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Biology subjects

Romano, M.

Publications and source records attributed to Romano, M..

2 recordsLinked to original sources

Solid immersion microscopy readily and inexpensively enables 12 nm resolution on plunge-frozen cells

Super-resolution fluorescence microscopy achieves 20-30 nm resolution by using liquid-immersion objectives to optimize light collection and chemical sample fixation to minimize image blurring. It is known that fluorophore brightness increases substantially under cryogenic conditions and that cryo-fixation is far superior in preserving ultrastructure. However, cryogenic conditions have not been exploited to improve resolution or sample quality because liquid immersion media freezes at the objective, losing its optical properties. Here, simply by replacing the immersion fluid with a low-cost super-hemispherical solid immersion lens (superSIL), we effortlessly achieve <8 nm localisation precision and 12 nm resolution under cryogenic conditions in a low-cost, low-tech system. This is to our knowledge the best resolution yet attained in biological samples. Furthermore, we demonstrate multicolour imaging and show that the inexpensive setup outperforms 10-fold more costly super-resolution microscopes. By also removing the barrier to total internal reflection fluorescence imaging of mammalian cells under cryogenic conditions, superSIL microscopy delivers a straightforward route to achieve unmatched nanoscale resolution on both bacterial and mammalian cell samples, which any laboratory can effortlessly and inexpensively implement.

biophysics

Striatal cholinergic receptor activation causes a rapid, selective, & state-dependent rise in corticostriatal β activity.

Cortico-basal ganglia-thalamic (CBT) {beta} oscillations (15-30 Hz) are elevated in Parkinsons disease and correlated with movement disability. To date, no experimental paradigm outside of loss of dopamine has been able to specifically elevate {beta} oscillations in the CBT loop. Here, we show that activation of striatal cholinergic receptors selectively increased {beta} oscillations in mouse striatum and motor cortex. In individuals showing simultaneous {beta} increases in both striatum and M1, {beta} partial directed coherence (PDC) increased from striatum to M1 (but not in the reverse direction). In individuals that did not show simultaneous {beta} increases, {beta} PDC increased from M1 to striatum (but not in the reverse direction), and M1 was characterized by persistent {beta}-HFO phase-amplitude coupling. Finally, the direction of {beta} PDC distinguished between {beta} subbands. This suggests: (1) striatal cholinergic tone exerts state-dependent and frequency-selective control over CBT {beta} power and coordination; (2) ongoing rhythmic dynamics can determine whether elevated {beta} oscillations are expressed in striatum and M1; (3) altered striatal cholinergic tone differentially modulates distinct {beta} subbands.

neuroscience