Altered cellular biomechanics have been implicated as key photogenic triggers in age-related diseases. An aberrant liquid-to-solid phase transition, observed in in vitro reconstituted droplets of FUS protein, has been recently proposed as a possible pathogenic mechanism for amyotrophic lateral sclerosis (ALS). Whether such transition occurs in cell environments is currently unknown as a consequence of the limited measuring capability of the existing techniques, which are invasive or lack of subcellular resolution. Here we developed a non-contact and label-free imaging method, named background-deflection Brillouin microscopy, to investigate the three-dimensional intracellular biomechanics at a sub-micron resolution. Our method exploits diffraction to achieve an unprecedented 10,000-fold enhancement in the spectral contrast of single-stage spectrometers, enabling, to the best of our knowledge, the first direct biomechanical analysis on intracellular stress granules containing ALS mutant FUS protein in fixed cells. Our findings provide fundamental insights on the critical aggregation step underlying the neurodegenerative ALS disease.

Background-deflection Brillouin microscopy reveals altered biomechanics of intracellular stress granules by ALS protein FUS / Antonacci, Giuseppe; DE TURRIS, Valeria; Rosa, Alessandro; Ruocco, Giancarlo. - In: COMMUNICATIONS BIOLOGY. - ISSN 2399-3642. - 1:(2018), pp. 1-8. [10.1038/s42003-018-0148-x]

Background-deflection Brillouin microscopy reveals altered biomechanics of intracellular stress granules by ALS protein FUS

Valeria de Turris
Secondo
;
Alessandro Rosa
Penultimo
;
Giancarlo Ruocco
Ultimo
2018

Abstract

Altered cellular biomechanics have been implicated as key photogenic triggers in age-related diseases. An aberrant liquid-to-solid phase transition, observed in in vitro reconstituted droplets of FUS protein, has been recently proposed as a possible pathogenic mechanism for amyotrophic lateral sclerosis (ALS). Whether such transition occurs in cell environments is currently unknown as a consequence of the limited measuring capability of the existing techniques, which are invasive or lack of subcellular resolution. Here we developed a non-contact and label-free imaging method, named background-deflection Brillouin microscopy, to investigate the three-dimensional intracellular biomechanics at a sub-micron resolution. Our method exploits diffraction to achieve an unprecedented 10,000-fold enhancement in the spectral contrast of single-stage spectrometers, enabling, to the best of our knowledge, the first direct biomechanical analysis on intracellular stress granules containing ALS mutant FUS protein in fixed cells. Our findings provide fundamental insights on the critical aggregation step underlying the neurodegenerative ALS disease.
2018
stress granules; FUS; amyotrophic lateral sclerosis; Brillouin microscopy
01 Pubblicazione su rivista::01a Articolo in rivista
Background-deflection Brillouin microscopy reveals altered biomechanics of intracellular stress granules by ALS protein FUS / Antonacci, Giuseppe; DE TURRIS, Valeria; Rosa, Alessandro; Ruocco, Giancarlo. - In: COMMUNICATIONS BIOLOGY. - ISSN 2399-3642. - 1:(2018), pp. 1-8. [10.1038/s42003-018-0148-x]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1163289
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