Paradoxical Increase in Body Mass Induced by Beta-Guanidinopropionic Acid in Juvenile Spontaneously Hypertensive Rats

L M Brewster1

  • 1Cardiovascular Disease and Cardiovascular Population Health, Creatine Kinase Foundation, Amsterdam, NLD.

Cureus
|December 20, 2021
PubMed

Insights

Beta-guanidinopropionic acid (GPA) unexpectedly increased body mass and size in juvenile spontaneously hypertensive rats (SHR) without affecting blood pressure. This suggests potential growth benefits of GPA in hypertension-prone mammals.

Area of Science:

  • Physiology
  • Pharmacology
  • Developmental Biology

Background:

  • Creatine kinase (CK) plays a role in blood pressure regulation.
  • Beta-guanidinopropionic acid (GPA), a CK inhibitor, previously reduced blood pressure in adult spontaneously hypertensive rats (SHR).
  • GPA may cause growth retardation in juvenile mammals, but this study observed a paradoxical growth increase.

Purpose of the Study:

  • To investigate the effect of GPA on growth and cardiovascular parameters in juvenile SHR.
  • To explore the potential of GPA in modulating energy metabolism for hypertension management in young mammals.

Main Methods:

  • Male, three-week-old SHR (N=22) were fed either standard soy-based (creatine-free) chow with 0.1% GPA or control chow for four or six weeks.
  • Blood pressure was measured using the tail-cuff method.
  • Body mass and isolated artery contractility were also assessed.

Main Results:

  • GPA-treated rats exhibited significantly increased body mass and size compared to controls at both four and six weeks (e.g., +69.8% at 4 weeks, p<0.001).
  • Food intake per 100 grams of animal was similar between groups.
  • No significant differences in blood pressure or cardiovascular parameters were observed between GPA-treated and control groups.

Conclusions:

  • GPA administration led to a significant increase in body mass and size in juvenile SHR without altering blood pressure.
  • The partial creatine agonist activity of GPA is speculated to contribute to these unexpected growth effects.
  • Further research is required to confirm these findings and elucidate the impact of modulating energy metabolism on growth in juvenile hypertension-prone mammals.

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