Brain derived neurotrophic factor (BDNF) signals through its high-affinity full-length tropomyosin receptor kinase-B (TrkB.FL) and plays role in maintaining the survival and function of phrenic motor neurons (PhMNs), neuromuscular transmission and synaptic activity. Disruption of this pathway is a hallmark of several neurodegenerative diseases associated with dysfunction and death of PhMNs with impaired mitochondrial function. BDNF/TrkB.FL signaling phosphorylates CREB at serine 133 (pCREBS133) and promotes its nuclear localization in cervical ventral horn of rats, however its downstream molecular pathway has not yet been established. Recently, we demonstrated that in human airway smooth muscle cells, pCREBS133, as a transcription factor, binds to the CRE sequence in the PGC1a promoter and activates its expression. PGC1a co-transcriptionally activates mitochondrial transcription factor A (TFAM) expression promoting mitochondrial DNA (mtDNA) replication and mitochondrial biogenesis. In the present study, we hypothesized that BDNF/TrkB.FL signaling promotes pCREBS133 phosphorylation and transcriptional activation of PGC1a and downstream expression of TFAM, leading to mitochondrial biogenesis. In this study, 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. One group of female and male rats were treated intrathecally at C4 with either artificial cerebrospinal fluid (aCSF) or BDNF (450 ng/ 300 g b.w.; diluted in aCSF) for 40 mins, followed by collection of C3-C6 cervical ventral horn. In a second group, female and male rats were treated with 1NMPP1 (25 uM; i.p.) or the vehicle DMSO for 2 h. After 2 h, both groups were treated intrathecally with BDNF for 40 min and the C3-C6 cervical ventral horn collected. Intrathecal BDNF increased the pTrkB.FLY817 autophosphorylation and downstream phosphorylation of pCREBS133. Bioinformatic analysis identified a putative binding site of pCREBS133 on PGC1a promoter, which was confirmed by Chromatin immunoprecipitation (ChIP) assay. Consistent with this, BDNF treatment increased the expression of PGC1a and downstream TFAM, with an increase in mtDNA copy number. 1NMPP1 inhibition of TrkB.FL kinase (blunted BDNF-induced pTrkB.FLY817 phosphorylation) inhibited downstream activation of the pCREBS133/PGC1a/TFAM signaling cascade. Additionally, 1NMPP1 treatment blunted the BDNF-induced increase in mtDNA copy number. We conclude that BDNF/TrKB.FL signaling mediates mitochondrial biogenesis in the cervical ventral horn suggesting that interventions targeting this pathway could be a therapeutic strategy for neurodegenerative diseases. This research was funded by NIH Grants HL146114 & 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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