SMYD3 interacts with HTLV-1 Tax and regulates subcellular localization of Tax

Keiyu Yamamoto1, Takaomi Ishida, Kazumi Nakano

  • 1Department of Medical Genome Sciences, Laboratory of Tumor Cell Biology, Graduate School of Frontier Sciences, The University of Tokyo, Minato-ku, Tokyo, Japan.

Cancer Science
|November 9, 2010
PubMed

Insights

The HTLV-1 Tax protein interacts with SMYD3, a histone methyltransferase. This interaction influences Tax

Area of Science:

  • Virology
  • Molecular Biology
  • Epigenetics

Background:

  • HTLV-1 Tax protein deregulates host cell processes via protein-protein interactions.
  • Previous work identified Tax interaction with histone methyltransferase SUV39H1.
  • Histone methyltransferases (HMTases) regulate gene transcription.

Purpose of the Study:

  • To investigate the interaction between HTLV-1 Tax and another HMTase, SMYD3.
  • To elucidate the functional consequences of the Tax-SMYD3 interaction.

Main Methods:

  • Immunoblotting to confirm SMYD3 expression.
  • Co-immunoprecipitation and in vitro pull-down assays to detect Tax-SMYD3 interaction.
  • Reporter gene assays to assess nuclear factor-κB activation.
  • Mutant analysis and shRNA knockdown to study localization and function.

Main Results:

  • Direct interaction between HTLV-1 Tax and SMYD3 was confirmed.
  • SMYD3 influences the subcellular localization of Tax, promoting cytoplasmic localization.
  • SMYD3 enhances Tax-mediated nuclear factor-κB activation.
  • The C-terminal 180 amino acids of SMYD3 are crucial for the interaction.

Conclusions:

  • This study reveals the direct interaction between HTLV-1 Tax and SMYD3 for the first time.
  • SMYD3 appears to tether Tax, altering its subcellular distribution and enhancing its function.
  • SMYD3-mediated nucleocytoplasmic shuttling of Tax contributes to its diverse cellular effects.

Related Concept Videos

Tail-anchoring of Proteins in the ER Membrane01:45

Tail-anchoring of Proteins in the ER Membrane

Tail-anchored, or TA, proteins are estimated to make up to 3-5% of membrane proteins found in the eukaryotic cell. Such proteins have a single transmembrane domain located approximately 30 amino acid residues upstream from the C-terminal end. As a result, the signal recognition particle (SRP) cannot guide a TA protein to the ER membrane for cotranslational insertion. Hence, they are integrated into the ER membrane post-translationally using their C-terminal end as the anchor. TA proteins...
TGF - β Signaling Pathway01:16

TGF - β Signaling Pathway

The TGF-β signaling pathway regulates cell growth, differentiation, adhesion, motility, and development. TGF-β ligands that induce TGF-β signaling are synthesized in their latent form. Several proteases or cell surface receptors such as integrins act upon the latent form, releasing the active ligand. There are three types of mammalian TGF-βs: (TGF-β1, TGF-β2, and TGF-β3) that bind as homodimers or heterodimers to TGF-β receptors. The TGF-β receptors are of three kinds RI, RII, and RIII. The RI...
Drugs that Stabilize Microtubules01:15

Drugs that Stabilize Microtubules

Microtubules are dynamic structures that undergo cycles of catastrophe and rescue. The microtubules play a central role in cell division by forming the spindle apparatus for segregating the chromosomes. This makes them ideal targets for regulating dividing cells in tumors and malignant cancer cells. Microtubule stabilizing drugs help stabilize the microtubule formation and promote its polymerization. Paclitaxel was the first microtubule stabilizing agent used as anticancer drug in chemotherapy...
Regulation of Nuclear Protein Sorting01:45

Regulation of Nuclear Protein Sorting

Nuclear protein sorting regulates nucleus composition and gene expression, crucial for determining the fate of a eukaryotic cell. Hence, the entry and exit of molecules across the nuclear envelope is a tightly controlled process. Nuclear protein sorting can be inhibited by one of the following ways: 1) masking cargo signal sequences, 2) modifying the nuclear receptor's affinity for cargo, 3) controlling the nuclear pore size, 4) retaining the cargo during its transit to the cytosol or the...
Intralumenal Vesicles and Multivesicular Bodies01:38

Intralumenal Vesicles and Multivesicular Bodies

Intraluminal vesicles (ILVs) are small vesicles 50-80 nm in diameter formed during the maturation of early endosomes. A specialized endosome containing numerous ILVs is called a multivesicular body (MVB). ILVs contain internalized molecules such as antigens, nucleic acids, proteins, and metabolites. Some of these molecules are released from the MVBs inside exosomes and are transported to other cells. Other MVBs contain molecules that are retained in the ILVs and are later degraded within the...