| Literature DB >> 26578865 |
Leslie K Climer1, Maxim Dobretsov2, Vladimir Lupashin1.
Abstract
The Conserved Oligomeric Golgi (COG) complex is an evolutionarily conserved hetero-octameric protein complex that has been proposed to organize vesicle tethering at the Golgi apparatus. Defects in seven of the eight COG subunits are linked to Congenital Disorders of Glycosylation (CDG)-type II, a family of rare diseases involving misregulation of protein glycosylation, alterations in Golgi structure, variations in retrograde trafficking through the Golgi and system-wide clinical pathologies. A troublesome aspect of these diseases are the neurological pathologies such as low IQ, microcephaly, and cerebellar atrophy. The essential function of the COG complex is dependent upon interactions with other components of trafficking machinery, such as Rab-GTPases and SNAREs. COG-interacting Rabs and SNAREs have been implicated in neurodegenerative diseases like Alzheimer's disease and Parkinson's disease. Defects in Golgi maintenance disrupts trafficking and processing of essential proteins, frequently associated with and contributing to compromised neuron function and human disease. Despite the recent advances in molecular neuroscience, the subcellular bases for most neurodegenerative diseases are poorly understood. This article gives an overview of the potential contributions of the COG complex and its Rab and SNARE partners in the pathogenesis of different neurodegenerative disorders.Entities:
Keywords: COG; Rab; SNARE; congenital disorders of glycosylation; conserved oligomeric Golgi complex; glycosylation; neurodegeneration; vesicular trafficking
Year: 2015 PMID: 26578865 PMCID: PMC4621299 DOI: 10.3389/fnins.2015.00405
Source DB: PubMed Journal: Front Neurosci ISSN: 1662-453X Impact factor: 4.677
Neurological phenotypes associated with COG and COG-interacting Rabs and SNAREs.
| COG1 | CDG-IIg (COG1-CDG) | Cerebral atrophy, developmental delay, hypotonia | Foulquier et al., |
| COG2 | CDG-II (COG2-CDG) | Developmental delay, epilepsy | Kodera et al., |
| COG4 | CDG-IIj (COG4-CDG) | Developmental delay, epilepsy, hypotonia, lack of speech, nystagmus | Reynders et al., |
| COG5 | CDG-IIi (COG5-CDG) | Ataxia, cerebral atrophy, developmental delay, epilepsy, hypotonia | Paesold-Burda et al., |
| COG6 | CDG-IIl (COG6-CDG) Shaheen syndrome (SHNS) | Ataxia, cerebral atrophy, developmental delay, epilepsy, hypotonia, optic nerve atrophy, sensoneural hearing loss Intellectual disability | Lübbehusen et al., |
| COG7 | CDG-IIe (COG7-CDG) | Cerebral atrophy, developmental delay, epilepsy, hypotonia | Wu et al., |
| COG8 | CDG-IIh (COG8-CDG) | Cerebral atrophy, developmental delay, hypotonia | Foulquier et al., |
| Ykt6 | Parkinson's Disease | Trafficking defects and cytotoxicity | Hasegawa et al., |
| Sec22b | Parkinson's Disease | Trafficking defects and cytotoxicity | Hasegawa et al., |
| STX5 | Parkinson's Disease Alzheimer's Disease | Trafficking defects and cytotoxicity | Suga et al., |
| SNAP29 | CEDNIK-Neuro-cutaneous syndrome | Cerebral Dysgenesis, Neuropathy, Ichthyosis, and Keratoderma | Sprecher et al., |
| GS27 | Myoclonus epilepsy/early ataxia Parkinson's Disease | Action myoclonus, mild cerebral atrophy, and early ataxia Trafficking defects and cytotoxicity | Thayanidhi et al., |
| GS28 | Neurodegeneration | Retinal degeneration in | Rosenbaum et al., |
| Vti1a/b | Neurodegeneration | Perinatal lethality in double knockouts in an | Kunwar et al., |
| Rab1a | Parkinson's Disease | Neuroprotective in | Cooper et al., |
| Rab1b | Alzheimer's Disease | Dominant negative mutant of Rab1b blocks trafficking of APP and decreases the secretion of Aβ | Dugan et al., |
| Rab2 | Parkinson's Disease | Reduced expression of Rab2 can rescue Golgi fragmentation in PD models | Rendón et al., |
| Rab4a | Neumann-Pick disease Alzheimer's Disease Down's syndrome | Reduced Rab4-dependent recycling | Cataldo et al., |
| Rab6a | Alzheimer's Disease | Dominant negative mutant of Rab6 increases the secretion of soluble APP and decreased Aβ secretion | McConlogue et al., |
Figure 1Model of COG trafficking within neurons. A cartoon depicting the proposed roles for the COG complex (depicted as red shapes for lobe A and green shapes for lobe B subcomplexes) and its interacting protein partners in Golgi trafficking: Rabs (yellow circles), and SNAREs (purple lines). Right panel: Immunofluorescence images of COG complex subunit COG3 (top-red) and Golgi SNARE GS15 (middle-green) in rat dorsal root ganglion. Perinuclear (DAPI) co-localization is indicated by yellow in the merged image (bottom). Scale Bar = 10 μm.