Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Standard Standard

Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. / Palego, Cristiano; Hancock, Chris; Rampazzo, Elena et al.
Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen, 2024.

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

HarvardHarvard

Palego, C, Hancock, C, Rampazzo, E, Persano, L, Casciati, A, Tanori, M, Manusco, M & Merla, C 2024, Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. in Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen.

APA

Palego, C., Hancock, C., Rampazzo, E., Persano, L., Casciati, A., Tanori, M., Manusco, M., & Merla, C. (in press). Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. In Advanced Concepts and Strategies in Central Nervous System Tumors IntechOpen.

CBE

Palego C, Hancock C, Rampazzo E, Persano L, Casciati A, Tanori M, Manusco M, Merla C. 2024. Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. In Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen.

MLA

Palego, Cristiano et al. "Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids". Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen. 2024.

VancouverVancouver

Palego C, Hancock C, Rampazzo E, Persano L, Casciati A, Tanori M et al. Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. In Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen. 2024

Author

Palego, Cristiano ; Hancock, Chris ; Rampazzo, Elena et al. / Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids. Advanced Concepts and Strategies in Central Nervous System Tumors. IntechOpen, 2024.

RIS

TY - CHAP

T1 - Mid-intensity 30.5 GHz continuous wave exposure of glioblastoma organoids

AU - Palego, Cristiano

AU - Hancock, Chris

AU - Rampazzo, Elena

AU - Persano, Luca

AU - Casciati, Arianna

AU - Tanori, Mirella

AU - Manusco, Mariateresa

AU - Merla, Caterina

PY - 2024

Y1 - 2024

N2 - In this chapter, we delve into the therapeutic potential of 30.5 GHz millimetre waves on 3D glioblastoma organoids. We specifically investigated mildly thermal radiation effects in the context of new emerging focused energy deliver and bioelectromagnetic approaches. Our in-house developed exposure system, coupled with a rigorous dosimetry protocol and extensive multi-physics modelling, supported biological endpoints evaluation in terms of transcriptional profiling, cell morphological changes, and cell phenotypic characterization. Crucially, the induced thermal effect was minimal, aligning closely with our simulation models, and indicating the precise control of energy delivery. Notably, a 0.1 W power level enhanced the efficacy of Temozolomide, significantly increasing cell apoptosis while not affecting the differentiation status of glioblastoma organoid cells. This combination suggests a new avenue for glioblastoma treatment, leveraging millimetre wave-induced mechanisms that warrant further investigation. Our findings underscore the promise of this minimally-invasive technique, offering a glimpse into future glioblastoma therapies.

AB - In this chapter, we delve into the therapeutic potential of 30.5 GHz millimetre waves on 3D glioblastoma organoids. We specifically investigated mildly thermal radiation effects in the context of new emerging focused energy deliver and bioelectromagnetic approaches. Our in-house developed exposure system, coupled with a rigorous dosimetry protocol and extensive multi-physics modelling, supported biological endpoints evaluation in terms of transcriptional profiling, cell morphological changes, and cell phenotypic characterization. Crucially, the induced thermal effect was minimal, aligning closely with our simulation models, and indicating the precise control of energy delivery. Notably, a 0.1 W power level enhanced the efficacy of Temozolomide, significantly increasing cell apoptosis while not affecting the differentiation status of glioblastoma organoid cells. This combination suggests a new avenue for glioblastoma treatment, leveraging millimetre wave-induced mechanisms that warrant further investigation. Our findings underscore the promise of this minimally-invasive technique, offering a glimpse into future glioblastoma therapies.

KW - Glioblastoma, millimetre-wave radiation, organoids

M3 - Chapter

BT - Advanced Concepts and Strategies in Central Nervous System Tumors

PB - IntechOpen

ER -