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1.
STAR Protoc ; 5(2): 103118, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38852155

ABSTRACT

The avian inner ear can naturally regenerate sensory hair cells and is therefore an ideal candidate for investigating mechanisms leading to hair cell regeneration and functional recovery. Here, we present a surgical protocol for eliminating auditory hair cells via sisomicin injection into the lateral semicircular canal. We describe steps for multiplex mRNA detection in chicken basilar papilla and utricle sections. We then detail procedures for integrating immunohistochemistry for concurrent mRNA and protein visualization, complemented by S-phase labeling with EdU. For complete details on the use and execution of this protocol, please refer to Benkafadar et al., Benkafadar et al., Sato et al., Janesick et al., Scheibinger et al.1,2,3,4,5.


Subject(s)
Chickens , Hair Cells, Auditory , Immunohistochemistry , RNA, Messenger , Animals , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Messenger/analysis , Immunohistochemistry/methods , Hair Cells, Auditory/metabolism
2.
J Otolaryngol Head Neck Surg ; 53: 19160216241258431, 2024.
Article in English | MEDLINE | ID: mdl-38888945

ABSTRACT

IMPORTANCE: Mesenchymal stem cells (MSCs) have the capability of providing ongoing paracrine support to degenerating tissues. Since MSCs can be extracted from a broad range of tissues, their specific surface marker profiles and growth factor secretions can be different. We hypothesized that MSCs derived from different sources might also have different neuroprotective potential. OBJECTIVE: In this study, we extracted MSCs from rodent olfactory mucosa and compared their neuroprotective effects on auditory hair cell survival with MSCs extracted from rodent adipose tissue. METHODS: Organ of Corti explants were dissected from 41 cochlea and incubated with olfactory mesenchymal stem cells (OMSCs) and adipose mesenchymal stem cells (AMSCs). After 72 hours, Corti explants were fixed, stained, and hair cells counted. Growth factor concentrations were determined in the supernatant and cell lysate using Enzyme-Linked Immunosorbent Assay (ELISA). RESULTS: Co-culturing of organ of Corti explants with OMSCs resulted in a significant increase in inner and outer hair cell stereocilia survival, compared to control. Comparisons between both stem cell lines, showed that co-culturing with OMSCs resulted in superior inner and outer hair cell stereocilia survival rates over co-culturing with AMSCs. Assessment of growth factor secretions revealed that the OMSCs secrete significant amounts of insulin-like growth factor 1 (IGF-1). Co-culturing OMSCs with organ of Corti explants resulted in a 10-fold increase in IGF-1 level compared to control, and their secretion was 2 to 3 times higher compared to the AMSCs. CONCLUSIONS: This study has shown that OMSCs may mitigate auditory hair cell stereocilia degeneration. Their neuroprotective effects may, at least partially, be ascribed to their enhanced IGF-1 secretory abilities compared to AMSCs.


Subject(s)
Hair Cells, Auditory , Insulin-Like Growth Factor I , Mesenchymal Stem Cells , Animals , Insulin-Like Growth Factor I/metabolism , Mesenchymal Stem Cells/metabolism , Rats , Hair Cells, Auditory/metabolism , Olfactory Mucosa/cytology , Enzyme-Linked Immunosorbent Assay , Coculture Techniques , Cell Survival , Cells, Cultured , Adipose Tissue/cytology , Mesenchymal Stem Cell Transplantation/methods
3.
J Biomed Mater Res B Appl Biomater ; 112(7): e35439, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38923766

ABSTRACT

Sensorineural hearing loss (SNHL) is mainly caused by injury or loss of hair cells (HCs) and associated spiral ganglion neurons (SGNs) in the inner ear. At present, there is still no effective treatment for SNHL in clinic. Recently, advances in organoid bring a promising prospect for research and treatment of SNHL. Meanwhile, three-dimensional (3D) printing provides a tremendous opportunity to construct versatile organoids for tissue engineering and regenerative medicine. In this study, gelatin (Gel), sodium alginate (SA), and polyvinyl alcohol (PVA) were used to fabricate biomimetic scaffold through 3D printing. The organ of Corti derived from neonatal mice inner ear was seeded on the PVA/Gel/SA scaffold to construct organ of Corti organoid. Then, the organ of Corti organoid was used to study the potential protective effects of berberine sulfate on neomycin-juried auditory HCs and SGNs. The results showed that the PVA/Gel/SA biomimetic 3D scaffolds had good cytocompatibilities and mechanical properties. The constructed organoid could maintain organ of Corti activity well in vitro. In addition, the injury intervention results showed that berberine sulfate could significantly inhibit neomycin-induced HC and SGN damage. This study suggests that the fabricated organoid is highly biomimetic to the organ of Corti, which may provide an effective model for drug development, cell and gene therapy for SNHL.


Subject(s)
Berberine , Organ of Corti , Tissue Scaffolds , Animals , Organ of Corti/drug effects , Mice , Berberine/pharmacology , Berberine/chemistry , Tissue Scaffolds/chemistry , Organoids/metabolism , Organoids/drug effects , Printing, Three-Dimensional , Alginates/chemistry , Alginates/pharmacology , Gelatin/chemistry , Gelatin/pharmacology , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Tissue Engineering , Polyvinyl Alcohol/chemistry , Polyvinyl Alcohol/pharmacology , Hearing Loss, Sensorineural , Spiral Ganglion/drug effects , Spiral Ganglion/metabolism
4.
Cells ; 13(9)2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38727276

ABSTRACT

In mammals, hearing loss is irreversible due to the lack of the regenerative capacity of the auditory epithelium. However, stem/progenitor cells in mammalian cochleae may be a therapeutic target for hearing regeneration. The ubiquitin proteasome system plays an important role in cochlear development and maintenance. In this study, we investigated the role of ubiquitin C-terminal hydrolase L1 (UCHL1) in the process of the transdifferentiation of auditory supporting cells (SCs) into hair cells (HCs). The expression of UCHL1 gradually decreased as HCs developed and was restricted to inner pillar cells and third-row Deiters' cells between P2 and P7, suggesting that UCHL1-expressing cells are similar to the cells with Lgr5-positive progenitors. UCHL1 expression was decreased even under conditions in which supernumerary HCs were generated with a γ-secretase inhibitor and Wnt agonist. Moreover, the inhibition of UCHL1 by LDN-57444 led to an increase in HC numbers. Mechanistically, LDN-57444 increased mTOR complex 1 activity and allowed SCs to transdifferentiate into HCs. The suppression of UCHL1 induces the transdifferentiation of auditory SCs and progenitors into HCs by regulating the mTOR pathway.


Subject(s)
Cell Transdifferentiation , Hair Cells, Auditory , Signal Transduction , TOR Serine-Threonine Kinases , Ubiquitin Thiolesterase , Animals , Cell Transdifferentiation/drug effects , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology , Indoles , Labyrinth Supporting Cells/metabolism , Labyrinth Supporting Cells/cytology , Oximes , TOR Serine-Threonine Kinases/metabolism , Ubiquitin Thiolesterase/antagonists & inhibitors , Ubiquitin Thiolesterase/genetics , Ubiquitin Thiolesterase/metabolism , Rats
5.
Stem Cells Transl Med ; 13(7): 661-677, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38709826

ABSTRACT

Loss of cochlear hair cells (HCs) leads to permanent hearing loss in mammals, and regenerative medicine is regarded as an ideal strategy for hearing recovery. Limited genetic and pharmaceutical approaches for HC regeneration have been established, and the existing strategies cannot achieve recovery of auditory function. A promising target to promote HC regeneration is MEK/ERK signaling because dynamic shifts in its activity during the critical stages of inner ear development have been observed. Here, we first showed that MEK/ERK signaling is activated specifically in supporting cells (SCs) after aminoglycoside-induced HC injury. We then selected 4 MEK/ERK signaling inhibitors, and PD0325901 (PD03) was found to induce the transdifferentiation of functional supernumerary HCs from SCs in the neonatal mammalian cochlear epithelium. We next found that PD03 facilitated the generation of HCs in inner ear organoids. Through genome-wide high-throughput RNA sequencing and verification, we found that the Notch pathway is the downstream target of MEK/ERK signaling. Importantly, delivery of PD03 into the inner ear induced mild HC regeneration in vivo. Our study thus reveals the importance of MEK/ERK signaling in cell fate determination and suggests that PD03 might serve as a new approach for HC regeneration.


Subject(s)
Cell Transdifferentiation , Hair Cells, Auditory , MAP Kinase Signaling System , Receptors, Notch , Animals , Cell Transdifferentiation/drug effects , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology , MAP Kinase Signaling System/drug effects , Mice , Receptors, Notch/metabolism , Benzamides/pharmacology , Diphenylamine/analogs & derivatives , Diphenylamine/pharmacology , Labyrinth Supporting Cells/metabolism
6.
Hear Res ; 447: 109021, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38703432

ABSTRACT

Understanding the complex pathologies associated with hearing loss is a significant motivation for conducting inner ear research. Lifelong exposure to loud noise, ototoxic drugs, genetic diversity, sex, and aging collectively contribute to human hearing loss. Replicating this pathology in research animals is challenging because hearing impairment has varied causes and different manifestations. A central aspect, however, is the loss of sensory hair cells and the inability of the mammalian cochlea to replace them. Researching therapeutic strategies to rekindle regenerative cochlear capacity, therefore, requires the generation of animal models in which cochlear hair cells are eliminated. This review discusses different approaches to ablate cochlear hair cells in adult mice. We inventoried the cochlear cyto- and histo-pathology caused by acoustic overstimulation, systemic and locally applied drugs, and various genetic tools. The focus is not to prescribe a perfect damage model but to highlight the limitations and advantages of existing approaches and identify areas for further refinement of damage models for use in regenerative studies.


Subject(s)
Cochlea , Disease Models, Animal , Hair Cells, Auditory , Regeneration , Animals , Hair Cells, Auditory/pathology , Hair Cells, Auditory/metabolism , Mice , Cochlea/pathology , Cochlea/physiopathology , Humans , Hearing , Hearing Loss, Noise-Induced/physiopathology , Hearing Loss, Noise-Induced/pathology , Hearing Loss/pathology , Hearing Loss/physiopathology , Acoustic Stimulation
7.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38804528

ABSTRACT

The planar polarized organization of hair cells in the vestibular maculae is unique because these sensory organs contain two groups of cells with oppositely oriented stereociliary bundles that meet at a line of polarity reversal (LPR). EMX2 is a transcription factor expressed by one hair cell group that reverses the orientation of their bundles, thereby forming the LPR. We generated Emx2-CreERt2 transgenic mice for genetic lineage tracing and demonstrate Emx2 expression before hair cell specification when the nascent utricle and saccule constitute a continuous prosensory domain. Precursors labeled by Emx2-CreERt2 at this stage give rise to hair cells located along one side of the LPR in the mature utricle or saccule, indicating that this boundary is first established in the prosensory domain. Consistent with this, Emx2-CreERt2 lineage tracing in Dreher mutants, where the utricle and saccule fail to segregate, labels a continuous field of cells along one side of a fused utriculo-saccular-cochlear organ. These observations reveal that LPR positioning is pre-determined in the developing prosensory domain, and that EMX2 expression defines lineages of hair cells with oppositely oriented stereociliary bundles.


Subject(s)
Cell Lineage , Cell Polarity , Ear, Inner , Homeodomain Proteins , Mice, Transgenic , Transcription Factors , Animals , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Mice , Cell Lineage/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Ear, Inner/metabolism , Ear, Inner/embryology , Ear, Inner/cytology , Cell Polarity/genetics , Saccule and Utricle/cytology , Saccule and Utricle/metabolism , Saccule and Utricle/embryology , Gene Expression Regulation, Developmental , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology
8.
Hear Res ; 447: 109013, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38718672

ABSTRACT

Cisplatin, a highly effective chemotherapeutic drug for various human cancers, induces irreversible sensorineural hearing loss as a side effect. Currently there are no highly effective clinical strategies for the prevention of cisplatin-induced ototoxicity. Previous studies have indicated that short-term cisplatin ototoxicity primarily affects the outer hair cells of the cochlea. Therefore, preventing the entry of cisplatin into hair cells may be a promising strategy to prevent cisplatin ototoxicity. This study aimed to investigate the entry route of cisplatin into mouse cochlear hair cells. The competitive inhibitor of organic cation transporter 2 (OCT2), cimetidine, and the sensory mechanoelectrical transduction (MET) channel blocker benzamil, demonstrated a protective effect against cisplatin toxicity in hair cells in cochlear explants. Sensory MET-deficient hair cells explanted from Tmc1Δ;Tmc2Δ mice were resistant to cisplatin toxicity. Cimetidine showed an additive protective effect against cisplatin toxicity in sensory MET-deficient hair cells. However, in the apical turn, cimetidine, benzamil, or genetic ablation of sensory MET channels showed limited protective effects, implying the presence of other entry routes for cisplatin to enter the hair cells in the apical turn. Systemic administration of cimetidine failed to protect cochlear hair cells from ototoxicity caused by systemically administered cisplatin. Notably, outer hair cells in MET-deficient mice exhibited no apparent deterioration after systemic administration of cisplatin, whereas the outer hair cells in wild-type mice showed remarkable deterioration. The susceptibility of mouse cochlear hair cells to cisplatin ototoxicity largely depends on the sensory MET channel both ex vivo and in vivo. This result justifies the development of new pharmaceuticals, such as a specific antagonists for sensory MET channels or custom-designed cisplatin analogs which are impermeable to sensory MET channels.


Subject(s)
Antineoplastic Agents , Cimetidine , Cisplatin , Mechanotransduction, Cellular , Organic Cation Transporter 2 , Ototoxicity , Cisplatin/toxicity , Animals , Ototoxicity/prevention & control , Ototoxicity/metabolism , Ototoxicity/physiopathology , Mechanotransduction, Cellular/drug effects , Organic Cation Transporter 2/metabolism , Organic Cation Transporter 2/genetics , Organic Cation Transporter 2/antagonists & inhibitors , Cimetidine/pharmacology , Antineoplastic Agents/toxicity , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/pathology , Hair Cells, Auditory, Outer/drug effects , Hair Cells, Auditory, Outer/pathology , Hair Cells, Auditory, Outer/metabolism , Mice, Inbred C57BL , Mice , Membrane Proteins
9.
Sci Rep ; 14(1): 10910, 2024 05 13.
Article in English | MEDLINE | ID: mdl-38740884

ABSTRACT

Transforming growth factor-ß (TGF-ß) signaling plays a significant role in multiple biological processes, including inflammation, immunity, and cell death. However, its specific impact on the cochlea remains unclear. In this study, we aimed to investigate the effects of TGF-ß signaling suppression on auditory function and cochlear pathology in mice with kanamycin-induced ototoxicity. Kanamycin and furosemide (KM-FS) were systemically administered to 8-week-old C57/BL6 mice, followed by immediate topical application of a TGF-ß receptor inhibitor (TGF-ßRI) onto the round window membrane. Results showed significant TGF-ß receptor upregulation in spiral ganglion neurons (SGNs) after KM-FA ototoxicity, whereas expression levels in the TGF-ßRI treated group remained unchanged. Interestingly, despite no significant change in cochlear TGF-ß expression after KM-FS ototoxicity, TGF-ßRI treatment resulted in a significant decrease in TGF-ß signaling. Regarding auditory function, TGF-ßRI treatment offered no therapeutic effects on hearing thresholds and hair cell survival following KM-FS ototoxicity. However, SGN loss and macrophage infiltration were significantly increased with TGF-ßRI treatment. These results imply that inhibition of TGF-ß signaling after KM-FS ototoxicity promotes cochlear inflammation and SGN degeneration.


Subject(s)
Kanamycin , Mice, Inbred C57BL , Ototoxicity , Signal Transduction , Spiral Ganglion , Transforming Growth Factor beta , Animals , Kanamycin/toxicity , Signal Transduction/drug effects , Ototoxicity/etiology , Ototoxicity/metabolism , Ototoxicity/pathology , Transforming Growth Factor beta/metabolism , Mice , Spiral Ganglion/drug effects , Spiral Ganglion/metabolism , Spiral Ganglion/pathology , Cochlea/metabolism , Cochlea/drug effects , Cochlea/pathology , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/pathology , Furosemide/pharmacology , Male
10.
Toxicol Appl Pharmacol ; 486: 116947, 2024 May.
Article in English | MEDLINE | ID: mdl-38688426

ABSTRACT

AIMS: SERCA2, one of the P-type pumps encoded by gene ATP2A2, is the only calcium reflux channel of the endoplasmic reticulum (ER) and participates in maintaining calcium homeostasis. The present study was designed to explore SERCA2 expression pattern in auditory hair cells and the possible mechanism underlying the effects of SERCA2 on cisplatin-induced ototoxicity. MAIN METHODS: The SERCA2 expression pattern in cochlea hair cells and HEI-OC1 cells was measured by Western blot (WB) and immunofluorescence staining. The apoptosis and its related factors were detected by TUNEL assay and WB. The expression levels of ER stress-related factors, ATF6, PERK, IRE1α, and GRP78, were measured via WB. As for the determination of SERCA2 overexpression and knockdown, plasmids and lentiviral vectors were constructed, respectively. KEY FINDINGS: We found that SERCA2 was highly expressed in cochlea hair cells and HEI-OC1 cells. Of note, the level of SERCA2 expression in neonatal mice was remarkably higher than that in adult mice. Under the exposure of 30 µM cisplatin, SERCA2 was down-regulated significantly compared with the control group. In addition, cisplatin administration triggered the occurrence of ER stress and apoptosis. Those events were reversed by overexpressing SERCA2. On the contrary, SERCA2 knockdown could aggravate the above processes. SIGNIFICANCE: The findings from the present study disclose, for the first time, that SERCA2 is abundantly expressed in cochlea hair cells, and the suppression of SERCA2 caused by cisplatin could trigger ER homeostasis disruption, thereby implying that SERCA2 might be a promising target to prevent cisplatin-induced cytotoxicity of hair cells.


Subject(s)
Apoptosis , Cisplatin , Endoplasmic Reticulum Chaperone BiP , Endoplasmic Reticulum Stress , Hair Cells, Auditory , Sarcoplasmic Reticulum Calcium-Transporting ATPases , Cisplatin/toxicity , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism , Animals , Endoplasmic Reticulum Stress/drug effects , Mice , Apoptosis/drug effects , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/pathology , Cell Line , Antineoplastic Agents/toxicity , Male , Ototoxicity/prevention & control
11.
Sci Rep ; 14(1): 7862, 2024 04 03.
Article in English | MEDLINE | ID: mdl-38570547

ABSTRACT

The small muscle protein, X-linked (SMPX) gene encodes a cytoskeleton-associated protein, highly expressed in the inner ear hair cells (HCs), possibly regulating auditory function. In the last decade, several mutations in SMPX have been associated with X-chromosomal progressive non syndromic hearing loss in humans and, in line with this, Smpx-deficient animal models, namely zebrafish and mouse, showed significant impairment of inner ear HCs development, maintenance, and functioning. In this work, we uncovered smpx expression in the neuromast mechanosensory HCs of both Anterior and Posterior Lateral Line (ALL and PLL, respectively) of zebrafish larvae and focused our attention on the PLL. Smpx was subcellularly localized throughout the cytoplasm of the HCs, as well as in their primary cilium. Loss-of-function experiments, via both morpholino-mediated gene knockdown and CRISPR/Cas9 F0 gene knockout, revealed that the lack of Smpx led to fewer properly differentiated and functional neuromasts, as well as to a smaller PLL primordium (PLLp), the latter also Smpx-positive. In addition, the kinocilia of Smpx-deficient neuromast HCs appeared structurally and numerically altered. Such phenotypes were associated with a significant reduction in the mechanotransduction activity of the neuromast HCs, in line with their positivity for Smpx. In summary, this work highlights the importance of Smpx in lateral line development and, specifically, in proper HCs differentiation and/or maintenance, and in the mechanotransduction process carried out by the neuromast HCs. Because lateral line HCs are both functionally and structurally analogous to the cochlear HCs, the neuromasts might represent an invaluable-and easily accessible-tool to dissect the role of Smpx in HCs development/functioning and shed light on the underlying mechanisms involved in hearing loss.


Subject(s)
Hearing Loss , Lateral Line System , Humans , Animals , Mice , Zebrafish/genetics , Zebrafish/metabolism , Lateral Line System/metabolism , Mechanotransduction, Cellular , Hair Cells, Auditory/metabolism , Hearing Loss/genetics , Muscle Proteins/metabolism
12.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38682291

ABSTRACT

The planar polarized organization of hair cells in the vestibular maculae is unique because these sensory organs contain two groups of cells with oppositely oriented stereociliary bundles that meet at a line of polarity reversal (LPR). EMX2 is a transcription factor expressed by one hair cell group that reverses the orientation of their bundles, thereby forming the LPR. We generated Emx2-CreERt2 transgenic mice for genetic lineage tracing and demonstrate Emx2 expression before hair cell specification when the nascent utricle and saccule constitute a continuous prosensory domain. Precursors labeled by Emx2-CreERt2 at this stage give rise to hair cells located along one side of the LPR in the mature utricle or saccule, indicating that this boundary is first established in the prosensory domain. Consistent with this, Emx2-CreERt2 lineage tracing in Dreher mutants, where the utricle and saccule fail to segregate, labels a continuous field of cells along one side of a fused utriculo-saccular-cochlear organ. These observations reveal that LPR positioning is pre-determined in the developing prosensory domain, and that EMX2 expression defines lineages of hair cells with oppositely oriented stereociliary bundles.


Subject(s)
Cell Lineage , Cell Polarity , Ear, Inner , Homeodomain Proteins , Mice, Transgenic , Transcription Factors , Animals , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Mice , Cell Lineage/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Ear, Inner/metabolism , Ear, Inner/embryology , Ear, Inner/cytology , Cell Polarity/genetics , Saccule and Utricle/cytology , Saccule and Utricle/metabolism , Saccule and Utricle/embryology , Gene Expression Regulation, Developmental , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/cytology
13.
Hear Res ; 446: 109006, 2024 May.
Article in English | MEDLINE | ID: mdl-38583350

ABSTRACT

Hair cells in the cochlear sensory epithelia serve as mechanosensory receptors, converting sound into neuronal signals. The basal sensory epithelia are responsible for transducing high-frequency sounds, while the apex handles low-frequency sounds. Age-related hearing loss predominantly affects hearing at high frequencies and is indicative of damage to the basal sensory epithelia. However, the precise mechanism underlying this site-selective injury remains unclear. In this study, we employed a microscale proteomics approach to examine and compare protein expression in different regions of the cochlear sensory epithelia (upper half and lower half) in 1.5-month-old (normal hearing) and 6-month-old (severe high-frequency hearing loss without hair cell loss) C57BL/6J mice. A total of 2,386 proteins were detected, and no significant differences in protein expression were detected in the upper half of the cochlear sensory epithelia between the two age groups. The expression of 20 proteins in the lower half of the cochlear sensory epithelia significantly differed between the two age groups (e.g., MATN1, MATN4, and AQP1). Moreover, there were 311 and 226 differentially expressed proteins between the upper and lower halves of the cochlear sensory epithelia in 1.5-month-old and 6-month-old mice, respectively. The expression levels of selected proteins were validated by Western blotting. These findings suggest that the spatial differences in protein expression within the cochlear sensory epithelia may play a role in determining the susceptibility of cells at different sites of the cochlea to age-related damage.


Subject(s)
Cochlea , Mice, Inbred C57BL , Presbycusis , Proteomics , Animals , Cochlea/metabolism , Cochlea/pathology , Presbycusis/metabolism , Presbycusis/pathology , Presbycusis/physiopathology , Presbycusis/genetics , Age Factors , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/pathology , Aging/metabolism , Aging/pathology , Disease Models, Animal , Hearing , Epithelium/metabolism , Male , Mice
14.
Int J Mol Sci ; 25(8)2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38673858

ABSTRACT

Hearing loss represents a multifaceted and pervasive challenge that deeply impacts various aspects of an individual's life, spanning psychological, emotional, social, and economic realms. Understanding the molecular underpinnings that orchestrate hearing loss remains paramount in the quest for effective therapeutic strategies. This review aims to expound upon the physiological, biochemical, and molecular aspects of hearing loss, with a specific focus on its correlation with diabetes. Within this context, phytochemicals have surfaced as prospective contenders in the pursuit of potential adjuvant therapies. These compounds exhibit noteworthy antioxidant and anti-inflammatory properties, which hold the potential to counteract the detrimental effects induced by oxidative stress and inflammation-prominent contributors to hearing impairment. Furthermore, this review offers an up-to-date exploration of the diverse molecular pathways modulated by these compounds. However, the dynamic landscape of their efficacy warrants recognition as an ongoing investigative topic, inherently contingent upon specific experimental models. Ultimately, to ascertain the genuine potential of phytochemicals as agents in hearing loss treatment, a comprehensive grasp of the molecular mechanisms at play, coupled with rigorous clinical investigations, stands as an imperative quest.


Subject(s)
Antioxidants , Hair Cells, Auditory , Hearing Loss, Sensorineural , Oxidative Stress , Phytochemicals , Oxidative Stress/drug effects , Humans , Phytochemicals/pharmacology , Phytochemicals/therapeutic use , Hearing Loss, Sensorineural/drug therapy , Hearing Loss, Sensorineural/metabolism , Animals , Antioxidants/pharmacology , Antioxidants/therapeutic use , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Cell Death/drug effects , Anti-Inflammatory Agents/pharmacology , Anti-Inflammatory Agents/therapeutic use
15.
Arch Toxicol ; 98(6): 1827-1842, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38563869

ABSTRACT

Aminoglycosides are commonly used antibiotics for treatment of gram-negative bacterial infections, however, they might act on inner ear, leading to hair-cell death and hearing loss. Currently, there is no targeted therapy for aminoglycoside ototoxicity, since the underlying mechanisms of aminoglycoside-induced hearing impairments are not fully defined. This study aimed to investigate whether the calcium channel blocker verapamil and changes in intracellular & extracellular calcium could ameliorate aminoglycoside-induced ototoxicity in zebrafish. The present findings showed that a significant decreased number of neuromasts in the lateral lines of zebrafish larvae at 5 days' post fertilization after neomycin (20 µM) and gentamicin (20 mg/mL) exposure, which was prevented by verapamil. Moreover, verapamil (10-100 µM) attenuated aminoglycoside-induced toxic response in different external calcium concentrations (33-3300 µM). The increasing extracellular calcium reduced hair cell loss from aminoglycoside exposure, while lower calcium facilitated hair cell death. In contrast, calcium channel activator Bay K8644 (20 µM) enhanced aminoglycoside-induced ototoxicity and reversed the protective action of higher external calcium on hair cell loss. However, neomycin-elicited hair cell death was not altered by caffeine, ryanodine receptor (RyR) agonist, and RyR antagonists, including thapsigargin, ryanodine, and ruthenium red. The uptake of neomycin into hair cells was attenuated by verapamil and under high external calcium concentration. Consistently, the production of reactive oxygen species (ROS) in neuromasts exposed to neomycin was also reduced by verapamil and high external calcium. Significantly, zebrafish larvae when exposed to neomycin exhibited decreased swimming distances in reaction to droplet stimulus when compared to the control group. Verapamil and elevated external calcium effectively protected the impaired swimming ability of zebrafish larvae induced by neomycin. These data imply that prevention of hair cell damage correlated with swimming behavior against aminoglycoside ototoxicity by verapamil and higher external calcium might be associated with inhibition of excessive ROS production and aminoglycoside uptake through cation channels. These findings indicate that calcium channel blocker and higher external calcium could be applied to protect aminoglycoside-induced listening impairments.


Subject(s)
Anti-Bacterial Agents , Calcium Channel Blockers , Calcium , Gentamicins , Hair Cells, Auditory , Neomycin , Verapamil , Zebrafish , Animals , Calcium Channel Blockers/pharmacology , Calcium/metabolism , Verapamil/pharmacology , Neomycin/toxicity , Hair Cells, Auditory/drug effects , Hair Cells, Auditory/metabolism , Gentamicins/toxicity , Anti-Bacterial Agents/toxicity , Reactive Oxygen Species/metabolism , Ototoxicity/prevention & control , Aminoglycosides/toxicity , Lateral Line System/drug effects , Larva/drug effects , Hearing Loss/chemically induced , Hearing Loss/prevention & control
16.
Dev Cell ; 59(12): 1538-1552.e6, 2024 Jun 17.
Article in English | MEDLINE | ID: mdl-38593801

ABSTRACT

In the mammalian auditory system, frequency discrimination depends on numerous morphological and physiological properties of the organ of Corti, which gradually change along the apex-to-base (tonotopic) axis of the organ. For example, the basilar membrane stiffness changes tonotopically, thus affecting the tuning properties of individual hair cells. At the molecular level, those frequency-specific characteristics are mirrored by gene expression gradients; however, the molecular mechanisms controlling tonotopic gene expression in the mouse cochlea remain elusive. Through analyzing single-cell RNA sequencing (scRNA-seq) data from E12.5 and E14.5 time points, we predicted that morphogens, rather than a cell division-associated mechanism, confer spatial identity in the extending cochlea. Subsequently, we reconstructed the developing cochlea in 3D space from scRNA-seq data to investigate the molecular pathways mediating positional information. The retinoic acid (RA) and hedgehog pathways were found to form opposing apex-to-base gradients, and functional interrogation using mouse cochlear explants suggested that both pathways jointly specify the longitudinal axis.


Subject(s)
Cochlea , Animals , Mice , Cochlea/metabolism , Tretinoin/metabolism , Tretinoin/pharmacology , Gene Expression Regulation, Developmental , Organ of Corti/metabolism , Hedgehog Proteins/metabolism , Hedgehog Proteins/genetics , Single-Cell Analysis/methods , RNA-Seq/methods , Sequence Analysis, RNA/methods , Signal Transduction , Imaging, Three-Dimensional/methods , Hair Cells, Auditory/metabolism , Single-Cell Gene Expression Analysis
17.
Redox Rep ; 29(1): 2341470, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38629504

ABSTRACT

Cisplatin is widely employed in clinical oncology as an anticancer chemotherapy drug in clinical practice and is known for its severe ototoxic side effects. Prior research indicates that the accumulation of reactive oxygen species (ROS) plays a pivotal role in cisplatin's inner ear toxicity. Hesperidin is a flavanone glycoside extracted from citrus fruits that has anti-inflammatory and antioxidant effects. Nonetheless, the specific pharmacological actions of hesperidin in alleviating cisplatin-induced ototoxicity remain elusive. The transcription factor nuclear factor erythroid 2-related factor 2 (Nrf2) is a critical mediator of the cellular oxidative stress response, is influenced by hesperidin. Activation of Nrf2 was shown to have a protective effect against cisplatin-induced ototoxicity. The potential of hesperidin to stimulate Nrf2 in attenuating cisplatin's adverse effects on the inner ear warrants further investigation. This study employs both in vivo and in vitro models of cisplatin ototoxicity to explore this possibility. Our results reveal that hesperidin mitigates cisplatin-induced ototoxicity by activating the Nrf2/NQO1 pathway in sensory hair cells, thereby reducing ROS accumulation, preventing hair cell apoptosis, and alleviating hearing loss.


Subject(s)
Antineoplastic Agents , Hesperidin , Ototoxicity , Humans , Cisplatin/toxicity , Hesperidin/pharmacology , NF-E2-Related Factor 2/metabolism , Ototoxicity/drug therapy , Ototoxicity/metabolism , Reactive Oxygen Species/metabolism , Cell Line , Antineoplastic Agents/toxicity , Hair Cells, Auditory/metabolism , Apoptosis
18.
Elife ; 122024 Apr 23.
Article in English | MEDLINE | ID: mdl-38651641

ABSTRACT

Inhibitory G alpha (GNAI or Gαi) proteins are critical for the polarized morphogenesis of sensory hair cells and for hearing. The extent and nature of their actual contributions remains unclear, however, as previous studies did not investigate all GNAI proteins and included non-physiological approaches. Pertussis toxin can downregulate functionally redundant GNAI1, GNAI2, GNAI3, and GNAO proteins, but may also induce unrelated defects. Here, we directly and systematically determine the role(s) of each individual GNAI protein in mouse auditory hair cells. GNAI2 and GNAI3 are similarly polarized at the hair cell apex with their binding partner G protein signaling modulator 2 (GPSM2), whereas GNAI1 and GNAO are not detected. In Gnai3 mutants, GNAI2 progressively fails to fully occupy the sub-cellular compartments where GNAI3 is missing. In contrast, GNAI3 can fully compensate for the loss of GNAI2 and is essential for hair bundle morphogenesis and auditory function. Simultaneous inactivation of Gnai2 and Gnai3 recapitulates for the first time two distinct types of defects only observed so far with pertussis toxin: (1) a delay or failure of the basal body to migrate off-center in prospective hair cells, and (2) a reversal in the orientation of some hair cell types. We conclude that GNAI proteins are critical for hair cells to break planar symmetry and to orient properly before GNAI2/3 regulate hair bundle morphogenesis with GPSM2.


Subject(s)
GTP-Binding Protein alpha Subunits, Gi-Go , Hair Cells, Auditory , Morphogenesis , Animals , Mice , GTP-Binding Protein alpha Subunits, Gi-Go/metabolism , GTP-Binding Protein alpha Subunits, Gi-Go/genetics , Hair Cells, Auditory/metabolism , Hair Cells, Auditory/physiology , Cell Polarity , GTP-Binding Protein alpha Subunit, Gi2/metabolism , GTP-Binding Protein alpha Subunit, Gi2/genetics
19.
Sci Rep ; 14(1): 6670, 2024 03 20.
Article in English | MEDLINE | ID: mdl-38509148

ABSTRACT

Age-related hearing loss (ARHL) is a debilitating disorder for millions worldwide. While there are multiple underlying causes of ARHL, one common factor is loss of sensory hair cells. In mammals, new hair cells are not produced postnatally and do not regenerate after damage, leading to permanent hearing impairment. By contrast, fish produce hair cells throughout life and robustly regenerate these cells after toxic insult. Despite these regenerative abilities, zebrafish show features of ARHL. Here, we show that aged zebrafish of both sexes exhibited significant hair cell loss and decreased cell proliferation in all inner ear epithelia (saccule, lagena, utricle). Ears from aged zebrafish had increased expression of pro-inflammatory genes and significantly more macrophages than ears from young adult animals. Aged zebrafish also had fewer lateral line hair cells and less cell proliferation than young animals, although lateral line hair cells still robustly regenerated following damage. Unlike zebrafish, African turquoise killifish (an emerging aging model) only showed hair cell loss in the saccule of aged males, but both sexes exhibit age-related changes in the lateral line. Our work demonstrates that zebrafish exhibit key features of auditory aging, including hair cell loss and increased inflammation. Further, our finding that aged zebrafish have fewer lateral line hair cells yet retain regenerative capacity, suggests a decoupling of homeostatic hair cell addition from regeneration following acute trauma. Finally, zebrafish and killifish show species-specific strategies for lateral line homeostasis that may inform further comparative research on aging in mechanosensory systems.


Subject(s)
Ear, Inner , Killifishes , Lateral Line System , Perciformes , Animals , Male , Female , Zebrafish/genetics , Hair Cells, Auditory/metabolism , Regeneration/genetics , Mammals
20.
Biochem Pharmacol ; 222: 116115, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38460910

ABSTRACT

In recent years, extensive research has been conducted on the pathogenesis of sensorineural hearing loss (SNHL). Apoptosis and necrosis have been identified to play important roles in hearing loss, but they cannot account for all hearing loss. Autophagy, a cellular process responsible for cell self-degradation and reutilization, has emerged as a significant factor contributing to hearing loss, particularly in cases of autophagy deficiency. Autophagy plays a crucial role in maintaining cell health by exerting cytoprotective and metabolically homeostatic effects in organisms. Consequently, modulating autophagy levels can profoundly impact the survival, death, and regeneration of cells in the inner ear, including hair cells (HCs) and spiral ganglion neurons (SGNs). Abnormal mitochondrial autophagy has been demonstrated in animal models of SNHL. These findings indicate the profound significance of comprehending autophagy while suggesting that our perspective on this cellular process holds promise for advancing the treatment of SNHL. Thus, this review aims to clarify the pathogenic mechanisms of SNHL and the role of autophagy in the developmental processes of various cochlear structures, including the greater epithelial ridge (GER), SGNs, and the ribbon synapse. The pathogenic mechanisms of age-related hearing loss (ARHL), also known as presbycusis, and the latest research on autophagy are also discussed. Furthermore, we underscore recent findings on the modulation of autophagy in SNHL induced by ototoxic drugs. Additionally, we suggest further research that might illuminate the complete potential of autophagy in addressing SNHL, ultimately leading to the formulation of pioneering therapeutic strategies and approaches for the treatment of deafness.


Subject(s)
Hearing Loss, Sensorineural , Hearing Loss , Animals , Hearing Loss, Sensorineural/drug therapy , Hearing Loss, Sensorineural/metabolism , Hair Cells, Auditory/metabolism , Hearing Loss/metabolism , Disease Models, Animal , Autophagy
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