Structural studies of intrinsically disordered MLL-fusion protein AF9 in complex with peptidomimetic inhibitors

Yuting Yang1, Ejaz Ahmad1, Vidhya Premkumar1

  • 1Department of Pathology, University of Michigan Medical School, Ann Arbor, Michigan, USA.

Insights

Researchers engineered a fusion protein to crystallize the AF9 intrinsically disordered domain, revealing high-resolution structures of inhibitors. This breakthrough aids in developing new cancer drugs targeting AF9 and ENL.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Cancer Research

Background:

  • AF9 (MLLT3) and ENL (MLLT1) are YEATS family proteins crucial in transcriptional regulation and MLL-rearranged leukemias.
  • These proteins form oncofusion proteins that recruit DOT1L, driving leukemogenesis through aberrant gene expression.
  • The AF9 ANC1 homology domain (AHD) is intrinsically disordered and mediates DOT1L interaction, undergoing folding upon binding.

Purpose of the Study:

  • To develop a protein engineering strategy for structural investigation of the intrinsically disordered AF9 AHD domain.
  • To obtain high-resolution crystal structures of AF9 AHD in complex with peptidomimetic inhibitors.
  • To gain insights into protein-inhibitor interactions for developing novel therapeutic agents.

Main Methods:

  • Utilized maltose binding protein (MBP) as a crystallization chaperone fused to the AF9 AHD domain via linkers.
  • Incorporated disulfide bonds to facilitate the formation of diffraction-quality crystals.
  • Determined crystal structures of MBP-AF9 AHD fusion proteins complexed with peptidomimetic inhibitors at 2.1-2.6 Å resolution.

Main Results:

  • Successfully engineered and crystallized disulfide-bridged MBP-AF9 AHD fusion proteins with peptidomimetic inhibitors.
  • Obtained the first series of high-resolution crystal complex structures of AF9 AHD and its inhibitors.
  • Observed structural similarities to the AF9 AHD/DOT1L NMR structure, with specific differences in the β-hairpin region stabilized by hydrogen bonds.

Conclusions:

  • The protein engineering strategy enabled structural characterization of the intrinsically disordered AF9 AHD domain.
  • The determined structures provide crucial insights into AF9 AHD/inhibitor interactions.
  • These findings will facilitate the development of novel inhibitors targeting the AF9/ENL AHD domain for therapeutic purposes.