va during chick embryo development, suggesting that myosin Va expression is related to recruitment for specific cellular tasks.

Animals↗

Immunohistochemical patterns for alpha- and beta-catenin, E- and N-cadherin expression in ovarian epithelial tumors.

OBJECTIVES: This study aims were to analyze and compare the E- and N-cadherin, beta- and alpha-catenin expression in benign and malignant epithelial neoplasms of the ovary, correlating with tumor staging, histological grade, and presence of metastases during evolution. METHODS: Immunohistochemical reactions were performed on paraffin-embedded tissues and evaluated according to the number of positive, stained cellular structures and reaction intensity for each molecule. Information about histological type and grade, tumoral stage, and disease evolution was obtained from the patients' clinical records. RESULTS: Most of the carcinomas showed more intense beta-catenin reaction (P = 0.02). More than 50% of the endometrioid carcinomas showed increased beta-catenin expression, with a large number of positive cells and more intense staining, being the same also observed for most of the serous benign tumors (P < 0.01). E-cadherin membrane expression was frequently observed in carcinomas without metastasis, whereas cases with metastases in evolution were negative or showing E-cadherin expression only in the cytoplasm (P = 0.04). N-cadherin expression differed according to histological type and grade and alpha-catenin was also related to histological type, but these findings were not conclusive. CONCLUSIONS: Increased beta-catenin expression was more frequent in ovarian carcinomas, especially, but not only, in the endometrioid ones. The maintenance of E-cadherin expression in cellular membrane may be an independent marker of good prognosis in ovarian cancer. New studies about N-cadherin and alpha-catenin and their importance during ovarian carcinogenesis will be required.

Adenocarcinoma↗

New model for simulation of fracture repair in full-grown beagle dogs: model characterization and results from a long-term study with ibandronate.

INTRODUCTION: Given that bisphosphonates reduce bone turnover, it is important to establish that their long-term administration does not impair bone quality. This paper describes a new model for simulation of fracture repair to evaluate several aspects of bone quality following long-term administration (34 or 36 weeks) of ibandronate in full-grown beagle dogs. METHODS: The treatment schedule consisted of continuous daily subcutaneous administration of a pharmacologically active dose (1 microg/kg/day) and two cyclical intermittent regimens providing a similar total dose per animal at the end of the experiment. Seven or 8 weeks before study end, 10 holes were drilled in the left tibia and bone marrow ablation was performed in the ipsilateral femur. Serial measurements for blood biochemistry (osteocalcin and iso-alkaline phosphatase) and bone mineral density (BMD; whole body and L1-L7) by dual-energy X-ray absorptiometry (DEXA) were performed during the experiment. Bone quality was determined at the end of the experiment by assessing early and late stage defect healing and structural, cellular, and dynamic histomorphometry (femur, tibia, and lumbar vertebrae L3 and L4). RESULTS: Healing of the drill hole defects, which simulate the first stage of fracture healing, was neither qualitatively nor quantitatively influenced by ibandronate. The same was true for the activation of cortical remodeling that occurs in the later stage of fracture healing, which started in Week 4 after surgery and declined after Week 8 in all groups. Additionally, no difference was found between the various regimens and the controls with respect to DEXA analyses, trabecular bone volume, cancellous bone tissue area, cancellous bone perimeter, osteoclast count, serum osteocalcin, or bone-specific alkaline phosphatase. DISCUSSION: In conclusion, the presence of the first and second steps of fracture healing and the fact that the histological features closely resemble those of fracture repair validate the development and characterization of a new model for simulation of fracture repair. A long-term study with a therapeutically active dose of ibandronate shows that ibandronate does not impair BMD, bone structure, bone repair, coupling, and serum parameters for bone formation and turnover after long-term administration.

Absorptiometry, Photon↗