Histological validation of in vivo assessment of cancer tissue inhomogeneity and automated morphological segmentation enabled by Optical Coherence Elastography
暂无分享,去创建一个
A. A. Plekhanov | A. Matveyev | L. Matveev | A. Sovetsky | V. Zaitsev | E. Zagaynova | N. Gladkova | M. Sirotkina | E. Gubarkova | A. Plekhanov | S. Kuznetsov
[1] A. Matveyev,et al. Full-optical method of local stress standardization to exclude nonlinearity-related ambiguity of elasticity estimation in compressional optical coherence elastography , 2020, Laser Physics Letters.
[2] Marina A. Sirotkina,et al. Determining morphological structures’ stiffness values of tumor tissue by optical coherence elastography , 2020, Saratov Fall Meeting.
[3] A. Matveyev,et al. Characterization of elastic nonlinear properties of the tissues using compressional optical coherence elastography , 2020 .
[4] A. A. Plekhanov,et al. In vivo assessment of functional and morphological alterations in tumors under treatment using OCT-angiography combined with OCT-elastography. , 2020, Biomedical optics express.
[5] Yu Suk Choi,et al. Three-dimensional imaging of cell and extracellular matrix elasticity using quantitative micro-elastography. , 2020, Biomedical optics express.
[6] K. Parker. Vibration sonoelastography , 2020, Tissue Elasticity Imaging.
[7] R. Lerner. An early history of elasticity imaging , 2020 .
[8] L. Matveev,et al. Optical coherence angiography for pre-treatment assessment and treatment monitoring following photodynamic therapy: a basal cell carcinoma patient study , 2019, Scientific Reports.
[9] Victoria Sanz-Moreno,et al. Faculty Opinions recommendation of QuPath: Open source software for digital pathology image analysis. , 2019, Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature.
[10] M. Hemann,et al. A dynamic view of chemotherapy effectiveness , 2019, Nature.
[11] Natalia D. Gladkova,et al. Compressional optical coherence elastography for performing histology-like assessment of breast cancers , 2019, European Conference on Biomedical Optics.
[12] D. U. Campos-Delgado,et al. AI-Assisted In Situ Detection of Human Glioma Infiltration Using a Novel Computational Method for Optical Coherence Tomography , 2019, Clinical Cancer Research.
[13] Elena V Zagaynova,et al. Optical coefficients as tools for increasing the optical coherence tomography contrast for normal brain visualization and glioblastoma detection , 2019, Neurophotonics.
[14] A. Oldenburg,et al. Localized compliance measurement of the airway wall using anatomic optical coherence elastography. , 2019, Optics express.
[15] Marina A. Sirotkina,et al. Optical coherence elastography as a new method for estimation of chemotherapy efficacy on triple-negative breast cancer in the experiment , 2019, Saratov Fall Meeting.
[16] L. Matveev,et al. Accurate early prediction of tumour response to PDT using optical coherence angiography , 2019, Scientific Reports.
[17] Marina A. Sirotkina,et al. OCT-elastography-based optical biopsy for breast cancer delineation and express assessment of morphological/molecular subtypes. , 2019, Biomedical optics express.
[18] Elena V. Zagaynova,et al. Cross-Polarization Optical Coherence Tomography for Brain Tumor Imaging , 2019, Front. Oncol..
[19] John Y. K. Lee,et al. Indocyanine-Green for Fluorescence-Guided Surgery of Brain Tumors: Evidence, Techniques, and Practical Experience , 2019, Front. Surg..
[20] Matt S. Hepburn,et al. Analysis of spatial resolution in phase-sensitive compression optical coherence elastography. , 2019, Biomedical optics express.
[21] Chi-Kuang Sun,et al. Slide‐free imaging of hematoxylin‐eosin stained whole‐mount tissues using combined third‐harmonic generation and three‐photon fluorescence microscopy , 2019, Journal of biophotonics.
[22] Nadezhda P. Pavlova,et al. Quantitative nontumorous and tumorous human brain tissue assessment using microstructural co- and cross-polarized optical coherence tomography , 2019, Scientific Reports.
[23] Philip Wijesinghe,et al. Volumetric quantitative optical coherence elastography with an iterative inversion method. , 2019, Biomedical optics express.
[24] Grigory V Gelikonov,et al. Revealing structural modifications in thermomechanical reshaping of collagenous tissues using optical coherence elastography , 2018, Journal of biophotonics.
[25] Marina A. Sirotkina,et al. Optical Coherence Elastography for Non-Invasive Monitoring of Tumor Elasticity under Chemotherapy: Pilot Study , 2018, Sovremennye tehnologii v medicine.
[26] Alex Vitkin,et al. Optical coherence tomography‐based angiography device with real‐time angiography B‐scans visualization and hand‐held probe for everyday clinical use , 2018, Journal of biophotonics.
[27] Zohreh Hosseinaee,et al. Comparative Study of Optical Coherence Tomography Angiography and Phase-Resolved Doppler Optical Coherence Tomography for Measurement of Retinal Blood Vessels Caliber , 2018, Translational vision science & technology.
[28] L. Qiu,et al. A preliminary study , 2018, Medicine.
[29] Lev A. Matveev,et al. Manually-operated compressional optical coherence elastography with effective aperiodic averaging: demonstrations for corneal and cartilaginous tissues , 2018, Laser Physics Letters.
[30] Marina A. Sirotkina,et al. OCT-based characterization of the nonlinear properties of biological tissues in various states , 2018, Photonics Europe.
[31] E. V. Gubarkova,et al. Multimodal OCT characterization of human breast cancer morphological types: preliminary study , 2018, Photonics Europe.
[32] Alexander A. Moiseev,et al. Vector method for strain estimation in phase-sensitive optical coherence elastography , 2018 .
[33] José Vassallo,et al. Collagen analysis by second-harmonic generation microscopy predicts outcome of luminal breast cancer , 2018, Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine.
[34] Alex Vitkin,et al. Pixel classification method in optical coherence tomography for tumor segmentation and its complementary usage with OCT microangiography , 2018, Journal of biophotonics.
[35] A. Ozcan,et al. Deep learning-based virtual histology staining using auto-fluorescence of label-free tissue , 2018, ArXiv.
[36] Peter König,et al. Novel endoscope with increased depth of field for imaging human nasal tissue by microscopic optical coherence tomography. , 2018, Biomedical optics express.
[37] M. Setou,et al. Imaging mass spectroscopy delineates the thinned and thickened walls of intracranial aneurysms. , 2018, Biochemical and biophysical research communications.
[38] L. Matveev,et al. In-vivo longitudinal imaging of microvascular changes in irradiated oral mucosa of radiotherapy cancer patients using optical coherence tomography , 2017, Scientific Reports.
[39] Marina A. Sirotkina,et al. Practical obstacles and their mitigation strategies in compressional optical coherence elastography of biological tissues , 2017 .
[40] Philip Wijesinghe,et al. Ultrahigh-resolution optical coherence elastography through a micro-endoscope: towards in vivo imaging of cellular-scale mechanics. , 2017, Biomedical optics express.
[41] Lixin Chin,et al. Simplifying the assessment of human breast cancer by mapping a micro‐scale heterogeneity index in optical coherence elastography , 2017, Journal of biophotonics.
[42] Howard J Ginsberg,et al. Optimized Mass Spectrometry Analysis Workflow with Polarimetric Guidance for ex vivo and in situ Sampling of Biological Tissues , 2017, Scientific Reports.
[43] Xiangdong Wang,et al. Roles of tumor heterogeneity in the development of drug resistance: A call for precision therapy. , 2017, Seminars in cancer biology.
[44] Valery P Zakharov,et al. Combined Raman and autofluorescence ex vivo diagnostics of skin cancer in near-infrared and visible regions , 2017, Journal of biomedical optics.
[45] Alberto Bianco,et al. Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy , 2017, Theranostics.
[46] Grigory V Gelikonov,et al. Optimized phase gradient measurements and phase-amplitude interplay in optical coherence elastography , 2016, Journal of biomedical optics.
[47] Philip Wijesinghe,et al. Wide-field optical coherence micro-elastography for intraoperative assessment of human breast cancer margins. , 2016, Biomedical optics express.
[48] Grigory V Gelikonov,et al. Hybrid method of strain estimation in optical coherence elastography using combined sub‐wavelength phase measurements and supra‐pixel displacement tracking , 2016, Journal of biophotonics.
[49] Tianheng Wang,et al. Correlating optical coherence elastography based strain measurements with collagen content of the human ovarian tissue. , 2015, Biomedical optics express.
[50] Philip Wijesinghe,et al. Investigation of Optical Coherence Microelastography as a Method to Visualize Cancers in Human Breast Tissue. , 2015, Cancer research.
[51] N. Volchenko,et al. Срочная интраоперационная морфологическая диагностика в онкологии , 2015 .
[52] Grigory V Gelikonov,et al. Deformation-induced speckle-pattern evolution and feasibility of correlational speckle tracking in optical coherence elastography , 2015, Journal of biomedical optics.
[53] Grigory V Gelikonov,et al. Hybrid M-mode-like OCT imaging of three-dimensional microvasculature in vivo using reference-free processing of complex valued B-scans. , 2014, Optics letters.
[54] Elena V. Zagaynova,et al. Development of the Methodology of Monitoring Experimental Tumors Using Multimodal Optical Coherence Tomography: the Choice of an Optimal Tumor Model , 2015 .
[55] C. Garcia,et al. Morphological and Immunophenotipical Characterization of Murine Mammary Carcinoma 4t1 , 2014 .
[56] Lixin Chin,et al. Analysis of image formation in optical coherence elastography using a multiphysics approach. , 2014, Biomedical optics express.
[57] Siqi Liu,et al. Necrosis, and then stress induced necrosis-like cell death, but not apoptosis, should be the preferred cell death mode for chemotherapy: clearance of a few misconceptions , 2014, Oncoscience.
[58] Kelsey M. Kennedy,et al. Analysis of mechanical contrast in optical coherence elastography , 2013, Journal of biomedical optics.
[59] W. Oyen,et al. Bevacizumab reduces tumor targeting of antiepidermal growth factor and anti‐insulin‐like growth factor 1 receptor antibodies , 2013, International journal of cancer.
[60] Myung-Hwan Jung,et al. Optical Monitoring of Tumors in BALB/c Nude Mice Using Optical Coherence Tomography , 2013 .
[61] Ja Gilbertson,et al. Bancroft's Theory and Practice of Histological Techniques , 2012 .
[62] R. Schulz-Wendtland. Neoadjuvant chemotherapy--monitoring: clinical examination, ultrasound, mammography, MRI, elastography: only one, only few or all? , 2012, European journal of radiology.
[63] Robert A. McLaughlin,et al. Strain estimation in phase-sensitive optical coherence elastography , 2012, Biomedical optics express.
[64] E. Mohammadi,et al. Barriers and facilitators related to the implementation of a physiological track and trigger system: A systematic review of the qualitative evidence , 2017, International journal for quality in health care : journal of the International Society for Quality in Health Care.
[65] D. McMillan,et al. The prognostic value of histological tumor necrosis in solid organ malignant disease: a systematic review. , 2011, Future oncology.
[66] D. Noh,et al. Clinical application of shear wave elastography (SWE) in the diagnosis of benign and malignant breast diseases , 2011, Breast Cancer Research and Treatment.
[67] A. Pierangelo,et al. Ex-vivo characterization of human colon cancer by Mueller polarimetric imaging. , 2011, Optics express.
[68] D. Rubens,et al. Imaging the elastic properties of tissue: the 20 year perspective , 2011, Physics in medicine and biology.
[69] Yixiang Wang,et al. Investigation of the efficacy of a bevacizumab-cetuximab-cisplatin regimen in treating head and neck squamous cell carcinoma in mice , 2010, Targeted Oncology.
[70] D. Sampson,et al. In vivo dynamic optical coherence elastography using a ring actuator. , 2009, Optics express.
[71] Grigory V. Gelikonov,et al. Coherent noise compensation in Spectral-Domain optical coherence tomography , 2009 .
[72] D. Sampson,et al. Audio frequency in vivo optical coherence elastography , 2009, Physics in medicine and biology.
[73] Grigory V. Gelikonov,et al. Linear-wavenumber spectrometer for high-speed spectral-domain optical coherence tomography , 2009 .
[74] S. Thomson,et al. Feedback mechanisms promote cooperativity for small molecule inhibitors of epidermal and insulin-like growth factor receptors. , 2008, Cancer research.
[75] W. Scheuer,et al. Combination Treatment with Erlotinib and Pertuzumab against Human Tumor Xenografts Is Superior to Monotherapy , 2005, Clinical Cancer Research.
[76] Dong Wang,et al. Cellular processing of platinum anticancer drugs , 2005, Nature Reviews Drug Discovery.
[77] M. Tomayko,et al. Determination of subcutaneous tumor size in athymic (nude) mice , 2004, Cancer Chemotherapy and Pharmacology.
[78] L. Brown,et al. Interval Estimation for a Binomial Proportion , 2001 .
[79] S. Ostrand-Rosenberg,et al. Mouse 4T1 Breast Tumor Model , 2000, Current protocols in immunology.
[80] C. Baird,et al. The pilot study. , 2000, Orthopedic nursing.
[81] T. Krouskop,et al. Elastic Moduli of Breast and Prostate Tissues under Compression , 1998, Ultrasonic imaging.
[82] Rolf Lefering,et al. Probability of adverse events that have not yet occurred: a statistical reminder , 1995, BMJ.
[83] D. G. Wastell,et al. Statistics with confidence—Confidence intervals and statistical guidelines , 1991 .
[84] J. Bancroft,et al. Theory and Practice of Histological Techniques , 1990 .
[85] Douglas G. Altman,et al. Statistics with confidence: Confidence intervals and statistical guidelines . , 1990 .
[86] J A Hanley,et al. If nothing goes wrong, is everything all right? Interpreting zero numerators. , 1983, JAMA.