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PubMed · 191547

Calcium pyrophosphate dihydrate (CPPD) crystal-induced chemotactic factor: subcellular localization, role of protein synthesis and phagocytosis.

Abstract

A factor with chemotactic properties for polymorphonuclear leukocytes appears in their lysosomal fraction following phagocytosis of CCPD crystals. The factor, whose appearance was blocked by inhibition of protein synthesis, was estimated to have a molecular weight of 8,400 daltons. Inhibition of crystal phagocytosis by cytochalasin B was also shown to inhibit the generation of chemotactic factor activity, indicating that ingestion of the crystals by the cell is essential for the generation of the CPPD crystal-induced chemotactic factor. This latter finding provides a clue in the understanding of the development and termination of the acute pseudogout attack.

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I Spilberg, A Gallacher, B Mandell. 1977. Calcium pyrophosphate dihydrate (CPPD) crystal-induced chemotactic factor: subcellular localization, role of protein synthesis and phagocytosis.. https://pubmed.ncbi.nlm.nih.gov/191547/

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Preparation and characterization of RF magnetron sputtered calcium pyrophosphate coatings.

CaP ceramic has been widely used as coating on metals in orthopedics and oral dentistry. Variations in CaP composition can lead to different dissolution/precipitation behavior and may also affect the bone response. In the present study calcium pyrophosphate and hydroxylapatite coatings were successfully prepared by RF magnetron sputtering deposition. The phase composition, morphological properties, and the dissolution in SBF were characterized by using XRD, FTIR, EDS, SEM, and spectrophotometry. The results showed that all the sputtered coatings were amorphous and changed into a crystal structure after IR-radiation. The temperature for the crystallization of the amorphous coatings is lower for the hydroxylapatite coating (550 degrees C), compared to the calcium pyrophosphate coating (650 degrees C). All sputtered amorphous coatings were instable in SBF and dissolved partially within 4 wks of incubation. The heat-treated coatings appeared to be stable after incubation. These results showed that magnetron sputtering of calcium pyrophosphate coating is a promising method for forming a biocompatible ceramic coating.

Calcium Pyrophosphate↗