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.

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.

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