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Gonzalez-Silva, C.

Publications and source records attributed to Gonzalez-Silva, C..

2 recordsLinked to original sources

Drosophila Atlastin regulates synaptic vesicle mobilization independent of Bone Morphogenetic Protein signaling

Motor neurons are highly dependent on membrane trafficking, in which the endoplasmic reticulum (ER) and its contact sites with endosomes, confer the ER the role of a long-distance communicator. Atlastin (Atl), a large GTPase located on the ER membrane is required for its function and its tubular structural dynamics. Atl also downregulates, by a yet unknown mechanism, the BMP (Bone Morphogenic Protein) pathway. In humans, Atl mutations are the second more common cause of Hereditary Spastic Paraplegia (HSP), a genetic disease characterized by spasticity of the lower extremities. Here, we explore the molecular basis of Atl-dependent defects on synaptic vesicle (SV) traffic in Drosophila under the hypothesis that those defects are the direct consequence of the atl-knock-down and not of the Atl-dependent BMP signaling upregulation. Motor neuronal knockdown of atl (Atl-KD) leads to an increase in synaptic and satellite bouton number similar to the increase in BMP signaling activity (TKV-CA). Neuronal Atl-KD also associates to a reduction in the boutons of the abundance of the SV markers CSP (Cysteine string protein) and VGLUT (vesicular glutamate transporter) as well as in TKV-CA larvae, both phenotypes are suppressed by decreasing the function of BMP receptor wishful thinking expressing one copy of the mutant receptor (wit /+). Surprisingly, we determined in Atl-KD larvae an increase in the CSP peripheral density and distribution, dependent on synaptic stimulation, that was not replicated in Tkv-CA larvae, suggesting that there could be differences in the mechanisms that underlie the reduction in CSP abundance. Additionally, we determined that Atl-KD associates to an increase in FM 1-43 unload but not in TKV-CA larvae. Moreover, one copy of wit was not able to suppress the FM-143 in Atl-KD larvae (Atl-KD, wit), supporting that BMP signaling does not participate in this phenotype. Together with the stimuli-dependent changes in the SV distribution and dynamics determined in Atl-KD larvae, we measured an increase in Rab11/CSP colocalization, suggesting changes in SV traffic through late recycling endosomes. Together our results suggest a mechanism by which the loss of an ER structuring protein in the motor neuron could, through its role in regulating SV and endosomal trafficking, explain defects in SV accumulation and synaptic dysfunction.

cell biology↗

The Dendritic Ergic: Microtubule And Actin Cytoskeletons Mediate Stop-And-Go Movement Of Mobile Carriers Between Stable Structures

The ER-to-Golgi intermediate compartment (ERGIC) is a membranous organelle that mediates protein transport between the endoplasmic reticulum (ER) and Golgi apparatus. In neurons, clusters of these vesiculotubular structures are situated in throughout the cell in proximity to the ER, passing cargo to the cis-Golgi cisternae located mainly in the perinuclear region. Although ERGIC markers have been identified in neurons, the distribution and dynamics of neuronal ERGIC structures have not been characterized. Here, we argue that long-distance ERGIC transport occurs via an intermittent mechanism in neurons, with mobile elements moving between stationary structures. Using immunofluorescence microscopy, we detected discrete, irregular ERGIC structures in neural soma and dendrites. Slow live-cell imaging (2 frames/minute; 15 minutes) indicated that 8% of dendritic ERGIC structures were stable, remaining in place over long periods. On the other hand, fast live-cell imaging (2 frames/second; 180 seconds) captured mobile ERGIC structures advancing very short distances along dendrites. Importantly, these distances were consistent with the lengths between the stationary ERGIC structures. Kymography revealed ERGIC elements that moved intermittently, emerging from and fusing with stationary ERGIC structures. Surprisingly, this movement was apparently dependent not only on the integrity of the microtubule cytoskeleton, as has been previously reported, but on the actin cytoskeleton as well. Our results indicate that the dendritic ERGIC has a dual nature, with both stationary and mobile structures. The neural ERGIC network transports proteins via a stop-and-go movement that is mediated by the microtubule and actin cytoskeletons.

cell biology↗