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March 15, 2026PLoS Genetics0 citationsOpen Access

COG5 deficiency disrupts cellular copper homeostasis and underlies the impaired mitochondrial OXPHOS function

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YZYuwei ZhouKLKeyi LiRZRuowei Zhu

Key Points

  • This research aims to investigate the role of COG5 in mitochondrial function and its association with copper homeostasis.
  • Conducted proteomic analyses using COG5-deficient and rescue cell models
  • Biochemical validation of COG5 involvement in mitochondrial OXPHOS
  • Assessment of cellular copper levels in cell models and patient-derived cells
  • Identified a link between COG5 dysfunction and mitochondrial OXPHOS deficiency
  • Elevated cellular copper levels observed in COG5-deficient models
  • Restoring COG5 expression or using a copper chelator rescued OXPHOS complexes

Abstract

COG5, a subunit of the conserved oligomeric Golgi (COG) complex, plays a critical role in retrograde trafficking within the Golgi apparatus. Dysfunction of COG5 is associated with various human disorders, yet the underlying pathogenic mechanisms remain poorly understood. To investigate the mechanisms, we conducted proteomic analyses using COG5-deficient and rescue cell models, which revealed a potential link between COG5 dysfunction and mitochondrial oxidative phosphorylation (OXPHOS) deficiency. Using COG5-deficient cell models and patient-derived cells harboring COG5 variants, we biochemically validated the involvement of COG5 in mitochondrial OXPHOS, particularly in the regulation of complex I content. These models also exhibited elevated cellular copper levels. Notably, the significant reduction in OXPHOS complexes could be rescued by either restoring COG5 expression or administering a copper chelator. We further demonstrated that excessive cellular copper disrupts the function of mitochondrial iron-sulfur clusters, potentially leading to complex I assembly defects. Additionally, we identified a patient with biallelic COG5 variants presenting with a distinct subtype of mitochondrial disease (Leigh syndrome), a phenotype not previously associated with COG5-related disorders. These findings provide novel mechanistic insights into the role of COG5, extending beyond its established function in Golgi-mediated glycosylation modifications. Our results underscore the importance of COG5 in mitochondrial function through a copper-dependent pathway, offering new perspectives on its contribution to cellular homeostasis and disease pathogenesis.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69b606c483145bc643d1d039https://doi.org/10.1371/journal.pgen.1012076
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