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Architecture of an HIV-1 reverse transcriptase initiation complex.

Kevin P Larsen | Yamuna Kalyani Mathiharan | Kalli Kappel | Aaron T Coey | Dong-Hua Chen | Daniel Barrero | Lauren Madigan | Joseph D Puglisi | Georgios Skiniotis | Elisabetta Viani Puglisi
Nature | 2018

Reverse transcription of the HIV-1 RNA genome into double-stranded DNA is a central step in viral infection 1 and a common target of antiretroviral drugs 2 . The reaction is catalysed by viral reverse transcriptase (RT)3,4 that is packaged in an infectious virion with two copies of viral genomic RNA 5 each bound to host lysine 3 transfer RNA (tRNALys3), which acts as a primer for initiation of reverse transcription6,7. Upon viral entry into cells, initiation is slow and non-processive compared to elongation8,9. Despite extensive efforts, the structural basis of RT function during initiation has remained a mystery. Here we use cryo-electron microscopy to determine a three-dimensional structure of an HIV-1 RT initiation complex. In our structure, RT is in an inactive polymerase conformation with open fingers and thumb and with the nucleic acid primer-template complex shifted away from the active site. The primer binding site (PBS) helix formed between tRNALys3 and HIV-1 RNA lies in the cleft of RT and is extended by additional pairing interactions. The 5' end of the tRNA refolds and stacks on the PBS to create a long helical structure, while the remaining viral RNA forms two helical stems positioned above the RT active site, with a linker that connects these helices to the RNase H region of the PBS. Our results illustrate how RNA structure in the initiation complex alters RT conformation to decrease activity, highlighting a potential target for drug action.

Pubmed ID: 29695867

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Associated grants

  • Agency: NIGMS NIH HHS, United States
    Id: P50 GM082545
  • Agency: NIGMS NIH HHS, United States
    Id: T32 GM008294
  • Agency: NIH HHS, United States
    Id: 1S10RR02664701

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ImageQuant (tool)

RRID:SCR_014246

Software for automatic general image analysis. It provides fully automatic analysis of 1-D gels including lane creation, background subtraction, band detection, molecular weight calibration, quantity calibration, and normalization. Editing tools are provided for cropping, rotating, and filtering images.

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