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Updated: Apr 1, 2026

Quantitative Localization of a Golgi Protein by Imaging Its Center of Fluorescence Mass
Published on: August 10, 2017
Induced oligomerization targets Golgi proteins for degradation in lysosomes
Ritika Tewari1, Collin Bachert1, Adam D Linstedt2
1Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA 15213.
Abstract:
Manganese protects cells against forms of Shiga toxin by down-regulating the cycling Golgi protein GPP130. Down-regulation occurs when Mn binding causes GPP130 to oligomerize and traffic to lysosomes. To determine how GPP130 is redirected to lysosomes, we tested the role of GGA1 and clathrin, which mediate sorting in the canonical Golgi-to-lysosome pathway. GPP130 oligomerization was induced using either Mn or a self-interacting version of the FKBP domain. Inhibition of GGA1 or clathrin specifically blocked GPP130 redistribution, suggesting recognition of the aggregated GPP130 by the GGA1/clathrin-sorting complex. Unexpectedly, however, GPP130's cytoplasmic domain was not required, and redistribution also occurred after removal of GPP130 sequences needed for its normal cycling. Therefore, to test whether aggregate recognition might be a general phenomenon rather than one involving a specific GPP130 determinant, we induced homo-oligomerization of two unrelated Golgi-targeted constructs using the FKBP strategy. These were targeted to the cis- and trans-Golgi, respectively, using domains from mannosidase-1 and galactosyltransferase. Significantly, upon oligomerization, each redistributed to peripheral punctae and was degraded. This occurred in the absence of detectable UPR activation. These findings suggest the unexpected presence of quality control in the Golgi that recognizes aggregated Golgi proteins and targets them for degradation in lysosomes.
Insights
Manganese (Mn) protects cells from Shiga toxin by causing the Golgi protein GPP130 to aggregate and traffic to lysosomes. This unexpected Golgi quality control pathway targets aggregated proteins for degradation.
Area of Science:
- Cell Biology
- Molecular Biology
- Protein Degradation
Background:
- Manganese (Mn) protects cells from Shiga toxin by down-regulating the Golgi protein GPP130.
- GPP130 down-regulation involves Mn binding, causing GPP130 oligomerization and lysosomal trafficking.
Purpose of the Study:
- To elucidate the mechanism by which GPP130 is redirected to lysosomes.
- To investigate the role of GGA1 and clathrin in the Golgi-to-lysosome pathway for GPP130.
Main Methods:
- Induced GPP130 oligomerization using Mn or FKBP domain.
- Inhibited GGA1 and clathrin to assess their role in GPP130 redistribution.
- Utilized FKBP-mediated homo-oligomerization of unrelated Golgi-targeted constructs.
Main Results:
- Inhibition of GGA1 or clathrin blocked GPP130 redistribution, indicating involvement of the GGA1/clathrin-sorting complex.
- GPP130 redistribution occurred independently of its cytoplasmic domain and normal cycling sequences.
- Oligomerization of unrelated Golgi proteins also led to lysosomal degradation, independent of UPR activation.
Conclusions:
- The Golgi possesses a quality control mechanism that recognizes aggregated Golgi proteins.
- This pathway targets aggregated proteins for lysosomal degradation, irrespective of specific protein determinants.
- Golgi protein aggregation serves as a signal for lysosomal targeting and degradation.
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