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Non-autonomous Cellular Responses to Ototoxic Drug-Induced Stress and Death
Shimon P Francis1, Lisa L Cunningham1
1National Institute on Deafness and Other Communication Disorders, National Institutes of HealthBethesda, MD, United States.
Abstract:
The first major recognition of drug-induced hearing loss can be traced back more than seven decades to the development of streptomycin as an antimicrobial agent. Since then at least 130 therapeutic drugs have been recognized as having ototoxic side-effects. Two important classes of ototoxic drugs are the aminoglycoside antibiotics and the platinum-based antineoplastic agents. These drugs save the lives of millions of people worldwide, but they also cause irreparable hearing loss. In the inner ear, sensory hair cells (HCs) and spiral ganglion neurons (SGNs) are important cellular targets of these drugs, and most mechanistic studies have focused on the cell-autonomous responses of these cell types in response to ototoxic stress. Despite several decades of studies on ototoxicity, important unanswered questions remain, including the cellular and molecular mechanisms that determine whether HCs and SGNs will live or die when confronted with ototoxic challenge. Emerging evidence indicates that other cell types in the inner ear can act as mediators of survival or death of sensory cells and SGNs. For example, glia-like supporting cells (SCs) can promote survival of both HCs and SGNs. Alternatively, SCs can act to promote HC death and inhibit neural fiber expansion. Similarly, tissue resident macrophages activate either pro-survival or pro-death signaling that can influence HC survival after exposure to ototoxic agents. Together these data indicate that autonomous responses that occur within a stressed HC or SGN are not the only (and possibly not the primary) determinants of whether the stressed cell ultimately lives or dies. Instead non-cell-autonomous responses are emerging as significant determinants of HC and SGN survival vs. death in the face of ototoxic stress. The goal of this review is to summarize the current evidence on non-cell-autonomous responses to ototoxic stress and to discuss ways in which this knowledge may advance the development of therapies to reduce hearing loss caused by these drugs.
Insights
Drug-induced hearing loss is a serious side effect of many medications. Emerging research shows that non-cell-autonomous responses, involving other inner ear cells, significantly impact sensory cell survival and death from ototoxic drugs.
Area of Science:
- Ototoxicity research
- Neuroscience
- Pharmacology
Background:
- Over 130 drugs, including aminoglycoside antibiotics and platinum-based antineoplastics, are known to cause ototoxicity.
- Drug-induced hearing loss affects sensory hair cells (HCs) and spiral ganglion neurons (SGNs).
- Current research primarily focuses on cell-autonomous drug responses, leaving key survival/death mechanisms unanswered.
Purpose of the Study:
- To review evidence on non-cell-autonomous responses in ototoxicity.
- To explore how these responses influence HC and SGN survival.
- To discuss therapeutic implications for reducing drug-induced hearing loss.
Main Methods:
- Literature review of studies on ototoxicity mechanisms.
- Analysis of research on cell-autonomous and non-cell-autonomous responses.
- Synthesis of findings on supporting cells and macrophages in ototoxicity.
Main Results:
- Non-cell-autonomous factors, including supporting cells and macrophages, significantly mediate HC and SGN survival or death.
- Supporting cells can promote HC/SGN survival or induce HC death and inhibit neural growth.
- Macrophages modulate pro-survival or pro-death signaling impacting HC survival.
Conclusions:
- Cell-autonomous responses within HCs and SGNs are not the sole determinants of cell fate under ototoxic stress.
- Non-cell-autonomous responses are critical factors influencing HC and SGN survival.
- Understanding these non-cell-autonomous interactions is key to developing new therapies against drug-induced hearing loss.
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