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MR Molecular Imaging of Prostate Cancer with a Small Molecular CLT1 Peptide Targeted Contrast Agent
Published on: September 3, 2013
A low molecular weight multifunctional theranostic molecule for the treatment of prostate cancer
Xinning Wang1, Rongcan Sun2, Jing Wang2
1Department of Biomedical Engineering, Case Western Reserve University, 11100 Euclid Ave, Wearn Building B-49, Cleveland, OH, USA, 44106.
Abstract:
Rationale: Although surgery and radiation therapy in patients with low risk prostate cancer appear appropriate and effective, those with high-risk localized disease almost always become hormone refractory and then rapidly progress. A new treatment strategy is urgently needed for patients with high-risk localized prostate cancer, particularly an approach that combines two drugs with different mechanisms. Combinations of photodynamic therapy (PDT) and chemotherapy have shown synergistic effects in clinical trials, but are limited by off-target toxicity. Prostate specific membrane antigen (PSMA) is a well-established biomarker for prostate cancer. Here we describe the use of a PSMA ligand to selectively and simultaneously deliver a potent microtubule inhibiting agent, monomethyl auristatin E (MMAE), and a PDT agent, IR700, to prostate cancers. Methods: Using a bifunctional PSMA ligand PSMA-1-Cys-C6-Lys, we created a novel theranostic molecule PSMA-1-MMAE-IR700. The molecule was tested in vitro and in vivo for selectivity and antitumor activity studies. Results: PSMA-1-MMAE-IR700 showed selective and specific uptake in PSMA-positive PC3pip cells, but not in PSMA-negative PC3flu cells both in vitro and in vivo. In in vitro cytotoxicity studies, when exposed to 690 nm light, PSMA-1-MMAE-IR700 demonstrated a synergistic effect leading to greater cytotoxicity for PC3pip cells when compared to PSMA-1-IR700 with light irradiation or PSMA-1-MMAE-IR700 without light irradiation. In vivo antitumor activity studies further showed that PSMA-1-MMAE-IR700 with light irradiation significantly inhibited PC3pip tumor growth and prolonged survival time as compared to mice receiving an equimolar amount of PSMA-1-IR700 with light irradiation or PSMA-1-IR700-MMAE without light irradiation. Conclusion: We have synthesized a new multifunctional theranostic molecule that combines imaging, chemotherapy, and PDT for therapy against PSMA-expressing cancer tissues. This work may provide a new treatment option for advanced prostate cancer.
Insights
A novel theranostic molecule targets high-risk prostate cancer by combining chemotherapy and photodynamic therapy (PDT). This PSMA-targeted agent, PSMA-1-MMAE-IR700, demonstrated significant tumor inhibition and improved survival in preclinical studies.
Area of Science:
- Oncology
- Nanomedicine
- Theranostics
Background:
- High-risk prostate cancer often progresses to hormone resistance despite standard treatments.
- Current combination therapies face challenges with off-target toxicity.
- Prostate-specific membrane antigen (PSMA) is a key biomarker for targeted prostate cancer therapies.
Purpose of the Study:
- To develop a novel theranostic molecule for high-risk prostate cancer.
- To combine chemotherapy (MMAE) and photodynamic therapy (PDT) using a PSMA-targeting ligand.
- To evaluate the molecule's selectivity and antitumor efficacy.
Main Methods:
- Synthesized a bifunctional PSMA ligand conjugated with MMAE and IR700 (PSMA-1-MMAE-IR700).
- Assessed *in vitro* and *in vivo* selectivity and cytotoxicity in PSMA-positive and negative cancer cells.
- Evaluated *in vivo* antitumor activity and survival in a mouse model.
Main Results:
- PSMA-1-MMAE-IR700 showed selective uptake in PSMA-positive cells.
- The molecule exhibited synergistic cytotoxicity with light irradiation *in vitro*.
- *In vivo* studies demonstrated significant tumor growth inhibition and prolonged survival.
Conclusions:
- A new multifunctional theranostic molecule was synthesized for PSMA-expressing cancers.
- The combination of chemotherapy and PDT via PSMA targeting shows promise.
- This approach may offer a new treatment strategy for advanced prostate cancer.
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