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Dive into the research topics where Josefine Liljeruhm is active.

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Featured researches published by Josefine Liljeruhm.


Nucleic Acids Research | 2012

Crystal structure of RlmM, the 2′O-ribose methyltransferase for C2498 of Escherichia coli 23S rRNA

Avinash S. Punekar; Tyson R. Shepherd; Josefine Liljeruhm; Anthony C. Forster; Maria Selmer

RlmM (YgdE) catalyzes the S-adenosyl methionine (AdoMet)-dependent 2′O methylation of C2498 in 23S ribosomal RNA (rRNA) of Escherichia coli. Previous experiments have shown that RlmM is active on 23S rRNA from an RlmM knockout strain but not on mature 50S subunits from the same strain. Here, we demonstrate RlmM methyltransferase (MTase) activity on in vitro transcribed 23S rRNA and its domain V. We have solved crystal structures of E. coli RlmM at 1.9 Å resolution and of an RlmM–AdoMet complex at 2.6 Å resolution. RlmM consists of an N-terminal THUMP domain and a C-terminal catalytic Rossmann-like fold MTase domain in a novel arrangement. The catalytic domain of RlmM is closely related to YiiB, TlyA and fibrillarins, with the second K of the catalytic tetrad KDKE shifted by two residues at the C-terminal end of a beta strand compared with most 2′O MTases. The AdoMet-binding site is open and shallow, suggesting that RNA substrate binding may be required to form a conformation needed for catalysis. A continuous surface of conserved positive charge indicates that RlmM uses one side of the two domains and the inter-domain linker to recognize its RNA substrate.


Nucleic Acids Research | 2013

Structural and functional insights into the molecular mechanism of rRNA m6A methyltransferase RlmJ

Avinash S. Punekar; Josefine Liljeruhm; Tyson R. Shepherd; Anthony C. Forster; Maria Selmer

RlmJ catalyzes the m6A2030 methylation of 23S rRNA during ribosome biogenesis in Escherichia coli. Here, we present crystal structures of RlmJ in apo form, in complex with the cofactor S-adenosyl-methionine and in complex with S-adenosyl-homocysteine plus the substrate analogue adenosine monophosphate (AMP). RlmJ displays a variant of the Rossmann-like methyltransferase (MTase) fold with an inserted helical subdomain. Binding of cofactor and substrate induces a large shift of the N-terminal motif X tail to make it cover the cofactor binding site and trigger active-site changes in motifs IV and VIII. Adenosine monophosphate binds in a partly accommodated state with the target N6 atom 7 Å away from the sulphur of AdoHcy. The active site of RlmJ with motif IV sequence 164DPPY167 is more similar to DNA m6A MTases than to RNA m62A MTases, and structural comparison suggests that RlmJ binds its substrate base similarly to DNA MTases T4Dam and M.TaqI. RlmJ methylates in vitro transcribed 23S rRNA, as well as a minimal substrate corresponding to helix 72, demonstrating independence of previous modifications and tertiary interactions in the RNA substrate. RlmJ displays specificity for adenosine, and mutagenesis experiments demonstrate the critical roles of residues Y4, H6, K18 and D164 in methyl transfer.


Nucleic Acids Research | 2017

De novo design and synthesis of a 30-cistron translation-factor module

Tyson R. Shepherd; Liping Du; Josefine Liljeruhm; Samudyata; Jinfan Wang; Marcus O.D. Sjödin; Magnus Wetterhall; Tetsuya Yomo; Anthony C. Forster

Abstract Two of the many goals of synthetic biology are synthesizing large biochemical systems and simplifying their assembly. While several genes have been assembled together by modular idempotent cloning, it is unclear if such simplified strategies scale to very large constructs for expression and purification of whole pathways. Here we synthesize from oligodeoxyribonucleotides a completely de-novo-designed, 58-kb multigene DNA. This BioBrick plasmid insert encodes 30 of the 31 translation factors of the PURE translation system, each His-tagged and in separate transcription cistrons. Dividing the insert between three high-copy expression plasmids enables the bulk purification of the aminoacyl-tRNA synthetases and translation factors necessary for affordable, scalable reconstitution of an in vitro transcription and translation system, PURE 3.0.


Biotechnology Letters | 2013

Steady-state generation of hydrogen peroxide: kinetics and stability of alcohol oxidase immobilized on nanoporous alumina

Marcus Kjellander; Kathrin Götz; Josefine Liljeruhm; Mats Boman; Gunnar Johansson


Archive | 2014

Synthetic Biology: A Lab Manual

Josefine Liljeruhm; Erik Gullberg; Anthony C. Forster


Journal of Biological Engineering | 2018

Engineering a palette of eukaryotic chromoproteins for bacterial synthetic biology

Josefine Liljeruhm; Saskia K. Funk; Sandra Tietscher; Anders D. Edlund; Sabri Jamal; Pikkei Wistrand-Yuen; Karl Dyrhage; Arvid Gynnå; Katarina Ivermark; Jessica Lövgren; Viktor Törnblom; Anders Virtanen; Erik Lundin; Erik Wistrand-Yuen; Anthony C. Forster


Archive | 2014

Safety is Priority #1

Josefine Liljeruhm; Erik Gullberg; Anthony C. Forster


Archive | 2014

The International Genetically Engineered Machine (iGEM) Competition

Josefine Liljeruhm; Erik Gullberg; Anthony C. Forster


Archive | 2014

Lab Course Projects

Josefine Liljeruhm; Erik Gullberg; Anthony C. Forster


Archive | 2014

Genes, Chromoproteins and Antisense RNAs

Josefine Liljeruhm; Erik Gullberg; Anthony C. Forster

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Liping Du

Vanderbilt University Medical Center

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