Title :
Advanced Motion Compensation Methods for Intravital Optical Microscopy
Author :
Vinegoni, Claudio ; Sungon Lee ; Feruglio, Paolo Fumene ; Weissleder, R.
Author_Institution :
Center for Syst. Biol., Massachusetts Gen. Hosp. & Harvard Med. Sch., Boston, MA, USA
Abstract :
Intravital microscopy has emerged in the recent decade as an indispensible imaging modality for the study of the microdynamics of biological processes in live animals. Technical advancements in imaging techniques and hardware components, combined with the development of novel targeted probes and new mice models, have enabled us to address long-standing questions in several biology areas such as oncology, cell biology, immunology, and neuroscience. As the instrument resolution has increased, physiological motion activities have become a major obstacle that prevents imaging live animals at resolutions analogue to the ones obtained in vitro. Motion compensation techniques aim at reducing this gap and can effectively increase the in vivo resolution. This paper provides a technical review of some of the latest developments in motion compensation methods, providing organ specific solutions.
Keywords :
biomedical optical imaging; cancer; cellular biophysics; image resolution; medical image processing; motion compensation; neurophysiology; optical microscopy; tumours; advanced motion compensation methods; biological processes; cell biology; hardware components; imaging modality; imaging techniques; immunology; in vivo resolution; intravital optical microscopy; mice models; microdynamics; motion compensation techniques; neuroscience; oncology; organ specific solutions; physiological motion activities; Heart; Image resolution; Mice; Microscopy; Motion compensation; Optical microscopy; Intravital microscopy; image stabilization; in vivo imaging; motion artifact and motion compensation;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2013.2279314