rna-protein interaction students: guo xiaoyong fan wenzhu liu yunhui

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RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

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Page 1: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

RNA-protein interaction

Students: Guo Xiaoyong

Fan Wenzhu Liu Yunhui

Page 2: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

一 .Background

DNA RNA proteinstranscription translation

proteins proteins

RNA and proteins are two kinds of most important molecules in cells. The interaction between proteins and RNA is one of the key issues in molecular biology.

Page 3: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

RNA, in its varied forms,interacts with proteins to carry out fundamental roles in the cell.

Page 4: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

(2) mRNA 、 rRNA & tRNA in translation

Translation proceed in cytoplasmin an ordered process .It includesthree phages .It requires free am-ino acids,free energy,mRNA,tRNA,Ribosomes and nonribosomal fac-tors(eIF in Eukaryotes and IF in some prokaryotes).It should be no-ted that the polypepetide sequence is in total agreement with gene co-de since tRNA anticodons are com-plementary of mRNA codons and the mRNA sequence is a mirror of the gene sequence.

Page 5: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

(4) sRNA and protein

Small regulatory RNAs, including siRNA , miRNA ,piRNA ,and hsRNA .commonly referred to as RNA silencing, such as RNAinterference (RNAi), translational repressi-on, and heterochromatin formation in all higher eukaryotes and play important roles in cellular processes as diverse as develop-ment,stress response, or transposon silenc-ing. Soon after the discovery of small

Page 6: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

Understanding the contributions of variousRNA to the control of translation (protein synthesis on the ribosome) in the cell forms an important theme within the structural biology and biophysics group.

regulatory RNAs, members of the RNase III familyand Argonaute protein family, some RNA binding proteins, and etc, were identifiedas their major cellular protein interactors and involved in the biogenesis and various cellularfunctions of small RNAs.

Page 7: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

二 . Outlook and further perspectives

RNA-protein interactions are a central component of posttranscriptional regulationat multiple levels including RNA processing, transport and translation. The sequenced Human genome reveals hundreds of potential RNA binding proteins . A critical step towards understanding the function of RNA binding proteins is to identify and determine how they interact with their target RNAs.

Page 8: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

三 . The article

Page 9: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

1.Introduction

Telomerase is an essential cellular ribonucleoprotein that solves the end replication problem and maintains chromosome stability by adding telomeric DNA to the termini of linear chromosomes . Here we use a single molecule approach to dissect the individual assembly steps oftelomerase.

Page 10: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

Direct observation of complex formation in real time revealed two sequential steps of protein-induced RNA folding, establishing a hierarchical RNP assembly mechanism: interaction with the telomerase holoenzyme protein p65 induces structural rearrangement of telomerase RNA, which in turn directs the binding of the telomerase reverse criptase to form the functional ternary complex.

Page 11: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

(1) Fluorescence resonance energy transfer (FRET)

FRET is a process in which an excited fluorophore (the donor) transfers its excited state energy to a light absorbing molecule (the acceptor). This transfer of energy is non-radiative, due to a dipole-dipole interaction between the donor and acceptor.

2.Methods

Page 12: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

(2) Construction of FRET-labeled telomerase RNA by DNA-splinted RNA ligation

Page 13: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

Cy5 Cy3

>10nm Cy5 Cy3<10nm

Page 14: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

3.Results & Analysis

Full-length telomeraseRNA

labelled with FRET donor (Cy3)

and acceptor (Cy5). RNA

molecules wereimmobilized on

a streptavidin-coated surface by

a biotin molecule engineered

onto an extension of stem II. The

interaction sites with p65 (red)

and TERT (green) are highlighted.

Page 15: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

FRET histograms of RNA molecules in the absence ofprotein (grey bars),the presence of 10nM p65 (red bars) or 10nM p65 plus32nM TERT1–516 (green bars).

Page 16: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

By real-time observating ,the authorfound that addition of purified p65give rise to a second population.p65did not alter fluorescence intensitiesfrom the RNA singly labelled with Cy3 or Cy5 at the same locations.

Page 17: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

To investigate the assembly of p65–RNA–TERT ternary complex,the authours used a purified TERT polypeptide containing theamino-terminal 516 amino acids.

A single-molecule FRET trajectory showing hierarchical RNP assemblyafter the addition (black arrow) of a protein mixture of p65 (10 nM) andTERT1–516 (10 nM), characterized by a p65-induced FRET change (redarrow) followed by a second FRET transition after complete assembly of the ternary p65–RNA–TERT1–516 complex (green arrow).

Page 18: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

These results indicate RNP’S assemblyeis initiated by p65 binding, stabilizinga RNA structural intermediate, which in turn promotes thefunctional co-assembly of TERT with telomerase RNA.

Page 19: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

To characterize the p65-induced assembly intermediate structurally,the authors generated a series of truncated constructs composed oftelomerase RNA stems I and IV.

GA

Page 20: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

From the above charter,the authors deduce that the p65-induced RNA conformational change occurs withinstem IV and requires the central stemIV GA bulge, which is conserved acrossall Tetrahymena species.

Page 21: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui

4.Conclusion

These experiments show a hierarchical assemblymechanism for telomerase RNP in which the protein subunits mould a specific RNA tertiarystructure in a stepwise fashion.The protein p65 induces a structural change within the stem IV region of the RNA.The RNA conformation in the p65–RNA complex is further altered by binding of TERT, resulting in a compact RNA tertiary fold within the functional telomeraseRNP.

Page 22: RNA-protein interaction Students: Guo Xiaoyong Fan Wenzhu Liu Yunhui