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Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form

A mid-infrared free-electron laser (FEL) is operated as a pulsed and linearly polarized laser with tunable wavelengths within infrared region. Although the FEL can ablate soft tissues with minimum collateral damage in surgery, the potential of FEL for dissecting protein aggregates is not fully under...

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Detalles Bibliográficos
Autores principales: Kawasaki, Takayasu, Fujioka, Jun, Imai, Takayuki, Torigoe, Kanjiro, Tsukiyama, Koichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer London 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4149878/
https://www.ncbi.nlm.nih.gov/pubmed/24760285
http://dx.doi.org/10.1007/s10103-014-1577-5
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author Kawasaki, Takayasu
Fujioka, Jun
Imai, Takayuki
Torigoe, Kanjiro
Tsukiyama, Koichi
author_facet Kawasaki, Takayasu
Fujioka, Jun
Imai, Takayuki
Torigoe, Kanjiro
Tsukiyama, Koichi
author_sort Kawasaki, Takayasu
collection PubMed
description A mid-infrared free-electron laser (FEL) is operated as a pulsed and linearly polarized laser with tunable wavelengths within infrared region. Although the FEL can ablate soft tissues with minimum collateral damage in surgery, the potential of FEL for dissecting protein aggregates is not fully understood. Protein aggregates such as amyloid fibrils are in some cases involved in serious diseases. In our previous study, we showed that amyloid-like lysozyme fibrils could be disaggregated into the native form with FEL irradiation specifically tuned to the amide I band (1,620 cm(−1)). Here, we show further evidence for the FEL-mediated disaggregation of amyloid-like fibrils using insulin fibrils. Insulin fibrils were prepared in acidic solution and irradiated by the FEL, which was tuned to either 1,620 or 2,000 cm(−1) prior to the experiment. The Fourier transform infrared spectroscopy (FT-IR) spectrum after irradiation with the FEL at 1,620 cm(−1) indicated that the broad peak (1,630–1,660 cm(−1)) became almost a single peak (1,652 cm(−1)), and the β-sheet content was reduced to 25 from 40 % in the fibrils, while that following the irradiation at 2,000 cm(−1) remained at 38 %. The Congo Red assay as well as transmission electron microscopy observation confirmed that the number of fibrils was reduced by FEL irradiation at the amide I band. Size-exclusion chromatography analysis indicated that the disaggregated form of fibrils was the monomeric form. These results confirm that FEL irradiation at the amide I band can dissect amyloid-like protein fibrils into the monomeric form in vitro.
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spelling pubmed-41498782014-09-02 Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form Kawasaki, Takayasu Fujioka, Jun Imai, Takayuki Torigoe, Kanjiro Tsukiyama, Koichi Lasers Med Sci Original Article A mid-infrared free-electron laser (FEL) is operated as a pulsed and linearly polarized laser with tunable wavelengths within infrared region. Although the FEL can ablate soft tissues with minimum collateral damage in surgery, the potential of FEL for dissecting protein aggregates is not fully understood. Protein aggregates such as amyloid fibrils are in some cases involved in serious diseases. In our previous study, we showed that amyloid-like lysozyme fibrils could be disaggregated into the native form with FEL irradiation specifically tuned to the amide I band (1,620 cm(−1)). Here, we show further evidence for the FEL-mediated disaggregation of amyloid-like fibrils using insulin fibrils. Insulin fibrils were prepared in acidic solution and irradiated by the FEL, which was tuned to either 1,620 or 2,000 cm(−1) prior to the experiment. The Fourier transform infrared spectroscopy (FT-IR) spectrum after irradiation with the FEL at 1,620 cm(−1) indicated that the broad peak (1,630–1,660 cm(−1)) became almost a single peak (1,652 cm(−1)), and the β-sheet content was reduced to 25 from 40 % in the fibrils, while that following the irradiation at 2,000 cm(−1) remained at 38 %. The Congo Red assay as well as transmission electron microscopy observation confirmed that the number of fibrils was reduced by FEL irradiation at the amide I band. Size-exclusion chromatography analysis indicated that the disaggregated form of fibrils was the monomeric form. These results confirm that FEL irradiation at the amide I band can dissect amyloid-like protein fibrils into the monomeric form in vitro. Springer London 2014-04-24 2014 /pmc/articles/PMC4149878/ /pubmed/24760285 http://dx.doi.org/10.1007/s10103-014-1577-5 Text en © The Author(s) 2014 https://creativecommons.org/licenses/by/4.0/ Open AccessThis article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Original Article
Kawasaki, Takayasu
Fujioka, Jun
Imai, Takayuki
Torigoe, Kanjiro
Tsukiyama, Koichi
Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title_full Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title_fullStr Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title_full_unstemmed Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title_short Mid-infrared free-electron laser tuned to the amide I band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
title_sort mid-infrared free-electron laser tuned to the amide i band for converting insoluble amyloid-like protein fibrils into the soluble monomeric form
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4149878/
https://www.ncbi.nlm.nih.gov/pubmed/24760285
http://dx.doi.org/10.1007/s10103-014-1577-5
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