| Literature DB >> 29188108 |
Qi Fang1,2, Andrea Curatolo1,2, Philip Wijesinghe1,3, Yen Ling Yeow4, Juliana Hamzah4, Peter B Noble5,6, Karol Karnowski3, David D Sampson3,7, Ruth Ganss8, Jun Ki Kim9, Woei M Lee10,11, Brendan F Kennedy1,2.
Abstract
In this paper, we describe a technique capable of visualizing mechanical properties at the cellular scale deep in living tissue, by incorporating a gradient-index (GRIN)-lens micro-endoscope into an ultrahigh-resolution optical coherence elastography system. The optical system, after the endoscope, has a lateral resolution of 1.6 µm and an axial resolution of 2.2 µm. Bessel beam illumination and Gaussian mode detection are used to provide an extended depth-of-field of 80 µm, which is a 4-fold improvement over a fully Gaussian beam case with the same lateral resolution. Using this system, we demonstrate quantitative elasticity imaging of a soft silicone phantom containing a stiff inclusion and a freshly excised malignant murine pancreatic tumor. We also demonstrate qualitative strain imaging below the tissue surface on in situ murine muscle. The approach we introduce here can provide high-quality extended-focus images through a micro-endoscope with potential to measure cellular-scale mechanics deep in tissue. We believe this tool is promising for studying biological processes and disease progression in vivo.Entities:
Keywords: (110.4500) Optical coherence tomography; (170.2150) Endoscopic imaging; (170.3880) Medical and biological imaging
Year: 2017 PMID: 29188108 PMCID: PMC5695958 DOI: 10.1364/BOE.8.005127
Source DB: PubMed Journal: Biomed Opt Express ISSN: 2156-7085 Impact factor: 3.732