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January 14, 2026Biomolecules1 citationsOpen Access

Selenoprotein N and SEPN1-Related Myopathies: Mechanisms, Models, and Therapeutic Perspectives

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MLMartina LanzaEZEster ZitoGDGiorgia Dinoi

Key Points

  • This review examines the role of Selenoprotein N in SEPN1-related myopathies and explores therapeutic options.
  • Examined SelN function and disease mechanisms associated with SEPN1 loss-of-function.
  • Analyzed histopathological features of SEPN1-related myopathies including minicores.
  • Reviewed current therapeutic strategies focused on restoring SelN activity.
  • Identified oxidative stress as a key mechanism in muscle dysfunction related to SelN.
  • Highlighted the importance of understanding SelN biology for developing potential therapies.
  • Outlined emerging strategies aimed at therapeutic targeting for SEPN1-related myopathies.

Abstract

Selenoprotein N (SelN or SELENON) is a selenium-containing protein of the endoplasmic/sarcoplasmic reticulum (ER/SR), encoded by the SEPN1 gene. In skeletal muscle, SelN is particularly important for regulating SR calcium homeostasis. It acts as a calcium sensor, modulating the activity of the sarcoplasmic reticulum calcium pump (SERCA) through a redox-dependent mechanism. Loss-of-function mutations in the SEPN1 gene give rise to a spectrum of skeletal muscle disorders collectively referred to as SEPN1-related myopathies (SEPN1-RM). Histopathologically, SEPN1-RM is characterized by the presence of minicores, which are localized regions within muscle fibers exhibiting mitochondrial depletion (i.e., cores) and sarcomeric disarray. As no effective therapy is currently available for SEPN1-RM, understanding SelN biology through loss-of-function models remains essential for elucidating disease mechanisms and identifying potential therapeutic targets. This review examines the current knowledge on SelN function and the pathological mechanisms underlying SEPN1 loss-of-function, with a particular focus on the connection between calcium handling, oxidative/ER stress, and muscle dysfunction. It also highlights emerging strategies aimed at restoring SelN activity or mitigating downstream defects, outlining potential therapeutic avenues for SEPN1-RM.

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Cite This Study

Lanza et al. (2026) studied this question.

synapsesocial.com/papers/6966e73f13bf7a6f02bffda1https://doi.org/10.3390/biom16010125
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