Children's Hospital Boston, Boston, MA 02115, USA.
Dis Model Mech. 2011 May;4(3):411-20. doi: 10.1242/dmm.005231. Epub 2010 Dec 23.
The physiology of the Drosophila melanogaster cardiovascular system remains poorly characterized compared with its vertebrate counterparts. Basic measures of physiological performance remain unknown. It also is unclear whether subtle physiological defects observed in the human cardiovascular system can be reproduced in D. melanogaster. Here we characterize the cardiovascular physiology of D. melanogaster in its pre-pupal stage by using high-speed dye angiography and optical coherence tomography. The heart has vigorous pulsatile contractions that drive intracardiac, aortic and extracellular-extravascular hemolymph flow. Several physiological measures, including weight-adjusted cardiac output, body-length-adjusted aortic velocities and intracardiac shear forces, are similar to those in the closed vertebrate cardiovascular systems, including that of humans. Extracellular-extravascular flow in the pre-pupal D. melanogaster circulation drives convection-limited fluid transport. To demonstrate homology in heart dysfunction, we showed that, at the pre-pupal stage, a troponin I mutant, held-up2 (hdp2), has impaired systolic and diastolic heart wall velocities. Impaired heart wall velocities occur in the context of a non-dilated phenotype with a mildly depressed fractional shortening. We additionally derive receiver operating characteristic curves showing that heart wall velocity is a potentially powerful discriminator of systolic heart dysfunction. Our results demonstrate physiological homology and support the use of D. melanogaster as an animal model of complex cardiovascular disease.
与脊椎动物相比,黑腹果蝇的心血管系统的生理学特征仍然知之甚少。基本的生理表现仍然未知。也不清楚在人类心血管系统中观察到的微妙的生理缺陷是否可以在黑腹果蝇中重现。在这里,我们通过高速染料血管造影术和光学相干断层扫描技术来描述黑腹果蝇预蛹期的心血管生理学。心脏有有力的搏动收缩,驱动心内、主动脉和细胞外-血管外血淋巴流动。包括心脏输出量、主动脉速度和心内剪切力在内的几个生理指标与包括人类在内的封闭脊椎动物心血管系统相似。在预蛹期的黑腹果蝇循环中,细胞外-血管外流动驱动对流限制的流体传输。为了证明心脏功能障碍的同源性,我们表明在预蛹期,肌钙蛋白 I 突变体 held-up2(hdp2)的收缩期和舒张期心壁速度受损。在轻微舒张功能不全的情况下,心壁速度受损发生在非扩张表型的背景下,其分数缩短率轻度降低。我们还得出了接收者操作特征曲线,表明心壁速度是区分收缩期心脏功能障碍的潜在有力指标。我们的研究结果表明了生理同源性,并支持使用黑腹果蝇作为复杂心血管疾病的动物模型。