Anomalous baroreflex functionality inherent in floxed and Cre-Lox mice: an overlooked physiological phenotype

Ching-Yi Tsai1, Yan-Yuen Poon1,2, Chang-Han Chen1

  • 1Institute for Translational Research in Biomedicine, Kaohsiung Chang Gung Memorial Hospital, Kaohsiung, Taiwan, Republic of China; and.

Insights

Cre-Lox recombination mice exhibit abnormal baroreflex function, impacting sympathetic and vagal tone. This highlights the need to assess physiological phenotypes in genetically engineered animal models.

Area of Science:

  • Physiology
  • Genetics
  • Neuroscience

Background:

  • Cre-Lox recombination is a key tool for genetic engineering in mammals.
  • Physiological consequences of Cre-Lox manipulation are often overlooked.
  • Brain-derived neurotrophic factor-floxed mice are commonly used models.

Purpose of the Study:

  • To investigate the physiological impact of Cre-Lox recombination on baroreflex function.
  • To determine if standard Cre-Lox mouse models exhibit altered autonomic control.
  • To assess baroreflex capacity and neural circuit connectivity.

Main Methods:

  • Radiotelemetric recording to monitor cardiovascular parameters.
  • Power spectral analysis for autonomic function assessment.
  • Magnetic resonance imaging/diffusion tensor imaging for neural connectivity analysis.

Main Results:

  • Floxed and Cre-Lox mice showed diminished baroreflex-mediated sympathetic vasomotor tone and cardiac vagal baroreflex.
  • Baroreflex capacity and plasticity were retarded under anesthesia.
  • Reduced connectivity was observed between key baroreflex nuclei (NTS, RVM, NA).

Conclusions:

  • Anomalous baroreflex functionality is inherent in floxed and Cre-Lox mice.
  • Standard Cre-Lox mouse models may have uncharacterized physiological deficits.
  • Physiological assessments are crucial for interpreting results from genetically modified mice.

Related Concept Videos