Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It has only recently been found that this epigenetic modification plays an important role in many physiological and pathological processes, such as cell fate commitment, immune response, obesity, tumorigenesis, and relevant for the present review, gametogenesis. Notably the RNA metabolism process mediated by m(6)A is controlled and regulated by a series of proteins termed writers, readers and erasers that are highly expressed in germ cells and somatic cells of gonads. Here, we review and discuss the expression and the functional emerging roles of m(6)A in gametogenesis and early embryogenesis of mammals. Besides updated references about such ne...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...
Modifications of mRNAs can have a profound effect on cellular function and differentiation. In this ...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
N6-methyl-adenosine (m[superscript 6]A) is the most abundant modification on messenger RNAs and is l...
RNA chemical modifications in coding and non-coding RNAs have been known for decades. They are gener...
SummaryN6-methyl-adenosine (m6A) is the most abundant modification on messenger RNAs and is linked t...
Over 100 types of cellular RNA modifications have been identified in both coding and a variety of no...
Epigenetics is defined as genomic modifications that alter gene expression without changing the nucl...
SummaryN6-methyladenosine (m6A) has been recently identified as a conserved epitranscriptomic modifi...
AbstractN6-methyl-adenosine (m6A) is one of the most common and abundant modifications on RNA molecu...
The exploration of dynamic N6-methyladenosine (m6A) RNA modification in mammalian cells has attracte...
Vast emerging evidences are linking the base modifications and determination of stem cell fate such ...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...
Modifications of mRNAs can have a profound effect on cellular function and differentiation. In this ...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
Emerging evidence shows that m(6)A is the most abundant modification in eukaryotic RNA molecules. It...
N6-methyl-adenosine (m[superscript 6]A) is the most abundant modification on messenger RNAs and is l...
RNA chemical modifications in coding and non-coding RNAs have been known for decades. They are gener...
SummaryN6-methyl-adenosine (m6A) is the most abundant modification on messenger RNAs and is linked t...
Over 100 types of cellular RNA modifications have been identified in both coding and a variety of no...
Epigenetics is defined as genomic modifications that alter gene expression without changing the nucl...
SummaryN6-methyladenosine (m6A) has been recently identified as a conserved epitranscriptomic modifi...
AbstractN6-methyl-adenosine (m6A) is one of the most common and abundant modifications on RNA molecu...
The exploration of dynamic N6-methyladenosine (m6A) RNA modification in mammalian cells has attracte...
Vast emerging evidences are linking the base modifications and determination of stem cell fate such ...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...
Modifications of mRNAs can have a profound effect on cellular function and differentiation. In this ...
Nutrients and metabolic pathways regulate cell growth and cell fate decisions via epigenetic modific...