Pan-European atmospheric lead pollution, enhanced blood lead levels, and cognitive decline from Roman-era mining and smelting

J Joseph R. McConnell (Division of Hydrologic Sciences, Desert Research Institute) N Nathan J. Chellman (Division of Hydrologic Sciences, Desert Research Institute) A Andreas Plach (Department of Meteorology and Geophysics, University of Vienna) S Sophia M. Wensman (Division of Hydrologic Sciences, Desert Research Institute) G Gill Plunkett (School of Natural and Built Environment, Queen’s University Belfast) A Andreas Stohl N Nicole-Kristine Smith (Division of Hydrologic Sciences, Desert Research Institute) B Bo Møllesøe Vinther (Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen) D Dorthe Dahl-Jensen (Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen) J Jørgen Peder Steffensen (Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen) D Diedrich Fritzsche (Polar Terrestrial Environmental Systems, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar-und Meeresforschung) S Sandra O. Camara-Brugger (Department of Environmental Sciences, University of Basel) B Brandon T. McDonald (Division of Hydrologic Sciences, Desert Research Institute) A Andrew I. Wilson (Institute of Archaeology, University of Oxford)

Abstract

Ancient texts and archaeological evidence indicate substantial lead exposure during antiquity that potentially impacted human health. Although lead exposure routes were many and included the use of glazed tablewares, paints, cosmetics, and even intentional ingestion, the most significant for the nonelite, rural majority of the population may have been through background air pollution from mining and smelting of silver and lead ores that underpinned the Roman economy. Here, we determined potential health effects of this air pollution using Arctic ice core measurements of Roman-era lead pollution, atmospheric modeling, and modern epidemiology-based relationships between air concentrations, blood lead levels (BLLs), and cognitive decline. Findings suggest air lead concentrations exceeded 150 ng/m 3 near metallurgical emission sources, with average enhancements of >1.0 ng/m 3 over Europe during the Pax Romana apogee of the Roman Empire. The result was blood lead enhancements in young children of about 2.4 µg/dl above an estimated Neolithic background of 1.0 µg/dl, leading to widespread cognitive decline including a 2.5-to-3 point reduction in intelligence quotient throughout the Roman Empire.

Article Details

Volume / Issue Vol. 122, Issue 3
Published January 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

J

Joseph R. McConnell

Division of Hydrologic Sciences, Desert Research Institute

N

Nathan J. Chellman

Division of Hydrologic Sciences, Desert Research Institute

A

Andreas Plach

Department of Meteorology and Geophysics, University of Vienna

S

Sophia M. Wensman

Division of Hydrologic Sciences, Desert Research Institute

G

Gill Plunkett

School of Natural and Built Environment, Queen’s University Belfast

A

Andreas Stohl

N

Nicole-Kristine Smith

Division of Hydrologic Sciences, Desert Research Institute

B

Bo Møllesøe Vinther

Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen

D

Dorthe Dahl-Jensen

Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen

J

Jørgen Peder Steffensen

Physics of Ice, Climate and Earth, Niels Bohr Institute, University of Copenhagen

D

Diedrich Fritzsche

Polar Terrestrial Environmental Systems, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar-und Meeresforschung

S

Sandra O. Camara-Brugger

Department of Environmental Sciences, University of Basel

B

Brandon T. McDonald

Division of Hydrologic Sciences, Desert Research Institute

A

Andrew I. Wilson

Institute of Archaeology, University of Oxford