Quantitative MRI evaluation of ferritin overexpression in non-small-cell lung cancer Journal Article


Authors: Singhania, M.; Zaher, A.; Pulliam, C. F.; Bayanbold, K.; Searby, C. C.; Schoenfeld, J. D.; Mapuskar, K. A.; Fath, M. A.; Allen, B. G.; Spitz, D. R.; Petronek, M. S.
Article Title: Quantitative MRI evaluation of ferritin overexpression in non-small-cell lung cancer
Abstract: Cancer cells frequently present elevated intracellular iron levels, which are thought to facilitate an enhanced proliferative capacity. Targeting iron metabolism within cancer cells presents an avenue to enhance therapeutic responses, necessitating the use of non-invasive models to modulate iron manipulation to predict responses. Moreover, the ubiquitous nature of iron necessitates the development of unique, non-invasive markers of metabolic disruptions to develop more personalized approaches and enhance the clinical utility of these approaches. Ferritin, an iron storage enzyme that is often upregulated as a response to iron accumulation, plays a central role in iron metabolism and has been frequently associated with unfavorable clinical outcomes in cancer. Herein, we demonstrate the successful utility, validation, and functionality of a doxycycline-inducible ferritin heavy chain (FtH) overexpression model in H1299T non-small-cell lung cancer (NSCLC) cells. Treatment with doxycycline increased the protein expression of FtH with a corresponding decrease in labile iron in vitro and in vivo, as determined by calcein-AM staining and EPR, respectively. Moreover, a subsequent increase in TfR expression was observed. Furthermore, T2* MR mapping effectively detected FtH expression in our in vivo model. These results demonstrate that T2* relaxation times can be used to monitor changes in FtH expression in tumors with bidirectional correlations depending on the model system. Overall, this study describes the development of an FtH overexpression NSCLC model and its correlation with T2* mapping for potential use in patients to interrogate iron metabolic alterations and predict clinical outcomes. © 2024 by the authors.
Keywords: adult; controlled study; protein expression; middle aged; overall survival; genetics; nonhuman; nuclear magnetic resonance imaging; magnetic resonance imaging; animal cell; mouse; metabolism; gene overexpression; apoptosis; tumor volume; carcinoma, non-small-cell lung; lung neoplasms; animal experiment; animal model; cohort analysis; in vivo study; in vitro study; diagnostic imaging; lung tumor; lung adenocarcinoma; quantitative analysis; western blotting; iron; tumor growth; doxycycline; deferoxamine; mri; ferritin; non-small-cell lung cancer; dna ligase; iron transport; ferritins; non small cell lung cancer; clinical outcome; procedures; electron paramagnetic resonance spectroscopy; electron spin resonance; iron storage; relaxation time; iron metabolism; humans; human; female; article; rna sequencing; nci-h1299 cell line; t<sub>2</sub>*; apoferritins; apoferritin; lowry assay
Journal Title: International Journal of Molecular Sciences
Volume: 25
Issue: 4
ISSN: 1422-0067
Publisher: MDPI  
Date Published: 2024-02-02
Start Page: 2398
Language: English
DOI: 10.3390/ijms25042398
PUBMED: 38397073
PROVIDER: scopus
PMCID: PMC10889593
DOI/URL:
Notes: Article -- Source: Scopus
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