Past temperature reconstructions offer valuable insights into the impact of climate change on the global climate-human-vegetation system. Branched glycerol dialkyl glycerol tetraethers (brGDGTs) are recognized as effective temperature proxies, particularly in lakes and peatlands, where they are well preserved. However, their reliability as palaeothermometers can be compromised by factors beyond air temperature, especially in drylands. This study investigates the recently compiled Arid Central Asian (ACA) brGDGT surface Data Base, a regional dataset consisting of 753 surface samples from the drylands of ACA. The distribution of brGDGTs in relation to climate and environmental variables was analysed to explore their potential as reliable temperature proxies, mainly focusing on brGDGTs methylation (MBT), cyclisation (CBT), and isomer (IR) indices. The brGDGT-based palaeothermometer is a promising tool for understanding past climates, but our comparison between an ACA-centred database and a worldwide continental surface sample database reveals several challenges. Drylands exhibit extreme climate and soil/lacustrine properties, amplifying the impact of confounding factors on brGDGT-based relationships with mean annual air temperature. Salinity emerges as the dominant factor influencing brGDGT variance, followed by sample type, pH, and aridity, all of which contribute significantly. These factors interact in complex ways, with the salinity effect varying between soil and lacustrine deposits. For sample physicochemical conditions, the IR6+7Me′ index is best for salinity, and IR6Me is most suitable for pH reconstruction. Thus, the MBT5Me′-temperature relationship is limited in ACA, particularly for lacustrine samples, and MBT6Me′ does not offer a better solution under hyper- to semi-arid conditions. Sub-calibrating models for specific environmental conditions such as salinity and aridity improves the accuracy of temperature reconstructions. Furthermore, the difference between MBT5Me′ and MBT6Me′ provides a promising proxy to assess aridity. Although the brGDGT signal in drylands is influenced by multiple controlling factors, it remains a valuable tool for understanding past climate and environmental conditions, especially when accounting for the complex interactions between these factors based on each study's unique physicochemical and bioclimatic context. Further research, incorporating a broader range of surface samples alongside comprehensive soil and climate data, holds the potential to enhance the accuracy of brGDGT-based climate reconstructions.
- BrGDGT-based palaeothermometer in drylands: the necessity to constrain aridity and salinity as confounding factors to ensure the robustness of calibrations
- Lucas Dugerdil - Université de Montpellier, Institut des Sciences de l'Evolution - Montpellier - ISEMSébastien Joannin - Université de Montpellier, Institut des Sciences de l'Evolution - Montpellier - ISEMOdile Peyron - Université de Montpellier, Institut des Sciences de l'Evolution - Montpellier - ISEMShafag BayramovaXiaozhong Huang - Central South University [Changsha]Fahu Chen - Institute of Tibetan Plateau ResearchDilfuza Egamberdieva - National University of UzbekistanJakhongir Alimov - National University of UzbekistanBazartseren Boldgiv - National University of MongoliaAmy Cromartie - Université de Montpellier, Institut des Sciences de l'Evolution - Montpellier - ISEMJuzhi Hou - Chinese Academy of Sciences [Beijing]Lilit Sahakyan - National Academy of Sciences of the Republic of Armenia [Yerevan]Khachatur Meliksetian - National Academy of Sciences of the Republic of Armenia [Yerevan]Salomé Ansanay-Alex - Laboratoire de Géologie de Lyon - Terre, Planètes, EnvironnementRafig SafarovImran MuradiShabnam IsayevaShehla MirzayevaElshan AbdullayevSayyara IbadullayevaParvana GarakhaniGuillemette Ménot - Laboratoire de Géologie de Lyon - Terre, Planètes, Environnement
- Biogeosciences, Vol.23(3), pp.1013-1042
- 99193221309311
- Institut des Sciences de l'Evolution - Montpellier - ISEM
- English
- Journal article
- hal-05492293