Related Experiment Video
Updated: Jul 20, 2026

Quantifying Glomerular Permeability of Fluorescent Macromolecules Using 2-Photon Microscopy in Munich Wistar Rats
Published on: April 17, 2013
Metabolism of the complex monofluorophosphate-alpha 2-macroglobulin in the rat
L Esteban1, A Rigalli, R C Puche
1Laboratorio de Biología Osea, Facultad de Ciencias Médicas, Universidad Nacional de Rosario, Argentina.
Abstract:
Sodium monofluorophosphate (MFP) is a drug used in the treatment of primary osteoporosis. Following the intake of MFP, a small fraction of the drug is absorbed intact and forms a complex with alpha 2-macroglobulin (MFP-alpha 2M) inactivating the antiproteasic activity of the globulin. The complex has been shown to occur in the serum of rats and human being. This paper reports data on the metabolism of this complex in the rat. In vitro experiments showed that liver and bone tissue remove MFP-alpha 2M from the incubation medium. When the experiments were pursued beyond the time needed to reduce the complex concentration to very low levels, fluorine (F) reappears in the medium in two forms: bound to low molecular weight macromolecule/s (2,200 +/- 600 Da) and as ionic F. Concentrations of these F fractions increase while that of the complex decreases as a function of time. In vitro, uptake of the complex by liver or bone tissue was not affected by the presence of colchicine or methylamine. These drugs, however, inhibited intracellular metabolism of the complex, as indicated by the impairment of the return of F species to the extracellular space and the increase in F content of the tissue. The cellular receptors responsible for the uptake of the complex in liver and bone are insensitive to low concentration of calcium and inhibited by polyinosinic acid[5']. These features characterize the "scavenger" receptor, one of the two receptor types known to remove inactive alpha 2M from the circulation. Injection of polyinosinic acid [5'] to living rats also hindered the disappearance of the complex from serum. It is concluded that the metabolism of the MFP-alpha 2M complex involves binding to receptors, uptake by cells, lysosomal degradation and return of F bound to low molecular weight macromolecule/s to the extracellular space. It is assumed, however, that inorganic F is the final product of lysosomal hydrolysis of the protein moiety.
Insights
Sodium monofluorophosphate (MFP) forms a complex with alpha 2-macroglobulin (MFP-alpha 2M) in the body. This study reveals that liver and bone tissues metabolize the MFP-alpha 2M complex via scavenger receptors, releasing fluorine.
Area of Science:
- Pharmacology and Toxicology
- Biochemistry
- Cell Biology
Background:
- Sodium monofluorophosphate (MFP) is used to treat osteoporosis.
- MFP forms a complex with alpha 2-macroglobulin (MFP-alpha 2M) in vivo, impacting globulin activity.
- The metabolism of the MFP-alpha 2M complex in rats is investigated.
Purpose of the Study:
- To elucidate the metabolic pathway of the MFP-alpha 2M complex in rats.
- To identify the cellular mechanisms and receptors involved in MFP-alpha 2M complex uptake and degradation.
- To characterize the release products of MFP-alpha 2M complex metabolism.
Main Methods:
- In vitro incubation of MFP-alpha 2M complex with liver and bone tissues.
- Analysis of fluorine species (ionic and low molecular weight bound) released over time.
- Inhibition studies using colchicine, methylamine, and polyinosinic acid.
- Assessment of complex clearance from rat serum following polyinosinic acid injection.
Main Results:
- Liver and bone tissues actively remove MFP-alpha 2M complex from incubation media.
- Metabolism releases fluorine as ionic F and low molecular weight bound F (2,200 +/- 600 Da).
- Uptake is mediated by scavenger receptors, inhibited by polyinosinic acid, and unaffected by low calcium concentrations.
Conclusions:
- The MFP-alpha 2M complex is metabolized through receptor-mediated endocytosis by liver and bone cells.
- Lysosomal degradation releases fluorine species, with inorganic fluoride presumed as the final product.
- Scavenger receptors play a key role in the clearance of the MFP-alpha 2M complex from circulation.

