Related Experiment Video
Updated: Mar 8, 2026

Two Techniques to Create Hypoparathyroid Mice: Parathyroidectomy Using GFP Glands and Diphtheria-Toxin-Mediated Parathyroid Ablation
Published on: March 14, 2017
Pth4, an ancient parathyroid hormone lost in eutherian mammals, reveals a new brain-to-bone signaling pathway
Paula Suarez-Bregua1, Eva Torres-Nuñez1, Ankur Saxena2,3
1Institute of Marine Research, Spanish National Research Council (IIM-CSIC), Vigo, Spain.
Abstract:
Regulation of bone development, growth, and remodeling traditionally has been thought to depend on endocrine and autocrine/paracrine modulators. Recently, however, brain-derived signals have emerged as key regulators of bone metabolism, although their mechanisms of action have been poorly understood. We reveal the existence of an ancient parathyroid hormone (Pth)4 in zebrafish that was secondarily lost in the eutherian mammals' lineage, including humans, and that is specifically expressed in neurons of the hypothalamus and appears to be a central neural regulator of bone development and mineral homeostasis. Transgenic fish lines enabled mapping of axonal projections leading from the hypothalamus to the brainstem and spinal cord. Targeted laser ablation demonstrated an essential role for of pth4-expressing neurons in larval bone mineralization. Moreover, we show that Runx2 is a direct regulator of pth4 expression and that Pth4 can activate cAMP signaling mediated by Pth receptors. Finally, gain-of-function experiments show that Pth4 can alter calcium/phosphorus levels and affect expression of genes involved in phosphate homeostasis. Based on our discovery and characterization of Pth4, we propose a model for evolution of bone homeostasis in the context of the vertebrate transition from an aquatic to a terrestrial lifestyle.-Suarez-Bregua, P., Torres-Nuñez, E., Saxena, A., Guerreiro, P., Braasch, I., Prober, D. A., Moran, P., Cerda-Reverter, J. M., Du, S. J., Adrio, F., Power, D. M., Canario, A. V. M., Postlethwait, J. H., Bronner, M E., Cañestro, C., Rotllant, J. Pth4, an ancient parathyroid hormone lost in eutherian mammals, reveals a new brain-to-bone signaling pathway.
Insights
A newly discovered ancient parathyroid hormone (Pth)4 in zebrafish, lost in mammals, acts as a brain signal regulating bone development and mineral balance. This finding reveals a novel brain-to-bone pathway and evolutionary insights into bone homeostasis.
Area of Science:
- Endocrinology
- Neuroscience
- Evolutionary Biology
Background:
- Bone metabolism regulation traditionally involves endocrine and local factors.
- Emerging evidence highlights the role of brain-derived signals in bone health.
- Mechanisms of neural regulation of bone metabolism remain poorly understood.
Purpose of the Study:
- To identify and characterize novel brain-derived signals regulating bone metabolism.
- To investigate the role of a newly discovered parathyroid hormone 4 (Pth4) in bone homeostasis.
- To explore the evolutionary significance of Pth4 in vertebrate bone regulation.
Main Methods:
- Utilized zebrafish as a model organism to study Pth4.
- Generated transgenic fish lines for mapping neural pathways.
- Employed targeted laser ablation to assess the function of Pth4-expressing neurons.
- Conducted gene expression analysis and gain-of-function experiments.
Main Results:
- Identified Pth4, an ancient parathyroid hormone specifically expressed in hypothalamic neurons, which was lost in mammals.
- Demonstrated that Pth4-expressing neurons are crucial for larval bone mineralization.
- Showed that Runx2 directly regulates Pth4 expression and Pth4 activates cAMP signaling.
- Confirmed Pth4 influences calcium/phosphorus levels and phosphate homeostasis genes.
Conclusions:
- Pth4 represents a novel brain-to-bone signaling pathway regulating bone development and mineral homeostasis.
- The discovery of Pth4 provides insights into the evolution of bone regulation across vertebrates.
- This pathway highlights the central role of the brain in maintaining skeletal health.
More Related Videos
03:57Generation of Hypoparathyroid Rats via Carbon-Nanoparticle-Assisted Parathyroidectomy
Published on: July 14, 2023
13:43Two-step Approach to Explore Early- and Late-stages of Organ Formation in the Avian Model: The Thymus and Parathyroid Glands Organogenesis Paradigm
Published on: June 17, 2018
Related Concept Videos
The Parathyroid Glands
Oxyphil cells, whose functions remain elusive, emerge during late puberty, adding a layer of complexity to the parathyroid gland's intricacies. In contrast, principal parathyroid cells undertake a vital role by...
IP3/DAG Signaling Pathway
Secondary Messengers in Hormone Action
Many hormones bind to transmembrane G protein-coupled receptors that connect to regulatory G proteins. These G proteins can then activate enzymes such as adenylyl cyclase or phospholipase C. Adenylyl cyclase converts ATP to cAMP, activating...
Amplifying Signals via Second Messengers
Amplifying Signals via Enzymatic Cascade
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...