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Alabdulaaly, L.

Publications and source records attributed to Alabdulaaly, L..

2 recordsLinked to original sources

Hypomineralized Enamel Alters Trigeminal Sensory Afferent Architecture, Transcriptome, and Dental Injury Responses

At barrier tissues such as the skin and gut, sensory neurons interface with environmental stimuli and coordinate with neighboring epithelial and immune cells to detect tissue perturbations. In teeth, however, the sensory dentin-pulp complex is insulated from the oral environment by highly mineralized enamel. Although dentin-pulp responses to severe injury have been studied in models with direct pulp exposure, it remains unclear whether enamel barrier dysfunction alone alters pulpal and neuronal homeostasis. Using a kallikrein-related peptidase 4 knockout (KLK4 KO) mouse model of enamel hypomineralization, we demonstrated that defective enamel induced structural, molecular, and transcriptional responses in the dental pulp and in the trigeminal system innervating teeth, despite the absence of direct pulp exposure to the oral cavity. Hypomineralized molars exhibited increased reactionary dentin formation accompanied by retraction of sensory afferents from the dentin-pulp junction. Consistent with these structural findings, trigeminal ganglia of KLK4 KO mice displayed upregulation of genes associated with cytoskeletal remodeling and stimulus response pathways. Despite increased bacterial burden and biofilm accumulation on the enamel surface, enamel hypomineralization did not induce substantial innate immune responses in the pulp. In addition, following severe dental pulp injury, teeth with hypomineralized enamel exhibited reduced sensory afferent loss and tissue damage. Together, these findings reveal that enamel integrity functions as a critical regulator of dentin-pulp homeostasis and that barrier dysfunction alone can precondition tissue responses to subsequent injury.

neuroscience↗

Neuronal-immune Axis Alters Pain and Sensory Afferent Damage During Dental Pulp Injury

Dental pulp tissue is densely innervated by afferent fibers of the trigeminal ganglion. When bacteria cause dental decay near the pulpal tissue, a strong neuronal and immune response occur, creating pulpitis, which is associated with severe pain and pulp tissue damage. Neuro-immune interactions have the potential to modulate both the pain and pathological outcome of pulpitis. We first investigated the role of the neuropeptide calcitonin-gene related peptide (CGRP), released from peptidergic sensory afferents, in dental pain and immune responses by using calca knock out (calca-/-) and wild type (calca+/+) mice, in a model of pulpitis by creating a mechanical exposure of the dental pulp horn. While CGRP did not contribute to facial mechanical hypersensitivity, at an early time point, it did contribute to spontaneous pain-like behavior. We also found that CGRP contributed to recruitment of neutrophils and monocytes, while not clearly affecting the progression of pulpal pathology histologically. When we depleted neutrophils and monocytes, we found that there was more sensory afferent loss, tissue damage and deeper spread of bacteria into the pulp tissue, while there was a reduction in facial mechanical hypersensitivity compared to control animals at a later time point. Overall, we showed that there is a crosstalk between peptidergic neurons and neutrophils in the pulp, modulating the pain and inflammatory outcomes of the disease.

neuroscience↗