Simulations of osmotic ultrafiltration failure in CAPD using a serial three-pore membrane/fiber matrix model

被引:52
作者
Rippe, Bengt [1 ]
Venturoli, Daniele [1 ]
机构
[1] Univ Lund Hosp, Dept Nephrol, S-21185 Lund, Sweden
关键词
capillary permeability; fibrosis; interstitium; osmotic reflection coefficient; hydraulic conductance; glucose;
D O I
10.1152/ajprenal.00251.2006
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Ultrafiltration failure ( UFF) is a common complication of long- term peritoneal dialysis ( PD). Functionally UFF is in most cases characterized by an enhanced peritoneal mass transfer area coefficient for glucose ( PSg) combined with a largely unchanged peritoneal glucose osmotic conductance ( LpS sigma(g)). Morphologically, marked UFF occurs with fibrosis of the submesothelial zone in the peritoneum, combined with vasculopathy and vascular proliferation in deeper tissues. To computer simulate UFF, changes both in the vasculature and in the interstitium have to be taken into account. For that purpose, we used a three-pore membrane/ fiber matrix serial barrier model, applying the three-pore model to the capillaries and the fiber- matrix model to the interstitium. The parameters of the three- pore model have been published previously. The interstitial fiber density was set at 0.5% ( vol/ vol) and the fiber radius ( r(f)) at 6 A during control. If the interstitial fiber density was increased from 0.5 to 3%, and r(f) to 7.5 angstrom ( cf. collagen) while the capillary surface area was increased by 40% from control, then PSg increased from 9.3 to 11.5 ml/ min, while the UF coefficient ( LpS) was largely unchanged. Further increases in vascular surface area combined with further increases in fiber density caused further increments in PSg, whereas LpS remained unchanged. It is concluded that a matrix of fibers coupled in series with a three- pore membrane may be used for simulating the pathophysiological alterations occurring in the peritoneum in UFF, explaining the commonly observed " uncoupling" of small solute transport ( PS) from the peritoneal UF coefficient ( LpS) in this condition.
引用
收藏
页码:F1035 / F1043
页数:9
相关论文
共 38 条
[1]   Capillary filtration coefficient is independent of number of perfused capillaries in cat skeletal muscle [J].
Bentzer, P ;
Kongstad, L ;
Grände, PO .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2001, 280 (06) :H2697-H2706
[2]   HINDERED DIFFUSION OF DEXTRAN AND FICOLL IN MICROPOROUS MEMBRANES [J].
BOHRER, MP ;
PATTERSON, GD ;
CARROLL, PJ .
MACROMOLECULES, 1984, 17 (06) :1170-1173
[3]   OSMOTIC REFLECTION COEFFICIENTS OF CAPILLARY WALLS TO LOW-MOLECULAR WEIGHT HYDROPHILIC SOLUTES MEASURED IN SINGLE PERFUSED CAPILLARIES OF FROG MESENTERY [J].
CURRY, FE ;
MASON, JC ;
MICHEL, CC .
JOURNAL OF PHYSIOLOGY-LONDON, 1976, 261 (02) :319-336
[4]   Longitudinal relationship between solute transport and ultrafiltration capacity in peritoneal dialysis patients [J].
Davies, SJ .
KIDNEY INTERNATIONAL, 2004, 66 (06) :2437-2445
[5]   A DISTRIBUTED MODEL OF PERITONEAL-PLASMA TRANSPORT - ANALYSIS OF EXPERIMENTAL-DATA IN THE RAT [J].
FLESSNER, MF ;
DEDRICK, RL ;
SCHULTZ, JS .
AMERICAN JOURNAL OF PHYSIOLOGY, 1985, 248 (03) :F413-F424
[6]   Correlating structure with solute and water transport in a chronic model of peritoneal inflammation [J].
Flessner, MF ;
Choi, J ;
Vanpelt, H ;
He, Z ;
Credit, K ;
Henegar, J ;
Hughson, M .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2006, 290 (01) :F232-F240
[7]   The effect of fibrosis on peritoneal transport [J].
Flessner, Michael E. .
PERITONEAL DIALYSIS: A CLINICAL UPDATE, 2006, 150 :174-180
[8]   Why do we not all have proteinuria?: An update of our current understanding of the glomerular barrier [J].
Haraldsson, B ;
Sörensson, J .
NEWS IN PHYSIOLOGICAL SCIENCES, 2004, 19 :7-10
[9]   PERITONEAL TRANSPORT IN CAPD PATIENTS WITH PERMANENT LOSS OF ULTRAFILTRATION CAPACITY [J].
HEIMBURGER, O ;
WANIEWSKI, J ;
WERYNSKI, A ;
TRANAEUS, A ;
LINDHOLM, B .
KIDNEY INTERNATIONAL, 1990, 38 (03) :495-506
[10]  
Krediet RT, 2000, PERITON DIALYSIS INT, V20, pS22