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In This Article

  • Summary
  • Abstract
  • Introduction
  • Protocol
  • Representative Results
  • Discussion
  • Acknowledgements
  • Materials
  • References
  • Reprints and Permissions

Summary

By combining sample-expansion hydrogel chemistry with label-free chemical-specific stimulated Raman scattering microscopy, the protocol describes how to achieve label-free super-resolution volumetric imaging in biological samples. With an additional machine learning image segmentation algorithm, protein-specific multi-component images in tissues without antibody labeling were obtained.

Abstract

The universal utilization of fluorescence microscopy, especially super-resolution microscopy, has greatly advanced knowledge about modern biology. Conversely, the requirement of fluorophore labeling in fluorescent techniques poses significant challenges, such as photobleaching and non-uniform labeling of fluorescent probes and prolonged sample processing. In this protocol, the detailed working procedures of vibrational imaging of swelled tissue and analysis (VISTA) are presented. VISTA circumvents obstacles associated with fluorophores and achieves label-free super-resolution volumetric imaging in biological samples with spatial resolution down to 78 nm. The procedure is established by embedding cells and tissues in hydrogel, isotropically expanding the hydrogel sample hybrid, and visualizing endogenous protein distributions by vibrational imaging with stimulated Raman scattering microscopy. The method is demonstrated on both cells and mouse brain tissues. Highly correlative VISTA and immunofluorescence images were observed, validating the protein origin of imaging specificities. Exploiting such correlation, a machine learning-based image-segmentation algorithm was trained to achieve multi-component prediction of nuclei, blood vessels, neuronal cells, and dendrites from label-free mouse brain images. The procedure was further adapted to investigate pathological poly-glutamine (polyQ) aggregates in cells and amyloid-beta (Aβ) plaques in brain tissues with high throughput, justifying its potential for large-scale clinical samples.

Introduction

The development of optical imaging methods has revolutionized the understanding of modern biology because they provide unprecedented spatial and temporal information of targets across different scales, from subcellular proteins to whole organs1. Among them, fluorescence microscopy is the most well-established, with a large palette of organic dyes with high extinction coefficients and quantum yields2, easy-to-use genetic-encoded fluorescent proteins3, and super-resolution methods such as STED, PALM, and STORM for imaging nanometer-scale structures4,

Protocol

All animal procedures performed in this study were approved by the California Institute of Technology Institutional Animal Care and Use Committee (IACUC), and the protocol procedures complied with all relevant ethical regulations.

1. Preparation of stock solutions for fixation and sample expansion

  1. Prepare 40 mL of fixation solution by first dissolving 12 g of acrylamide (30% w/v) solid in 26 mL of nuclease-free water. Then, add 10 mL of 16% PFA stock solution to th.......

Representative Results

After establishing the working principle of the imaging and analysis method, image registration was done to evaluate the expansion ratio and to ensure isotropic expansion during sample processing (Figure 1A,B). Both untreated and VISTA samples were imaged while targeting the bond vibration at 2940 cm−1, which originates from CH3 of endogenous proteins. In untreated samples, the protein-rich structures like nuclei were dark due to the overwhelming .......

Discussion

In summary, we present the protocol for VISTA, which is a label-free modality to image protein-rich cellular and subcellular structures of cells and tissues. By targeting endogenous CH3 from proteins in hydrogel-embedded cell and tissues, the method achieves an effective imaging resolution down to 78 nm in biological samples and resolves minor extrusion in Huntingtin aggregates and fibrils in Aβ plaques. This technique is the first instance to report sub-100 nm resolution for label-free imaging modalities.......

Acknowledgements

We acknowledge the Caltech Biological Imaging Facility for software support. L.W. acknowledges the support of the National Institutes of Health (NIH Director's New Innovator Award, DP2 GM140919-01), Amgen (Amgen Early Innovation Award), and the start-up funds from the California Institute of Technology.

....

Materials

NameCompanyCatalog NumberComments
1.0 M Tris pH 8Sigma-Aldrich648314
16% ParaformaldehydeElectron microscopy science15710diluted to 4% in PBS
25x water immersion objectiveOlympusXLPLN25XWMP2NA 1.05
5XFAD MiceMutant Mouse Resource and Research Centers and the Jackson LaboratoryB6SJL-Tg (APPSwFlLon, PSEN1*M146L*L286 V) 6799Vas/MmjaxAlzheimer brain
60x water immersion objectiveOlympusUPLSAPO60XWIRNA 1.2
AcrylamideSigma-AldrichA9099
ammonium persulfateSigma-AldrichA3678
anti-MAP2Cell Signaling Technology8707
anti-NeuNCell Signaling Technology24307
borosilicate coverslip #1.5Fisher Scientific1254581
C57BL/6J MiceJackson Laboratory (JAX)664Normal mice
D2OSigma-Aldrich151882for SRS calibration
DAPIThermo FisherD1306
DMEMGIBCO10566-016
FBSGIBCOA4766
glass slide 3" x 1" x 1 mmVWR16004-430
goat anti-chicken IgY, Alexa Fluor 647InvitrogenA-21449
goat anti-mouse IgG, Alexa Fluor 647InvitrogenA-21236
goat anti-rabbit IgG, Alexa Fluor 488InvitrogenA-11034
goat anti-rat IgG, Alexa Fluor 568InvitrogenA-11077
Grace Bio-Labs Press-To-Seal silicone isolatorsSigma-AldrichGBL664108microscope spacer
Htt-97Q-GFP PlasmidGift from Prof. R. Kopito and Prof. F.-U.Hartl.
Laser scanning microscopeOlympusFV3000laser scanning confocal microscope
lipofectamine 3000Thermo FisherL3000001transfection agent
Lycopersicon Esculentum Lectin DyLight®594 (lectin)Vector LaboratoriesDL-1177-1
Microscope spacerGrace Bio-Labs621502
N,N′-methylenebisacrylamide (BIS)Sigma-AldrichM1533bought as 2% solution in water
Nuclease free waterThermo Fisher10977-015
Penicillin-StreptomycinGIBCO15140-122
poly-strene beadsSigma-Aldrich43302for resolution characterization
Sodium AcrylateSigma-Aldrich408220
sodium dodecyl sulfateSigma-Aldrich71725
soft-wool paint brush #3TANIS000333
SRS LaserA.P.EpicoEmerald2ps pulse width
tetramethylethylenediamineSigma-AldrichT9281
Tissue culture flask 25 cm2Corning430639
Triton X-100Sigma-AldrichT8787
Tween-20Sigma-AldrichP9416
tweezerFine Science Tool11295-51
VibrotomeLeicaVT1200Sthe vibratome

References

  1. Ntziachristos, V. Going deeper than microscopy: The optical imaging frontier in biology. Nature Methods. 7 (8), 603-614 (2010).
  2. Lavis, L. D., Bright Raines, R. T. ideas for chemical biology. ACS Chemical Biology. ....

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Vibrational ImagingSuper resolution MicroscopyLabel free ImagingVISTAStimulated Raman ScatteringHydrogel ExpansionProtein DistributionMouse BrainMachine LearningImage SegmentationPolyQ AggregatesAmyloid beta Plaques

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