A. Abstract and Key Personnel Digital image acquisition and analysis are key to the research goals of the Center. There are currently 24 Center research teams actively using a number of shared hardware/software systems for image acquisition and analysis. Current applications of computer-assisted image processing span a wide range of complexity including 1) use of turn-key systems such as confocal microscopy or digital photomicroscopy for image acquisition through light and electron microscopes;2) use of interactive """"""""computer-aided anatomy"""""""" systems for automating the extraction of quantitative information in 2-D and 3-D from histological sections;3) customization of software packages for 3-D reconstruction and rendering from serial image stacks to aid in the visualization and understanding of complex morphological relationships, and 4) software development for the creation of image-analysis paradigms in functional brain imaging. The goals of the Imaging Core are to provide the expertise and technical support required for Center Investigators to derive full benefit from the research tools available in this fast-changing hardware/software environment and to disseminate, where practical, the imaging tools developed here to the wider scientific and clinical community. To achieve this, the Imaging Core will provide support at several levels.
Aim 1 (image acquisition) provides facilities maintenance, user training and/or image-acquisition services on the new shared confocal microscope and shared digital-image acquisition systems for light and electron microscopy.
Aim 2 (image analysis and processing) addresses needs for a centralized base of relevant knowledge and expertise in image analysis and software development to aid in 1) the matching of software application with research goals when a good match exists, 2) the customization of software required when existing applications, or groups of applications, can be modified to fit particular needs, and 3) the de-novo development of image-processing software tools when no other good solution exists.
Aim 3 (dissemination) proposes the further development of virtual teaching and research tools and the continued sponsorship of a website to make them available to the greater scientific community.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Center Core Grants (P30)
Project #
2P30DC005209-11
Application #
8300409
Study Section
Special Emphasis Panel (ZDC1-SRB-Y (58))
Project Start
Project End
Budget Start
2012-06-01
Budget End
2013-05-31
Support Year
11
Fiscal Year
2012
Total Cost
$194,173
Indirect Cost
$70,496
Name
Massachusetts Eye and Ear Infirmary
Department
Type
DUNS #
073825945
City
Boston
State
MA
Country
United States
Zip Code
02114
Currall, Benjamin B; Chen, Ming; Sallari, Richard C et al. (2018) Loss of LDAH associated with prostate cancer and hearing loss. Hum Mol Genet 27:4194-4203
Gao, Xue; Tao, Yong; Lamas, Veronica et al. (2018) Treatment of autosomal dominant hearing loss by in vivo delivery of genome editing agents. Nature 553:217-221
Francis, Nikolas A; Zhao, Wei; Guinan Jr, John J (2018) Auditory Attention Reduced Ear-Canal Noise in Humans by Reducing Subject Motion, Not by Medial Olivocochlear Efferent Inhibition: Implications for Measuring Otoacoustic Emissions During a Behavioral Task. Front Syst Neurosci 12:42
Hancock, Kenneth E; Chung, Yoojin; McKinney, Martin F et al. (2017) Temporal Envelope Coding by Inferior Colliculus Neurons with Cochlear Implant Stimulation. J Assoc Res Otolaryngol 18:771-788
Zuk, Nathaniel; Delgutte, Bertrand (2017) Neural coding of time-varying interaural time differences and time-varying amplitude in the inferior colliculus. J Neurophysiol 118:544-563
Berezina-Greene, Maria A; Guinan Jr, John J (2017) Electrically Evoked Medial Olivocochlear Efferent Effects on Stimulus Frequency Otoacoustic Emissions in Guinea Pigs. J Assoc Res Otolaryngol 18:153-163
Nam, Hui; Guinan Jr, John J (2017) Non-tip auditory-nerve responses that are suppressed by low-frequency bias tones originate from reticular lamina motion. Hear Res 358:1-9
Valero, M D; Burton, J A; Hauser, S N et al. (2017) Noise-induced cochlear synaptopathy in rhesus monkeys (Macaca mulatta). Hear Res 353:213-223
Kao, W Katherine; Gagnon, Patricia M; Vogel, Joseph P et al. (2017) Surface charge modification decreases Pseudomonas aeruginosa adherence in vitro and bacterial persistence in an in vivo implant model. Laryngoscope 127:1655-1661
Suzuki, Jun; Hashimoto, Ken; Xiao, Ru et al. (2017) Cochlear gene therapy with ancestral AAV in adult mice: complete transduction of inner hair cells without cochlear dysfunction. Sci Rep 7:45524

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