| Literature DB >> 30729762 |
Arseniy A Gavdush1,2, Nikita V Chernomyrdin1,2, Kirill M Malakhov1,2, Sheyh-Islyam T Beshplav3, Irina N Dolganova2,4, Alexandra V Kosyrkova3, Pavel V Nikitin3, Guzel R Musina1,2, Gleb M Katyba2,4, Igor V Reshetov5, Olga P Cherkasova1,6, Gennady A Komandin1, Valery E Karasik2, Alexander A Potapov3, Valery V Tuchin7, Kirill I Zaytsev1,2.
Abstract
We applied terahertz (THz)-pulsed spectroscopy to study ex vivo the refractive index and absorption coefficient of human brain gliomas featuring different grades, as well as perifocal regions containing both intact and edematous tissues. Glioma samples from 26 patients were considered and analyzed according to further histological examination. In order to fix tissues for the THz measurements, we applied gelatin embedding, which allows for sustaining their THz response unaltered, as compared to that of the freshly excised tissues. We observed a statistical difference between the THz optical constants of intact tissues and gliomas of grades I to IV, while the response of edema was similar to that of tumor. The results of this paper justify a potential of THz technology in the intraoperative label-free diagnosis of human brain gliomas for ensuring the gross-total resection.Entities:
Keywords: absorption coefficient; gelatin embedding; human brain gliomas; intraoperative neurodiagnosis; refractive index; terahertz optical properties; terahertz technology; terahertz-pulsed spectroscopy
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Year: 2019 PMID: 30729762 PMCID: PMC6988181 DOI: 10.1117/1.JBO.24.2.027001
Source DB: PubMed Journal: J Biomed Opt ISSN: 1083-3668 Impact factor: 3.170
Information about human glioma samples.
| # | Age | Gender | Pathology | WHO grade |
|---|---|---|---|---|
| 1 | 39 | Female | Piloid astrocytoma | I |
| 2 | 25 | Female | Gangliocytoma | I |
| 3 | 31 | Male | Diffuse astrocytoma | II |
| 4 | 56 | Female | Oligodendroglioma | II |
| 5 | 29 | Male | Diffuse astrocytoma | II |
| 6 | 42 | Male | Diffuse astrocytoma | II |
| 7 | 34 | Female | Oligodendroglioma | II |
| 8 | 43 | Male | Oligodendroglioma | II |
| 9 | 18 | Male | Pleomorphic xanthoastrocytoma | II |
| 10 | 63 | Female | Diffuse astrocytoma | II |
| 11 | 58 | Female | Oligodendroglioma | II |
| 12 | 47 | Female | Anaplastic astrocytoma | III |
| 13 | 26 | Female | Anaplastic oligodendroglioma | III |
| 14 | 68 | Male | Anaplastic oligodendroglioma | III |
| 15 | 38 | Male | Anaplastic oligodendroglioma | III |
| 16 | 35 | Male | Glioblastoma | IV |
| 17 | 63 | Female | Glioblastoma | IV |
| 18 | 34 | Female | Glioblastoma | IV |
| 19 | 56 | Male | Glioblastoma | IV |
| 20 | 55 | Female | Glioblastoma | IV |
| 21 | 54 | Female | Glioblastoma | IV |
| 22 | 69 | Female | Glioblastoma | IV |
| 23 | 64 | Female | Glioblastoma | IV |
| 24 | 54 | Female | Glioblastoma | IV |
| 25 | 50 | Male | Gliosarcoma | IV |
| 26 | 55 | Female | Glioblastoma | IV |
Fig. 1Experimental characterization of gelatin-embedded human brain gliomas: (a) a reflection-mode THz spectroscopy unit, based on off-axis gold-coated parabolic mirrors and a reference window, on the top of which the tissue sample is handled; (b), (c) reference and sample signals of the THz-pulsed spectrometer, represented in the frequency and time domains, respectively. In (a), the angle of THz wave incidence on the quartz window–tissue (or free space) interface is .
Fig. 2Refractive index , amplitude absorption coefficient , and H&E-stained histology of gelatin-embedded human brain gliomas of different WHO grades ex vivo: (a)–(c) grade I; (d)–(f) grade II; (g)–(i) grade III; and (j)–(l) grade IV. The THz optical properties of gliomas are compared with equal data for the intact and edematous tissues, averages within the entire set of brain tissues specimens. The error bars represent a confidential interval of measurements, assuming fluctuation of optical properties within each tissue sample and each tissue class.