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One or more keywords matched the following properties of Pan, Tao
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overview Our research focuses on (i) functional genomics and biology of tRNA including microbiomes and (ii) epitranscriptomics including microbiome-host interactions. tRNA biology: Translational regulation relies on the dynamic properties of tRNA that constantly change to facilitate response and adaptation to new environments and to control gene expression. We developed high throughput sequencing technologies that measure tRNA abundance, charging and modifications in one single sequencing library. We are investigating the roles of tRNA in translational control and extra-translational functions in mammalian cells. Microbiome: We also developed tRNA-seq as another approach for microbiome characterization. Standard microbiome characterizations include 16S-seq or shotgun metagenomics. Although powerful, these DNA-based methods do not directly report the microbiome activity such as dynamic gene expression which requires the studies of RNA in the microbiome. Our microbiome tRNA-seq results show extensive variations of tRNA abundance and modification patterns in microbiomes from different sources. We also show that tRNA modification dynamics in the microbiome correlates with tuning the expression of specific microbial proteins, indicating that tRNA-seq can provide new insights in microbiome biology. We are further developing this approach to explore the potentials of tRNA-seq to study microbiomes from humans and from the oceans. Epitranscriptomics: Over 100 types of post-transcriptional RNA modifications have been identified in thousands of sites in the transcriptome. They include methylation of bases and the ribose backbone, rotation and reduction of uridine, base deamination, addition of ring structures and carbohydrate moieties, and so on. mRNA modifications are involved in cell differentiation, proliferation, and many other cellular functions and human diseases. Some mRNA modifications can also be removed by cellular enzymes, resulting in the dynamic regulation of their functions. We are investigating the function and mechanisms of mRNA modifications such as N6-methyladenosine (m6A) in the regulation of gene expression. For example, we discovered that m6A modification can alter the local mRNA structure to regulate binding of mRNA binding proteins transcriptome-wide (m6A switch), resulting in changes in mRNA abundance and alternative splicing. Microbiome-host interactions through epitranscriptomics: We are working on elucidating the function of mammalian host mRNA and tRNA modifications in response to the gut microbiome. We found that microbiome reprograms the host m6A modifications transcriptome-wide in a tissue-dependent manner, suggesting that this dynamic epitranscriptomic mark is used in yet unknown ways in microbiome response. We also found that a microbiome dependent, host tRNA modification alters the cellular small RNA pool, suggesting yet another pathway of microbiome response through RNA modifications.
One or more keywords matched the following items that are connected to Pan, Tao
Item TypeName
Concept Biological Evolution
Concept Evolution, Molecular
Concept Directed Molecular Evolution
Academic Article An evolutionarily conserved mechanism for controlling the efficiency of protein translation.
Academic Article A role for tRNA modifications in genome structure and codon usage.
Academic Article Diversity of human tRNA genes from the 1000-genomes project.
Academic Article The dynamic N(1)-methyladenosine methylome in eukaryotic messenger RNA.
Academic Article Evolutionary Gain of Alanine Mischarging to Noncognate tRNAs with a G4:U69 Base Pair.
Academic Article Transcriptome-wide reprogramming of N6-methyladenosine modification by the mouse microbiome.
Academic Article Cross-editing by a tRNA synthetase allows vertebrates to abundantly express mischargeable tRNA without causing mistranslation.
Academic Article A high-throughput screening method for evolving a demethylase enzyme with improved and new functionalities.
Academic Article Structure-informed microbial population genetics elucidate selective pressures that shape protein evolution.
Grant Kinetic/Thermodynamic/Structural Studies of RNA Folding
Grant Kinetic/Thermodynamic/Structural studies of RNA folding
Academic Article Microbial community structure dynamics of invasive bullfrog with meningitis-like infectious disease.
Academic Article Extremely low genetic diversity of mtDNA control region and remarkable population differentiation of Ichthyophis bannanicus (Amphibia: Gymnophiona).
Academic Article Microbial diversity and composition on the surface of Chinese alligator eggs with different phenotypes during artificial incubation.
Academic Article Rapid and recent diversification patterns in Anseriformes birds: Inferred from molecular phylogeny and diversification analyses.
Search Criteria
  • microbial
  • evolution