MedicineBiology

Daniel Shookster, Shea O’Connell, Patel Darshan, Taylor Landry, W. Bunner, Zhiying Jiang, Qingchun Tong, Hu Huang

2026.2.1Molecular Metabolism

DOI: 10.1016/j.molmet.2026.102332

tlooto Summary

A targeted deletion of FGFR1 was performed in adult mice using an AAV-mediated CRISPR/Cas9 system alongside transgenic models to define a crucial FGFR1 signaling axis in AgRP neurons that coordinately regulates their electrical activity and peptide expression, establishing FGFR1 as an essential regulator of energy homeostasis.

Abstract

BACKGROUND The global obesity crisis and the limited success of current treatments underscore the need to identify novel regulatory pathways. While central administration of α-Klotho exerts anti-obesity effects in rodents through AgRP neurons, the intracellular signaling mechanisms that mediate this process remain undefined.

METHODS To define the role of FGFR1 within the α-Klotho signaling pathway in AgRP neurons, we performed a targeted deletion of the receptor in adult mice using an AAV-mediated CRISPR/Cas9 system alongside transgenic models.

RESULTS Deletion of FGFR1 in AgRP neurons disrupted energy homeostasis, promoting weight gain induced by a high-fat diet. Electrophysiological recordings revealed that FGFR1 loss increased the intrinsic firing rate of AgRP neurons and abolished the suppressive effect of α-Klotho on their activity. At the molecular level, FGFR1 knockdown decreased phosphorylation of the transcription factor FOXO1 and elevated AgRP mRNA expression.

CONCLUSION Our results define a crucial FGFR1 signaling axis in AgRP neurons that coordinately regulates their electrical activity and peptide expression, thereby establishing FGFR1 as an essential regulator of energy homeostasis.

Citation format

SHOOKSTER, Daniel, et al. Selective deletion of FGFR1 in agrp neurons impairs energy homeostasis under high-fat diet in mice. Molecular Metabolism, 2026, 105: 102332.