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Myeloid Cell Protein Tyrosine Phosphatase 1B Drives Retinal Neurodegeneration in Diabetic Mice

  • Taibah University

Research output: Contribution to journalArticlepeer-review

Abstract

Diabetic retinopathy (DR) is the leading cause of vision loss in the working age population with public health economic implications worldwide. Systemic inflammation and leukocyte activation are early events in diabetes, while microglial activation, neuroinflammation, and retinal neurodegeneration are early events in DR. Protein tyrosine phosphatase 1B (PTP1B) plays a complex role in monocyte / macrophage activation which may impact DR. We therefore investigated the role of myeloid cell-specific PTP1B using LysMcre-PTP1B fl/fl (LysM-PTP1B) transgenic mice, as well as pharmacological inhibition with a PTP1B inhibitor, MSI-1436, in the early stages of DR. Mice were rendered diabetic for six weeks using anomer-equilibrated streptozotocin (STZ). Retinal changes were evaluated by histology and immunohistochemistry, and systemic leukocyte activation by flow cytometry. Mitochondrial function in high glucose-challenged, cultured bone marrow-derived macrophages (BMDMs) from LysM-PTP1B and MSI-I436-treated mice was determined in vitro. Both myeloid cell-specific depletion and pharmacological inhibition of PTP1B prevent STZ-induced retinal neurodegeneration, development of acellular retinal capillaries, as well as microglial and systemic leukocyte activation without altering the development of diabetes. In vitro, inhibition of PTP1B prevented high glucose-induced mitochondrial dysfunction in BMDMs. We conclude that inhibition of PTP1B prevents DR by decreasing myeloid cell-driven inflammation and PTP1B represents a therapeutic target for prevention DR.
Original languageEnglish
Pages (from-to)1272-1285
Number of pages14
JournalDiabetes
Volume75
Issue number7
Early online date21 May 2026
DOIs
Publication statusPublished - Jul 2026

Bibliographical note

The authors acknowledge the University of Aberdeen Histology and Microscopy core facility, the Iain Fraser Flow Cytometry Core facility and Medical Research Facility for their assistance and guidance.

Author Contributions. Conceptualization: A.A., L.K., J.V.F., and M.D. conceptualized the study, contributed to data curation, provided resources, and wrote the original draft of the manuscript and subsequently reviewed and edited it. A.A., M.B., A.O., and S.K.-S. contributed to the study methodology. A.A., M.B., A.O., S.K.-S., L.K., J.V.F., and M.D. conducted data validation and formal analyses. A.A. conducted the investigation and contributed to data visualization. L.K., J.V.F., and M.D. supervised the work, served as project administrators, and acquired funding. M.D. is the guarantor of this work and, as such, had full access to all the data in the study and takes responsibility for the integrity of the data and the accuracy of the data analysis.

Data Availability Statement

This article contains supplementary material online at Link https://doi.org/10.2337/figshare.32085003.

Funding

This study was supported by funds from the BHF project grant to M.D., J.V.F and L.K. (PG/21/10555).

FundersFunder number
British Heart FoundationPG/21/10555

    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

    Keywords

    • mitochondrial dysfunction
    • Myeloid cell
    • PTP1B
    • diabetic retinopathy
    • systemic inflammation
    • retinal neurodegeneration
    • MSI-1436

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