Simultaneous Two- and Three-Photon Deep Imaging of Autofluorescence in Bacterial Communities.

autofluorescence bacterial communities deep imaging multiphoton microscopy three-photon excitation

Journal

Sensors (Basel, Switzerland)
ISSN: 1424-8220
Titre abrégé: Sensors (Basel)
Pays: Switzerland
ID NLM: 101204366

Informations de publication

Date de publication:
20 Jan 2024
Historique:
received: 21 12 2023
revised: 17 01 2024
accepted: 18 01 2024
medline: 26 1 2024
pubmed: 26 1 2024
entrez: 26 1 2024
Statut: epublish

Résumé

The intrinsic fluorescence of bacterial samples has a proven potential for label-free bacterial characterization, monitoring bacterial metabolic functions, and as a mechanism for tracking the transport of relevant components through vesicles. The reduced scattering and axial confinement of the excitation offered by multiphoton imaging can be used to overcome some of the limitations of single-photon excitation (e.g., scattering and out-of-plane photobleaching) to the imaging of bacterial communities. In this work, we demonstrate in vivo multi-photon microscopy imaging of Streptomyces bacterial communities, based on the excitation of blue endogenous fluorophores, using an ultrafast Yb-fiber laser amplifier. Its parameters, such as the pulse energy, duration, wavelength, and repetition rate, enable in vivo multicolor imaging with a single source through the simultaneous two- and three-photon excitation of different fluorophores. Three-photon excitation at 1040 nm allows fluorophores with blue and green emission spectra to be addressed (and their corresponding ultraviolet and blue single-photon excitation wavelengths, respectively), and two-photon excitation at the same wavelength allows fluorophores with yellow, orange, or red emission spectra to be addressed (and their corresponding green, yellow, and orange single-photon excitation wavelengths). We demonstrate that three-photon excitation allows imaging over a depth range of more than 6 effective attenuation lengths to take place, corresponding to an 800 micrometer depth of imaging, in samples with a high density of fluorescent structures.

Identifiants

pubmed: 38276359
pii: s24020667
doi: 10.3390/s24020667
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : NIH HHS
ID : R01GM141700
Pays : United States

Auteurs

Alma Fernández (A)

Department of Soil and Crop Sciences, Texas A&M University, TAMU 2474, College Station, TX 77843, USA.
Institute for Quantum Science & Engineering, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.

Anton Classen (A)

Department of Soil and Crop Sciences, Texas A&M University, TAMU 2474, College Station, TX 77843, USA.

Nityakalyani Josyula (N)

Department of Biochemistry and Biophysics, Texas A&M University, TAMU 2128, College Station, TX 77843, USA.

James T Florence (JT)

Department of Physics & Astronomy, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.

Alexei V Sokolov (AV)

Institute for Quantum Science & Engineering, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.
Department of Physics & Astronomy, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.

Marlan O Scully (MO)

Institute for Quantum Science & Engineering, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.

Paul Straight (P)

Department of Biochemistry and Biophysics, Texas A&M University, TAMU 2128, College Station, TX 77843, USA.

Aart J Verhoef (AJ)

Department of Soil and Crop Sciences, Texas A&M University, TAMU 2474, College Station, TX 77843, USA.
Institute for Quantum Science & Engineering, Texas A&M University, TAMU 4242, College Station, TX 77843, USA.

Classifications MeSH