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Optimization of the PROTAC linker region of the proteasome substrate receptor hRpn13 rationalized structural modeling with molecular dynamics

  1. Author:
    Lu,Xiuxiu
    Sabbasani, Venkata R
    Walters,Kylie
    Swenson, Rolf E
    Walters,Kylie
  2. Author Address

    Protein Processing Section, Center for Structural Biology, National Cancer Institute, National Institutes of Health, Frederick, MD 21702, USA., Chemistry and Synthesis Center, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, 20892, USA., Protein Processing Section, Center for Structural Biology, National Cancer Institute, National Institutes of Health, Frederick, MD 21702, USA. Electronic address: kylie.walters@nih.gov.,
    1. Year: 2025
    2. Date: Apr 18
    3. Epub Date: 2025 04 18
  1. Journal: The Journal of Biological Chemistry
    1. Pages: 108520
  2. Type of Article: Article
  3. Article Number: 108520
  1. Abstract:

    Proteasome substrate receptor hRpn13 is a promising target for cancer therapy. hRpn13 PROTACs induce apoptosis by targeting the hRpn13 proteolytic product hRpn13Pru, which contains an intact ubiquitin- and proteasome-binding Pru domain. We generated a PROTAC series based on hRpn13Pru-targeting XL5 by varying the linker that connects it to a warhead against the VHL-based ubiquitin E3 ligase machinery. Among eight tested derivatives, XL5-VHL-7 with a -(CH2)5- alkyl linker promoted hRpn13Pru degradation and induced cellular apoptosis with 2-fold improved potency compared to the original PROTAC. By using this PROTAC series with slight chemical modifications in the linker region, we were able to evaluate the efficacy of structural modeling with molecular dynamics for refining PROTACs. Overall, we found that the experimental data correlated with efficacy predictions based on molecular dynamics and structural modeling. Moreover, we could observe hRpn13:PROTAC:VHL complexes by 2D NMR that support the structural modeling and stronger affinity of XL5-VHL-7 compared to the original hRpn13 PROTAC. Our NMR data further indicate that hRpn13 Pru affinity for XL5-VHL-7 is higher within the VHL complex present than with XL5-VHL-7 alone. Altogether, we develop an hRpn13 PROTAC with 2-fold increased potency by optimizing the linker and demonstrate the current benefit and limitations for including modeling with molecular dynamics to aid PROTAC optimization. Copyright © 2025 The Authors. Published by Elsevier Inc. All rights reserved.

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External Sources

  1. DOI: 10.1016/j.jbc.2025.108520
  2. PMID: 40254254
  3. PII : S0021-9258(25)00369-2

Library Notes

  1. Fiscal Year: FY2024-2025
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