Functional architecture of Weibel-Palade bodies

被引:202
作者
Valentijn, Karine M. [2 ]
Sadler, J. Evan [3 ,4 ,5 ]
Valentijn, Jack A. [2 ]
Voorberg, Jan [6 ]
Eikenboom, Jeroen [1 ]
机构
[1] Leiden Univ, Med Ctr, Dept Thrombosis & Hemostasis, Einthoven Lab Expt Vasc Med, NL-2300 RC Leiden, Netherlands
[2] Leiden Univ, Med Ctr, Sect Electron Microscopy, Dept Mol Cell Biol, NL-2300 RC Leiden, Netherlands
[3] Washington Univ, Sch Med, Dept Med, St Louis, MO 63110 USA
[4] Washington Univ, Sch Med, Dept Biochem, St Louis, MO 63110 USA
[5] Washington Univ, Sch Med, Dept Mol Biophys, St Louis, MO 63110 USA
[6] Univ Amsterdam, Acad Med Ctr, Dept Plasma Proteins, Sanquin Res & Landsteiner Lab, NL-1105 AZ Amsterdam, Netherlands
基金
美国国家卫生研究院;
关键词
VON-WILLEBRAND-FACTOR; HUMAN-ENDOTHELIAL-CELLS; LYSOSOME-RELATED ORGANELLES; FACTOR-VIII BINDING; VONWILLEBRAND-FACTOR; P-SELECTIN; REGULATED SECRETION; FACTOR PROPEPTIDE; DEFECTIVE MULTIMERIZATION; STORAGE ORGANELLES;
D O I
10.1182/blood-2010-09-267492
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Weibel-Palade bodies (WPBs) are elongated secretory organelles specific to endothelial cells that contain von Willebrand factor (VWF) and a variety of other proteins that contribute to inflammation, angiogenesis, and tissue repair. The remarkable architecture of WPBs is because of the unique properties of their major constituent VWF. VWF is stored inside WPBs as tubules, but on its release, forms strikingly long strings that arrest bleeding by recruiting blood platelets to sites of vascular injury. In recent years considerable progress has been made regarding the molecular events that underlie the packaging of VWF multimers into tubules and the processes leading to the formation of elongated WPBs. Mechanisms directing the conversion of tightly packaged VWF tubules into VWF strings on the surface of endothelial cells are starting to be unraveled. Several modes of exocytosis have now been described for WPBs, emphasizing the plasticity of these organelles. WPB exocytosis plays a role in the pathophysiology and treatment of von Willebrand disease and may have impact on common hematologic and cardiovascular disorders. This review summarizes the major advances made on the biogenesis and exocytosis of WPBs and places these recent discoveries in the context of von Willebrand disease. (Blood. 2011; 117(19): 5033-5043)
引用
收藏
页码:5033 / 5043
页数:11
相关论文
共 103 条
[81]   Characterization of the interaction between von Willebrand factor and osteoprotegerin [J].
Shahbazi, S. ;
Lenting, P. J. ;
Fribourg, C. ;
Terraube, V. ;
Denis, C. V. ;
Christophe, O. D. .
JOURNAL OF THROMBOSIS AND HAEMOSTASIS, 2007, 5 (09) :1956-1962
[82]   STRUCTURAL BASIS OF PERMEABILITY IN SEQUENTIAL SEGMENTS OF MICROVASCULATURE OF DIAPHRAGM .2. PATHWAYS FOLLOWED BY MICRO-PEROXIDASE ACROSS ENDOTHELIUM [J].
SIMIONESCU, N ;
SIMIONESCU, M ;
PALADE, GE .
MICROVASCULAR RESEARCH, 1978, 15 (01) :17-36
[83]   Novel Associations of Multiple Genetic Loci With Plasma Levels of Factor VII, Factor VIII, and von Willebrand Factor The CHARGE (Cohorts for Heart and Aging Research in Genome Epidemiology) Consortium [J].
Smith, Nicholas L. ;
Chen, Ming-Huei ;
Dehghan, Abbas ;
Strachan, David P. ;
Basu, Saonli ;
Soranzo, Nicole ;
Hayward, Caroline ;
Rudan, Igor ;
Sabater-Lleal, Maria ;
Bis, Joshua C. ;
de Maat, Moniek P. M. ;
Rumley, Ann ;
Kong, Xiaoxiao ;
Yang, Qiong ;
Williams, Frances M. K. ;
Vitart, Veronique ;
Campbell, Harry ;
Maelarstig, Anders ;
Wiggins, Kerri L. ;
Van Duijn, Cornelia M. ;
McArdle, Wendy L. ;
Pankow, James S. ;
Johnson, Andrew D. ;
Silveira, Angela ;
McKnight, Barbara ;
Uitterlinden, Andre G. ;
Aleksic, Nena ;
Meigs, James B. ;
Peters, Annette ;
Koenig, Wolfgang ;
Cushman, Mary ;
Kathiresan, Sekar ;
Rotter, Jerome I. ;
Bovill, Edwin G. ;
Hofman, Albert ;
Boerwinkle, Eric ;
Tofler, Geoffrey H. ;
Peden, John F. ;
Psaty, Bruce M. ;
Leebeek, Frank ;
Folsom, Aaron R. ;
Larson, Martin G. ;
Spector, Timothy D. ;
Wright, Alan F. ;
Wilson, James F. ;
Hamsten, Anders ;
Lumley, Thomas ;
Witteman, Jacqueline C. M. ;
Tang, Weihong ;
O'Donnell, Christopher J. .
CIRCULATION, 2010, 121 (12) :1382-U45
[84]   BIOSYNTHESIS OF VON WILLEBRAND PROTEIN BY HUMAN MEGAKARYOCYTES [J].
SPORN, LA ;
CHAVIN, SI ;
MARDER, VJ ;
WAGNER, DD .
JOURNAL OF CLINICAL INVESTIGATION, 1985, 76 (03) :1102-1106
[85]   Membrane Fusion: Grappling with SNARE and SM Proteins [J].
Sudhof, Thomas C. ;
Rothman, James E. .
SCIENCE, 2009, 323 (5913) :474-477
[86]  
TRILLO AA, 1979, LAB INVEST, V41, P294
[87]   A new look at Weibel-Palade body structure in endothelial cells using electron tomography [J].
Valentijn, K. M. ;
Valentijn, J. A. ;
Jansen, K. A. ;
Koster, A. J. .
JOURNAL OF STRUCTURAL BIOLOGY, 2008, 161 (03) :447-458
[88]   Multigranular exocytosis of Weibel-Palade bodies in vascular endothelial cells [J].
Valentijn, Karine M. ;
van Driel, Linda F. ;
Mourik, Marjon J. ;
Hendriks, Gert-Jan ;
Arends, Tom J. ;
Koster, Abraham J. ;
Valentijn, Jack A. .
BLOOD, 2010, 116 (10) :1807-1816
[89]   Intracellular cotrafficking of factor VIII and von Willebrand factor type 2N variants to storage organelles [J].
van den Biggelaar, Maartje ;
Meijer, Alexander B. ;
Voorberg, Jan ;
Mertens, Koen .
BLOOD, 2009, 113 (13) :3102-3109
[90]   von Willebrand factor propeptide in vascular disorders: A tool to distinguish between acute and chronic endothelial cell perturbation [J].
van Mourik, JA ;
Boertjes, R ;
Huisveld, IA ;
Fijnvandraat, K ;
Pajkrt, D ;
van Genderen, PJJ ;
Fijnheer, R .
BLOOD, 1999, 94 (01) :179-185