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A Neurite Outgrowth Assay and Neurotoxicity Assessment with Human Neural Progenitor Cell-Derived Neurons
Published on: August 6, 2020
New tools for the quantitative assessment of prodrug delivery and neurotoxicity
Lynn E Samuelson1, Randy L Scherer1,2, Michael N VanSaun3,1
1Department of Cancer Biology; Vanderbilt University, Nashville TN.
Abstract:
Systemic off-target toxicities, including neurotoxicity, are prevalent side effects in cancer patients treated with a number of otherwise highly efficacious anticancer drugs. In the current study, we have: (1) developed a new analytical metric for the in vivo preclinical assessment of systemic toxicities/neurotoxicity of new drugs and delivery systems; and (2) evaluated, in mice, the in vivo efficacy and toxicity of a versatile and modular NanoDendron (ND) drug delivery and imaging platform that we recently developed. Our paclitaxel-carrying ND prodrug, ND(PXL), is activated following proteolytic cleavage by MMP9, resulting in localized cytotoxic chemotherapy. Using click chemistry, we combined ND(PXL) with a traceable beacon, ND(PB), yielding ND(PXL)-ND(PB) that functions as a theranostic compound. In vivo fluorescence FRET imaging of this theranostic platform was used to confirm localized delivery to tumors and to assess the efficiency of drug delivery to tumors, achieving 25-30% activation in the tumors of an immunocompetent mouse model of breast cancer. In this model, ND-drug exhibited anti-tumor efficacy comparable to nab-paclitaxel, a clinical formulation. In addition, we combined neurobehavioral metrics of nociception and sensorimotor performance of individual mice to develop a novel composite toxicity score that reveals and quantifies peripheral neurotoxicity, a debilitating long-term systemic toxicity of paclitaxel therapy. Importantly, mice treated with nab-paclitaxel developed changes in behavioral metrics with significantly higher toxicity scores indicative of peripheral neuropathy, while mice treated with ND(PXL) showed no significant changes in behavioral responses or toxicity score. Our ND formulation was designed to be readily adaptable to incorporate different drugs, imaging modalities and/or targeting motifs. This formulation has significant potential for preclinical and clinical tools across multiple disease states. The studies presented here report a novel toxicity score for assessing peripheral neuropathy and demonstrate that our targeted, theranostic NDs are safe and effective, providing localized tumor delivery of a chemotherapeutic and with reduced common neurotoxic side-effects.
Insights
This study introduces a new toxicity score to assess neurotoxicity in cancer drug delivery systems. A novel NanoDendron (ND) platform carrying paclitaxel demonstrated effective tumor treatment with significantly reduced neurotoxic side effects compared to existing therapies.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Systemic toxicities, particularly neurotoxicity, are common and debilitating side effects of many effective anticancer drugs.
- Developing safer drug delivery systems is crucial to mitigate these adverse effects and improve patient outcomes.
Purpose of the Study:
- To develop and validate a novel analytical metric for preclinical assessment of systemic toxicities and neurotoxicity.
- To evaluate the in vivo efficacy and safety of a modular NanoDendron (ND) drug delivery platform for localized cancer chemotherapy.
Main Methods:
- Developed a composite toxicity score using neurobehavioral metrics (nociception, sensorimotor performance) to quantify peripheral neurotoxicity.
- Engineered a paclitaxel-carrying ND prodrug (ND(PXL)) activated by MMP9 for localized chemotherapy.
- Created a theranostic compound (ND(PXL)-ND(PB)) for tumor delivery tracking using FRET imaging.
- Assessed anti-tumor efficacy and toxicity in an immunocompetent mouse model of breast cancer.
Main Results:
- The novel toxicity score effectively revealed and quantified peripheral neurotoxicity.
- ND(PXL) demonstrated anti-tumor efficacy comparable to nab-paclitaxel.
- Mice treated with nab-paclitaxel showed significant toxicity scores indicative of neuropathy, while ND(PXL)-treated mice exhibited no significant toxicity.
- In vivo imaging confirmed localized tumor delivery and 25-30% activation of ND(PXL) in tumors.
Conclusions:
- The developed NanoDendron platform provides safe and effective localized tumor delivery of chemotherapeutics.
- The novel toxicity scoring metric aids in the preclinical assessment of drug-induced neurotoxicity.
- This theranostic ND platform shows significant potential for reducing common neurotoxic side effects in cancer therapy.
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