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on October 25, 2004

Circulation. 2004
Published online before print October 25, 2004, doi: 10.1161/01.CIR.0000146890.93172.6C
A more recent version of this article appeared on November 2, 2004
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Submitted on November 18, 2003
Revised on June 4, 2004
Accepted on June 7, 2004

Stromal Cell-Derived Factor-1 and CXCR4 Interaction Is Critical for Development of Transplant Arteriosclerosis

Hideyasu Sakihama MD, Taro Masunaga PhD, Kenichiro Yamashita MD, Taku Hashimoto MD, Manabu Inobe MD, Satoru Todo MD, and Toshimitsu Uede MD, PhD*

From the Division of Molecular Immunology (H.S., T.M., M.I., T.U.), Institute for Genetic Medicine, and First Department of Surgery (H.S., K.Y., T.H., S.T.), Graduate School of Medicine, Hokkaido University, Sapporo, Japan.

* To whom correspondence should be addressed. E-mail: toshi{at}imm.hokudai.ac.jp.

Background--Posttransplant chronic allograft deterioration associated with development of transplant arteriosclerosis (TA) remains an unresolved problem. Recent studies suggest that the smooth muscle cells (SMCs) constituting the neointima are derived from recipient hematopoietic stem cells (HSCs). However, the underlying mechanisms of the process are not yet fully elucidated.

Methods and Results--We examined the genes expressed in allografts at different stages of TA development using a mice aortic transplantation model. Genes were analyzed by a differential mRNA display technique. We show that stromal cell-derived factor-1{alpha} (SDF-1{alpha}) is a critical molecular target for the treatment of TA. During the course of TA, intragraft SDF-1{alpha} expression was upregulated with time, and the circulating HSCs expressing its counterreceptor CXCR4 increased in the recipients receiving allografts. CXCR4-positive HSCs, derived from transplant recipients, migrated into allografts via microvessels in the adventitia and then toward the luminal side. The HSCs differentiated into SMC-like cells, contributing to the in situ formation of the neointima. In support of a functional role for these molecules, in vivo neutralization of SDF-1{alpha} inhibited HSC mobilization and significantly attenuated neointimal formation.

Conclusions--Interaction between SDF-1{alpha} and CXCR4 plays a key role in TA development. Blockade of SDF-1{alpha} may become a new therapeutic modality for TA.


Key words: transplantation • arteriosclerosis • rejection • stem cells




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