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N-Ras induces alterations in Golgi complex architecture and in constitutive protein transport
T Babiá1, I Ayala, F Valderrama
1Departament de Biologia Cel.lular, Facultat de Medicina, IDIBAPS, Universitat de Barcelona, C/Casanova, 08036 Barcelona (Spain). egea@medicina.ub.es
Abstract:
Aberrant glycosylation of proteins and lipids is a common feature of many tumor cell types, and is often accompanied by alterations in membrane traffic and an anomalous localization of Golgi-resident proteins and glycans. These observations suggest that the Golgi complex is a key organelle for at least some of the functional changes associated with malignant transformation. To gain insight into this possibility, we have analyzed changes in the structure and function of the Golgi complex induced by the conditional expression of the transforming N-Ras(K61) mutant in the NRK cell line. A remarkable and specific effect associated with this N-Ras-induced transformation was a conspicuous rearrangement of the Golgi complex into a collapsed morphology. Ultrastructural and stereological analyses demonstrated that the Golgi complex was extensively fragmented. The collapse of the Golgi complex was also accompanied by a disruption of the actin cytoskeleton. Functionally, N-Ras-transformed KT8 cells showed an increase in the constitutive protein transport from the trans-Golgi network to the cell surface, and did not induce the appearance of aberrant cell surface glycans. The Golgi complex collapse, the actin disassembly, and the increased constitutive secretion were all partially inhibited by the phospholipase A2 inhibitor 4-bromophenylacyl bromide. The results thus suggest the involvement of the actin cytoskeleton in the shape of the Golgi complex, and intracellular phospholipase A2 in its architecture and secretory function.
Insights
Cancer cell transformation reshapes the Golgi complex, causing fragmentation and altered protein transport. This study links N-Ras mutation to Golgi structure changes and secretory function, involving actin and phospholipase A2.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Aberrant protein and lipid glycosylation is common in tumor cells, affecting membrane traffic and Golgi localization.
- These changes suggest the Golgi complex plays a key role in malignant transformation.
Purpose of the Study:
- To investigate Golgi complex structural and functional changes induced by conditional expression of a transforming N-Ras(K61) mutant in NRK cells.
Main Methods:
- Conditional expression of N-Ras(K61) mutant in NRK cells.
- Ultrastructural and stereological analyses of Golgi complex morphology.
- Assessment of protein transport and cell surface glycans.
- Inhibition studies using a phospholipase A2 inhibitor.
Main Results:
- N-Ras transformation caused Golgi complex collapse and fragmentation, accompanied by actin cytoskeleton disruption.
- N-Ras-transformed cells exhibited increased constitutive protein transport to the cell surface without aberrant cell surface glycans.
- Golgi collapse, actin disassembly, and increased secretion were partially inhibited by a phospholipase A2 inhibitor.
Conclusions:
- The actin cytoskeleton is involved in maintaining Golgi complex shape.
- Intracellular phospholipase A2 plays a role in Golgi architecture and secretory function during malignant transformation.