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  1. Home
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Browsing by Author "Belyantseva, Inna A."

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    Actin at stereocilia tips is regulated by mechanotransduction and ADF/cofilin
    (Elsevier, 2021-03) McGrath, Jamis; Tung, Chun-Yu; Liao, Xiayi; Belyantseva, Inna A.; Roy, Pallabi; Chakraborty, Oisorjo; Li, Jinan; Berbari, Nicolas F.; Faaborg-Andersen, Christian C.; Barzik, Melanie; Bird, Jonathan E.; Zhao, Bo; Balakrishnan, Lata; Friedman, Thomas B.; Perrin, Benjamin J.; Biology, School of Science
    Stereocilia on auditory sensory cells are actin-based protrusions that mechanotransduce sound into an electrical signal. These stereocilia are arranged into a bundle with three rows of increasing length to form a staircase-like morphology that is required for hearing. Stereocilia in the shorter rows, but not the tallest row, are mechanotransducing because they have force-sensitive channels localized at their tips. The onset of mechanotransduction during mouse postnatal development refines stereocilia length and width. However, it is unclear how actin is differentially regulated between stereocilia in the tallest row of the bundle and the shorter, mechanotransducing rows. Here, we show actin turnover is increased at the tips of mechanotransducing stereocilia during bundle maturation. Correspondingly, from birth to postnatal day 6, these stereocilia had increasing amounts of available actin barbed ends, where monomers can be added or lost readily, as compared with the non-mechanotransducing stereocilia in the tallest row. The increase in available barbed ends depended on both mechanotransduction and MYO15 or EPS8, which are required for the normal specification and elongation of the tallest row of stereocilia. We also found that loss of the F-actin-severing proteins ADF and cofilin-1 decreased barbed end availability at stereocilia tips. These proteins enriched at mechanotransducing stereocilia tips, and their localization was perturbed by the loss of mechanotransduction, MYO15, or EPS8. Finally, stereocilia lengths and widths were dysregulated in Adf and Cfl1 mutants. Together, these data show that actin is remodeled, likely by a severing mechanism, in response to mechanotransduction.
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    ANKRD24 organizes TRIOBP to reinforce stereocilia insertion points
    (JCB, 2022-02-17) Krey, Jocelyn F.; Liu, Chang; Belyantseva, Inna A.; Bateschell, Michael; Dumont, Rachel A.; Goldsmith, Jennifer; Chatterjee, Paroma; Morrill, Rachel S.; Fedorov, Lev M.; Foster, Sarah; Kim, Jinkyung; Nuttall, Alfred L.; Jones, Sherri M.; Choi, Dongseok; Friedman, Thomas B.; Ricci, Anthony J.; Zhao, Bo; Barr-Gillespie, Peter G.; Otolaryngology -- Head and Neck Surgery, School of Medicine
    The stereocilia rootlet is a key structure in vertebrate hair cells, anchoring stereocilia firmly into the cell’s cuticular plate and protecting them from overstimulation. Using superresolution microscopy, we show that the ankyrin-repeat protein ANKRD24 concentrates at the stereocilia insertion point, forming a ring at the junction between the lower and upper rootlets. Annular ANKRD24 continues into the lower rootlet, where it surrounds and binds TRIOBP-5, which itself bundles rootlet F-actin. TRIOBP-5 is mislocalized in Ankrd24KO/KO hair cells, and ANKRD24 no longer localizes with rootlets in mice lacking TRIOBP-5; exogenous DsRed–TRIOBP-5 restores endogenous ANKRD24 to rootlets in these mice. Ankrd24KO/KO mice show progressive hearing loss and diminished recovery of auditory function after noise damage, as well as increased susceptibility to overstimulation of the hair bundle. We propose that ANKRD24 bridges the apical plasma membrane with the lower rootlet, maintaining a normal distribution of TRIOBP-5. Together with TRIOBP-5, ANKRD24 organizes rootlets to enable hearing with long-term resilience.
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    Semi-automated single-molecule microscopy screening of fast-dissociating specific antibodies directly from hybridoma cultures
    (Elsevier, 2021-02-02) Miyoshi, Takushi; Zhang, Qianli; Miyake, Takafumi; Watanabe, Shin; Ohnishi, Hiroe; Chen, Jiji; Vishwasrao, Harshad D.; Chakraborty, Oisorjo; Belyantseva, Inna A.; Perrin, Benjamin J.; Shroff, Hari; Friedman, Thomas B.; Omori, Koichi; Watanabe, Naoki; Biology, School of Science
    Fast-dissociating, specific antibodies are single-molecule imaging probes that transiently interact with their targets and are used in biological applications including image reconstruction by integrating exchangeable single-molecule localization (IRIS), a multiplexable super-resolution microscopy technique. Here, we introduce a semi-automated screen based on single-molecule total internal reflection fluorescence (TIRF) microscopy of antibody-antigen binding, which allows for identification of fast-dissociating monoclonal antibodies directly from thousands of hybridoma cultures. We develop monoclonal antibodies against three epitope tags (FLAG-tag, S-tag, and V5-tag) and two F-actin crosslinking proteins (plastin and espin). Specific antibodies show fast dissociation with half-lives ranging from 0.98 to 2.2 s. Unexpectedly, fast-dissociating yet specific antibodies are not so rare. A combination of fluorescently labeled Fab probes synthesized from these antibodies and light-sheet microscopy, such as dual-view inverted selective plane illumination microscopy (diSPIM), reveal rapid turnover of espin within long-lived F-actin cores of inner-ear sensory hair cell stereocilia, demonstrating that fast-dissociating specific antibodies can identify novel biological phenomena.
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    Taperin bundles F-actin at stereocilia pivot points enabling optimal lifelong mechanosensitivity
    (Rockefeller University Press, 2025) Belyantseva, Inna A.; Liu, Chang; Dragich, Abigail K.; Miyoshi, Takushi; Inagaki, Sayaka; Imtiaz, Ayesha; Tona, Risa; Zuluaga-Osorio, Karen Sofia; Hadi, Shadan; Wilson, Elizabeth; Morozko, Eva; Olszewski, Rafal; Yousaf, Rizwan; Sokolova, Yuliya; Riordan, Gavin P.; Aston, S. Andrew; Rehman, Atteeq U.; Fenollar Ferrer, Cristina; Wisniewski, Jan; Gu, Shoujun; Nayak, Gowri; Goodyear, Richard J.; Li, Jinan; Krey, Jocelyn F.; Wafa, Talah; Faridi, Rabia; Adadey, Samuel Mawuli; Drummond, Meghan; Perrin, Benjamin; Winkler, Dennis C.; Starost, Matthew F.; Cheng, Hui; Fitzgerald, Tracy; Richardson, Guy P.; Dong, Lijin; Barr-Gillespie, Peter G.; Hoa, Michael; Frolenkov, Gregory I.; Friedman, Thomas B.; Zhao, Bo; Otolaryngology -- Head and Neck Surgery, School of Medicine
    Stereocilia are rod-like mechanosensory projections consisting of unidirectionally oriented actin filaments that extend into the inner ear hair cell cytoskeleton, forming dense rootlets. Taperin (TPRN) localizes to the narrowed-down base of stereocilia, where they pivot in response to sound and gravity. We show that TPRN-deficient mice have progressive deafness characterized by gradual asynchronous retraction and fusion of outer and inner hair cell stereocilia, followed by synaptic abnormalities. Stereocilia that lack TPRN develop warped rootlets with gradual loss of TRIOBP-5 and ANKRD24 from mechanosensory rows starting postnatally. In contrast, TPRN overexpression causes excessive F-actin bundling, extra rows, and over-elongation of stereocilia during development. Purified full-length mouse TPRN cross-links F-actin into bendable bundles reflecting in vivo data. This F-actin-bundling ability is attributed to the TPRN N-terminal region. TPRN interacts with the membrane receptor PTPRQ, connecting the F-actin core to the plasma membrane, stabilizing stereocilia. Thus, TPRN is a specialized F-actin bundler strategically located to augment stereocilia rootlet formation and their pivot point flexibility for sustained sound-induced deflections.
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