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Optics Letters|June 11, 2005
Spectral-domain phase microscopyMichael A Choma, Audrey K Ellerbee, Changhuei Yang, et al.Biomedical Optics Express|September 30, 2015
Three-dimensional, three-vector-component velocimetry of cilia-driven fluid flow using correlation-based approaches in optical coherence tomographyBrendan K Huang, Ute A Gamm, Vineet Bhandari, et al.Optics Letters|March 28, 2003
Molecular contrast in optical coherence tomography by use of a pump-probe techniqueK Divakar Rao, Michael A Choma, Siavash Yazdanfar, et al.Circulation|November 27, 2002
Optical coherence tomography: a new high-resolution imaging technology to study cardiac development in chick embryosT Mesud Yelbuz, Michael A Choma, Lars Thrane, et al.Journal of Biomedical Optics|March 10, 2015
Quantitative optical coherence tomography imaging of intermediate flow defect phenotypes in ciliary physiology and pathophysiologyBrendan K Huang, Ute A Gamm, Stephan Jonas, et al.Journal of Biomedical Optics|September 18, 2007
Spectral domain phase microscopy for local measurements of cytoskeletal rheology in single cellsEmily J McDowell, Audrey K Ellerbee, Michael A Choma, et al.Journal of Biomedical Optics|August 27, 2015
Quantifying hyperoxia-mediated damage to mammalian respiratory cilia-driven fluid flow using particle tracking velocimetry optical coherence tomographyUte A Gamm, Brendan K Huang, Mansoor Syed, et al.Disease Models & Mechanisms|December 25, 2010
Physiological homology between Drosophila melanogaster and vertebrate cardiovascular systemsMichael A Choma, Melissa J Suter, Benjamin J Vakoc, et al.Scientific Reports|November 10, 2017
Visualization and quantification of injury to the ciliated epithelium using quantitative flow imaging and speckle variance optical coherence tomographyUte A Gamm, Brendan K Huang, Emily K Mis, et al.Scientific Reports|February 15, 2017
Analysis of Craniocardiac Malformations in Xenopus using Optical Coherence TomographyEngin Deniz, Stephan Jonas, Michael Hooper, et al.Pageof 7