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Published on: November 16, 2016
In vitro and in vivo ultrastructural changes induced by macrolide antibiotic LY281389
J W Horn1, C B Jensen, S L White
1Toxieology Research Laboratory, Lilly Research Laboratories, A Division of Eli Lilly and Company, Greenfield, Indiana 46140-2517, USA.
Abstract:
High doses of LY281389 (9-N-(n-propyl)-erythromycylamine) cause cytoplasmic vacuolar changes in striated and smooth muscle characteristic of drug-induced phospholipidosis. This study characterized phospholipidosis in striated and smooth muscle of rats and dogs, compared in vivo observations with those in a cultured rat myoblast model, and attempted to confirm the lysosomal origin of the drug-induced vacuoles. Standard transmission electron microscopy and acid phosphatase cytochemistry techniques were used to evaluate ultrastructural changes in vivo and in vitro. Rats and dogs exposed to LY281389 had a time- and dose-related increase in number and size of vacuoles containing concentric lamellar figures in cardiac and skeletal muscle. Cytochemical staining of dog stomach smooth muscle for acid phosphatase, a lysosomal enzyme, stained the periphery of vacuoles that contained concentric lamellar figures. Cultured rat L6 myoblast cells were exposed to 0.25 mg LY281389/ml for 2.5, 5, 10, 20, 30, or 90 min and 2, 6, 12, 24, or 48 hr. Cell cultures exposed for 2 hr had several predominantly large, clear, membrane-bound vacuoles, and at 6 and 12 hr there were greater numbers of large vacuoles that contained increased amounts of membranous figures. Following 24- or 48-hr exposures, vacuoles occupied most of the cytoplasmic volume, and were engorged predominantly with amorphous or granular material. These findings indicate that LY281389 can induce similar phospholipidosis-like vacuolar changes in rat and dog muscle and in a cultured rat muscle cell line. Further, positive acid phosphatase staining of drug-induced vacuolar structures, in conjunction with standard transmission electron microscopy techniques, strongly suggests that vacuoles seen in vitro and in vivo are lysosomal in origin.
Insights
The drug LY281389 causes muscle vacuolar changes, known as phospholipidosis, in rats and dogs. These drug-induced vacuoles in muscle cells originate from lysosomes, confirmed by acid phosphatase staining.
Area of Science:
- Cell Biology
- Toxicology
- Muscle Physiology
Background:
- Drug-induced phospholipidosis is characterized by cytoplasmic vacuolar changes in muscle.
- LY281389 is an erythromycylamine derivative that has shown potential for inducing these changes.
Purpose of the Study:
- To characterize phospholipidosis in rat and dog muscle induced by LY281389.
- To compare in vivo observations with an in vitro rat myoblast model.
- To confirm the lysosomal origin of drug-induced vacuoles.
Main Methods:
- Transmission electron microscopy (TEM) was used to evaluate ultrastructural changes.
- Acid phosphatase cytochemistry was employed to identify lysosomal enzymes.
- Rat L6 myoblast cell cultures were exposed to LY281389 for varying durations.
Main Results:
- LY281389 induced a time- and dose-related increase in vacuole formation in rat and dog muscle.
- Vacuoles contained concentric lamellar figures and stained positive for acid phosphatase, particularly at their periphery.
- In vitro, cultured rat myoblasts showed similar vacuolar changes, with vacuoles occupying significant cytoplasmic volume after prolonged exposure.
Conclusions:
- LY281389 induces phospholipidosis-like vacuolar changes in both in vivo muscle tissues and in vitro muscle cell cultures.
- Acid phosphatase staining supports the conclusion that these drug-induced vacuoles are lysosomal in origin.
- The study provides a comprehensive characterization of LY281389-induced myopathy and its cellular mechanisms.
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