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Radu, C. M.

Publications and source records attributed to Radu, C. M..

2 recordsLinked to original sources

Human -Synuclein Inhibits Platelets Aggregation in vitro by Interfering with the -Thrombin/Protease-Activated Receptor 1 Functional Axis

-Synuclein (Syn) is a small (140 amino acids) disordered, acidic (pI: 4.7) protein, highly conserved in vertebrates and implicated in the pathogenesis of Parkinsons disease (PD), a neurodegenerative disease characterized by the deposition of Syn amyloid fibrils in dopaminergic neurons. Beyond the central nervous system, significant expression of Syn has also been measured in the blood (~1 M), where platelets are the main cellular hosts of Syn. Although the pathological implication of Syn in PD is widely accepted, the physiological role of blood Syn is still elusive. Starting from the notion that platelets are either the major cellular reservoir of Syn in the blood and, concomitantly, act as key players in hemostasis, being activated also by -thrombin (T) via cleavage of protease-activated receptors (PARs), we decided to investigate the possibility that Syn could modulate platelet activation by interfering with the T-PAR functional axis. Using multiple electrode aggregometry, i.e. a fast and specific platelet-function-testing method, as well as steady-state fluorescence spectroscopy, surface plasmon resonance, and fluorescence microscopy, we show here that monomeric Syn functions as a negative regulator of T-mediated platelets activation. Syn acts either directly, via competitive inhibition of PAR1 activation by T and TRAP6 agonist, and indirectly, by scavenging T on the platelet plasma membrane. A simple electrostatic model of Syn platelet antiaggregating effect is proposed and the possible role of the protein at the interplay of amyloidosis and thrombosis is discussed.

biochemistry↗

In vitro effects on cellular shaping, contratility, cytoskeletal organization and mitochondrial activity in HL1 cells after different sounds stimulation. A qualitative pilot study and a theoretical physical model.

Convincing evidence has documented that mechanical vibrations profoundly affect the behaviour of different cell types and even the functions of different organs. Pressure waves such as those of sound could affect cytoskeletal molecules with coherent changes in their spatial organization and are conveyed to cellular nucleus via mechanotransduction. HL1 cells were grown and exposed to different sounds. Subsequently, cells were stained for phalloidin, beta-actin, alpha-tubulin, alpha-actinin-1 and MitoTracker(R) mitochondrial probe. The cells were analyzed with time-lapse and immunofluorescence/confocal microscopy. In this paper, we describe that different sound stimuli seem to influence the growth or death of HL1 cells, resulting in a different mitochondrial localization and expression of cytoskeletal proteins. Since the cellular behaviour seems to correlate with the meaning of the sound used, we speculate that it can be "understood" by the cells by virtue of the different sound waves geometric properties that we have photographed and filmed. A theoretical physical model is proposed to explain our preliminary results.

cell biology↗