IP3R1 underlies diastolic ANO1 activation and pressure-dependent chronotropy in lymphatic collecting vessels.

IF 3.3 2区 医学 Q1 PHYSIOLOGY
Journal of General Physiology Pub Date : 2023-12-04 Epub Date: 2023-10-18 DOI:10.1085/jgp.202313358
Scott D Zawieja, Grace A Pea, Sarah E Broyhill, Advaya Patro, Karen H Bromert, Min Li, Charles E Norton, Jorge A Castorena-Gonzalez, Edward J Hancock, Christopher D Bertram, Michael J Davis
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引用次数: 0

Abstract

Pressure-dependent chronotropy of murine lymphatic collecting vessels relies on the activation of the Ca2+-activated chloride channel encoded by Anoctamin 1 (Ano1) in lymphatic muscle cells. Genetic ablation or pharmacological inhibition of ANO1 results in a significant reduction in basal contraction frequency and essentially complete loss of pressure-dependent frequency modulation by decreasing the rate of the diastolic depolarization phase of the ionic pacemaker in lymphatic muscle cells (LMCs). Oscillating Ca2+ release from sarcoendoplasmic reticulum Ca2+ channels has been hypothesized to drive ANO1 activity during diastole, but the source of Ca2+ for ANO1 activation in smooth muscle remains unclear. Here, we investigated the role of the inositol triphosphate receptor 1 (Itpr1; Ip3r1) in this process using pressure myography, Ca2+ imaging, and membrane potential recordings in LMCs of ex vivo pressurized inguinal-axillary lymphatic vessels from control or Myh11CreERT2;Ip3r1fl/fl (Ip3r1ismKO) mice. Ip3r1ismKO vessels had significant reductions in contraction frequency and tone but an increased contraction amplitude. Membrane potential recordings from LMCs of Ip3r1ismKO vessels revealed a depressed diastolic depolarization rate and an elongation of the plateau phase of the action potential (AP). Ca2+ imaging of LMCs using the genetically encoded Ca2+ sensor GCaMP6f demonstrated an elongation of the Ca2+ flash associated with an AP-driven contraction. Critically, diastolic subcellular Ca2+ transients were absent in LMCs of Ip3r1ismKO mice, demonstrating the necessity of IP3R1 activity in controlling ANO1-mediated diastolic depolarization. These findings indicate a critical role for IP3R1 in lymphatic vessel pressure-dependent chronotropy and contractile regulation.

IP3R1是淋巴收集血管中舒张ANO1激活和压力依赖性时间变化的基础。
小鼠淋巴收集管的压力依赖性计时依赖于淋巴肌细胞中由Anoctamin 1(Ano1)编码的Ca2+激活的氯通道的激活。ANO1的基因消融或药理学抑制通过降低淋巴肌细胞(LMCs)中离子起搏器的舒张去极化期的速率,导致基础收缩频率显著降低,并基本上完全丧失压力依赖性频率调节。肌内质网Ca2+通道的振荡Ca2+释放被假设为在舒张期驱动ANO1活性,但平滑肌中ANO1激活的Ca2+来源尚不清楚。在这里,我们使用压力肌描记术、Ca2+成像和膜电位记录研究了肌醇三磷酸受体1(Itpr1;Ip3r1)在这一过程中的作用,这些记录来自对照或Myh11CreERT2的离体加压腹股沟-腋窝淋巴管的LMCs;Ip3r1fl/fl(Ip3r1ismKO)小鼠。Ip3r1ismKO血管收缩频率和张力显著降低,但收缩幅度增加。Ip3r1ismKO血管LMCs的膜电位记录显示舒张去极化率降低,动作电位(AP)的平台期延长。使用遗传编码的Ca2+传感器GCaMP6f对LMCs的Ca2+成像证明了与AP驱动的收缩相关的Ca2+闪光的延长。至关重要的是,Ip3r1ismKO小鼠的LMCs中没有舒张亚细胞Ca2+瞬变,这表明IP3R1活性在控制ANO1介导的舒张去极化中的必要性。这些发现表明IP3R1在淋巴管压力依赖性时间变异性和收缩调节中起着关键作用。
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来源期刊
CiteScore
6.00
自引率
10.50%
发文量
88
审稿时长
6-12 weeks
期刊介绍: General physiology is the study of biological mechanisms through analytical investigations, which decipher the molecular and cellular mechanisms underlying biological function at all levels of organization. The mission of Journal of General Physiology (JGP) is to publish mechanistic and quantitative molecular and cellular physiology of the highest quality, to provide a best-in-class author experience, and to nurture future generations of independent researchers. The major emphasis is on physiological problems at the cellular and molecular level.
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