In vivo imaging of islet transplantation

被引:211
作者
Evgenov, NV
Medarova, Z
Dai, GP
Bonner-Weir, S
Moore, A
机构
[1] Harvard Univ, Sch Med, Athinoula A Martinos Ctr Biomed Imaging,Dept Radi, Massachusetts Gen Hosp,Mol Imaging Lab,MGH,MIT,HM, Charlestown, MA 02129 USA
[2] Harvard Univ, Sch Med, Joslin Diabet Ctr, Boston, MA 02215 USA
关键词
D O I
10.1038/nm1316
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Type 1 diabetes mellitus is characterized by the selective destruction of insulin-producing beta cells, which leads to a deficiency in insulin secretion and, as a result, to hyperglycemia. At present, transplantation of pancreatic islets is an emerging and promising clinical modality, which can render individuals with type 1 diabetes insulin independent without increasing the incidence of hypoglycemic events. To monitor transplantation efficiency and graft survival, reliable noninvasive imaging methods are needed. If such methods were introduced into the clinic, essential information could be obtained repeatedly and noninvasively. Here we report on the in vivo detection of transplanted human pancreatic islets using magnetic resonance imaging (MRI) that allowed noninvasive monitoring of islet grafts in diabetic mice in real time. We anticipate that the information obtained in this study would ultimately result in the ability to detect and monitor islet engraftment in humans, which would greatly aid the clinical management of this disease.
引用
收藏
页码:144 / 148
页数:5
相关论文
共 23 条
[11]   Tat peptide-derivatized magnetic nanoparticles allow in vivo tracking and recovery of progenitor cells [J].
Lewin, M ;
Carlesso, N ;
Tung, CH ;
Tang, XW ;
Cory, D ;
Scadden, DT ;
Weissleder, R .
NATURE BIOTECHNOLOGY, 2000, 18 (04) :410-414
[12]   Bioluminescent monitoring of islet graft survival after transplantation [J].
Lu, YX ;
Dang, H ;
Middleton, B ;
Zhang, Z ;
Washburn, L ;
Campbell-Thompson, M ;
Atkinson, MA ;
Gambhir, SS ;
Tian, J ;
Kaufman, DL .
MOLECULAR THERAPY, 2004, 9 (03) :428-435
[13]  
Malaisse WJ, 2001, INT J MOL MED, V7, P405
[14]   Molecular imaging in living subjects: seeing fundamental biological processes in a new light [J].
Massoud, TF ;
Gambhir, SS .
GENES & DEVELOPMENT, 2003, 17 (05) :545-580
[15]   Tracking the recruitment of diabetogenic CD8+ T-cells to the pancreas in real time [J].
Moore, A ;
Grimm, J ;
Han, BY ;
Santamaria, P .
DIABETES, 2004, 53 (06) :1459-1466
[16]   In vivo targeting of underglycosylated MUC-1 tumor antigen using a multimodal imaging probe [J].
Moore, A ;
Medarova, Z ;
Potthast, A ;
Dai, GP .
CANCER RESEARCH, 2004, 64 (05) :1821-1827
[17]   MRI of insulitis in autoimmune diabetes [J].
Moore, A ;
Sun, PZ ;
Cory, D ;
Högemann, D ;
Weissleder, R ;
Lipes, MA .
MAGNETIC RESONANCE IN MEDICINE, 2002, 47 (04) :751-758
[18]   Uptake of dextran-coated monocrystalline iron oxides in tumor cells and macrophages [J].
Moore, A ;
Weissleder, R ;
Bogdanov, A .
JOURNAL OF MAGNETIC RESONANCE IMAGING, 1997, 7 (06) :1140-1145
[19]   Noninvasive in vivo measurement of β-cell mass in mouse model of diabetes [J].
Moore, A ;
Bonner-Weir, S ;
Weissleder, R .
DIABETES, 2001, 50 (10) :2231-2236
[20]   Synthesis and evaluation of fluorine-18 labeled glyburide analogs as β-cell imaging agents [J].
Schmitz, A ;
Shiue, CY ;
Feng, Q ;
Shiue, GG ;
Deng, S ;
Pourdehnad, MT ;
Schirrmacher, R ;
Vatamaniuk, M ;
Doliba, N ;
Matschinsky, F ;
Wolf, B ;
Rösch, F ;
Naji, A ;
Alavi, AA .
NUCLEAR MEDICINE AND BIOLOGY, 2004, 31 (04) :483-491