Michel C C
Department of Physiology and Biophysics, St. Mary's Hospital Medical School, Imperial College of Science, Technology and Medicine, London, U.K.
Microcirculation. 1995 Aug;2(2):125-39. doi: 10.3109/10739689509146761.
The architecture of the renal medullary microcirculation is highly specialized. Consistent with their role in countercurrent exchange, the vessels (the vasa recta and the intervening capillaries) have high permeabilities to fluid and small hydrophilic solutes. The urea permeability of the continuous endothelium of the descending vasa recta (DVR) in the outer medulla is greatly enhanced by a urea transporter. Aquaporin channels have also been identified in these vessels. In spite of the absence of lymphatics from the inner medulla, fluid uptake from the interstitial fluid (ISF) through the fenestrated endothelium of the ascending vasa recta (AVR) appears to be driven by differences in hydrostatic and oncotic pressure. Because the AVR have high Lp's [10(-5) cm s-1 (cm H2O)-1] and are mechanically linked to surrounding structures, small increments of ISF pressures above the pressure within the AVR can drive significant volumes of fluid into AVR if ISF volume expands. The lower reflection coefficients to serum albumin of the AVR as compared with the DVR may be important in the clearance of interstitial plasma protein. Recent work on isolated DVR from the outer medulla has revealed that these vessels are capable of vasoconstriction and thus of regulating medullary blood flow.
肾髓质微循环的结构高度特化。与其在逆流交换中的作用一致,血管(直小血管和其间的毛细血管)对液体和小分子亲水性溶质具有高通透性。外髓质降支直小血管(DVR)连续内皮的尿素通透性通过尿素转运体大大增强。在这些血管中也已鉴定出水通道蛋白通道。尽管内髓质没有淋巴管,但通过升支直小血管(AVR)有孔内皮从间质液(ISF)摄取液体似乎是由流体静压和胶体渗透压的差异驱动的。由于AVR具有高Lp值[10^(-5) cm s^(-1) (cm H2O)^(-1)]并且与周围结构机械相连,如果ISF体积扩大,ISF压力高于AVR内压力的小增量可驱动大量液体进入AVR。与DVR相比,AVR对血清白蛋白的较低反射系数可能在间质血浆蛋白的清除中起重要作用。最近对外髓质分离的DVR的研究表明,这些血管能够收缩,从而调节髓质血流。