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Inhibition of histone deacetylase activity by trichostatin A modulates gene expression during mouse embryogenesis
1Department of Histology and Medical Embryology, University of Rome La Sapienza, Italy. clara.nervi@uniroma1.it
Abstract:
Remodeling of the chromatin template by inhibition of histone deacetylase (HDAC) activities represents a major goal for transcriptional therapy in neoplastic diseases. Recently, a number of specific and potent HDAC-inhibitors that modulate in vitro cell growth and differentiation have been developed. In this study we analyzed the effect of trichostatin A (TSA), a specific and potent HDAC-inhibitor, on mouse embryos developing in vivo. When administered i.p. to pregnant mice (at a concentration of 0.5-1 mg/kg) at postimplantation stages (embryonic day 8 to embryonic day 10), TSA was not toxic for the mother and did not cause any obvious malformation during somitogenesis or at later stages of development. Treated embryos were born at similar frequency and were indistinguishable from control animals, developed normally, and were fertile. Interestingly, embryos from TSA-treated mice killed during somitogenesis were modestly but consistently larger than control embryos and presented an increased (+2 to +6) number of somites. This correlated with an increased acetylation of histone H4, the number of somites expressing the myogenic factor Myf-5, and the expression of Notch, RARalpha2, and RARbeta2 mRNAs. These data indicate that the effects of TSA on transcription: (a) are not toxic for the mother; (b) transiently accelerated growth in mouse embryos without perturbing embryogenesis; and (c) do not result in teratogenesis, at least in rodents. Thus, TSA might represent a nontoxic and effective agent for the transcriptional therapy of neoplasia.
Insights
Trichostatin A (TSA), a histone deacetylase inhibitor, accelerated mouse embryo growth without causing toxicity or malformations. TSA shows potential as a safe transcriptional therapy for neoplastic diseases.
Area of Science:
- Developmental Biology
- Molecular Biology
- Epigenetics
Background:
- Histone deacetylase (HDAC) inhibition is a key strategy for transcriptional therapy in neoplastic diseases.
- Specific HDAC inhibitors modulate in vitro cell growth and differentiation.
Purpose of the Study:
- To analyze the in vivo effects of trichostatin A (TSA), a potent HDAC inhibitor, on mouse embryo development.
- To assess the safety and developmental impact of TSA during embryogenesis.
Main Methods:
- Pregnant mice were administered TSA (0.5-1 mg/kg) via intraperitoneal injection at embryonic days 8-10.
- Embryo development, maternal toxicity, teratogenesis, and gene expression (Myf-5, Notch, RARalpha2, RARbeta2) were analyzed.
- Histone H4 acetylation levels were measured.
Main Results:
- TSA administration was not toxic to the mother and did not cause malformations.
- TSA-treated embryos showed transiently increased size and somite number compared to controls.
- Increased histone H4 acetylation and altered expression of Myf-5, Notch, RARalpha2, and RARbeta2 mRNAs were observed.
Conclusions:
- TSA administration during mouse embryogenesis is not toxic to the mother.
- TSA transiently accelerates embryonic growth without perturbing development or causing teratogenesis.
- TSA demonstrates potential as a safe and effective agent for transcriptional therapy in neoplastic diseases.