The novel membrane protein TMEM59 modulates complex glycosylation, cell surface expression, and secretion of the

Sylvia Ullrich1, Anna Münch, Stephanie Neumann

  • 1German Center for Neurodegenerative Diseases Munich (DZNE) and Adolf Butenandt-Institute, Biochemistry, Ludwig-Maximilians University Munich, 80336 Munich, Germany.

Insights

Transmembrane protein 59 (TMEM59) regulates amyloid precursor protein (APP) shedding by altering its glycosylation and localization within the Golgi apparatus, thereby reducing Alzheimer disease amyloid beta peptide (Abeta) generation.

Area of Science:

  • Molecular biology
  • Cell biology
  • Neuroscience

Background:

  • Amyloid precursor protein (APP) shedding by alpha- and beta-secretase is critical for Alzheimer disease amyloid beta peptide (Abeta) generation.
  • Cellular mechanisms controlling APP shedding and Abeta production remain largely unknown.

Purpose of the Study:

  • To identify novel modulators of APP shedding and Abeta generation.
  • To investigate the role of transmembrane protein 59 (TMEM59) in APP processing and glycosylation.

Main Methods:

  • Cell transfection with TMEM59.
  • Analysis of APP glycosylation (N- and O-linked).
  • APP localization studies (Golgi retention).
  • Measurement of Abeta generation and secretase activity.
  • Comparison with COG protein deficient cells.

Main Results:

  • TMEM59 is a ubiquitously expressed, Golgi-localized protein.
  • TMEM59 transfection inhibited complex N- and O-glycosylation of APP.
  • TMEM59 induced APP retention in the Golgi, reducing Abeta generation and secretase cleavage.
  • TMEM59 also affected prion protein glycosylation, suggesting a broader role in Golgi glycosylation.
  • TMEM59 did not impair general Golgi function or TNF-alpha shedding.

Conclusions:

  • TMEM59 modulates complex N- and O-glycosylation, impacting APP shedding.
  • TMEM59 likely reduces APP access to secretase cleavage sites by altering its Golgi processing and localization.
  • TMEM59 represents a potential therapeutic target for modulating Abeta production in Alzheimer disease.

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