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TNF-α impairs platelet function by inhibiting autophagy and disrupting metabolism via syntaxin 17 downregulation

  • Guadalupe Rojas-Sanchez
  • , Jorge Calzada-Martinez
  • , Brandon McMahon
  • , Aaron C. Petrey
  • , Gabriela Dveksler
  • , Gerardo P. Espino-Solis
  • , Orlando Esparza
  • , Giovanny Hernandez
  • , Dennis Le
  • , Eric P. Wartchow
  • , Ken Jones
  • , Lucas H. Ting
  • , Catherine Jankowski
  • , Marguerite R. Kelher
  • , Marilyn Manco-Johnson
  • , Marie L. Feser
  • , Kevin D. Deane
  • , Travis Nemkov
  • , Angelo D’Alessandro
  • , Andrew Thorburn
  • Paola Maycotte, José A. López, Pavel Davizon-Castillo*
*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Platelets play a dual role in hemostasis and inflammation-associated thrombosis and hemorrhage. Although the mechanisms linking inflammation to platelet dysfunction remain poorly understood, our previous work demonstrated that TNF-α alters mitochondrial mass, platelet activation, and autophagy-related pathways in megakaryocytes. Here, we hypothesized that TNF-α impairs platelet function by disrupting autophagy, a process critical for mitochondrial health and cellular metabolism. Using human and murine models of TNF-α-driven diseases, including myeloproliferative neoplasms and rheumatoid arthritis, we found that TNF-α downregulates syntaxin 17 (STX17), a key mediator of autophagosome-lysosome fusion. This disruption inhibited autophagy, leading to the accumulation of dysfunctional mitochondria and reduced mitochondrial respiration. These metabolic alterations compromised platelet-driven clot contraction, a process linked to thrombotic and hemorrhagic complications. Our findings reveal a mechanism by which TNF-α disrupts hemostasis through autophagy inhibition, highlighting TNF-α as a critical regulator of platelet metabolism and function. This study provides potentially new insights into inflammation-associated pathologies and suggests autophagy-targeting strategies as potential therapeutic avenues to restore hemostatic balance.

Original languageEnglish
Article numbere186065
JournalJournal of Clinical Investigation
Volume135
Issue number15
DOIs
StatePublished - 2025

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