Antibody-targeting of ultra-small nanoparticles enhances imaging sensitivity and enables longitudinal tracking of multiple myeloma.
Alexandre DetappeMairead ReidyYingjie YuClelia MathieuHung V-T NguyenThibaud P CorollerFred LamPetr JarolimPeter HarveyAndrea ProttiQuang-De NguyenJeremiah A JohnsonYannick CremillieuxOlivier TillementIrene M GhobrialP Peter GhoroghchianPublished in: Nanoscale (2019)
Monitoring malignant progression and disease recurrence post-therapy are central challenges to improving the outcomes of patients with multiple myeloma (MM). Whereas current detection methods that rely upon bone marrow examination allow for precise monitoring of minimal residual disease and can help to elucidate clonal evolution, they do not take into account the spatial heterogeneity of the tumor microenvironment. As such, they are uninformative as to the localization of malignant plasma cells and may lead to false negative results. With respect to the latter challenge, clinically-available imaging agents are neither sufficiently sensitive nor specific enough to detect minute plasma cell populations. Here, we sought to explore methods by which to improve detection of MM cells within their natural bone marrow environment, using whole-animal magnetic resonance imaging to longitudinally monitor early-stage disease as well as to enhance tumor detection after systemic therapy. We conducted a proof-of-concept study to demonstrate that ultra-small (<5 nm) gadolinium-containing nanoparticles bound to full-length antibodies against the B-cell maturation antigen (BCMA) exhibit rapid tumor uptake followed by renal clearance, improving the signal-to-noise ratio for MM detection beyond levels that are currently afforded by other FDA-approved clinical imaging modalities. We anticipate that when combined with bone marrow or blood biopsy, such imaging constructs could help to augment the effective management of patients with MM.
Keyphrases
- bone marrow
- high resolution
- loop mediated isothermal amplification
- multiple myeloma
- magnetic resonance imaging
- early stage
- induced apoptosis
- mesenchymal stem cells
- single cell
- label free
- cell cycle arrest
- real time pcr
- computed tomography
- stem cells
- adipose tissue
- metabolic syndrome
- radiation therapy
- air pollution
- type diabetes
- fluorescence imaging
- signaling pathway
- photodynamic therapy
- cell death
- pi k akt
- cancer therapy
- insulin resistance
- cell proliferation
- contrast enhanced
- sensitive detection
- replacement therapy