Uranium Isotopes: From Geosciences to Biomedical Sciences

Abstract Purpose of Review Current biomarkers of uranium (U) exposure do not distinguish among exposure sources or provide information on uranium accumulation within target organs. This review evaluates two complementary uranium isotope systems developed in geosciences and examines their potential as biomarkers of uranium exposure and biological processing. Recent Findings Advances in multi-collector ICP-MS have established δ 238 U and uranium activity ratios or ( 234 U/ 238 U) as independent isotope tracers. Experimental studies show that δ 238 U fractionates during biological uptake, transport, and tissue retention, whereas uranium activity ratios remain largely unchanged after absorption and generally preserve environmental source signatures across groundwater, food webs, and biological systems. Summary These complementary isotope systems provide information on both the origin of uranium exposure and its biological fate that cannot be obtained from concentration measurements alone. Although additional experimental validation and human studies are needed, existing analytical capabilities and mechanistic evidence support evaluating two uranium isotope tracers, δ 238 U and the activity ratio, as novel biomarkers of uranium exposure and biotransformation.

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Publication Details

Journal
Current Environmental Health Reports
Published
2026-10-08
DOI
https://doi.org/10.1007/s40572-026-00564-4
Primary Topic
Radioactivity and Radon Measurements
Type
article
Field-Weighted Citation Impact
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article

Uranium Isotopes: From Geosciences to Biomedical Sciences

Arijeet Mitra, Kathrin Schilling, Anirban Basu, Ana Navas‐Acién et al.
Current Environmental Health Reports
Radioactivity and Radon Measurements
article

Uranium Isotopes: From Geosciences to Biomedical Sciences

Arijeet Mitra, Kathrin Schilling, Anirban Basu, Ana Navas‐Acién, Catherine M. Lucey, Maia Kelly
article en

Abstract

Abstract Purpose of Review Current biomarkers of uranium (U) exposure do not distinguish among exposure sources or provide information on uranium accumulation within target organs. This review evaluates two complementary uranium isotope systems developed in geosciences and examines their potential as biomarkers of uranium exposure and biological processing. Recent Findings Advances in multi-collector ICP-MS have established δ 238 U and uranium activity ratios or ( 234 U/ 238 U) as independent isotope tracers. Experimental studies show that δ 238 U fractionates during biological uptake, transport, and tissue retention, whereas uranium activity ratios remain largely unchanged after absorption and generally preserve environmental source signatures across groundwater, food webs, and biological systems. Summary These complementary isotope systems provide information on both the origin of uranium exposure and its biological fate that cannot be obtained from concentration measurements alone. Although additional experimental validation and human studies are needed, existing analytical capabilities and mechanistic evidence support evaluating two uranium isotope tracers, δ 238 U and the activity ratio, as novel biomarkers of uranium exposure and biotransformation.

Current Environmental Health ReportsVol. 13(1)
Openalex Percentile: Top 8%
Radioactivity and Radon Measurements
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