[DSRP Evidence](https://dsrpevidence.org/)

# Topographic regime controls the response of erosion to large earthquakes

Wang et al., 2026, Geology — Geology

Patterns: [Systems](https://dsrpevidence.org/pattern/systems)

## In short

The same triggering event produces different whole-catchment erosion behavior depending on how the system is structurally composed (its topographic regime), showing system-level structure — not just the driving force — determines the output.

## What they found (results)

Comparing two New Zealand lake catchments along the same fault under near-identical climate and geology, the steeper catchment (median slope 47°) showed rock-organic-carbon erosion rise from 15% to 24% after a large earthquake, while the gentler catchment (39°) showed a much smaller response.

## Abstract

Physical erosion can impact the carbon cycle over a range of time scales. In mountains, widespread landslide-triggering events can remove significant quantities of soil from landscapes, yet isolating the spatial pattern and processes of erosion is difficult. Here we reconstruct the impacts of a great earthquake (Mw &amp;gt;8.0) on two lake sedimentary systems in New Zealand and use a combination of geochemical proxies to explore organic matter provenance and soil erosion. The two catchments differ notably in their geomorphic properties, with the median slope of the Lake Mapourika catchment of 47° (+11°/−18°) versus 39° (+9°/−13°) in the Lake Paringa catchment. Carbon and nitrogen isotopes, n-alkane abundance, and n-alkane hydrogen isotopes show that in the steeper Lake Mapourika catchment, landslides from the earthquake mobilized aged soil organic matter and rock-derived organic carbon by deep erosion. Rock organic carbon erosion increased from 15% (+14%/−10%) to 24% (+13%/−13%) in the Lake Mapourika catchment following the earthquake. By comparing the slopes, sediment connectivity, and stream power indices, we show that in the steeper Lake Mapourika catchment, erosion mobilized deeper soil and more bedrock than in Lake Paringa throughout the record, implying that bedrock landslides remained a key process both during and after the earthquake. Thus, we find that even along the same fault zone and under similar climatic, geological, and ecological conditions, topography strongly controls physical erosion as well as its response to widespread landsliding events.

These researchers were not testing DSRP. The finding is theirs; the correspondence to DSRP is drawn by this site.

[Source](https://doi.org/10.1130/g54785.1)
