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A Facile Protocol to Generate Site-Specifically Acetylated Proteins in Escherichia Coli
Published on: December 9, 2017
Dynamics and regulation of lysine-acetylation during one-cell stage mouse embryos
Keigo Matsubara1, Ah Reum Lee, Satoshi Kishigami
1Division of Biological Science, Graduate School of Biology-Oriented Science and Technology, Kinki University, Kinokawa, Wakayama 649-6493, Japan.
Abstract:
Previous studies show that treatment of zygotes with trichostatin A (TSA), a histone deacetylase inhibitor (HDACi), impacts the subsequent development to a blastocyst as well as full-term development. To reveal the dynamics of protein acetylation, with and without TSA treatment during one-cell stage, we examined oocytes and zygotes by immunofluorescence and Western Blot analyses using anti-acetylated lysine and acetylated α-tubulin antibodies. In unfertilized oocytes, lysine acetylation level was extremely low over all but faintly detected in the spindle. Once oocyte activation occurs, a dramatic increase of lysine acetylation signal was observed mostly in the pronuclei and a fiber-like structure, the so called midbody, suggesting activation coupled up-regulation of lysine acetylation presumably in histones and α-tubulin. TSA treatment resulted in significantly more hyperacetylation not only in the midbody structure and pronuclei but also in the whole cytoplasm. Consistently, Western Blot analysis revealed that acetylation of proteins about 53 kDa and 11 kDa in size, corresponding to α-tubulin and histone H4 sizes respectively, were increased mainly after oocyte activation and exclusively enhanced by TSA treatment in zygotes. To confirm this behavior of acetylated nonhistone proteins, acetylated α-tubulin was examined and found to be faintly detected in the spindle of MII oocytes but later in whole in the cell of zygotes including the midbody, which was enhanced by TSA treatment. To elucidate the mechanism underlying up-regulation of lysine acetylation following oocyte activation, we assayed the HDAC activity, and found significant reduction of HDAC activity from MII to zygotic stages. Taken together, our data indicate that HDACs play an important role in maintaining low acetylated status in a MII oocyte. However, once an oocyte has been activated, histone and nonhistone proteins including α-tubulin are hyperacetylated partly due to a reduction of HDAC activity. TSA treatment of zygotes enhances their acetylation, which could affect subsequent embryonic development.
Insights
Histone deacetylase inhibitors (HDACi) like TSA affect embryonic development. Oocyte activation increases protein acetylation, partly due to reduced HDAC activity, with TSA further enhancing this effect.
Area of Science:
- Epigenetics
- Developmental Biology
- Molecular Biology
Background:
- Trichostatin A (TSA), a histone deacetylase inhibitor (HDACi), influences zygote and blastocyst development.
- Protein acetylation dynamics during early embryonic stages are not fully understood.
Purpose of the Study:
- To investigate the changes in protein acetylation during oocyte activation and early zygotic development.
- To examine the effects of TSA treatment on protein acetylation in oocytes and zygotes.
Main Methods:
- Immunofluorescence and Western Blot analyses using anti-acetylated lysine and acetylated α-tubulin antibodies.
- Assay of histone deacetylase (HDAC) activity.
Main Results:
- Lysine acetylation is low in oocytes but increases significantly after activation, particularly in pronuclei and the midbody.
- TSA treatment leads to hyperacetylation in pronuclei, midbody, and the entire cytoplasm.
- Western Blot confirmed increased acetylation of α-tubulin and histone H4 post-activation, with TSA enhancing this effect.
- HDAC activity significantly decreases from the MII oocyte to zygotic stages.
Conclusions:
- HDACs are crucial for maintaining low acetylation levels in MII oocytes.
- Oocyte activation involves reduced HDAC activity, leading to hyperacetylation of histone and nonhistone proteins, including α-tubulin.
- TSA treatment further elevates acetylation, potentially impacting subsequent embryonic development.
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