Tumor-specific alterations in metabolism have been recognized to sustain the production of ATP and macromolecules needed for cell growth, division and survival in many cancer types. However, metabolic heterogeneity poses a challenge for the establishment of effective anticancer therapies that exploit metabolic vulnerabilities. Medulloblastoma (MB) is one of the most heterogeneous malignant pediatric brain tumors, divided into four molecular subgroups (Wingless, Sonic Hedgehog, Group 3 and Group 4). Recent progresses in genomics, single-cell sequencing, and novel tumor models have updated the classification and stratification of MB, highlighting the complex intratumoral cellular diversity of this cancer. In this review, we emphasize the mechanisms through which MB cells rewire their metabolism and energy production networks to support and empower rapid growth, survival under stressful conditions, invasion, metastasis, and resistance to therapy. Additionally, we discuss the potential clinical benefits of currently available drugs that could target energy metabolism to suppress MB progression and increase the efficacy of the current MB therapies.

Marabitti, V., Giansanti, M., De Mitri, F., Gatto, F., Mastronuzzi, A., Nazio, F. (2022). Pathological implications of metabolic reprogramming and its therapeutic potential in medulloblastoma. FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 10, 1-19 [10.3389/fcell.2022.1007641].

Pathological implications of metabolic reprogramming and its therapeutic potential in medulloblastoma

Nazio F.
2022-10-19

Abstract

Tumor-specific alterations in metabolism have been recognized to sustain the production of ATP and macromolecules needed for cell growth, division and survival in many cancer types. However, metabolic heterogeneity poses a challenge for the establishment of effective anticancer therapies that exploit metabolic vulnerabilities. Medulloblastoma (MB) is one of the most heterogeneous malignant pediatric brain tumors, divided into four molecular subgroups (Wingless, Sonic Hedgehog, Group 3 and Group 4). Recent progresses in genomics, single-cell sequencing, and novel tumor models have updated the classification and stratification of MB, highlighting the complex intratumoral cellular diversity of this cancer. In this review, we emphasize the mechanisms through which MB cells rewire their metabolism and energy production networks to support and empower rapid growth, survival under stressful conditions, invasion, metastasis, and resistance to therapy. Additionally, we discuss the potential clinical benefits of currently available drugs that could target energy metabolism to suppress MB progression and increase the efficacy of the current MB therapies.
19-ott-2022
Pubblicato
Rilevanza internazionale
Recensione
Esperti anonimi
Settore BIO/06 - ANATOMIA COMPARATA E CITOLOGIA
English
Con Impact Factor ISI
OXPHOS (oxidative phosphorylation)
ROS
glutamine/glutamate (GABA) cycle
metabolism
warburg effect
Marabitti, V., Giansanti, M., De Mitri, F., Gatto, F., Mastronuzzi, A., Nazio, F. (2022). Pathological implications of metabolic reprogramming and its therapeutic potential in medulloblastoma. FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 10, 1-19 [10.3389/fcell.2022.1007641].
Marabitti, V; Giansanti, M; De Mitri, F; Gatto, F; Mastronuzzi, A; Nazio, F
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/312378
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