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Updated: Jul 14, 2026

Proton Therapy Delivery and Its Clinical Application in Select Solid Tumor Malignancies
Published on: February 6, 2019
Proof concept for clinical justification of network mapping for personalized cancer therapeutics
J Nemunaitis1, N Senzer, I Khalil
1Mary Crowley Medical Research Center, Dallas, TX, USA. jnemunaitis@mcmrc.com
Abstract:
To identify signature targets associated with patient-specific cancer lesions based on tumor versus normal tissue differential protein and mRNA coexpression patterns for the purpose of synthesizing cancer-specific customized RNA interference knockdown therapeutics. Analysis of biopsied tissue involved two-dimensional difference in-gel electrophoresis (2D-DIGE) analysis coupled with MALDI-TOF/TOF mass spectrometry for proteomic assessment. Standard microarray techniques were utilized for mRNA analysis. Priority was assigned to overexpressed protein targets with co-overexpressed genes with a high likelihood of functional nodal centrality in the cancer network as defined by the interactive databases BIND, HPRD and ResNet. HPLC-grade small interfering RNA (siRNA) duplexes were utilized to assess knockdown of target proteins in expressive cell lines as measured by western blot. Seven patients with metastatic cancer underwent biopsy. One patient (RW001) had biopsies from two disease sites 10 months apart. Seven priority proteins were identified, one for each patient (RACK 1, Ras related nuclear protein, heat-shock 27 kDa protein 1, superoxide dismutase, enolase1, stathmin1 and cofilin1). Prioritized proteins in RW001 from the two disease sites over time were the same. We demonstrated >80% siRNA inhibition of RACK 1 and stathmin1 of inexpressive malignant cell lines with correlated cell kill. Identification of functionally relevant target gene fingerprints, unique to an individual's cancer, is feasible 'at the bedside' and can be utilized to synthesize siRNA knockdown therapeutics. Further animal safety testing followed by clinical study is recommended.
Insights
This study identifies unique cancer targets in patients using protein and mRNA analysis. These targets enable the creation of personalized RNA interference therapies for effective cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Metastatic cancer presents a challenge due to its heterogeneity.
- Identifying patient-specific molecular targets is crucial for developing effective therapies.
Purpose of the Study:
- To identify patient-specific protein and mRNA targets in cancer lesions.
- To develop customized RNA interference (RNAi) knockdown therapeutics based on these targets.
Main Methods:
- Proteomic analysis using 2D-DIGE and MALDI-TOF/TOF mass spectrometry.
- Gene expression analysis via microarray.
- Prioritization of targets based on coexpression and network centrality.
- Validation of target knockdown using small interfering RNA (siRNA) and western blot.
Main Results:
- Seven priority proteins were identified across seven patients with metastatic cancer.
- Consistent target identification in one patient (RW001) across two disease sites and time points.
- >80% siRNA-mediated knockdown of RACK1 and stathmin1 in cell lines, leading to correlated cell kill.
Conclusions:
- Feasible identification of patient-specific cancer 'fingerprints' at the 'bedside'.
- Enables synthesis of customized siRNA therapeutics for individual cancer patients.
- Recommends further animal safety testing and clinical studies.
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