Radha Kalluri

Affiliations: 
Harvard Medical School / Eaton Peabody Lab, Boston, MA, United States 
Area:
Inner Ear Biophysics, Otoacoustic Emissions
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"Radha Kalluri"
Mean distance: 15.85 (cluster 11)
 
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Publications

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Iyer MR, Ventura C, Bronson D, et al. (2023) Isolating and Culturing Vestibular and Spiral Ganglion Somata from Neonatal Rodents for Patch-Clamp Recordings. Journal of Visualized Experiments : Jove
Bronson D, Kalluri R. (2023) Muscarinic Acetylcholine Receptors Modulate HCN Channel Properties in Vestibular Ganglion Neurons. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience. 43: 902-917
Markowitz AL, Iyer MR, Kalluri R. (2022) Patch-clamp Recordings and Single Fiber Labeling from Spiral Ganglion Somata in Acutely Prepared Semi-intact Cochleae from Neonatal Rats. Bio-Protocol. 12: e4281
Kalluri R. (2021) Similarities in the Biophysical Properties of Spiral-Ganglion and Vestibular-Ganglion Neurons in Neonatal Rats. Frontiers in Neuroscience. 15: 710275
Markowitz AL, Kalluri R. (2020) Gradients in the biophysical properties of neonatal auditory neurons align with synaptic contact position and the intensity coding map of inner hair cells. Elife. 9
Menendez L, Trecek T, Gopalakrishnan S, et al. (2020) Generation of inner ear hair cells by direct lineage conversion of primary somatic cells. Elife. 9
Ventura CM, Kalluri R. (2019) Enhanced activation of HCN channels reduces excitability and spike-timing regularity in maturing vestibular afferent neurons. The Journal of Neuroscience : the Official Journal of the Society For Neuroscience
Abdala C, Kalluri R. (2017) Towards a joint reflection-distortion otoacoustic emission profile: Results in normal and impaired ears. The Journal of the Acoustical Society of America. 142: 812
Kalluri R, Monges-Hernandez M. (2017) Spatial Gradients in the Size of Inner Hair Cell Ribbons Emerge Before the Onset of Hearing in Rats. Journal of the Association For Research in Otolaryngology : Jaro
Hight AE, Kalluri R. (2016) A biophysical model examining the role of low-voltage-activated-potassium currents in shaping the responses of vestibular ganglion neurons. Journal of Neurophysiology. jn.00107.2016
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