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In Vivo Investigation of Mitochondria in Lateral Line Afferent Neurons and Hair Cells

Overview
Journal Hear Res
Date 2023 Mar 22
PMID 36948126
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Abstract

To process sensory stimuli, intense energy demands are placed on hair cells and primary afferents. Hair cells must both mechanotransduce and maintain pools of synaptic vesicles for neurotransmission. Furthermore, both hair cells and afferent neurons must continually maintain a polarized membrane to propagate sensory information. These processes are energy demanding and therefore both cell types are critically reliant on mitochondrial health and function for their activity and maintenance. Based on these demands, it is not surprising that deficits in mitochondrial health can negatively impact the auditory and vestibular systems. In this review, we reflect on how mitochondrial function and dysfunction are implicated in hair cell-mediated sensory system biology. Specifically, we focus on live imaging approaches that have been applied to study mitochondria using the zebrafish lateral-line system. We highlight the fluorescent dyes and genetically encoded biosensors that have been used to study mitochondria in lateral-line hair cells and afferent neurons. We then describe the impact this in vivo work has had on the field of mitochondrial biology as well as the relationship between mitochondria and sensory system development, function, and survival. Finally, we delineate the areas in need of further exploration. This includes in vivo analyses of mitochondrial dynamics and biogenesis, which will round out our understanding of mitochondrial biology in this sensitive sensory system.

References
1.
Ji Y, Warrier S, Jiang T, Wu D, Kindt K . Directional selectivity of afferent neurons in zebrafish neuromasts is regulated by Emx2 in presynaptic hair cells. Elife. 2018; 7. PMC: 5935481. DOI: 10.7554/eLife.35796. View

2.
Beurg M, Nam J, Chen Q, Fettiplace R . Calcium balance and mechanotransduction in rat cochlear hair cells. J Neurophysiol. 2010; 104(1):18-34. PMC: 2904212. DOI: 10.1152/jn.00019.2010. View

3.
Jacobs H, Hutchin T, Kappi T, Gillies G, Minkkinen K, Walker J . Mitochondrial DNA mutations in patients with postlingual, nonsyndromic hearing impairment. Eur J Hum Genet. 2004; 13(1):26-33. DOI: 10.1038/sj.ejhg.5201250. View

4.
Guarente L . Sir2 links chromatin silencing, metabolism, and aging. Genes Dev. 2000; 14(9):1021-6. View

5.
Lobas M, Tao R, Nagai J, Kronschlager M, Borden P, Marvin J . A genetically encoded single-wavelength sensor for imaging cytosolic and cell surface ATP. Nat Commun. 2019; 10(1):711. PMC: 6372613. DOI: 10.1038/s41467-019-08441-5. View