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A Glass Phase Plate for Wavelength SensitiveSuperresolution Microscopy

Fernando, S. I.; Martineau, J. T.; Vu, T. N.; Baker, B.; Hobson, R. J.; Mueller, B.; Menon, R.; Jorgensen, E. M.; Gerton, J. M.

2022-07-26 biophysics
10.1101/2022.07.11.499581 bioRxiv
Show abstract

Multicolor localization microscopy typically relies on sequential imaging and bandpass filters to distinguish fluorescent tags, which introduces temporal delays during live imaging, and decreases photon yield. By engineering the point-spread function (PSF), different fluors can be imaged simultaneously and distinguished by their unique patterns, without discarding photons. Here, we insert a silicon-dioxide phase plate at the Fourier plane of the detection path of a wide-field fluorescence microscope to produce distinguishable PSFs (X-PSFs) at different wavelengths. We demonstrate that the resulting PSFs can be localized spatially and spectrally using a statistics-based computational algorithm and can be utilized for hyper-spectral super-resolution microscopy of biological samples. Single PSFs in fixed U2OS cells were acquired using dSTORM with simultaneous illumination of fluors without emission filters. The modified PSF achieves [~]21 nm lateral localization precision (FWHM), [~]17 nm axial precision (FWHM) with an average of 1,800 - 3,500 photons per PSF and a background as high as 130 - 400 photons per pixel. The modified PSF can distinguish up to three fluorescent probes with [~]80 nm peak-to-peak separation between consecutive spectra.

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