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Kozlowski, E.

Publications and source records attributed to Kozlowski, E..

2 recordsLinked to original sources

The role of dopaminergic, cholinergic and noradrenergic networks in hyposmia in Parkinson's disease

BackgroundOlfactory impairment is frequently observed in Parkinsons disease (PD) before motor symptom onset. Patients with isolated rapid eye movement sleep behaviour disorder (iRBD) are at risk to develop PD and present olfactory dysfunction. Subcortical neuromodulatory nuclei including the substantia nigra, the nucleus basalis of Meynert, and the locus coeruleus, may all contribute to olfactory dysfunction. ObjectiveThe objective of this study was to understand the network alterations underlying olfactory dysfunction in PD and in the early prodromal iRBD patients using multimodal MRI. MethodsPD (n = 107), iRBD patients (n = 35) and healthy controls (HC, n = 39) were recruited from the ICEBERG cohort for a cross-sectional study. We separated subjects in Healthy Controls, iRBD patients, and PD patients with or without RBD and with or without anosmia. Olfactory, motor, and cognitive scores were assessed and combined with multimodal imaging. ResultsWe found that olfaction positively correlated with (i) striatal DaT signal in PD patients; (ii) neuromelanin contrast in the locus coeruleus and (iii) Nucleus Basalis of Meynert grey matter (GM) volume in all patients. These signals were uncorrelated with motor and cognitive scores. Functional connectivity was reduced in regions of the cholinergic olfactory network in anosmic patients. Functional connectivity was also reduced in the noradrenergic network of patients with RBD. DiscussionOur results indicate the implication of the cholinergic network in PD patients with anosmia and a contribution of the noradrenergic network to olfactory dysfunction, only in patients with RBD.

neuroscience↗

Dynamic local mRNA distribution and translation influence the postnatal molecular maturation of perivascular astrocytic processes

Astrocytes (the main glial cells in the brain) are highly ramified and send out perivascular processes (PvAPs) that entirely sheathe the brains blood vessels. PvAPs are equipped with an enriched molecular repertoire that sustains astrocytic regulatory functions at the vascular interface. In the mouse, PvAP development starts after birth and is essentially complete by postnatal day (P) 15. Progressive molecular maturation also occurs over this period, with the acquisition of proteins enriched in PvAPs. The mechanisms controlling the development and molecular maturation of PvAPs have not been extensively characterized. We reported previously that mRNAs are distributed unequally in mature PvAPs and are locally translated. Since dynamic mRNA distribution and local translation influence the cells polarity, we hypothesized that they might sustain the postnatal maturation of PvAPs. Here, we used a combination of molecular biology and imaging approaches to demonstrate that the development of PvAPs is accompanied by the transport of mRNA and polysomal mRNA into PvAPs, the development of a rough endoplasmic reticulum (RER) network and Golgi cisternae, and local translation. By focusing on genes and proteins that are selectively or specifically expressed in astrocytes, we characterized the developmental profile of mRNAs, polysomal mRNAs and proteins in PvAPs from P5 to P60. Furthermore, we found that distribution of mRNAs in PvAPs is perturbed in a mouse model of megalencephalic leukoencephalopathy with subcortical cysts. Lastly, we found that some polysomal mRNAs polarized progressively towards the PvAPs. Our results indicate that dynamic mRNA distribution and local translation influence the postnatal maturation of PvAPs. Summary statementLocal translation operates during the postnatal development of perivascular astrocyte processes and might contribute to their molecular maturation.

neuroscience↗