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Knockdown of ketohexokinase versus inhibition of its kinase activity exert divergent effects on fructose metabolism

  • Se Hyung Park
  • , Taghreed Fadhul
  • , Lindsey R. Conroy
  • , Harrison A. Clarke
  • , Ramon C. Sun
  • , Kristina Wallenius
  • , Jeremie Boucher
  • , Gavin O’Mahony
  • , Alessandro Boianelli
  • , Marie Persson
  • , Sunhee Jung
  • , Cholsoon Jang
  • , Analia S. Loria
  • , Genesee J. Martinez
  • , Zachary A. Kipp
  • , Evelyn A. Bates
  • , Terry D. Hinds
  • , Senad Divanovic
  • , Samir Softic

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

Excessive fructose intake is a risk factor for the development of obesity and its complications. Targeting ketohexokinase (KHK), the first enzyme of fructose metabolism, has been investigated for the management of metabolic dysfunction–associated steatotic liver disease (MASLD). We compared the effects of systemic, small molecule inhibitor of KHK enzymatic activity with hepatocyte-specific, N-acetylgalactosamine siRNA–mediated knockdown of KHK in mice on an HFD. We measured KHK enzymatic activity, extensively quantified glycogen accumulation, performed RNA-Seq analysis, and enumerated hepatic metabolites using mass spectrometry. Both KHK siRNA and KHK inhibitor led to an improvement in liver steatosis; however, via substantially different mechanisms, KHK knockdown decreased the de novo lipogenesis pathway, whereas the inhibitor increased the fatty acid oxidation pathway. Moreover, KHK knockdown completely prevented hepatic fructolysis and improved glucose tolerance. Conversely, the KHK inhibitor only partially reduced fructolysis, but it also targeted triokinase, mediating the third step of fructolysis. This led to the accumulation of fructose-1 phosphate, resulting in glycogen accumulation, hepatomegaly, and impaired glucose tolerance. Overexpression of wild-type, but not kinase-dead, KHK in cultured hepatocytes increased hepatocyte injury and glycogen accumulation after treatment with fructose. The differences between KHK inhibition and knockdown are, in part, explained by the kinase-dependent and -independent effects of KHK on hepatic metabolism.

Original languageEnglish
Article numbere184396
JournalJCI insight
Volume9
Issue number23
DOIs
StatePublished - Dec 6 2024

Bibliographical note

Publisher Copyright:
© 2024, Park et al.

Funding

The authors would like to thank Leila Noetzli, Ho-Chou Tu, and Kevin Fitzgerald at Alnylam Pharmaceutical for their assistance with the project. Additionally, we thank Mark Keibler for quantifying F1P in vivo. We greatly appreciate Terry Flier and Anna Borodovsky at Alnylam for critically reading the manuscript. Next, we would like to thank Jian-Ming Liu for measuring the in vitro potency of the inhibitor and Sara Lindblom for formulating the inhibitor for oral administration at AstraZeneca. We thank Gregory Graft (University of Kentucky) for providing ABCD2 antibody. We thank the Biopolymers Facility Genomics Core Facility at Harvard Medical School for their expertise and instrument availability that supported RNA-Seq work. This work was supported in part by the North American Society For Pediatric Gastroenterology, Hepatology & Nutrition Foundation Young Investigator Award, Pediatric Scientist Development Program Award (HD000850), and Center of Research in Obesity and Cardiovascular Disease Pilot and Feasibility Grant (GM127211) awarded to SS. Alnylam Pharmaceutical funded this work, in part, via a sponsored research agreement awarded to SS. This research was supported by the University of Kentucky Office of the Vice President for Research through the Diabetes and Obesity Research Priority Area. Conflict of interest: SS received grant funding from Alnylam Pharmaceuticals, Inc., to study the ketohexokinase (KHK) biology. Alnylam also provided KHK and siRNA and performed fructose-1 phosphate quantification. This work was also supported by AstraZeneca, who provided the KHK inhibitor, 3-O methylfructose, and performed pharmacokinetic studies. KW, JB, GO, AB, and MP are/were employees of AstraZeneca.

FundersFunder number
University of Kentucky Office
Alnylam Pharmaceuticals
AstraZeneca
Alnylam Pharmaceutical
North American Society For Pediatric Gastroenterology, Hepatology & Nutrition FoundationGM127211, HD000850

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 3 - Good Health and Well-being
      SDG 3 Good Health and Well-being

    ASJC Scopus subject areas

    • General Medicine

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