Перейти к основному содержанию
Статья

FTIR-based quantification of calcium oxalate monohydrate in almond bark reveals a relationship between crystal concentrations and aridity

Timur KarimovD-REAMS Laboratory, Scientific Archaeology Unit, Weizmann Institute of Science, Rehovot, 7610001, Israel. Electronic address: [email protected]Vlad BrumfeldDepartment of Chemical Research Support, Weizmann Institute of Science, Rehovot, 7610001, IsraelXiaoMeng SuiDepartment of Chemical Research Support, Weizmann Institute of Science, Rehovot, 7610001, IsraelEugenia MintzD-REAMS Laboratory, Scientific Archaeology Unit, Weizmann Institute of Science, Rehovot, 7610001, IsraelLior RegevD-REAMS Laboratory, Scientific Archaeology Unit, Weizmann Institute of Science, Rehovot, 7610001, IsraelAkbar AkhmedovDepartment of Botany, Samarkand State University, University Boulevard 15, Samarkand, 140104, UzbekistanMuhtor NasirovDepartment of Botany, Samarkand State University, University Boulevard 15, Samarkand, 140104, UzbekistanJamoliddin BobokalonzondaDepartment of Botany, Tajik National University, Rudaki Avenue 17, Dushanbe, 734025, TajikistanS WeinerDepartment of Chemical and Structural Biology, Weizmann Institute of Science, Rehovot, 7610001, IsraelElisabetta BoarettoD-REAMS Laboratory, Scientific Archaeology Unit, Weizmann Institute of Science, Rehovot, 7610001, Israel. Electronic address: [email protected]
2026en
ABI

Аннотация

Calcium oxalate monohydrate (whewellite) is a widespread plant biomineral implicated in calcium regulation, structural reinforcement and stress responses. The quantitative distribution of these crystals in woody tissues and whether crystal abundance is influenced by environmental conditions, remain poorly understood. Here, we developed a Fourier-transform infrared spectroscopy (FTIR) assay for quantifying whewellite concentrations in plant woody tissues and validated the approach using independent micro-computed tomography measurements across a wide concentration range. We applied this method to bark samples of multiple almond species collected along climatic gradients spanning arid to mesic environments. Bark whewellite concentrations ranged from about 5 wt% to ∼32 wt% and showed a strong negative relationship with mean annual precipitation. This shows enhanced calcium oxalate crystal formation under arid conditions. In contrast, lithological calcium availability did not significantly explain whewellite concentrations once precipitation was accounted for, suggesting that calcium oxalate crystal formation is more closely associated with physiological responses to water availability than with substrate calcium content. This strong correlation between amounts of crystals formed in bark and the mean annual precipitation raises questions about bark physiology, as well as the intriguing possibility that this property of bark can be used to reconstruct ancient terrestrial climate changes.

Перевод пока недоступен

Идентификаторы

Цитирования и источники