Area of research
Molecular Biology
Research interest
Research interests include Pluripotent Stem Cells Research, RNA modifications and cancer, CRISPR and Genetic Engineering, and Epigenetics and DNA Methylation.
METTL1 promotes tumorigenesis through tRNA-derived fragment biogenesis in prostate cancer
Epigenetic resetting in the human germ line entails histone modification remodeling
Mitochondrial RNA modifications shape metabolic plasticity in metastasis
Stem-cell-derived trophoblast organoids model human placental development and susceptibility to emerging pathogens
Artificial intelligence: A powerful paradigm for scientific research
Technologies and perspectives for achieving carbon neutrality
Probing the signaling requirements for naive human pluripotency by high-throughput chemical screening
OCT4 cooperates with distinct ATP-dependent chromatin remodelers in naïve and primed pluripotent states in human
RN7SK small nuclear RNA controls bidirectional transcription of highly expressed gene pairs in skin
Sequence- and structure-specific cytosine-5 mRNA methylation by NSUN6
Sequence- and structure-specific cytosine-5 mRNA methylation by NSUN6
Cytosine-5 RNA methylation links protein synthesis to cell metabolism
Loss of 5-methylcytosine alters the biogenesis of vault-derived small RNAs to coordinate epidermal differentiation
Wnt Inhibition Facilitates RNA-Mediated Reprogramming of Human Somatic Cells to Naive Pluripotency
Codon usage optimization in pluripotent embryonic stem cells
RN7SK small nuclear RNA controls bidirectional transcription of highly expressed gene pairs in skin
Segregation of mitochondrial DNA heteroplasmy through a developmental genetic bottleneck in human embryos
Human primary liver cancer–derived organoid cultures for disease modeling and drug screening
Epigenetic resetting of human pluripotency
Aberrant methylation of t <scp>RNA</scp> s links cellular stress to neuro‐developmental disorders
NSun2-Mediated Cytosine-5 Methylation of Vault Noncoding RNA Determines Its Processing into Regulatory Small RNAs
NANOG-dependent function of TET1 and TET2 in establishment of pluripotency