Related Experiment Video
Updated: Jul 28, 2026

Isolation of Embryonic Tissues and Formation of Quail-Chicken Chimeric Organs Using The Thymus Example
Published on: February 16, 2019
CPI-17-deficient smooth muscle of chicken
Toshio Kitazawa1, Atsuko N Polzin, Masumi Eto
1Boston Biomedical Research Institute, 64 Grove Street, Watertown, MA 02472, USA. kitazawa@bbri.org
Abstract:
Ca(2+) sensitivity of arterial contractility is governed by regulating myosin phosphatase activity in response to agonist stimuli. CPI-17, a myosin phosphatase inhibitor phosphoprotein, is phosphorylated concomitantly with agonist-induced contractile Ca(2+) sensitization in mammalian artery. CPI-17 has not been detected in chicken artery, but is readily detectable in pigeon artery. To evaluate a role of CPI-17, we compared contractility of the arteries of 'CPI-17-deficient' chicken with those of CPI-17-rich rabbit and pigeon, and studied the effect of CPI-17-reconstitution in chicken artery. Other major regulatory/contractile proteins for Ca(2+) sensitization are expressed in both chicken and rabbit arteries. Agonists, such as an alpha(1)-agonist and endothelin-1, produced significant contraction in arteries of all species under physiological Ca(2+)-containing conditions. Depletion of Ca(2+) abolished these contractions in chicken but partially inhibited them in rabbit and pigeon arteries. Unlike CPI-17-rich tissues, chicken arteries exerted little Ca(2+) sensitization in response to alpha(1)-agonist or endothelin-1. GTPgammaS produced a slight Ca(2+) sensitizing effect in chicken artery, but this was significantly smaller compared with CPI-17-rich tissues. A PKC activator (PDBu) did not generate but rather reduced a contraction in both intact and alpha-toxin-permeabilized chicken artery in contrast to a large contraction in CPI-17-rich arteries. Myosin light chain phosphorylation was reduced by PDBu in chicken but elevated in rabbit artery. Addition of recombinant CPI-17 into beta-escin-permeabilized chicken artery restored PDBu-induced and enhanced GTPgammaS-induced Ca(2+) sensitization. Thus, CPI-17 is essential for G protein/PKC-mediated Ca(2+) sensitization in smooth muscle.
Insights
CPI-17 protein is crucial for calcium sensitization in smooth muscle contraction. Reconstituting CPI-17 in chicken arteries restored agonist-induced contractions, highlighting its essential role.
Area of Science:
- Vascular smooth muscle physiology
- Molecular mechanisms of contractility
- Protein biochemistry
Background:
- Arterial contractility relies on calcium (Ca2+) sensitivity, regulated by myosin phosphatase activity.
- CPI-17, a myosin phosphatase inhibitor, is key to Ca2+ sensitization in mammalian arteries.
- CPI-17 is absent in chicken arteries but present in pigeon and rabbit arteries.
Purpose of the Study:
- To investigate the role of CPI-17 in arterial contractility.
- To compare Ca2+ sensitization mechanisms in CPI-17-deficient chicken arteries versus CPI-17-rich rabbit and pigeon arteries.
- To assess the effect of CPI-17 reconstitution in chicken arteries.
Main Methods:
- Comparative analysis of arterial contractility in chicken, rabbit, and pigeon.
- Agonist stimulation (alpha(1)-agonist, endothelin-1) and calcium depletion experiments.
- GTPgammaS and PKC activator (PDBu) treatments on intact and permeabilized arteries.
- Reconstitution of recombinant CPI-17 in permeabilized chicken arteries.
Main Results:
- Chicken arteries showed minimal Ca2+ sensitization compared to rabbit and pigeon arteries.
- PDBu reduced contraction in chicken arteries, unlike the large contraction in CPI-17-rich arteries.
- Recombinant CPI-17 restored PDBu-induced contraction and enhanced GTPgammaS-induced Ca2+ sensitization in chicken arteries.
- Myosin light chain phosphorylation was reduced by PDBu in chicken but increased in rabbit arteries.
Conclusions:
- CPI-17 is essential for G protein/PKC-mediated Ca2+ sensitization in smooth muscle.
- The absence of CPI-17 significantly impairs agonist-induced arterial contractility.
- CPI-17 reconstitution effectively restores Ca2+ sensitization pathways in smooth muscle.

