Mode of intracontinental mountain building controlled by lower crustal composition and mantle lithosphere depletion

X Xi Xu (Department of Materials, Imperial College London, Exhibition Road, London SW7 2AZ, U.K.) A Andrew V. Zuza (Nevada Bureau of Mines and Geology, Nevada Geosciences, University of Nevada) T Taras Gerya L Lin Chen X Xingtao Kuang (China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey) H Hanlin Chen B Baodi Wang (China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey) J Jingao Liu (State Key Laboratory of Geological Processes and Mineral Resources, and Frontiers Science Center for Deep-time Digital Earth, China University of Geoscience (Beijing)) X Xuhua Shi Y Yanyun Sun (China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey) L Lei Wu S Song Han (Department of Physics, City University of Hong Kong, Kowloon, Hong Kong 999077, China) X Xiubin Lin S Shufeng Yang A An Yin

Abstract

Abstract Tectonic plate convergence is accommodated across the continental lithosphere via discrete lithospheric subduction or distributed shortening and thickening. These end-member deformation modes control intra-plate mountain building, but their selection mechanism remains unclear. The variable composition of the continental crust and lithospheric mantle, which impacts its density and rheology, can be inferred by the distribution of magnetic-indicated crustal iron. Here we demonstrate that vertically coherent pure-shear shortening dominated the active Tian Shan orogen, central Asia, based on high-resolution aeromagnetic imaging and geophysical-geodetic observations. Integrating these findings with thermomechanical collisional models reveals that the mode of intracontinental deformation depends on contrasts in lower crust composition and mantle lithosphere depletion between the converging continents and central orogenic region. Distributed shortening prevails when the converging continents have a more iron-enriched mafic crust and iron-depleted mantle lithosphere when compared to the intervening orogenic region. Conversely, continental subduction occurs without such lithospheric contrasts. This result explains how the Tian Shan orogen formed via distributed lithospheric thickening without continental subduction or underthrusting. Our interpretations imply that iron distribution in the crust correlates with lithospheric compositional, density, and rheological structure, which impacts the preservation and destruction of Earth’s continents, including long-lived cratons, during intracontinental orogeny.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 24, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

X

Xi Xu

Department of Materials, Imperial College London, Exhibition Road, London SW7 2AZ, U.K.

A

Andrew V. Zuza

Nevada Bureau of Mines and Geology, Nevada Geosciences, University of Nevada

T

Taras Gerya

L

Lin Chen

X

Xingtao Kuang

China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey

H

Hanlin Chen

B

Baodi Wang

China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey

J

Jingao Liu

State Key Laboratory of Geological Processes and Mineral Resources, and Frontiers Science Center for Deep-time Digital Earth, China University of Geoscience (Beijing)

X

Xuhua Shi

Y

Yanyun Sun

China Aero Geophysical Survey and Remote Center for Natural Resources, China Geological Survey

L

Lei Wu

S

Song Han

Department of Physics, City University of Hong Kong, Kowloon, Hong Kong 999077, China

X

Xiubin Lin

S

Shufeng Yang

A

An Yin