Unlocking sub-annual hydroclimate and temperature variability through land snail shell records

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  • Currently available reconstructions of past East Asian monsoon (EAM) variability achieve annual resolution at best, which limits their ability to resolve seasonal variations in precipitation and temperature. To address this gap, we present sub-annual scale reconstructions of temperature and precipitation variability based on carbonate clumped isotope (Delta(47)) and stable oxygen isotope (delta O-18(shell)) measurements from modern and fossil land snail shells collected from the western (Yuanbao, YB) and southeastern (Lingbao, LB) edge of the Chinese Loess Plateau (CLP). Whole-shell Delta(47)-derived temperatures (T-47) from different modern snail species are consistent with land surface temperatures measured during their growing season (mid-April to September at YB and mid-March to October at LB), and show minimal inter-species differences, highlighting the ecological robustness of snail-based T-47 reconstructions. Our intra-shell Delta(47)-delta O-18-delta C-13 data show no obvious evidence of disequilibrium fractionation, supporting that land snail shell aragonite forms near isotopic equilibrium in natural settings. Notably, the reconstructed intra-shell T-47 profiles show a sub-annual temperature variability of 7-10 degrees C and potential signs of short-term thermal stress. Reconstructed body water delta O-18 (delta O-18(bw)) values from whole-shells are significantly enriched (by similar to 3-6.5 parts per thousand, p < 0.05) compared to local precipitation delta O-18 (delta O-18(p)), due to evaporative effects and micro-environmental conditions. Intra-shell delta O-18(bw) profiles reveal sub-annual fluctuations that follow seasonal delta O-18(p) patterns, capturing dry-season evaporative isotopic enrichment and wet-season depletion masked in whole-shell averages. The T-47 from early Holocene and last glacial maximum (LGM)-aged shells provides geochemical evidence of a cooler growing season than today, perhaps caused by extended growing seasons during the early Holocene and climatically restricted ones during the LGM. Lower and more stable intra-shell T-47 and more negative delta O-18(bw) values during the wet seasons highlight seasonal hydroclimatic shifts under glacial boundary conditions. Together, our results demonstrate the sensitivity of snail shell geochemistry to hydroclimatic seasonality and support the use of combined intra-shell delta O-18 and Delta(47) analyses to resolve climate seasonality beyond the resolution of traditional proxies.