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Method Article

MR Molecular Imaging of Prostate Cancer with a Small Molecular CLT1 Peptide Targeted Contrast Agent

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DOI:

10.3791/50565

September 3rd, 2013

In This Article

Summary

To demonstrate MR cancer molecular imaging with a small peptide targeted MRI contrast agent specific to clotted plasma proteins in tumor stroma in a mouse prostate cancer model.

Abstract

Tumor extracellular matrix has abundance of cancer related proteins that can be used as biomarkers for cancer molecular imaging. In this work, we demonstrated effective MR cancer molecular imaging with a small molecular peptide targeted Gd-DOTA monoamide complex as a targeted MRI contrast agent specific to clotted plasma proteins in tumor stroma. We performed the experiment of evaluating the effectiveness of the agent for non-invasive detection of prostate tumor with MRI in a mouse orthotopic PC-3 prostate cancer model. The targeted contrast agent was effective to produce significant tumor contrast enhancement at a low dose of 0.03 mmol Gd/kg. The peptide targeted MRI contrast agent is promising for MR molecular imaging of prostate tumor.

Introduction

Effective imaging of cancer related molecular targets is of great significance to improve the accuracy of earlier cancer detection and diagnosis. Magnetic resonance imaging (MRI) is a powerful clinical imaging modality with high spatial resolution and no ionization radiation1. However, no targeted contrast agent is available for clinical MR cancer molecular imaging. Innovative design and development of targeted MRI contrast agents would greatly advance the application of MR cancer molecular imaging. Significant efforts have been made to develop targeted contrast agents for MR imaging of the biomarkers expressed on the surface of cancer cells. Due to relativ....

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Protocol

Protocol adapted from a prior study11.

1. Conjugation of Gd-DOTA to CLT1 Peptide

  1. Using standard solid-phase peptide synthesis, synthesize CLT1 peptide (CGLIIQKNEC) from Fmoc-protected amino acids on a 2-chlorotrityl chloride resin (1.0 mmol).
  2. After adding final amino acid, cyclize the linear peptide on-resin with thallium(III) trifluoroacetate (1.09 g, 2.0 mmol, 2 equivalents) in DMF (20 ml) at 0 °C for 2 hr.
  3. Next, conjugate PEG and lysine sequentially to the N-terminus of CLT1 peptide (1.0 mmol) on resin by reacting sequentially with Fmoc-NH-PEG-COOH (3.0 mmol), Fmoc-Lys(Fmoc)-OH (3.0 mmol)....

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Results

Figure 1 depicts synthesis of the targeted contrast agent CLT1-dL-(Gd-DOTA)4 and the overall scheme of the experiment. CLT1-dL-(Gd-DOTA)4 shows much higher relaxivity than clinical Gd-DOTA (Table 1). At 1.5 T, the T1 relaxivity per gadolinium of CLT1-dL-(Gd-DOTA)4 in PBS (pH 7.4) is approximately 3 times higher than that of Gd-DOTA10. Maestro imaging confirms the strong specific binding of Texas Red labeled CLT1 (CLT1-TR) to tumor with little binding.......

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Discussion

Critical Steps

Selection of Proper Biomarker and Targeting Small Peptide

To successfully develop a targeted contrast agent with small size, two key points need to be considered. First, it is important to select proper molecular biomarkers which are abundantly present in diseased tissues with little presence in normal tissues. Our selected cancer-related biomarker, clotted plasma proteins, meets this requirement. Second, the selected targeted small mol.......

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Disclosures

No conflicts of interest declared.

Acknowledgements

This work is supported in part by the American Heart Association GRA Spring 09 Postdoctoral Fellowship (09POST2250268) and the NIH R01 CA097465. We highly appreciate Dr. Wen Li and Dr. Vikas Gulani for MRI protocol test and setup, and Ms. Yvonne Parker for her assistance on tumor implantation.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
REAGENTS
Fmoc protected amino acidsEMD Chemicals Inc
DOTA-tris(t-Bu)TCI America
PyBOP, HOBt, HBTUNova Biochem
DIPEA, Thallium(III) trifluoroacetate, TISSigma-Aldrich Corp.
Texas Red, succinimidyl ester, single isomerInvitrogenT20175
EQUIPMENTS
Agilent 1100 HPLC systemAgilent
ZORBAX 300SB-C18 PrepHT columnAgilent
ICP-–S Optima 3100XLPerkin-Elmer
MALDI-TOF mass spectrometerBrukerAutoflexTM Speed
Maestro FLEX In Vivo Imaging SystemCambridge Research Instrumentation, Inc.
Biospec 7T MRI scannerBruker

References

  1. Brown, M. A., Semelka, R. C. MRI Basic Principles and Applications. , 3rd, John Wiley & Sons, Inc. Hoboken, New Jersey. (2003).
  2. Artemov, D. Molecular magnetic resonance imaging with targeted contrast agents. J. Cell. Biochem. 90, 518-524 (2003).
  3. Kalber, T. L., Kamaly, N., et al.

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Tags

Peptide Contrast AgentMRI Contrast AgentGd-DOTA MonoamideOrthotopic Tumor ModelFluorescence ImagingConfocal MicroscopySignal Enhancement