Diabetes Mellitus Induces Bone Marrow Microangiopathy

被引:213
作者
Oikawa, Atsuhiko
Siragusa, Mauro
Quaini, Federico [2 ]
Mangialardi, Giuseppe
Katare, Rajesh G.
Caporali, Andrea
van Buul, Jaap D. [3 ]
van Alphen, Floris P. J. [3 ]
Graiani, Gallia [2 ]
Spinetti, Gaia [4 ]
Kraenkel, Nicolle
Prezioso, Lucia [2 ]
Emanueli, Costanza
Madeddu, Paolo [1 ]
机构
[1] Univ Bristol, Chair Expt Cardiovasc Med, Bristol BS2 8HW, Avon, England
[2] Univ Parma, Dept Internal Med & Biomed Sci, I-43100 Parma, Italy
[3] Univ Amsterdam, Dept Mol Cell Biol, NL-1012 WX Amsterdam, Netherlands
[4] IRCCS MultiMed, Milan, Italy
基金
英国惠康基金;
关键词
diabetes; microangiopathy; oxidative stress; progenitor cells; HEMATOPOIETIC STEM-CELLS; VASCULAR ENDOTHELIAL CADHERIN; CIRCULATING PROGENITOR CELLS; 3 MAJOR PATHWAYS; HYPERGLYCEMIC DAMAGE; OXIDATIVE STRESS; NICHE; MIGRATION; NEOVASCULARIZATION; VASCULOGENESIS;
D O I
10.1161/ATVBAHA.109.200154
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objective-The impact of diabetes on the bone marrow (BM) microenvironment was not adequately explored. We investigated whether diabetes induces microvascular remodeling with negative consequence for BM homeostasis. Methods and Results-We found profound structural alterations in BM from mice with type 1 diabetes with depletion of the hematopoietic component and fatty degeneration. Blood flow (fluorescent microspheres) and microvascular density (immunohistochemistry) were remarkably reduced. Flow cytometry verified the depletion of MECA-32(+) endothelial cells. Cultured endothelial cells from BM of diabetic mice showed higher levels of oxidative stress, increased activity of the senescence marker beta-galactosidase, reduced migratory and network-formation capacities, and increased permeability and adhesiveness to BM mononuclear cells. Flow cytometry analysis of lineage(-) c-Kit(+) Sca-1(+) cell distribution along an in vivo Hoechst-33342 dye perfusion gradient documented that diabetes depletes lineage(-) c-Kit(+) Sca-1(+) cells predominantly in the low-perfused part of the marrow. Cell depletion was associated to increased oxidative stress, DNA damage, and activation of apoptosis. Boosting the antioxidative pentose phosphate pathway by benfotiamine supplementation prevented microangiopathy, hypoperfusion, and lineage(-) c-Kit(+) Sca-1(+) cell depletion. Conclusion-We provide novel evidence for the presence of microangiopathy impinging on the integrity of diabetic BM. These discoveries offer the framework for mechanistic solutions of BM dysfunction in diabetes. (Arterioscler Thromb Vasc Biol. 2010;30:498-508.)
引用
收藏
页码:498 / U304
页数:24
相关论文
共 36 条
[11]  
Fischer C, 2006, Handb Exp Pharmacol, P157
[12]   Benfotiamine accelerates the healing of ischaemic diabetic limbs in mice through protein kinase B/Akt-mediated potentiation of angiogenesis and inhibition of apoptosis [J].
Gadau, S ;
Emanueli, C ;
Van Linthout, S ;
Graiani, G ;
Todaro, M ;
Meloni, M ;
Campesi, I ;
Invernici, G ;
Spillmann, F ;
Ward, K ;
Madeddu, P .
DIABETOLOGIA, 2006, 49 (02) :405-420
[13]   Benfotiamine blocks three major pathways of hyperglycemic damage and prevents experimental diabetic retinopathy [J].
Hammes, HP ;
Du, XL ;
Edelstein, D ;
Taguchi, T ;
Matsumura, T ;
Ju, QD ;
Lin, JH ;
Bierhaus, A ;
Nawroth, P ;
Hannak, D ;
Neumaier, M ;
Bergfeld, R ;
Giardino, I ;
Brownlee, M .
NATURE MEDICINE, 2003, 9 (03) :294-299
[14]   Interpreting flow cytometry data: a guide for the perplexed [J].
Herzenberg, Leonore A. ;
Tung, James ;
Moore, Wayne A. ;
Herzenberg, Leonard A. ;
Parks, David R. .
NATURE IMMUNOLOGY, 2006, 7 (07) :681-685
[15]   Reactive oxygen species act through p38 MAPK to limit the lifespan of hematopoietic stem cells [J].
Ito, K ;
Hirao, A ;
Arai, F ;
Takubo, K ;
Matsuoka, S ;
Miyamoto, K ;
Ohmura, M ;
Naka, K ;
Hosokawa, K ;
Ikeda, Y ;
Suda, T .
NATURE MEDICINE, 2006, 12 (04) :446-451
[16]   Regulation of oxidative stress by ATM is required for self-renewal of haematopoietic stem cells [J].
Ito, K ;
Hirao, A ;
Arai, F ;
Matsuoka, S ;
Takubo, K ;
Hamaguchi, I ;
Nomiyama, K ;
Hosokawa, K ;
Sakurada, K ;
Nakagata, N ;
Ikeda, Y ;
Mak, TW ;
Suda, T .
NATURE, 2004, 431 (7011) :997-1002
[17]   A low level of reactive oxygen species selects for primitive hematopoietic stem cells that may reside in the low-oxygenic niche [J].
Jang, Yoon-Young ;
Sharkis, Saul J. .
BLOOD, 2007, 110 (08) :3056-3063
[18]   Cytokine-mediated deployment of SDF-1 induces revascularization through recruitment of CXCR4+ hemangiocytes [J].
Jin, David K. ;
Shido, Koji ;
Kopp, Hans-Georg ;
Petit, Isabelle ;
Shmelkov, Sergey V. ;
Young, Lauren M. ;
Hooper, Andrea T. ;
Amano, Hideki ;
Avecilla, Scott T. ;
Heissig, Beate ;
Hattori, Koichi ;
Zhang, Fan ;
Hicklin, Daniel J. ;
Wu, Yan ;
Zhu, Zhenping ;
Dunn, Ashley ;
Salari, Hassan ;
Werb, Zena ;
Hackett, Neil R. ;
Crystal, Ronald G. ;
Lyden, David ;
Rafii, Shahin .
NATURE MEDICINE, 2006, 12 (05) :557-567
[19]  
KANJI MI, 1976, J BIOL CHEM, V251, P2255
[20]   Uncertainty in the niches that maintain haematopoietic stem cells [J].
Kiel, Mark J. ;
Morrison, Sean J. .
NATURE REVIEWS IMMUNOLOGY, 2008, 8 (04) :290-301