Olfactory Tuft Cells Are Critical to Basal Inflammation, Innate Immune Response to Viral Infection, and Modulation of Quiescent Stem Cell Activation, Proliferation and Differentiation.
Zhang Sai-Sai SS, Wang Haiyan H, Yang Yi-Sen YS, Li Yi-Hong YH et al.
The olfactory mucosa serves as both a sensory organ and an immune barrier to protect against bacterial and viral invasion and other insults. It is unclear how different types of olfactory mucosal cells coordinate and contribute to these two functions. We set out to reveal the critical roles of a subset of microvillous cells of the mucosa, olfactory tuft cells, in protecting and reconstructing this vital olfactory sensory organ. We first validated the expression of canonical gustatory signalling proteins and other molecular markers in olfactory tuft cells. Genetic disruption of the Gng13 and Trpm5 genes that encode the two gustatory signalling proteins, G protein subunit Gγ13 and transient receptor potential ion channel Trpm5, respectively, resulted in elevated basal inflammation and enhanced activation of the quiescent stem cells-horizontal basal cells (HBCs) in the mucosa. Nasal infection of H1N1 influenza virus further exacerbated the inflammation and delayed the resolution of inflammation in the mutant mucosa, including more immune cell infiltration, augmented cytokine production and cell death, increased HBC proliferation and direct differentiation into tuft cells, and prolonged olfactory tuft cell hyperplasia. Cytokine treatment of the cultured olfactory epithelial organoids indicated that the cytokines that were found to be elevated in the mutant mucosa, including interleukin-4 (IL-4), IL-13 and interferon-γ (INF-γ), are able to stimulate HBC activation. Together, our results indicate that olfactory tuft cells play an important role in maintaining the baseline inflammation under the steady-state condition, and altering inflammatory magnitude and modulating HBC activation and differentiation in the olfactory mucosa following the viral infection. Our findings shed light on new roles of olfactory tuft cells in innate immune response, quiescent stem cell activation and neuroimmune interactions, and provide novel therapeutic targets for preventing and treating stem cell-related olfactory disorders such as chronic rhinosinusitis and long COVID.