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Indomethacin promotes germinal matrix microvessel maturation in the newborn beagle pup
L R Ment1, W B Stewart, T A Ardito
1Department of Pediatrics, Yale University School of Medicine, New Haven, CT 06510.
Background And Purpose:
Although indomethacin has been demonstrated to prevent germinal matrix and intraventricular hemorrhage in clinical and animal studies, the mechanism of action of this agent to prevent hemorrhage remains unclear. Previous studies have demonstrated both that the microvessels in the germinal matrix of newborn beagle pups undergo basement membrane maturation during the first 4 postnatal days and that indomethacin may promote laminin deposition in tumor cell culture systems.
Methods:
We employed the newborn beagle pup model to test the hypothesis that indomethacin may stimulate laminin deposition in germinal matrix microvessels. Newborn pups were randomized to receive either 0.1 mg/kg/dose i.p. indomethacin or an equal volume of saline diluent. Pups received doses of study medication once a day for 1, 2, or 3 days and were studied on postnatal days 1, 2, 3, or 4. Pups were anesthetized and systemically perfused with buffered formalin; the brains were removed and prepared for immunohistochemical study.
Results:
Sections stained with Bandeiraea lectin demonstrated that there was no difference in germinal matrix vessel density among the postnatal ages studied; similarly, there were no differences in vessel density between saline- and indomethacin-treated animals at any postnatal age. Quantification of germinal matrix stained intensity by confocal microscopy demonstrated significant increases in indomethacin-treated pups for both laminin staining at postnatal days 2 (p = 0.05) and 3 (p = 0.0009) and type V collagen staining at postnatal day 2 (p = 0.011). Although staining for beta 1 integrins increased across postnatal ages, there were no differences between saline- and indomethacin-treated animals.
Conclusions:
These data suggest that indomethacin may stimulate basement membrane deposition in the germinal matrix microvessels of newborn beagle pups to prevent germinal matrix and/or intraventricular hemorrhage.
Insights
Indomethacin increases laminin and type V collagen in beagle pup germinal matrix microvessels, suggesting a mechanism for preventing hemorrhage. This study clarifies how indomethacin protects against germinal matrix and intraventricular hemorrhage.
Area of Science:
- Neonatal neurology
- Vascular biology
- Pharmacology
Background:
- Indomethacin is known to prevent germinal matrix and intraventricular hemorrhage.
- The precise mechanism by which indomethacin achieves this protective effect remains unclear.
- Previous research suggests indomethacin may enhance laminin deposition, a key component of basement membranes.
Purpose of the Study:
- To investigate the hypothesis that indomethacin stimulates laminin deposition in the germinal matrix microvessels of newborn beagle pups.
- To explore the potential role of indomethacin in promoting basement membrane maturation as a mechanism for hemorrhage prevention.
Main Methods:
- Newborn beagle pups were administered indomethacin or saline.
- Animals were studied at various postnatal ages (1-4 days) after 1, 2, or 3 days of treatment.
- Immunohistochemistry and confocal microscopy were used to analyze laminin, type V collagen, and beta 1 integrin deposition in germinal matrix microvessels.
Main Results:
- No significant differences in germinal matrix microvessel density were observed between treatment groups or across postnatal ages.
- Indomethacin treatment led to significant increases in laminin staining on postnatal days 2 and 3.
- A significant increase in type V collagen staining was observed in indomethacin-treated pups on postnatal day 2.
Conclusions:
- The findings suggest that indomethacin promotes the deposition of basement membrane components, specifically laminin and type V collagen, in germinal matrix microvessels.
- This enhanced basement membrane deposition may be the underlying mechanism by which indomethacin prevents germinal matrix and intraventricular hemorrhage in newborns.