AbstractCell cycle progression during oocyte maturation requires the strict temporal regulation of maternal mRNA translation. The intrinsic basis of this temporal control has not been fully elucidated but appears to involve distinct mRNA 3′ UTR regulatory elements. In this study, we identify a novel translational control sequence (TCS) that exerts repression of target mRNAs in immature oocytes of the frog, Xenopus laevis, and can direct early cytoplasmic polyadenylation and translational activation during oocyte maturation. The TCS is functionally distinct from the previously characterized Musashi/polyadenylation response element (PRE) and the cytoplasmic polyadenylation element (CPE). We report that TCS elements exert translational repress...
Cytoplasmic polyadenylation regulates mRNA stability and translation and is required for early devel...
International audienceThe study of oocytes has made enormous contributions to the understanding of t...
AbstractCytoplasmic poly(A) elongation is widely utilized during the early development of many organ...
AbstractCell cycle progression during oocyte maturation requires the strict temporal regulation of m...
AbstractThe Wee1 protein tyrosine kinase is a key regulator of cell cycle progression. Wee1 activity...
Meiotic cell-cycle progression in progesterone-stimulated Xenopus oocytes requires that the translat...
The expression of certain maternal mRNAs during oocyte maturation is regulated by cytoplasmic polyad...
Gene regulation during early Xenopus development is largely based on the selective translational rec...
AbstractTranslational control is prominent during meiotic maturation and early development. In this ...
Xenopus oocytes contain several mRNAs that are mobilized into polysomes only at the completion of me...
AbstractZygote arrest (Zar) proteins are crucial for early embryonic development, but their molecula...
The translation of many maternal mRNAs is regulated by dynamic changes in poly(A) tail length. Durin...
Maternally inherited poly(A)+ RNAs are important for directing early development in many animal ...
Cytoplasmic control of the adenylation state of mRNAs is a critical post-transcriptional process inv...
Oocyte maturation and early embryo development occur in vertebrates in the near absence of transcrip...
Cytoplasmic polyadenylation regulates mRNA stability and translation and is required for early devel...
International audienceThe study of oocytes has made enormous contributions to the understanding of t...
AbstractCytoplasmic poly(A) elongation is widely utilized during the early development of many organ...
AbstractCell cycle progression during oocyte maturation requires the strict temporal regulation of m...
AbstractThe Wee1 protein tyrosine kinase is a key regulator of cell cycle progression. Wee1 activity...
Meiotic cell-cycle progression in progesterone-stimulated Xenopus oocytes requires that the translat...
The expression of certain maternal mRNAs during oocyte maturation is regulated by cytoplasmic polyad...
Gene regulation during early Xenopus development is largely based on the selective translational rec...
AbstractTranslational control is prominent during meiotic maturation and early development. In this ...
Xenopus oocytes contain several mRNAs that are mobilized into polysomes only at the completion of me...
AbstractZygote arrest (Zar) proteins are crucial for early embryonic development, but their molecula...
The translation of many maternal mRNAs is regulated by dynamic changes in poly(A) tail length. Durin...
Maternally inherited poly(A)+ RNAs are important for directing early development in many animal ...
Cytoplasmic control of the adenylation state of mRNAs is a critical post-transcriptional process inv...
Oocyte maturation and early embryo development occur in vertebrates in the near absence of transcrip...
Cytoplasmic polyadenylation regulates mRNA stability and translation and is required for early devel...
International audienceThe study of oocytes has made enormous contributions to the understanding of t...
AbstractCytoplasmic poly(A) elongation is widely utilized during the early development of many organ...