Go to The Journal of Clinical Investigation
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Transfers
  • Advertising
  • Job board
  • Contact
  • Physician-Scientist Development
  • Current issue
  • Past issues
  • By specialty
    • COVID-19
    • Cardiology
    • Immunology
    • Metabolism
    • Nephrology
    • Oncology
    • Pulmonology
    • All ...
  • Videos
  • Collections
    • In-Press Preview
    • Resource and Technical Advances
    • Clinical Research and Public Health
    • Research Letters
    • Editorials
    • Perspectives
    • Physician-Scientist Development
    • Reviews
    • Top read articles

  • Current issue
  • Past issues
  • Specialties
  • In-Press Preview
  • Resource and Technical Advances
  • Clinical Research and Public Health
  • Research Letters
  • Editorials
  • Perspectives
  • Physician-Scientist Development
  • Reviews
  • Top read articles
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Transfers
  • Advertising
  • Job board
  • Contact
Inhibition of phosphodiesterase 4D suppresses mTORC1 signaling and pancreatic cancer growth
Mi-Hyeon Jeong, Greg Urquhart, Cheryl Lewis, Zhikai Chi, Jenna L. Jewell
Mi-Hyeon Jeong, Greg Urquhart, Cheryl Lewis, Zhikai Chi, Jenna L. Jewell
View: Text | PDF
Research Article Cell biology

Inhibition of phosphodiesterase 4D suppresses mTORC1 signaling and pancreatic cancer growth

  • Text
  • PDF
Abstract

The mammalian target of rapamycin complex 1 (mTORC1) senses multiple upstream stimuli to orchestrate anabolic and catabolic events that regulate cell growth and metabolism. Hyperactivation of mTORC1 signaling is observed in multiple human diseases; thus, pathways that suppress mTORC1 signaling may help to identify new therapeutic targets. Here, we report that phosphodiesterase 4D (PDE4D) promotes pancreatic cancer tumor growth by increasing mTORC1 signaling. GPCRs paired to Gαs proteins activate adenylyl cyclase, which in turn elevates levels of 3′,5′-cyclic adenosine monophosphate (cAMP), whereas PDEs catalyze the hydrolysis of cAMP to 5′-AMP. PDE4D forms a complex with mTORC1 and is required for mTORC1 lysosomal localization and activation. Inhibition of PDE4D and the elevation of cAMP levels block mTORC1 signaling via Raptor phosphorylation. Moreover, pancreatic cancer exhibits an upregulation of PDE4D expression, and high PDE4D levels predict the poor overall survival of patients with pancreatic cancer. Importantly, FDA-approved PDE4 inhibitors repress pancreatic cancer cell tumor growth in vivo by suppressing mTORC1 signaling. Our results identify PDE4D as an important activator of mTORC1 and suggest that targeting PDE4 with FDA-approved inhibitors may be beneficial for the treatment of human diseases with hyperactivated mTORC1 signaling.

Authors

Mi-Hyeon Jeong, Greg Urquhart, Cheryl Lewis, Zhikai Chi, Jenna L. Jewell

×

Figure 3

PDE4D promotes mTORC1 lysosomal localization.

Options: View larger image (or click on image) Download as PowerPoint
PDE4D promotes mTORC1 lysosomal localization.
(A) Depletion of PDE4D inh...
(A) Depletion of PDE4D inhibits amino acid–induced mTORC1 activation. HEK293A cells stably expressing shGFP (control) or shRNA targeting PDE4D (shPDE4D) were generated. Cells were starved in amino acid–free media for 2 hours, pretreated with or without forskolin (10 μM) for 1 hour, and then stimulated with amino acids for 1 hour. mTORC1 activity with pS6K1 (Thr389) was analyzed. S6K1, pCREB (Ser133) (measure of PKA activation), CREB, and β-actin are controls. (B–D) Depletion of PDE4D blocks mTORC1 lysosomal localization. (B) HEK293A cell lines stably expressing shGFP (control) or shPDE4D were starved in amino acid–free media for 2 hours, pretreated with or without forskolin (10 μM) for 1 hour, and then stimulated with amino acids for 1 hour. Immunofluorescence experiments were performed with anti-mTOR (green) and -LAMP2 (lysosome marker, red) antibodies. Representative images were obtained under a Zeiss LSM 900 confocal microscope with 100× objective. (C) Staining intensity profiles across the 3.6-μm distance of the green (mTOR) and red (LAMP2) channels in the magnified pictures. (D) Ten immunofluorescence images per group were quantified using Squassh in ImageJ. The data represent mean ± SD. ****P < 0.0001 by 2-way ANOVA with Tukey’s test for multiple comparisons. (E) PDE4D localizes in the cytoplasm. Cells were fractionated after forskolin (10 μM) treatment for 1 hour and then analyzed by immunoblotting for PDE4D. LAMP2 (lysosome marker), lamin A/C (nuclear marker), and α-tubulin (cytoplasm marker) are controls. Arrow indicates PDE4D. (F) PDE4D does not localize to the lysosome. HEK293A were starved in amino acid–free media for 2 hours, pretreated with or without forskolin (10 μM) for 1 hour, and then stimulated with amino acids for 1 hour. Immunofluorescence experiments were performed with anti-PDE4D (green) and -LAMP2 (lysosome marker, red) antibodies. Representative images were obtained under an LSM 900 confocal microscope with 100× objective. AA, amino acid.

Copyright © 2026 American Society for Clinical Investigation
ISSN 2379-3708

Sign up for email alerts