Related Experiment Video
Updated: Jan 9, 2026

An Improved Method for Collection of Cerebrospinal Fluid from Anesthetized Mice
Published on: March 19, 2018
TRPV1 pain receptors regulate longevity and metabolism by neuropeptide signaling
Céline E Riera1, Mark O Huising2, Patricia Follett3
1Molecular and Cell Biology, University of California, Berkeley, Berkeley, CA 94720, USA; Howard Hughes Medical Institute, Chevy Chase, MD 20815, USA; The Glenn Center for Aging Research, 10010 North Torrey Pines Road, La Jolla, CA 92037, USA.
Abstract:
The sensation of pain is associated with increased mortality, but it is unknown whether pain perception can directly affect aging. We find that mice lacking TRPV1 pain receptors are long-lived, displaying a youthful metabolic profile at old age. Loss of TRPV1 inactivates a calcium-signaling cascade that ends in the nuclear exclusion of the CREB-regulated transcriptional coactivator CRTC1 within pain sensory neurons originating from the spinal cord. In long-lived TRPV1 knockout mice, CRTC1 nuclear exclusion decreases production of the neuropeptide CGRP from sensory endings innervating the pancreatic islets, subsequently promoting insulin secretion and metabolic health. In contrast, CGRP homeostasis is disrupted with age in wild-type mice, resulting in metabolic decline. We show that pharmacologic inactivation of CGRP receptors in old wild-type animals can restore metabolic health. These data suggest that ablation of select pain sensory receptors or the inhibition of CGRP are associated with increased metabolic health and control longevity.
Related Concept Videos
06:40An Improved Method for Collection of Cerebrospinal Fluid from Anesthetized Mice
08:40Absolute Quantification of Aβ1-42 in CSF Using a Mass Spectrometric Reference Measurement Procedure
11:47Treating SCA1 Mice with Water-Soluble Compounds to Non-Specifically Boost Mitochondrial Function
05:51Intracerebroventricular and Intravascular Injection of Viral Particles and Fluorescent Microbeads into the Neonatal Brain
11:56A Rapid and Specific Microplate Assay for the Determination of Intra- and Extracellular Ascorbate in Cultured Cells
14:55Direct Intraventricular Delivery of Drugs to the Rodent Central Nervous System

