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March 10, 2026Paleoceanography and Paleoclimatology0 citations

Biomarker Constraints on Indo‐Pacific Warm Pool Temperature During the Late Pleistocene: The Role of Orbital Forcing

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TTTrang T. TranJTJessica E. TierneyAHAnn Holbourn

Key Points

  • This research aims to understand how sea surface temperature in the Indo-Pacific Warm Pool varied during the late Pleistocene due to climate influences.
  • Analysis of new sea surface temperature (SST) records spanning 650,000 years.
  • Use of three proxy methods: alkenones, , and Mg/Ca.
  • Examination of core samples from International Ocean Discovery Program Site U1482.
  • SST variations of approximately 5°C were observed during glacial-interglacial cycles.
  • Total alkenone concentration indicates higher productivity during glacial periods than interglacials.
  • SST patterns correlate with greenhouse gas and ice volume changes in 100 and 41 kyr cycles.

Abstract

Abstract The Indo‐Pacific Warm Pool (IPWP) exerts a major influence on global atmospheric circulation, yet the drivers of late Pleistocene IPWP sea surface temperature (SST) variability remain debated. To evaluate how IPWP temperature responds to different climate forcings, we present new SST records spanning the past 650 kyr based on three independent proxies—, , and Mg/Ca—from International Ocean Discovery Program Site U1482, located off northwestern Australia at the southernmost margin of the IPWP. Core top samples suggest that and Mg/Ca are biased toward austral summer, while is elevated under low‐nutrient conditions. Down‐core, all proxies exhibit coherent glacial–interglacial SST variations of ∼5C, although is affected by nutrient stress during interglacials. The record shows relatively warm conditions during Marine Isotope Stage 6 compared to other glacial intervals, but this is not observed in the or Mg/Ca records. Total alkenone concentration, reflecting paleo‐productivity, indicate enhanced productivity during glacial intervals and reduced productivity during interglacials. The SST proxy records are in phase with greenhouse gas and ice volume in the 100 and 41 kyr orbital bands, emphasizing tropical‐high latitude climate coupling, while local precession forcing impacts seasonal SSTs. Productivity variations track both glacial‐interglacial cycles and precession‐driven changes in wind‐driven upwelling and surface current intensity in the Indo‐Pacific. Our regional synthesis highlights sea‐level and shelf exposure as key drivers of IPWP SST patterns, with a more pronounced precession influence at the southern IPWP margin. Our findings demonstrate that both glacial‐interglacial cycles and precession govern SST and productivity variations in the IPWP.

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Cite This Study

Tran et al. (2026) studied this question.

synapsesocial.com/papers/69af955970916d39fea4cc79https://doi.org/10.1029/2025pa005276
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