TY - JOUR
T1 - PEO-CYTOP Fluoropolymer Nanosheets as a Novel Open-Skull Window for Imaging of the Living Mouse Brain
AU - Takahashi, Taiga
AU - Zhang, Hong
AU - Kawakami, Ryosuke
AU - Yarinome, Kenji
AU - Agetsuma, Masakazu
AU - Nabekura, Junichi
AU - Otomo, Kohei
AU - Okamura, Yosuke
AU - Nemoto, Tomomi
N1 - Publisher Copyright:
© 2020 The Author(s)
PY - 2020/10/23
Y1 - 2020/10/23
N2 - In vivo two-photon deep imaging with a broad field of view has revealed functional connectivity among brain regions. Here, we developed a novel observation method that utilizes a polyethylene-oxide-coated CYTOP (PEO-CYTOP) nanosheet with a thickness of ∼130 nm that exhibited a water retention effect and a hydrophilized adhesive surface. PEO-CYTOP nanosheets firmly adhered to brain surfaces, which suppressed bleeding from superficial veins. By taking advantage of the excellent optical properties of PEO-CYTOP nanosheets, we performed in vivo deep imaging in mouse brains at high resolution. Moreover, PEO-CYTOP nanosheets enabled to prepare large cranial windows, achieving in vivo imaging of neural structure and Ca2+ elevation in a large field of view. Furthermore, the PEO-CYTOP nanosheets functioned as a sealing material, even after the removal of the dura. These results indicate that this method would be suitable for the investigation of neural functions that are composed of interactions among multiple regions.
AB - In vivo two-photon deep imaging with a broad field of view has revealed functional connectivity among brain regions. Here, we developed a novel observation method that utilizes a polyethylene-oxide-coated CYTOP (PEO-CYTOP) nanosheet with a thickness of ∼130 nm that exhibited a water retention effect and a hydrophilized adhesive surface. PEO-CYTOP nanosheets firmly adhered to brain surfaces, which suppressed bleeding from superficial veins. By taking advantage of the excellent optical properties of PEO-CYTOP nanosheets, we performed in vivo deep imaging in mouse brains at high resolution. Moreover, PEO-CYTOP nanosheets enabled to prepare large cranial windows, achieving in vivo imaging of neural structure and Ca2+ elevation in a large field of view. Furthermore, the PEO-CYTOP nanosheets functioned as a sealing material, even after the removal of the dura. These results indicate that this method would be suitable for the investigation of neural functions that are composed of interactions among multiple regions.
KW - Nanomaterials
KW - Optical Imaging
KW - Techniques in Neuroscience
UR - https://www.scopus.com/pages/publications/85092381486
UR - https://www.scopus.com/pages/publications/85092381486#tab=citedBy
U2 - 10.1016/j.isci.2020.101579
DO - 10.1016/j.isci.2020.101579
M3 - Article
AN - SCOPUS:85092381486
SN - 2589-0042
VL - 23
JO - iScience
JF - iScience
IS - 10
M1 - 101579
ER -