Related Experiment Video
Updated: Jan 21, 2026

MR Molecular Imaging of Prostate Cancer with a Small Molecular CLT1 Peptide Targeted Contrast Agent
Published on: September 3, 2013
iRGD: A Promising Peptide for Cancer Imaging and a Potential Therapeutic Agent for Various Cancers
1Sichuan Key Laboratory of Medical Imaging, Department of Radiology, Affiliated Hospital of North Sichuan Medical College, Nanchong, Sichuan 637000, China.
Abstract:
Poor penetration into the tumor parenchyma and the reduced therapeutic efficacy of anticancer drugs and other medications are the major problems in tumor treatment. A new tumor-homing and penetrating peptide, iRGD (CRGDK/RGPD/EC), can be effectively used to combine and deliver imaging agents or anticancer drugs into tumors. The different "vascular zip codes" expressed in different tissues can serve as targets for docking-based (synaptic) delivery of diagnostic and therapeutic molecules. αv-Integrins are abundantly expressed in the tumor vasculature, where they are recognized by peptides containing the RGD integrin recognition motif. The iRGD peptide follows a multistep tumor-targeting process: First, it is proteolytically cleaved to generate the CRGDK fragment by binding to the surface of cells expressing αv integrins (αvβ3 and αvβ5). Then, the fragment binds to neuropilin-1 and penetrates the tumor parenchyma more deeply. Compared with conventional RGD peptides, the affinity of iRGD for αv integrins is in the mid to low nanomolar range, and the CRGDK fragment has a stronger affinity for neuropilin-1 than that for αv integrins because of the C-terminal exposure of a conditional C-end Rule (CendR) motif (R/KXXR/K), whose receptor proved to be neuropilin-1. Consequently, these advantages facilitate the transfer of CRGDK fragments from integrins to neuropilin-1 and consequently deeper penetration into the tumor. Due to its specific binding and strong affinity, the iRGD peptide can deliver imaging agents and anticancer drugs into tumors effectively and deeply, which is useful in detecting the tumor, blocking tumor growth, and inhibiting tumor metastasis. This review aims to focus on the role of iRGD in the imaging and treatment of various cancers.
Insights
The iRGD peptide enhances tumor penetration and drug delivery by targeting alpha-v integrins and neuropilin-1. This novel approach improves imaging and therapeutic efficacy in various cancers.
Area of Science:
- Oncology
- Biochemistry
- Drug Delivery
Background:
- Tumor penetration and drug efficacy are limited by poor drug delivery into tumor tissues.
- Targeted delivery systems are crucial for improving anticancer treatments.
- Integrins and neuropilins play roles in cellular interactions and molecular transport.
Purpose of the Study:
- To review the role of the iRGD peptide in enhancing tumor targeting and drug delivery.
- To explore the mechanisms of iRGD peptide's tumor penetration.
- To highlight the potential of iRGD in cancer imaging and therapy.
Main Methods:
- Literature review of studies involving the iRGD peptide.
- Analysis of iRGD's binding affinities to alpha-v integrins and neuropilin-1.
- Examination of iRGD's tumor penetration pathways and mechanisms.
Main Results:
- iRGD peptide effectively targets alpha-v integrins on tumor vasculature.
- Proteolytic cleavage of iRGD generates a fragment that binds neuropilin-1 for deeper tumor penetration.
- iRGD demonstrates high affinity for both alpha-v integrins and neuropilin-1, facilitating drug and imaging agent delivery.
Conclusions:
- The iRGD peptide offers a promising strategy for improving drug and imaging agent delivery into tumors.
- Its unique targeting mechanism enhances penetration and therapeutic efficacy.
- iRGD holds significant potential for advancing cancer diagnosis and treatment.
Related Concept Videos
Cancer
What is Cancer?
Although people have known about cancer for centuries, it was only in 1761 that Giovanni Morgagni of Padua performed a detailed autopsy of...
Cancer Prevention
Some...
Cancer Therapies
However, cancer treatments can pose several challenges, as therapies used to kill cancer cells are generally also toxic to normal cells. Moreover, cancer cells mutate rapidly and can develop resistance to chemical agents or radiation therapy. Besides, all types of cancer cells may not respond to the same therapy. Some cancer cells respond to one...
Cancer Vaccines
Cancer vaccines come in two categories: preventive (prophylactic) and treatment (active). Preventive vaccines, such as the Human Papillomavirus (HPV) vaccine, protect against viruses that cause certain...
Skin Cancer
Basal Cell Carcinoma (BCC): BCC is the most common type of skin cancer, accounting for about 80% of cases. It typically develops in...

