Brain-derived neurotrophic factor (BDNF) signals through its high-affinity full length tropomyosin receptor kinase-B (TrkB.FL). One key downstream target of BDNF/TrkB.FL signaling is phosphorylation of the transcription factor cyclic AMP response element-binding (CREB) protein at serine 133 (pCREBS133). We hypothesized that a positive feedback loop exists in the spinal cord in which BDNF/TrkB.FL induces pCREBS133 which then transcriptionally targets pro-BDNF expression. To test this hypothesis, we employed a loss of function approach using a novel chemogenetic rat model (TrkBF616A) with a knock-in allele sensitive to the selective kinase inhibitor 1NMPP1 to inhibit TrkB.FL kinase activity. In female and male TrkBF616A rats, we then examined the effects of 1NMPP1 (orally through drinking water) induced TrkB.FL kinase inhibition on BDNF levels in the cervical (CSC) and lumbar (LSC) spinal cord. The spinal cord was collected at two time points at 0700 and 010 reflecting the trough and peak timepoints of endogenous BDNF expression. BDNF levels were quantified using ELISA. We found in the CSC, BDNF levels did not vary across timepoints in either 1NMPP1 or vehicle treated groups. However, 1NMPP1-induced TrkB.FL inhibition significantly reduced BDNF levels at both timepoints (P=0.004). This reduction suggests that cervical circuits rely on continuous CREB-dependent support of BDNF expression and that inhibiting TrkB.FL disrupts this loop throughout the day. In the LSC, control rats displayed time of day-dependent variations in BDNF with lower levels at 0700 compared to 0100 (P=0.02). In contrast, 1NMPP1-induced inhibition of TrkB.FL reduced BDNF levels at 0100—when BDNF normally peaks in the LSC (P=0.01). This nighttime specific deficit supports the idea that activity-driven pCREBS133 activation is necessary to elevate BDNF during the active phase and that blocking TrkB.FL signaling disrupts this pCREBS133-mediated positive feedback. Overall, these results support a positive feedback that is region- and time-specific and involves BDNF/TrkB.FL signaling inducing pCREBS133 phosphorylation which then targets pro-BDNF expression in the spinal cord. Supported by NIH grants HL146114 and AG44615. This abstract was presented at the American Physiology Summit 2026 and is only available in HTML format. There is no downloadable file or PDF version. The Physiology editorial board was not involved in the peer review process.
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