Health & Medicinearticle2026-08-21

High–spatiotemporal resolution deuterium metabolic imaging enables in vivo phenotyping of intra- and intertumoral heterogeneity

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Abstract

Intra- and intertumoral heterogeneities raise fundamental biological questions and have important implications for accurate cancer diagnosis, prognosis, and treatment. These heterogeneities reflect tumor complexity, including a pronounced diversity in metabolic phenotypes and profiles. This study demonstrates that in vivo deuterium metabolic imaging (DMI) data acquired with sufficiently high spatiotemporal resolution provide a minimally invasive approach to assess these heterogeneities. A multifrequency DMI approach was used to examine tumor heterogeneities within and between colon cancer models. Regions of high and low glucose enrichment and labeled lactate accumulation could thus be detected; these were analyzed using unsupervised clustering strategies based on k -means clustering of area-under-the-curve information, and principal components analysis with Gaussian mixture modeling. Spatial alignment of these imaging-derived clusters for 2 H-glucose and 2 H-lactate showed good agreement with each other as well as with histological sections, validating the biological relevance of the identified subregions. Immunohistochemical analyses showed that glucose-enriched subregions were positively correlated with the expression of GLUT1 and DLAT, while lactate-enriched areas showed elevated expression of LDHA and MCT4. These results demonstrate that in vivo DMI can distinguish metabolically distinct subregions within viable tumors and between tumor models. DMI-based metabolic maps could thus provide the means to characterize intra- and intertumoral heterogeneities, paving the way for imaging-based metabolic phenotyping in precision oncology.

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View paper (DOI)Open access versionOpenAlexScience AdvancesPublished 2026-08-21

Authors: Xinjie Liu, Sufei Wang, Jinrui Zhao, Shasha Wang, Peng Sun, Xin Zhou, Maili Liu, Chaoyang Liu, Lucio Frydman, Qingjia Bao

Institutions: Chinese Academy of Sciences, University of Chinese Academy of Sciences, Union Hospital, Huazhong University of Science and Technology, Weizmann Institute of Science, Neusoft (China), Wuhan Institute of Physics and Mathematics