Area of research
Oncology · Molecular Biology
Research interest
Research interests include Biology, Circadian clock, Circadian rhythm, Genetics, Melanoma, and Alternative splicing.
Mapping intratumor heterogeneity across layers for advancing immunotherapy
Translation dysregulation in cancer as a source for targetable antigens
HLA export by melanoma cells decoys cytotoxic T cells to promote immune evasion
Temporal Genomic Analysis of Homogeneous Tumor Models Reveals Key Regulators of Immune Evasion in Melanoma
Alternative polyadenylation factor CPSF6 regulates temperature compensation of the mammalian circadian clock
circMbl functions in cis and in trans to regulate gene expression and physiology in a tissue-specific fashion
Anti-tumour immunity induces aberrant peptide presentation in melanoma
An in vivo strategy for knockdown of circular RNAs
UVB-Induced Tumor Heterogeneity Diminishes Immune Response in Melanoma
Thermosensitive alternative splicing senses and mediates temperature adaptation in Drosophila
High-accuracy determination of internal circadian time from a single blood sample
Dynamic hyper-editing underlies temperature adaptation in Drosophila
Defining the 5΄ and 3΄ landscape of the Drosophila transcriptome with Exo-seq and RNaseH-seq
Clonally stable Vκ allelic choice instructs Igκ repertoire
A pseudouridylation switch in rRNA is implicated in ribosome function during the life cycle of Trypanosoma brucei
Marked Differences in C9orf72 Methylation Status and Isoform Expression between C9/ALS Human Embryonic and Induced Pluripotent Stem Cells
Circular RNAs in the Mammalian Brain Are Highly Abundant, Conserved, and Dynamically Expressed
The transcription factor Cabut coordinates energy metabolism and the circadian clock in response to sugar sensing
Clk post-transcriptional control denoises circadian transcription both temporally and spatially
Differentiation of Human Parthenogenetic Pluripotent Stem Cells Reveals Multiple Tissue- and Isoform-Specific Imprinted Transcripts
circRNA Biogenesis Competes with Pre-mRNA Splicing
Synergistic Interactions between the Molecular and Neuronal Circadian Networks Drive Robust Behavioral Circadian Rhythms in Drosophila melanogaster
Adaptation of molecular circadian clockwork to environmental changes: a role for alternative splicing and miRNAs