Human Concentrative Nucleoside Transporter 3 (hCNT3, SLC28A3) Forms a Cyclic Homotrimer
- Biochemistry. 2017 Jul 11;56(27):3475-3483. doi: 10.1021/acs.biochem.7b00339.
- 1. Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco , San Francisco, California 94158, United States.
- 2. Department of Pharmacological Sciences, Icahn School of Medicine at Mount Sinai , New York, New York 10029, United States.
- 3. California Institute for Quantitative Biosciences, University of California, San Francisco , San Francisco, California 94158, United States.
- 4. Department of Pharmaceutical Chemistry, University of California, San Francisco , San Francisco, California 94158, United States.
- 5. Institute for Human Genetics, University of California, San Francisco , San Francisco, California 94158, United States.
Many Anticancer and Antiviral drugs are purine or pyrimidine analogues, which use membrane transporters to cross cellular membranes. Concentrative Nucleoside Transporters (CNTs) mediate the salvage of nucleosides and the transport of therapeutic nucleoside analogues across plasma membranes by coupling the transport of ligands to the sodium gradient. Of the three members of the human CNT family, CNT3 has the broadest selectivity and the widest expression profile. However, the molecular mechanisms of the transporter, including how it interacts with and translocates structurally diverse nucleosides and nucleoside analogues, are unclear. Recently, the crystal structure of vcCNT showed that the prokaryotic homologue of CNT3 forms a homotrimer. In this study, we successfully expressed and purified the wild type human homologue, hCNT3, demonstrating the homotrimer by size exclusion profiles and glutaraldehyde cross-linking. Further, by creating a series of cysteine mutants at highly conserved positions guided by comparative structure models, we cross-linked hCNT3 protomers in a cell-based assay, thus showing the existence of hCNT3 homotrimers in human cells. The presence and absence of cross-links at specific locations along TM9 informs us of important structural differences between vcCNT and hCNT3. Comparative modeling of the trimerization domain and sequence coevolution analysis both indicate that oligomerization is critical to the stability and function of hCNT3. In particular, trimerization appears to shorten the translocation path for nucleosides across the plasma membrane and may allow modulation of the transport function via allostery.